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K-Series: Product Manual

Cover

K-Box

Pinout of the K Box
K-Box: Product Manual
Cover

K-TC

KTC-XX Pinouts (INF 2204.02/5.02/6.02)
K-TC 2.0 : Logger Manual (using K-CAL)
K-TC 2.0: Logger Manual (using K-Log)
Cover

K-AN8 / K-IEPE / K-PT

K AN8 Pinouts (INF 2210)
K IEPE Pinouts (Add-On) (INF 2213)
K PT Pinouts (Add-On) (INF 2212)

Configuring the K-Box

The K-Box comes pre-configured, but the configuration is programmable using the K-Box Calibration utility. It requires installing a Kvaser Leaf Light, Memorator or an Influx Rebel CT or LT and installing the K-Box Calibration utility.

For the above example, please install the Kvaser Drivers.

For the above example, please install the Rebel Drivers.

Cycle Duration Measurement

To measure the duration of a cycle, select Cycle Duration in the drop-down box:

Frequency can then be calculated using the following formula:

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F = 1 / T

In this case, this frequency is NOT average frequency. It is instantaneous frequency.

The KBox will wait until the cycle measurement is finished before sending a CAN message with the duration. If the cycle duration is long, the messages may be sent slower than the selected Rate.

If the Cycle duration is shorter than the time between messages set by the Rate, the duration will be re-calculated before being sent.

Enable the AUX Power setting within the Logger Configuration

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Note:

Installing the Kvaser Drivers

Download the Kavaser Drivers for Windows. They are located at:

Run kvaser_drivers_setup.exe

Click Next to start the Installation.

Click Next after viewing the documentation (optional).

Select the item(s) you wish to install (at least one is needed to install the Drivers).

Installing ReXgen J2534 Drivers

Download the ReXgen J2534 Driver by clicking the below link and execute the file. -

Double click on ReXgen j2534 Installer.

Click 'Cancel' to abort installation.

Click 'Install'.

Click 'Close'.

The Input Function

Digital 1-3 can be used to measure input signals, process them, and output the result as a CAN message with a Defined CAN ID (e.g. Pulse duration could be measured and output as a CAN message on CAN ID 0x310)

The K Box send CAN messages with a defined ID (in this example, 0x300 and rate 100 ms), containing information about the logical level of the Digital signals. This information is contained in the 1st byte of the message.

Pulse Duration Measurement

To measure Pulse duration, select Pulse duration in the drop-down box:

Also, set the CAN ID rate, where The K Box will transmit the result.

Set the Rate you wish to measure at:

Select the edge on which you wish to start measuring the pulse duration.

Event Measurement

To count digital events, select Event Counter in the drop-down box:

Also, set the CAN ID where The K Box will transmit the result.

Set the Rate you wish to measure at:

Select the edge on which you wish to start measuring the events.

or according to whether the Modulation is on the rising or falling edge:

Reprogramming the K-Box

You can change to the Reprogramming Function by clicking on this tab. The following window appears:

Click the Open Button

Locate the hex file that you wish to program into the K-Box. Generally, this will be located in C:\Program Files (x86)\Influx Technology\K-Box Config\firmware.

Then click the Open Button.

Click the Commit button. The following progress indicator at the bottom of the screen becomes visible:

Applying a Formula to a Channel

Use the following steps to apply a Formula to a channel:

Click the Channel you want to assign the Formula to:

If the Channel already has a Conversion Table or Formula assigned to it, the corresponding button will be highlighted in red:

If you wish to remove the existing Conversion Table or Formula, click Table or Formula and uncheck the tick by clicking on the tick next to the Table in use or the button.

Select Formula / Edit:

Appendix

Using the Oscilloscope to display data

The lower area of the ‘Measurement’ tab is used to display the oscilloscope:

There are several ways to add items to the Oscilloscope:

.

.

Installing the K-Cal Software

Run the K-BoxCal.msi

Click Next to start the installation.

After the K-BoxCal software is installed, click 'Finish'.

Configuration Panel

The configuration panel comprises the available TC channels with respect to the device connected and the sampling rates for each Channel in the corresponding dropbox.

Users can also specify the names for each channel, which the TC Logger software will use during data export.

The channel names and the rates will be saved with the configuration in xml format.

Users can import the configuration before exporting the data so that the data exported will have the labels specified by the user.

Adding All Channels to the Oscilloscope (Method 1)

All Channels can be added to the Oscilloscope by following the following steps:

Click the ‘Scope add / Add all’ button.

All channels will be added to the Oscilloscope.

Adding All Channels to the Oscilloscope (Method 2)

All Channels can be added to the Oscilloscope by following the following steps:

Right-click in the Item Information Area and Select Add All:

All channels will be added to the Oscilloscope.

Max Log Time (min)

Max Logging Time – Allows the user to specify Max Log Duration for a data log.

Graphical Overview

TC Logger software is accessed using either the desktop icon:

Or the 'Start Menu' directory—"Influx Technology".

Once started, the user is presented with the following opening screen:

Software Introduction

Channel Display and Conversion

The top area of the Measurement Tab is used to display the Measured and Converted (if applicable) Values for each of the K-Boxes Channels and to Assign Conversion Tables and Formulas to channels:

Selecting the Channel to display

Click on the radio button of the channel you wish to display. The Actual Measured Value will be displayed. If a ‘Conversion Table’ or ‘Formula’ is assigned to that channel, the converted value and units will be shown along with the formula or name of the conversion table:

Setting up Max log time

The maximum log time for a single file can be entered in the max log time checkbox.

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Notes:

The 'How to' Guide

Individually Adding items to the Oscilloscope.

Items can be added to the Oscilloscope individually by following the following steps:

Click the Channel you want to add to the Oscilloscope:

Click the Scope Add button.

The Channel will be added to the Oscilloscope.

Software Introduction

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Graphical Overview

K-TCxx is accessed using either the desktop icon: or the ‘Start Menu’ directory—Influx Technology’.

Using K-TCxx Cal to display data

You can use the K-TCxx Cal application to display the Thermocouple being measured by the K-TCxx visually.

Status Bar

The 'Status Bar' is used to display key pieces of information regarding the TC logger.

Logger Status – Indicates the connection status of the TC logger.

TC model info – Displays the TC series of the connected device.

Firmware info – Displays the current firmware info of the connected device.

Logger serial number –

Channel Display

The top area of the Measurement Tab displays the Measured Values for each K-TCxx channel.

Driver Installation

Before proceeding with the installation, please ensure that you have acquired administrative privileges.

Run the TCXXInstaller.exe file.

  • To continue installing the TC logger device driver on your system, click, 'Next'.

Configuring the K-TCxx

The K-TCxx comes pre-configured, but the configuration is programmable using the K-TCxx Calibration utility. It requires installing a Kvaser Leaf Light, Memorator or an Influx Rebel CT or LT and installing the K-TCxx Calibration utility.

For the above example, please install the Kvaser Drivers.

For the above example, please install the Rebel Drivers.

For the above example, please install the KTC Drivers.

Specifications
Pinout of the K-Box
Pinout of the Multi Connect Cable
Measurement IEPE Procedure
Graphical Overview
Navigation Bar
Status Bar
Configuration Panel
Max Log Time (min)
Internal Storage Window
Show Data Log Window
Preparation of Configuration
Setting up Max log time
Retrieving the Datalog
https://downloads.influxtechnology.com/ReXdesk/Rexgen_J2534_Installer.ziparrow-up-right
The KBox will not send CAN messages (although the rate is met) until the required measurement is finished.

The KBox will re-calculate the message and Rate to prevent CAN bus overloading.

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Examples:

Pulse frequency: 2000Hz (0.5ms). Rate: 50ms. CAN bus Speed: 125 kbps.

If there is no overloading of the CAN bus, a corresponding CAN Message will be sent every 50ms.

Pulse frequency: 2000Hz (0.5ms). Rate: 1ms. CAN bus Speed: 125 kbps.

If there is no overloading of the CAN bus, a corresponding CAN Message will be sent every 2ms.

.
Individually Adding items to the Oscilloscope.
Adding All Channels to the Oscilloscope (Method 1)
Adding All Channels to the Oscilloscope (Method 2)
Working with items added to the Oscilloscope
Displays the serial number of the connected TC logger.
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Notes:

  • The Event counter will be reset if the K-Box is power cycled or loaded with a new configuration.

The Event counter will be incremented on any received registered event edge.

  • Max log time should be set while updating a new configuration.

  • Software Installation

    Installing the K-TCxx Cal Software

    K-TCxx Driver Installation

    Installing the Rebel Drivers

    Not not required when conneced via any of the ReXgen devices and the ReXdesk software

    If you power it from the Logger, the Logger will need to be powered from the vehicle or an external power source (NOT just via USB), and you will need to ensure the AUX power feature in the Configuration is set to “On”. To do this, follow the Steps Below:

    Right-click on the “Project” you want to configure and select “Properties”. If you need to create a configuration, it is detailed in this document's ‘Loading the K-Box configuration into Dialog’ section.

    Once the Edit Configuration window is displayed, click the “Settings” tab and checkmark Aux Power On.

    Click “OK” to set the Aux Power on Setting in the Configuration.

    Send the Configuration to the Logger by right-clicking on the “Project” and choosing “Send Configuration to the Logger.”

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    Notes:

    • Within the 'Project', you should have the bus that the K-Box is connected to set as CAN 1 (MS) if you are using the AUX connector of the Multi Connect Cable.

    If you have the CAN bus that the K-Box is connected to set to the correct speed within your project, you will see the Status Light on Solid Orange and the CAN Light on Solid Green. If it is flashing green, the CAN bus is misconfigured; check the speed and termination.

    Choose or confirm the location where you wish to install the drivers.

    The Drivers will be installed. Click “Close” once the process is complete.

    When the progress indicator reaches the right-hand side, reprogramming is complete.

    Enter the Formula you would like to use, e.g. Y=0.75*X+12.3 and also the units of the output:

    Click OK to apply the Formula to the Channel.

    The Formula will immediately be applied, and you will see the Formula in use for the selected Channel.

    To cancel the installation at this stage, click 'Cancel'. (No software will have been installed on the system now).
    • Once the installation is complete, this window will appear.

    • Click 'Finish' to close the window. TCXX driver is now successfully installed on your system.

    High-Frequency measurement

    To measure high frequency, select ‘High Frequency’ in the drop-down box:

    Also, set the CAN ID where The K Box will transmit the result.

    Set the Rate you wish to measure at:

    The Rate parameter affects measurement precision.

    The K Box measures high frequency using a pulse counter for the selected Rate and normalises it to 1 second to calculate the value in Hz = 1 s * N pulses / Rate.

    The K-Box averages measured values if the high-frequency changes for a measurement interval (Rate).

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    Example:

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    Selected Rate: 100ms.

    The sensor sends at a frequency of 10kHz for 60ms, and the K-Box registers 600 pulses (60ms * 10kHz).

    The sensor sends at a frequency of 8kHz. For 40ms, the K-Box registers 320 pulses (40ms * 8kHz).

    For the whole measurement interval of 100ms, The K-Box registers a total of 920 pulses.

    Normalised to Hz, the measured frequency is 9.2kHz (1 s * 920 pulses / 100ms).

    If the Rate is set to 1000 ms, the measurement's accuracy will be 1Hz.

    Duty Cycle/PWM Measurement

    To calculate the Duty cycle of a PWM signal, select Duty cycle/PWM in the drop-down box:

    Also, set the CAN ID where The K Box will transmit the result.

    Set the Rate you wish to measure at:

    Select the edge you wish to start measuring the duty cycle on.

    oraccording to whether the modulation is on the rising or falling edge:

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    Pulse Wave Modulation examples:

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    e.g. 1) Modulation on the falling edge:

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    e.g. 2) Modulation on the rising edge:

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    Notes:

    • The K-Box will change the CAN message Rate for this measurement to prevent CAN bus overloading.

    The Output Function

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    Important: Configuring the Output Mode:

    Unless you have special hardware, build your K-Box Digital 1, Digital 2 and Digital 3 MUST be configured as 3.3V if used in output Mode due to the Outputsign of the circuitry:

    Unless you have a unique hardware build, your K-Box Digital 4 MUST be configured as Open Collector (if used in output Mode due to the design of the circuitry):

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    Operation of the Output Signals

    If any of the PINs are set to an “Output”, the output CAN ID becomes active, and you can select the CAN ID, which will receive messages that will be output on the appropriate pins of the K-BOX.

    If the CAN ID were set to 0x400, when the Kbox receives a CAN message with Ident 0x400, the first byte is interpreted as an 8-bit command as follows:

    OutLevel indicates whether the PIN should give output 1 or 0. “OutSet” sets the OutLevel on the PIN if it is = 1 (enable); if the OutLevel is 0 (disable), then the OutLevel value in the message is not set.

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    Example:

    If the KBox receives a CAN message with DLC = 1 and CAN ID = 0x400.

    Data byte = 0x30 (00110000 ) High Level on Digital 3, Digital 3 enabled. Outputbyte = 0x20 (00100000 ) don’t care about Digital 3; keep old level on Digital 3.

    In this, the command controls all Digital Outputs at once and at any time.

    The Output level can only be changed with a new CAN message with Ident 0x400, re-configuration with B-Box Cal, or turning the KBox power off.

    If NONE of the PINs is set to Output, the Outputs CAN ID will become greyed out, and the K-Box will not enable the Output on the Digital pins when CAN messages are received.

    Applying a Conversion Table to a Channel

    Use the following steps to apply a Conversion Table to a channel.

    Click the Channel you want to assign the Conversion Table to:

    If the Channel already has a Conversion Table or Formula assigned, the corresponding button will be highlighted in red.

    If you wish to remove the existing Conversion Table or Formula, click Table or Formula and uncheck the tick by clicking on the tick next to the Table in use or the button.

    Click the name of the Table you wish to apply to the Channel.

    The Conversion Table will immediately be applied. You will see the name of the conversion table in use for the selected Channel.

    Connecting and powering the K-Box

    The K-Box is powered via the CAN and power connectors. It has been designed with CiA® 102 pinout for the CAN bus and power to connect the device as easily as possible.

    Most commonly, it will be powered from a Rebel Logger using the Multi-Connect Cable, but you can also power it via pin 9 (4.5 to 36V) and pin-5 PowerGND of the nine-pin Sub-D connectors. If connected via the Multi-connect cable, the CAN 1 (MS) bus is also connected, allowing the logger to record the data transmitted from the K-Box.

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    a) Setup for interfacing ReXgen Device with K-Box

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    Notes:

    • When using a ReXgen Air device with K-Box device, be sure to get in touch with the technical support team at Influx.

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    b) Setup for interfacing Rebel Device with K-Box.

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    Warning:

    • Several K-Boxes can be daisy chained via the additional DB9 Connector; however, they must have power supplied separately via power breakout in the Cable, not via the Logger. It can also be used to connect other devices, such as the Rebel Dash.

    The pinout of the required Cable between the two K-Boxes is as follows:

    Measurement IEPE procedure

    1. Connect the K-Box and IEPE devices. Connect the IEPE sensors to the IEPE0-3 channel.

    2. Set the Additional board to Not Connected, Software ranges of odd channels to ±20V.

    1. Connect the IEPE sensors, Keep the sensor in idle conditions, and Go to measurement mode.

    Note down the measured value for ADC1 (IEPE 0), ADC3 (IEPE 1), ADC5 (IEPE 2) and ADC7 (IEPE 3) channels in mV.

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    IEPE & Analog channel links: ADC1-IEPE0, ADC3-IEPE1, ADC5-IEPE2, ADC7-IEPE3

    1. Go to the Analog channel tab. Change the Additional board to IEPE, copy remembered values to the Offset edit box of each IEPE channel, and enter the sensitivity of the sensors.

    1. Go to Measurement mode.

    Then, export the DBC and import it into DiaLog software.

    Make sure you select the combined option in the IEPE Transmit – Measure option.

    Using K-Box Cal to display data

    The user can use the K-Box Cal application to display the Analog voltages being measured by the K-Box visually.

    Preparation of configuration

    TC Logger allows the user to assign the temperature channels with different sampling rates.

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    Step 1

    Open TC logger software, Interface TC logger with PC.

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    Step 2

    Select sampling rate for each group of TC channels.

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    Step 3

    Enter the names for each of the channels.

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    Step 4

    Save the configuration to the PC, this XML will be used during exporting of data for assigning channel names.

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    Step 5

    Click "Send Config" to update the configuration to the logger.

    Erasing the Calibration

    To erase the calibration, follow the following steps:

    Click the Clear calibration.

    Click Yes to confirm that you want to clear the calibration.

    Check that you can see the status messages at the bottom of the K-Box Cal Application if you can’t click on the light blue line and drag it upwards.

    Wait until the status messages at the bottom of the window show that the Calibration table has been cleared:

    Show Data Log Window

    The datalog window will display the logged temperature data in the oscilloscope.

    Navigation Bar

    The 'Navigation Bar' is situated at the top of the software screen and can navigate most program features. Some of the menus will be active only when the logger is interfaced.

    Allows the user to import the saved TC settings file.

    Allows the user to save the working project (Projects are saved in .xml format).

    Allows the user to update the settings to the logger.

    Installing the Rebel Drivers

    The Rebel drivers must be correctly installed to ensure the Rebel functions perfectly.

    If DiaLog is installed, a driver installation application will be available, which can be found in the Influx Technology folder of the Start Menu, as shown below.

    Ensure the Rebel is not plugged in and click ‘Next’ to continue.

    Please read and accept the EULA, then click ‘Next’ to continue.

    The driver installation will begin and may take a few moments.

    Once the installation is complete, click ‘Finish’ to close the application.

    Plugin the Rebel to allow the drivers to be recognised.

    K-TC: Logger Manual

    INF 2204/05/06

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    ABOUT THIS MANUAL

    This document provides a brief idea of the usage, safety precautions, installation procedures and operation of the Influx K-TC. This document is intended for professional engineers and academic researchers, allowing them to understand the concept of operating the device and integrate this knowledge into systems with components of other manufacturers.

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    DISCLAIMER

    Translation of the original K-TC: User Manual & Quick Start Guide.

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    COPYRIGHT & LICENSE AGREEMENT

    The content of this document, including all brands and trademarks and possibly protected by third-party rights, is subject without limitation to the terms of their respective registered owner’s valid trademark law and intellectual property rights.

    © 2020 INFLUX TECHNOLOGY. All rights reserved.

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    SUPPORT

    If you have a problem that you cannot resolve on your own, feel free to contact us for assistance at

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    CONTACT ADDRESS

    Influx Technology Ltd

    Millbrook Proving Ground, Station Lane

    Bedford, MK45 2JQ, United Kingdom

    Telephone: +44 (0) 1525 842504,

    Sales:

    Support:

    General Tab

    Users can find all the settings related to the CAN Bus interface, Sleep and Software option in this Tab.

    Pressing the Load Button Loads the settings in the K-TCxx and displays them on the screen.

    CAN Settings

    Baud rate: Allows the user to choose CAN Baud Rate for the unit

    Byte order: Allows the user to Change Byte order (Intel/Motorola)

    Sleep Mode

    Deep Sleep: Enables the low power consuming Deep Sleep

    No CAN Activity: Enables sleep function if there is no CAN activity

    CAN ID: CAN ID used for Sleep Command

    After Time: Sleep delay time

    Tool Options

    Load at Startup: Enabling this automatically loads the previous settings

    Load at Export: Enabling this automatically loads the previous settings

    Auto assign ID: Enables Automatic assigning of CAN ID to signals to avoid duplicates, used when multiple devices are configured simultaneously.

    TC unit: Allows the user to specify the unit to be used, deg C or deg F

    Reprogramming

    Allows the user to browse and select the firmware file.

    Pressing Commit will start the Reprogramming process.

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    Notes:

    • Do not disconnect or power cycle the device during the process.

    Enable the AUX Power setting within the Logger Configuration

    If you power it from the Logger, the Logger will need to be powered from the vehicle or an external power source

    (NOT just via USB) and you will need to make sure the AUX power feature in the configuration is set to on. To do this, follow the Steps Below:

    Right-click on the Project that you want to configure and select ‘Properties’; if you need to create a configuration, this is detailed in the ‘Loading the K-TCxx configuration into DiaLog’ section document.

    Once the Edit Configuration window is displayed, click on the ‘Settings’ Tab and put a Checkmark in Aux Power On.

    Click OK to set the Aux Power on Setting in the Configuration…

    Send the configuration to the Logger by right-clicking on the project and choosing “Send Configuration to the Logger.”

    If you have the CAN bus that the K-TCxx is connected to set to the right speed within your Project, you will see the Status Light on Solid Orange, and the CAN Light on Solid Green; if it is flashing green, the CAN bus is misconfigured, check the speed and termination.

    Internal Storage Window

    The Internal storage panel displays all the files currently stored on the TC Logger memory.

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    Available Menu actions

    • Refresh – Allows the user to refresh the window.

    • Download – Allows the user to retrieve log files from the TC logger memory.

    • Export – Allows the user to export the RAW data to various other export formats.

    • Show data log – Allows to view and then export the selected log data.

    • Format SD – Allows the user to format the internal memory of the data logger.

    • Find – Allows the user to search for log files.

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    Export Window

    This window allows the user to select an individual Channel required for exporting, select the Export format, Export options and Output Location.

    Enabling "Use full date/time format" allows user to export data with actual time stamp (dd:mm: yyyy: hh:mm: ss).

    Using the K-TCxx Cal Software

    Once you launch the K-TCxx Configuration utility, you will see the settings for the Interface you are using. If the K-TCxx is on and connected, its serial no and firmware version will be displayed at the bottom of the screen.

    If the device is not interfaced, choose the interface device and click Baud Rate Scan.

    Erasing the Calibration

    To erase the calibration, follow the following steps:

    Click the Clear Button.

    Click ‘Yes’ to confirm that you want to clear the calibration.

    Check that you can see the status messages at the bottom of the K-TCxx Cal Application; if you can’t, click on the light blue line and drag it upwards.

    Wait until the status messages at the bottom of the window show that the Calibration table has been cleared:

    Introduction

    The K-TC is Influx’s stackable instrumentation compatible with the entire range of data loggers from Influx. It can also be integrated with any device configured via DBC files, even other logger systems or output signals on CAN to the Rebel Dash display.

    The K-TC is an ideal solution for applications that require a large number of thermocouple inputs. The K-TC’s accurate sensor data is transmitted periodically on the CAN bus, enabling multiple devices to be connected. In addition, the K-TC CAN bus settings, calibration, and sampling rates are all easily configurable, and these settings are stored within the K-TC even when the device is not powered.

    K-TC8
    KTC16
    K-TC32

    K-TCxx Driver installation

    Before proceeding with the installation, please ensure you have acquired administrative privileges.

    To install the K-TCxx driver, run the .exe file in this location:

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    C:\Program Files (x86)\Influx Technology\Influx K-Cal\TCxxDriver

    The .exe file can also be found in the start menu under ‘influx technology.

    Run the K-TCxx Installer.exe file.

    Click 'Next' to continue installing the K-TCxx device driver on your system.

    To cancel the installation at this stage, click ‘Cancel’. (No software has been installed on the system at this point.)

    Please read the license agreement carefully.

    Once you understand and accept the license agreement, please click ‘I accept this EULA’ to continue with the driver’s installation. If you do not accept the terms, please click ‘Cancel’ to stop the installation at this point.

    Click ‘Next’ to continue the installation process.

    Once the installation is complete, this window will appear.

    Click ‘Finish’ to close the window. The K-TCxx driver is now successfully installed on your system.

    Installing the K-TCxx Cal Software

    Run the K-TCxxCal.msi

    Click Next to start the installation

    The program installation window appears.

    Click “Cancel” if you do not wish to install it.

    After the K-TCxxCal software is installed, click finish

    Connecting and powering the K-TCxx

    However, K-TCxx is powered via the CAN and power connectors and designed with CiA® 102 pinout for the CAN bus and power to connect the device as simple as possible.

    Most commonly, it will be powered from a Rebel Logger using the Multi Connect Cable, but you can also power it via pin 9 (4.5 to 36V) and pin 5 PowerGND of the 9-pin Sub D connectors. If connected via the Multi connect cable, the CAN 1 (MS) bus is also connected to allow the Logger to record the data transmitted from the K-TCxx.

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    Warning:

    • Several K-TCxx can be daisy chained via the additional DB9 Connector. However, they must have power supplied separately via power breakout in the cable, not via the Logger. It can also be used to connect other devices, such as the Rebel Dash.

    The pinout of the required Cable between the two K-TCxx is as follows:

    Manufacturer

    Pressing the Load Button Loads the settings in the K-TCxx and displays them on the screen.

    Individually Adding items to the Oscilloscope.

    Items can be added to the Oscilloscope individually by following the following steps:

    Click the Channel you want to add to the Oscilloscope:

    Click the Scope add button.

    The channel will be added to the Oscilloscope.

    Adding All Channels to the Oscilloscope (Method 2)

    All Channels can be added to the Oscilloscope by following the following steps:

    Right-click in the Item Information Area and Select Add all:

    All channels will be added to the Oscilloscope.

    Using the Oscilloscope to display data

    The lower area of the Measurement Tab is used to display the Oscilloscope:

    There are several ways to add items to the Oscilloscope.

    Driver Installation

    Before proceeding with the installation, please ensure you have acquired administrative privileges.

    Run the TCXXInstaller.exe file.

    • Click ' Next ' to continue installing the TC logger device driver on your system.

    • To cancel the installation at this stage, click 'Cancel'. (No software will have been installed on the system now).

    • Once the installation is complete, this window will appear.

    • Click 'Finish' to close the window. The TCXX driver has now been successfully installed on your system.

    Working with items added to the Oscilloscope

    Right-clicking in the Item Information Area brings up the following menu:

    The Menu Items allow the following functionality:

    Pinout details

    The Connector is a male and female 9-pin Standard D Type connector.

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    PIN Details

    Making a Configuration in Dialog to Log K-Box

    Create a new Configuration.

    Enable AUX Power ON in the settings tab. Click OK.

    Create a new BUS.

    Select CAN 1 (MS) from the pop-up menu.

    Enter the BUS properties.

    K-TC: User Quick Start Guide

    This document provides a brief idea of the operation of the Influx K-TCxx loggers (INF 2204/05/06).

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    ABOUT THIS MANUAL

    This document is intended for professional engineers and academic researchers, allowing them to understand the concept of operating the device and integrate this knowledge into systems with components of other manufacturers.

    Creating a Conversion Table

    Using a conversion table, the K-Box can use a table to map measured values to engineering units. For example, this feature could convert the output voltage from a pressure sensor to pressure in PA, allowing sensor values to be interpreted easily.

    To create a ‘Conversion Table’, follow the following steps:

    Clicking the Edit button allows the conversion table to be created.

    Fill the Name field, Y-Axis Units and add points to the Conversion table:

    In this example, the conversion Table has been named V-PA. The units it will convert to have been set to kPA. Once that is done, the Add button adds the various points on the graph. That describes the sensor’s transfer function (in this example, 0,0; 200,442; 400,981, and so on)

    Exporting a DBC file with conversion tables and Formulas

    The DBC Export feature allows you to export the Conversion tables and Formulas Applied to the various Analog channels for use in other tools such as DiaLog.

    How to using the K-box (tutorial video).

    Interface Tab

    The ‘Interface Tab’ is situated at the top of the software screen and can navigate most program features. Some of the menus will be active only when a logger is interfaced.

    • – This allows the user to configure the interface and sleep settings.

    Frequency Measurement

    To measure frequency, select ‘Frequency’ in the drop-down box:

    Also, set the CAN ID where The K Box will transmit the result.

    Set the Rate you wish to measure at:

    The Rate parameter affects measurement precision.

    The K Box measures frequency using a pulse counter for the selected rate and normalises it to 1 second to calculate the value in Hz = 1 s * N pulses / Rate.

    Reprogramming the K-TCxx

    You can change to the Reprogramming Function by clicking the Tab; you will see the following Window.

    Click the Open Button

    Locate the hex file that you wish to program into the K-TCxx. Usually, this will be located in C:\Program Files (x86)\Influx Technology\K-TCxx Config\firmware.

    Then select the 'Open' option.

    Click the Commit button; you will see the following progress indicator at the bottom of the screen:

    Calibration

    You can calibrate the K-TCxx to Improve the Accuracy of the measurements. The software allows you to cycle through a number of measurement points; once done, the calibration will apply the calibration to the K-TCxx, and measurement accuracy will be improved.

    Measurement Tab

    This Tab allows the user to visualise the live measurements.

    Installing the Rebel Drivers

    The Rebel drivers must be correctly installed to ensure the Rebel functions correctly.

    If DiaLog is installed, a driver installation application will be available, which can be found in the Influx Technology folder of the Start Menu, as shown below.

    Ensure the Rebel is not plugged in and click ‘Next’ to continue.

    Please read and accept the EULA, then click next to continue.

    K-TC 2.0: Logger Manual (using K-Log)

    This document provides a brief idea of the operation of the Influx K-TCxx loggers (INF 2204.02/05.02/06.02).

    hashtag
    ABOUT THIS MANUAL

    This document is intended for professional engineers and academic researchers, allowing them to understand the concept of operating the device and integrate this knowledge into systems with components of other manufacturers.

    Software Installation

    Before proceeding with the installation, please ensure you have acquired administrative privileges.

    Make sure you have installed the Microsoft Visual C++ Redistributable (x86)

    Dotnet runtime 4.7.2 is required.

    You can download it from the following link:

    To begin with, install the K-Log software and open the installer by running the set-up file.

    Adding All Channels to the Oscilloscope (Method 1)

    All Channels can be added to the Oscilloscope by following the following steps:

    Click the Scope add/Add all button.

    All channels will be added to the Oscilloscope.

    Exporting a DBC file

    Using the DBC Export Feature allows you to export the Conversion tables and Formulas Applied to the various Analog channels for use in other tools such as DiaLog.

    Clicking DBC Export will open the DBC export window.

    Select the channels you wish to include in the DBC and click Export.

    Choose the location where you wish to save the DBC file.

    How to using K-TC (tutorial video).

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    DISCLAIMER

    Translation of the original K_TC: User Manual & Quick Start Guide.

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    COPYRIGHT & LICENSE AGREEMENT

    The content of this document, including all brands and trademarks and possibly protected by third-party rights, is subject without limitation to the terms of their respective registered owner’s valid trademark law and intellectual property rights.

    © 2021 INFLUX TECHNOLOGY. All rights reserved.

    hashtag
    SUPPORT

    If you have a problem that you cannot resolve on your own, feel free to contact us for assistance at docs.influxtechnology.comarrow-up-right

    hashtag
    CONTACT ADDRESS

    Influx Technology Ltd

    Millbrook Proving Ground, Station Lane

    Bedford, MK45 2JQ, United Kingdom

    Telephone: +44 (0) 1525 842504,

    Sales: [email protected]envelope

    Support: docs.influxtechnology.comarrow-up-right

    www.influxtechnology.comarrow-up-right

    hashtag
    DISCLAIMER

    Translation of the original K-TC 2.0: User Manual & Quick Start Guide.

    hashtag
    COPYRIGHT & LICENSE AGREEMENT

    The content of this document, including all brands and trademarks and possibly protected by third-party rights, is subject without limitation to the terms of their respective registered owner’s valid trademark law and intellectual property rights.

    © 2021 INFLUX TECHNOLOGY. All rights reserved.

    hashtag
    SUPPORT

    If you have a problem that you cannot resolve on your own, feel free to contact us for assistance at docs.influxtechnology.comarrow-up-right

    hashtag
    CONTACT ADDRESS

    Influx Technology Ltd

    Millbrook Proving Ground, Station Lane

    Bedford, MK45 2JQ, United Kingdom

    Telephone: +44 (0) 1525 842504,

    Sales: [email protected]envelope

    Support: docs.influxtechnology.comarrow-up-right

    www.influxtechnology.comarrow-up-right

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    –
    This allows the user to visualise the thermocouple data on the oscilloscope.
  • Thermo Couples – This allows users to configure the thermocouple sampling rates and CAN IDs.

  • Calibration – This allows the user to calibrate the thermocouple inputs.

  • Reprogramming – This allows the user to re-programme the TC module.

  • Manufacturer - This allows the user to review the manufacturer's information

  • General
    Measurement

    The K-Box averages measured values if the frequency changes for a measurement interval (Rate).

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    Example:

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    Selected Rate: 100ms.

    The sensor sends at a frequency of 10kHz for 60ms, and the K-Box registers 600 pulses (60ms * 10kHz).

    The sensor sends at a frequency of 8kHz. For 40ms and the K-Box registers 320 pulses (40ms * 8kHz).

    For the whole measurement interval of 100ms, The K-Box registers a total of 920 pulses.

    Normalised to Hz, the measured frequency is 9.2kHz (1 s * 920 pulses / 100ms).

    If the Rate is set to 1000 ms, the measurement's accuracy will be 1Hz.

    circle-info

    Notes:

    • The “Cycle duration” function should be used to measure low frequency with high precision.

    b0: Dig1OutLevel

    b1: Dig1OutSet

    b2: Dig2OutLevel

    b3: Dig2OutSet

    b4: Dig3OutLevel

    b5: Dig3OutSet

    b6: Dig4OutLevel

    b7: Dig4OutSet

    Invert Selection

    Selects all items not currently selected and deselects the items currently selected.

    Active

    Makes the selected items 'Active'; they will be shown on the oscilloscope.

    Inactive

    Makes the selected items 'Inactive'; they will NOT be shown on the oscilloscope.

    Del

    Deletes the item or item selected in Orange.

    Add Group

    Adds selected item groups to the oscilloscope.

    Del Group

    Delete the selected item group from the oscilloscope.

    Add all

    Adds all items to the oscilloscope.

    Del all

    Deletes all items from the oscilloscope.

    Groups and scale to…

    Allows customisation of the scaling of selected items.

    Reset Scaling

    Sets the default scaling.

    Not Use

    Removes conversion tables or formulas from the selected item(s).

    Start New Log

    Allows to start a new log, clear log and refresh the Oscilloscope

    Rename

    Assigns a name to the channel; this will appear in the name column.

    Select All

    Selects all items

    Deselect All

    Deselects all items

    NC

    Pin 2

    CAN - Low

    Pin 3

    GND

    Pin 4

    NC

    Pin 5

    Power GND

    Pin 6

    NC

    Pin 7

    CAN - High

    Pin 8

    NC

    Pin 9

    Power Supply 5 – 31V

    Pin No

    Pin Function

    Pin 1

    Create a New Protocol.

    Select the CAN Monitor protocol.

    Assign the settings and Protocol Name.

    Select the Import tab and click Load DBC.

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    Or

    Click the DBC tab on the right side.

    Click the open DBC file icon to browse and select the previously generated K-Box DBC.

    Select the required signal from the DBC window.

    Copy the selected signals and paste them into the DAQ list.

    Send the configuration to the logger.

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    Notes:

    • You can have multiple buses in a single configuration. You can log OBD, A2L or ODX data along with K-Box.

    Save the conversion table by pressing OK:

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    OR

    When the progress indicator reaches the right-hand side, reprogramming is complete.

    Settings

    Allows the user to set the Nominal temperature values.

    Noise Level

    Allows the user to set the tolerance level.

    Clear Calibration

    Clears the existing calibration in the device.

    Clear Channel

    Clears the calibration for the particular channel.

    Alternatively, press the start button and attach the appropriate thermocouple test signals to the inputs of the K-TCxx to cycle through the test points to calibrate the K-TCxx for maximum accuracy.

    Pressing the Load Button Loads the calibration in the K-TCxx and displays them on the screen.

    You may use this function if you wish to check that the K-TCxx is calibrated

    Nominal Value

    Allows the user to select the value being fed to the thermocouple channel.

    Raw Temperature

    Displays the RAW temperature data.

    Noise

    Displays the noise level in the signal.

    The driver installation will begin and may take a few moments.

    Once the installation is complete, click ‘Finish’ to close the application.

    Plugin the Rebel to allow the drivers to be recognised.

    • Click ' Next ' to continue installing the K-Log on your system.

    • To cancel the installation at this stage, click 'Cancel'. (No software will have been installed on the system now.)

    • Select the folder where you wish to install the software; using the default location is preferred.

    • Select the preference for computer user installation to determine which computer users will access the ReXdesk software.

    • Click 'Next' to continue with the installation.

    • Click 'Next' to confirm the installation.

    • Once the installation is complete, this window will appear.

    • Click 'Close' to close the window. K-Log has been successfully installed on your system.

    https://aka.ms/vs/17/release/vc_redist.x86.exearrow-up-right
    https://dotnet.microsoft.com/en-us/download/dotnet-framework/thank-you/net472-offline-installerarrow-up-right

    Allow user to View internal storage.

    Allows the user to Set the Time of the TC device.

    Clicking DBC Export will generate the DBC file and prompt you for the location to save it.

    Pressing the Load Button Loads the settings in the K-TCxx and displays them on the screen.

    Pressing the Default Button will reset all the settings.

    Pressing the Export button will open the DBC export window.

    Pressing the Import button will load the settings from the DBC file.

    Configuring the Digital Channels

    You can change to the Digital Channel Configuration by clicking on the tab:

    Pressing the Load icon tab loads the settings contained in the K-Box and displays them on the screen.

    Here, you can configure the Digital Channels:

    • The CAN Ident and rates that the K-Box will broadcast channels used as input.

    • The CAN Ident and rates that the K-Box will receive data to be output.

    • In output mode, it should output 3.3V (Digital 1-3) or operate in Open Collector mode (Digiatl4).

    • PINs 1-3 can be configured to measure pulse duration, frequency, duty cycle, count events, cycle duration, or RPM when in’ Input’ mode.

    • PIN 4 can be used as an output for wake-up or to supply power, for example, to another daisy-chained K-Box.

      The 4 Digital Pins can all be configured as outputs: If that mode is used, then they either act in open collector mode (the base of the internal NPN transistor is energised according to the data that the K-Box receives via CAN message to the Outputs CAN ident configured) or they can act in 3.3V mode in which case they will output 3.3V or 0V depending on the to the data that the K-Box receives via CAN message to the Outputs CAN ident configured. If using the pins as outputs, you must set up CAN Messages with the same IDents as you have set up that broadcast data to the K-Box… The data format required is specified in the DBC file, and you can use the DiaLog DBC Editor (in the Presets section) to look at this.

      The first 3 Digital Pins can also be used as inputs and measure pulse duration, frequency, duty cycle, count events, cycle duration or RPM, and output. They calculated measurements as CAN messages on the CAN Ident configured for the Inputs.

    How to using K-Cal (tutorial video).

    Calibrating the K-Box

    To improve the accuracy, one can calibrate the K-Box measurements. The software allows the user to cycle through several measurement points. Once done committing, the calibration applies to the K-Box, improving the measurement accuracy.

    Pressing the Load Button Loads the calibration contained in the K-Box and displays them on the screen.

    Allows the user to set the noise level and tolerance.

    Alternatively, press the start button and attach the appropriate voltages/thermocouple test signals to the inputs of the K-Box to cycle through the test points to calibrate the K-Box for maximum accuracy:

    Select the Voltage of the Calibration Point you wish to calibrate, and make these points appropriate to the range of inputs you expect. For example, if you expect input signals to be between 0V and +38V, Influx recommends you calibrate the +40V and OV calibration points for that channel:

    Select the Channel of the Calibration Point you wish to calibrate by either clicking the Radio Button of the channel

    Or, by clicking on the point, you wish to calibrate in the field to the right.

    Adjust the input voltage from the calibrated test equipment that you are using to match the voltage for the test point:

    Press RUN:

    If the input voltage is stable and correct, the calibration of the channel will be updated as follows:

    If it is not, you will receive a warning:

    Repeat the steps above until you have calibrated all the calibration points.

    Doing this will save the calibration to the K-Box and create a report detailing the calibration:

    RPM Measurement

    To calculate Revolutions per Minute, select RPM in the drop-down box:

    Also, set the CAN ID where The K Box will transmit the result.

    Set the Rate you wish to measure at:

    Select the edge you wish to normalise measuring the revolutions on.

    or according to whether the Modulation is on the rising or falling edge:

    The Rate parameter affects the measurement precision.

    The K-Box measures RPM using a pulse counter for the selected rate and normalises it to 1 minute to calculate the output value.

    RPM = Ratenute * N pulses / Rate.

    The K-Box averages the measured values if RPM changes over the measurement interval.

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    Example:

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    If the Selected Rate = 500ms.

    If a Sensor sends 2000rpm for 300ms (sensor generates 2000 pulses per minute)

    The KBox registers 10 pulses (10 = 2000rpm * 0.3s/60s).

    If it then sends 4800 rpm for 200ms (sensor generates 4800 pulses per minute).

    The KBox registers a further 16 pulses (16 = 4800rpm * 0.2s/60s)

    For the whole measurement interval (500ms), the KBox registers will register a total of 26 pulses.

    The Normalised value calculated will be 3120 rpm (60s * 26 pulses/0.5s).

    The increment size of 120rpm limits the accuracy of measurement.

    If the parameter Rate were= 1000 ms, the measurement’s accuracy would be limited by the increment size of 60rpm.

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    Notes:

    • The “Cycle duration” function should be used to measure low RPM with high precision.

    Frequency can then be calculated using the following formula:

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    RPM = 60 / T

    In this case, this RPM is NOT average RPM; it is instantaneous RPM.

    The KBox will wait until the cycle measurement is finished before sending a CAN message with the duration. If the cycle duration is long, the messages may be sent slower than what is selected as the Rate.

    RateIf the Cycle duration is shorter than the time between messages set by the Rate, the duration will be re-calculated before being sent.

    Pinout of the K-TCxx

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    2x DB9 CAN Connectors

    The CAN connectors are 1x Male and 1x Female 9-pin Subminiature D Type connectors.

    DB9

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    Thermocouple Connectors

    The Thermocouple connectors on the K-TC are miniature-size flat-type sockets.

    The dimensions of the Male Flat Type Miniature Size Thermocouple Plug that you would plug into it are as follows:

    Retrieving the Datalog

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    Step 1

    Connect the logger to the PC via USB.

    Status Bar will display the logger status and time information.

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    Step 2

    Click on the "Internal Storage"

    The below window will open up:

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    Step 3

    Load the XML confiugation which contain the channel names.

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    Step 4

    The log files in the internal logger memory will be displayed.

    Select the files to be retrieved.

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    Step 5

    Click Export.

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    Step 6

    Select the TC channel required for exporting.

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    Step 7

    Select the required output format.

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    Notes:

    • Enabling "Use full date/time "allows user to export data in real-time stamp "dd:mm: yyyy: hh:mm:ss"

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    Step 8

    Browse and choose a location to save the data

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    Step 9

    Click process to export the file

    Selecting the Channel to display

    Click on the radio button of the channel you wish to display, and the Actual Measured Value will be displayed.

    Software Installation

    To begin with, install the TC logger software, and open the installer by running the set-up file.

    • To continue installing the TC logger on your system, click 'Next'.

    • To cancel the installation at this stage, click 'Cancel'. (No software will have been installed on the system now.)

    • Select the folder where you wish to install the software; using the default location is preferred.

    • Select the preference for computer user installation to determine which computer users will access the ReXdesk software.

    • Click 'Next' to continue with the installation.

    • Click 'Next' to confirm the installation.

    • Once the installation is complete, this window will appear.

    • Click 'Close' to close the window. TC logger is now successfully installed on your system

    Thermo Couples Tab

    Users can configure the CAN ID, Transmission rate and thermocouple type in this window.

    Calibrating the K-TCxx

    You can calibrate the K-TCxx to Improve the Accuracy of the measurements. The software allows you to cycle through a number of measurement points. Once done, committing the calibration will apply the calibration to the K-TCxx, and measurement accuracy will be improved.

    Alternatively, press the start button and attach the appropriate thermocouple test signals to the inputs of the K-TCxx in order to cycle through the test points in order to calibrate the K-TCxx for maximum accuracy:

    Select the Channel of the Calibration Point you wish to calibrate by either clicking the Radio Button on the channel.

    Pinout details

    The Connector is a male and female 9-pin Standard D Type connector.

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    PIN Details

    Loading the K-TCxx configuration into DiaLog

    Once the K-TCxx is configured as you wish to use it and have generated a DBC file that describes its configuration, you may load that description file into DiaLog and use it to configure the Logger to record the data output by the K-TCxx.

    If you power it from the Logger, it will need to be powered from the vehicle or an external power source (NOT just via USB), and you will need to make sure the AUX power feature in the configuration is set to on. To do this, follow the Steps Below:

    Open DiaLOG, Right-click on a project with CAN 0 HS bus, and select 'Properties.

    Once the Edit Configuration window is displayed, click on the 'Settings' Tab and put a Checkmark in Aux Power On; Click OK.

    Pin Function

    Pin 2

    CAN L

    Pin 3

    Ground

    Pin 5

    Power Ground

    Pin 7

    CAN H

    Pin 9

    Power Supply 4.5-36V

    IEC Connector

    Pin Function

    Top

    +

    Bottom

    K

    NC

    Pin 2

    CAN - Low

    Pin 3

    CAN Ground

    Pin 4

    NC

    Pin 5

    Power GND

    Pin 6

    NC

    Pin 7

    CAN - High

    Pin 8

    NC

    Pin 9

    Power Supply 4.5 – 31V

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    Note:

    • Please ensure you use Pin-3 for Signal Ground and Pin-5 for Power Ground.

    • The TC-32 device cannot be powered via the USB cable. Please provide a separate 12V power supply for proper functionality.

    Pin No

    Pin Function

    Pin 1

    Rate List Config

    Allows the user to add additional transmission rates.

    Pressing the Default Button will reset all the settings.

    Pressing DBC Export will open the DBC export window.

    Pressing the Import button will load the settings from the DBC file.

    Pressing the Load Button Loads the settings in the K-TCxx and displays them on the screen.

    CAN ID

    Users can use this option to set the CAN ID of the messages containing thermocouple data

    Rate

    Allows the user to set the CAN message transmission rate.

    Type

    Allows the user to select the thermocouple type.

    Or by clicking on the point you wish to calibrate in the field to the right

    Adjust the input temperature from the calibrated test equipment that you are using to match the voltage for the test point:

    Press the Start button:

    If the input temperature is stable and correct, the calibration of the channel will be updated as follows:

    If it is not, you will receive a warning:

    Repeat the steps above until you have calibrated all the calibration points.

    Once you have configured the K-TCxx as desired, click Commit to send the configuration to the K-TCxx. If you make a mistake and wish to clear the calibration, you can also use the Clear button.

    This will save the calibration to the K-TCxx and create a report detailing the calibration:

    Pressing the Load Button Loads the calibration contained in the K-TCxx and displays them on the screen.

    You may use this function if you wish to check that the K-TCxx is calibrated.

    Select the sleep mode suitable for you; it is recommended to use the following:

    Wake On CAN 1 or Wake On CAN 0/CAN 1 or Power Down mode.

    Create new BUS

    Select the hardware type (CAN 1 MS) from the popup menu.

    Enter the BUS properties.

    Create New Protocol.

    Select the CAN Monitor protocol.

    Assign the settings and protocol name.

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    Notes:

    • Enable 'Log all channels' only if you wish to log all CAN messages appearing on the bus.

    Select the import tab and click load DBC.

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    Or

    Click the DBC tab on the right side.

    Select the required signal from the DBC window.

    Copy the selected signals and paste them into the DAQ list.

    Send the configuration to the Logger.

    Once you have configured the K-Box as desired, click Commit to send the configuration to the K-Box.

    You will want to generate a new DBC file if you make any changes. This describes the configuration of the K-Box. You can load the file into DiaLog (or another tool that supports DBC files), allowing DiaLog to interpret the data broadcast by the K-Box correctly.

    Clicking DBC Export generates the DBC file and prompts you for the location to save it.

    Once you have configured the K-Box as desired, click Commit to send the configuration to the K-Box. If you make a mistake and wish to clear the calibration, use the Clear button.

    K-Box: Product Manual

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    Introduction

    The K-Box is Influx’s stackable instrumentation compatible with the ReXgen and Rebel range of data loggers. It can also be integrated with any device configured via DBC files, other logger systems, or output signals CAN to the Rebel Dash display.

    The K-Box is an ideal solution for applications that require a large number of thermocouples and analog inputs. The K-Box’s accurate sensor data is transmitted periodically on the CAN bus, enabling multiple devices to be connected. The K-Box CAN bus settings, calibration, and sampling rates are all easily configurable, and these settings are stored within the K-Box even when the device is not powered.

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    Advantages:

    • Wide switchable software voltage input ranges ±80V, ±40V, ±20V or ±10V.

    • Accuracy: - Analog ±0.0015%, Thermocouples ±0.08%.

    • High input impedance.

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    Key features:

    • Stackable enclosure.

    • Simple signal configuration using a DBC file.

    • Each unit enables up to 8 K-type connections at a 20Hz sampling rate and 8 analog inputs at a 1kHz sampling rate.

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    Technical Specification:

    Technical Data
    Description

    Configuring the Analog Channels

    You can change to the Analog Channel Configuration by clicking on the Tab: Not Connected.

    Pressing the Load Button Loads the settings contained in the K-Box and displays them on the screen.

    Once you have configured the K-Box as desired, click Commit to send the configuration to the K-Box.

    You will want to generate a new DBC file if you make any changes. This describes the configuration of the K-Box, and you can load the file into DiaLog (or another tool that supports DBC files), allowing DiaLog to interpret the data broadcast by the K-Box correctly.

    Clicking DBC Export will generate the DBC file and prompt you for the location to save it.

    On this screen, you can change the following parameters:

    • The additional board allows users to select the addon board type if connected.

    • The CAN Ident and rate that the K-Box will broadcast ADC channels 0-3.

    • The CAN Ident and rate that the K-Box will broadcast ADC channels 4-7.

    By clicking on the tab RTD (Resistance thermometer detectors), you can configure the KBox to work with add boards by selecting the board type from the drop-down menu.

    On this screen, you can change the following parameters:

    • The CAN Ident and rates that the K-Box will broadcast RTD channels 0-3.

    • Select the type of RTD for each channel. RTD (0-3). Pt 100 or Pt1000 is individually selectable per channel.

    • The CAN Ident and rates that the K-Box will broadcast Thermocouple channels 0-3.

    Click the tab IEPE (Integrated Electronics Piezoelectric) to change to the Analog Channel configuration.

    On this screen, you can change the following parameters:

    For more configuration options, refer to .

    • The CAN Ident and rates that the K-Box will broadcast IEPE channels 0-3.

    • IEPE Transmit-Measure:

      • Combined: All the IEPE data is sent in one CAN message with one CAN ID.

    How to for Analog, Thermocouple, and Digital channels using K-Cal.

    Technical Specifications

    Function

    Description

    Power Supply

    4.5 to 36V DC

    Power Consumption

    Normal operation 150mA to 350mA at 12 V Power down standby mode approx. 3mA at 12V

    Configuration

    Via CAN bus with K-Cal

    Output control settings and configuration are stored in the device.

    Interfaces

    CAN bus (max 1000kbps)

    PC Interfaces

    Using the Oscilloscope

    The ‘Oscilloscope’ functionality is controlled by a dedicated toolbar which is considered below. Each feature is then considered individually.

    1

    Allows the Oscilloscope to go online

    2

    Clear the Logged Data in the Oscilloscope

    3

    Saves the data Logged in the Oscilloscope, it can be saved in:

    · Vector MDF (.DAT)

    · MATLAB 5.0 (.MAT)

    · MATLAB 5.0 Structured single or double precision (.MAT)

    · MATLAB 5.0 Structure Extended (.MAT)

    · Comma Separated Variables (.CSV)

    4

    Opens Logged data files previously.

    Right-Clicking on the oscilloscope also brings up a menu with several options; these include changing the scale of the time axis to several different resolutions and changing the axis colour, clearing the data, printing, and exporting the image displayed on the scope.

    Working with items added to the Oscilloscope

    Right-click in the Item Information Area; this will bring up the following menu.

    The Menu Items allow the following functionality:

    Del

    Deletes the item or item selected in Orange

    Rename

    Assigns a Name to the Channel; this will appear in the Name column

    Select All

    Selects all items

    Using the Oscilloscope

    The ‘Oscilloscope’ functionality is controlled by a dedicated toolbar, which is considered below. Each feature is then considered individually.

    Getting Started

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    Introduction

    The K-TC is Influx’s stackable instrumentation that is compatible with the entire range of data loggers from Influx. It can also be integrated with any device configured via DBC files, even other logger systems or output signals on CAN to the Rebel Dash display.

    The K-TC is an ideal solution for applications that require a large number of thermocouple inputs. The K-TC’s accurate sensor data is transmitted periodically on the CAN bus, enabling multiple devices to be connected. In addition, The temperature data is simultaneously logged in the inbuilt micro SD card, the K-TC CAN bus settings, calibration and sampling rates are all easily configurable, and these settings are stored within the K-TC even when the device is not powered.

    Getting Started

    hashtag
    Introduction

    The K-TC 2.0 is Influx's upgraded version of the older K-TC modules. Like the previous modules, these are stackable instrumentation devices compatible with Influx's entire range of data loggers. These can also be integrated with any device configured via DBC files, other logger systems, or output signals on CAN for the Rebel Dash display.

    The K-TC 2.0 is an ideal solution for applications that require a large number of thermocouple inputs. The K-TC 2.0's accurate sensor data is transmitted periodically on the CAN bus, enabling multiple devices to be connected. In addition, The temperature data is simultaneously logged in the inbuilt micro SD card (8GB), the K-TC 2.0 CAN bus settings, calibration and sampling rates are all easily configurable, and these settings are stored within the K-TC 2.0 even when the device is not powered.

    Kvaser DownloadsKvaserchevron-right

    Powered by USB2.0 Type B (Isolated)

    Enclosure

    Dimension (LxHxW): 115x56(K-TC8), 79(K-TC16), 149(K-TC32)x 105mm

    Weight: 450g K-TC8), 570g(K-TC16), 900g(K-TC32)

    IP65

    ABS

    Environmental

    -40°C to +85°C Humidity Max 90%

    Thermocouple Inputs

    K, J, T - type

    ±1°C accuracy

    Measurement: -200°C to +1200°C

    Connection Types

    Thermocouples mini K,J, T- type

    Thermocouple inputs

    Thermocouple inputs

    Number Of Channels

    8xK, J, T –type input (K-TC8); 16xK, J, T –type input (K-TC16); 32xK,J,T –type input (K-TC32)

    Measurement Range

    -200°C to +1200°C

    Max Sampling Rate

    20 Hz per channel

    Max voltage applied

    ±3.3V

    They have isolated Differential Inputs to prevent earthing problems.
    Pulse Width Measurement: 3 inputs frequency measurements or pulse measurements.
  • Regulated +5V and +12V output power supply for external sensors.

  • Instrumentation data time is synchronised with the recorded vehicle network data.

  • Analog inputs and thermocouple inputs are galvanically isolated.

  • Connect and measure data from up to 4 IEPE sensors using the K-IEPE addon.

  • Measure temperature using RTDs with K-PT100/1000 addon.

  • Output voltages

    5V and 24V (Max current drawn 80 mA combined)

    Analog Inputs

    Number of channels

    8 Bipolar differential inputs

    Accuracy

    ±0.0015%

    Software switchable range

    ±80V, ±40V, ±20V, ±10V

    Resolution (ADC)

    16 Bit

    Max Sampling Rate

    1 KHz (all 8 channels), 2 KHz (4Channels), 10 KHz (2 Channels)

    Input impedance

    > 4 M Ohm

    Max input voltage

    ±75 Analog Ground, ±34V Analog inputs

    Thermocouple Inputs

    Number of channels

    8 J/K/T-type inputs

    Accuracy

    ±1°C accuracy

    Measurement Range

    Measurement: -200 °C to 1250 °C

    Max Sampling Rate

    10 Hz (all 8 channels)

    Maximum input voltage

    ±3.3 V

    Digital Input / Output

    Number of channels

    ×4 unipolar single-ended hardware configured as inputs or outputs

    Input switching thresholds

    Low < 1.5V

    High > 2.0V (up to 12V)

    Input leakage current

    < 10nA

    Output states

    (Optional) Open collector - 510 Ohm

    Output drive capability (OK):

    Collector-emitter voltage

    45V max

    Collector current (DC)

    10mA max

    Saturation voltage (OK on)

    < 0.15V

    Equivalent on-resistance

    < 510Ohm

    Leakage current at OK off

    < 5uA

    Min-max applied voltage

    Digital input -8V to +12V; Digital output 0V to +40V power supply, which limits the current to 10mA

    PWM

    3 digital input frequency measurements up to 100kHz or pulse measurements. (min 100 Nano sec) (between pulses 10 microseconds)

    Power supply

    6V to 36V DC.

    Interfaces

    CAN Bus

    PC interfaces

    None

    Enclosure

    Dimension (L115xH79xW105) / Weight 450g / IP65 / ABS

    Environmental

    -40°C to +85°C Humidity max 90%

    5

    Show steps between data points

    6

    Separate Items on Oscilloscope

    7

    Axis display modes

    8

    Show item points

    9

    Show cursors

    10

    Reset Zoom Factor

    11

    Reset X-axis Zoom Factor

    12

    Zoom X-axis in

    13

    Zoom X-axis Out

    14

    Fit Items to visible zoom area

    15

    Zoom Y-axis in

    16

    Zoom Y-axis Out

    17

    Zoom all axis in

    18

    Zoom all axis Out

    Deselect All

    Deselects all items

    Invert Selection

    Selects all items not currently selected and deselects the items currently selected

    Activate

    Makes the selected items ‘Active’; they will be shown on the Oscilloscope

    Inactive

    Makes the selected items ‘Inactive’; they will NOT be shown on the Oscilloscope

    Add all

    Adds all items to the Oscilloscope

    Del all

    Deletes all items from the Oscilloscope

    Not Use

    Removes conversion tables or formulas from the selected item(s)

    Logo
    The Voltage range you wish to use for the ADC channels is either -10 to +10V, -20 to +20V or -40 to +40V, individually selectable per channel or -20 to +20V, -40 to +40V or -80 to +80V, individually selectable per channel depending on whether you choose hardware range 1 or 2.
  • The CAN Ident and rates that the K-Box will broadcast thermocouple channels 0-3.

  • The CAN Ident and rates that the K-Box will broadcast thermocouple channels 4-7.

  • The Thermocouple type may be selected from K, T and J Types.

  • The CAN Ident and rates that the K-Box will broadcast Thermocouple channels 4-7.

  • The Thermocouple Type may be selected from K, T and J Types.

  • Individual: Sends each IEPE channel data with a separate CAN ID.

  • The sensitivity and offset of the IEPE 0, 1, 2 and 3.

  • The CAN Ident and rates that the K-Box will broadcast Thermocouple channels 0-3.

  • The CAN Ident and rates that the K-Box will broadcast Thermocouple channels 4-7.

  • The Thermocouple type may be selected from K, T and J Types.

  • Appendix 4

    Separate Items on Oscilloscope.

    Axis display modes.

    Show item points.

    Show cursors.

    Reset Zoom Factor.

    Reset X-axis Zoom Factor.

    Zooms in X-axis.

    Zooms out X-axis.

    Fit Items to visible zoom area.

    Zooms in Y-axis.

    Zooms out Y-axis.

    Zooms in all axis.

    Zooms out all axis.

    Right-clicking on the oscilloscope also brings up a menu with several further options. These include changing the scale of the time axis to several different resolutions and changing the axis colour, clearing the data, and printing and exporting the image displayed on the scope.

    Allows the Oscilloscope to go online.

    Clear the Logged Data in the Oscilloscope.

    Saves the data Logged in the Oscilloscope. It can be saved in:

    Vector MDF (.DAT).

    MATLAB 5.0 (.MAT).

    MATLAB 5.0 Structured single or double precision (.MAT).

    MATLAB 5.0 Structure Extended (.MAT).

    Comma Separated Variables (.CSV).

    Opens previously Logged data files.

    Show steps between data points.

    K-TC8
    K-TC16
    K-TC32

    hashtag
    Technical Specifications:

    Technical Data
    Description

    Power supply

    4.5V to 36V DC

    Power consumption

    Normal operation 150mA to 350mA at 12V

    Power down standby mode approx. 3mA at 12V

    Configuration

    via CAN bus with K-Cal for calibration. via USB with TC Logger SW for logging.

    Output control settings and configurations stored in the device

    Interfaces

    CAN bus (max 1000 kbps), USB 2.0

    PC Interfaces

    Power by USB2.0 Type B (isolated)

    K-TC8
    K-TC16
    K-TC32

    hashtag
    Technical Specifications:

    Technical Data
    Description

    Power supply

    4.5 to 31V DC (isolated)

    Power consumption

    K-TC8 / K-TC16 / K-TC32

    Normal operation

    120mA at 12V / 140mA at 12V / 200mA at 12V

    Power down standby mode

    24mA at 12V / 25mA at 12V / 30mA at 12V

    Configuration

    Via CAN bus with K-Cal for calibration. Via USB with TC Logger SW for logging configurations stored in the device

    Interfaces (Isolated)

    CAN bus (max 1000 kbps) and USB 2.0

    circle-info

    Note:

    • The TC-32 device cannot be powered via the USB cable. Please provide a separate 12V power supply for proper functionality.

    Using the K-Cal Software

    Once you launch the K-Box Configuration utility, you will see the settings for the interface you are using. If the K-Box is on and connected, its serial number (S.N.) and firmware (Fw) version will be displayed at the bottom of the screen.

    Pressing the Load Button Loads the settings contained in the K-Box and displays them on the screen.

    Pressing the Commit Button commits the settings that are on the screen to flash memory within the K-Box

    Pressing the Node Button allows the user to change the selected node. This icon is active only when multiple KSeries devices are connected to the same CAN Bus.

    On the General Tab, you can change the following parameters:

    How to and view live data using K-Cal (tutorial video).

    How to using K-Cal (tutorial video).

    Pinout of the K Box

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    2x DB9 CAN Connectors

    The CAN connectors are 1x Male and 1x Female 9-pin Subminiature D Type connectors.

    Specifications

    Enclosure

    Dimension (LxHxW): 115x26(K-TC8), 46(K-TC16), 86(K-TC32) x 105mm

    Weight 450g(K-TC8), 570g(K-TC16), 900g(K-TC32)

    IP65

    ABS

    Environmental

    -40°C to +85°C

    Humidity max 90%

    Thermocouple Inputs

    K, J, T-type

    Accuracy ± 1°C

    Measurement: -200 °C to 1250 °C

    Connection type

    Thermocouples: mini K, J ,T-Type

    Thermocouple Inputs

    Number of channels

    8 K, J, T-type inputs (K-TC8), 16 K, J, T-type inputs(K-TC16), 32 K, J ,T-type inputs (K-TC32)

    Measurement Range

    -200°C to +1200°C

    Max Sampling Rate

    20 Hz per channel

    Max applied voltage

    ± 3.3 V

    Storage

    8 GB eMMc

    PC Interfaces

    USB2.0 Type B (isolated)

    Enclosure

    Dimension (LxHxW): 115x56(K-TC8) / 79(K-TC16) / 149(K-TC32) x 105mm

    Weight 450g(K-TC8), 570g(K-TC16), 900g(K-TC32)

    IP 65 (With all thermocouples plugged in)

    ABS/Aluminium Allow* (depending upon the stock availability)

    Environmental

    -40°C to +85°C

    Humidity max 90%

    Thermocouple Inputs

    K, J, T-type

    Accuracy ± 1°C

    Measurement: -200 °C to 1250 °C

    Connection type

    Thermocouples: mini K, J ,T-Type (galvanically isolated)

    Thermocouple Inputs

    Number of channels

    K-TC8: 8 channels, K-TC16: 16 channels, K-TC32: 32 channels (group of 8 thermocouples - each galvanically isolated)

    Channel Input Types

    K, J, T

    Measurement Range

    (-)200°C to (+)1200°C

    Max Sampling Rate

    20 Hz per channel

    Max applied voltage

    ± 3.3 V

    Peak Galvanic Isolation Voltage

    (from all other modules and power supplies)

    Three-wire CAN Bus

    780 V

    Four-wire USB Bus

    840 V

    Two-wire power module

    560V

    Output voltages

    5V and 24V (Max current drawn 80 mA combined)

    Analog Inputs

    Number of channels

    8 Bipolar differential inputs

    Accuracy

    ±0.0015%

    Software switchable range

    ±80V, ±40V, ±20V, ±10V

    Resolution (ADC)

    16 Bit

    Max Sampling Rate

    (10 KHz) 2 channel, (5 KHz) 2 channel, (2 KHz) 4 channel, (1 KHz) 8 channel (Thermocouple and Digital Data will be turned off when rates above 1 ms are used for ADC channels.)

    Input impedance

    > 4 M Ohm

    Max input voltage

    ±75 Analog Ground, ±50 V Analog inputs

    Thermocouple Inputs

    Number of channels

    8 J/K/T-type inputs

    Accuracy

    ±1°C accuracy

    Measurement Range

    Measurement: -200 °C to 1250 °C

    Max Sampling Rate

    10 Hz (all 8 channels)

    Maximum input voltage

    ±3.3 V

    Digital Input / Output

    Number of channels

    ×4 unipolar single-ended hardware configured as inputs or outputs

    Input switching thresholds

    Low < 1.5V

    High > 2.0V (up to 12V)

    Input leakage current

    < 10nA

    Output states

    (Optional) Open collector - 510 Ohm

    Output drive capability (OK): Collector-emitter voltage

    45V max

    Collector current (DC)

    10mA max

    Saturation voltage (OK on)

    < 0.15V

    Equivalent on-resistance

    < 510Ohm

    Leakage current at OK off

    < 5uA

    Min-max applied voltage

    Digital input -8V to +12V; Digital output 0V to +40V power supply, which limits the current to 10mA

    PWM

    3 digital input frequency measurements up to 100kHz or pulse measurements. (min 100 Nano sec) (between pulses 10 microseconds)

    Technical Data

    Description

    Power supply

    6 to 36V DC.

    Interfaces

    CAN Bus

    PC interfaces

    None

    Enclosure

    Dimension (L115xH46xW105)

    Weight 450g/IP65/ABS

    Environmental

    -40°C to +85°C Humidity max 90%

    Allows loading channel settings from device memory on startup.

    Load at export

    Allows reloading channel settings from device memory while exporting DBC.

    Auto assign ID

    Allows the user to assign the ID automatically. Relevant when there are multiple KSeries devices connected.

    ADC Units

    Allows the user to set the units for analog/digital channels.

    TC units

    Allows the user to set the units for thermocouples.

    Interface

    Allows the user to select the interface

    Pressing the Default Button allows the user to set the default parameter values.

    Pressing the Export Button allows exporting of signals to DBC files.

    Pressing the Import Button allows importing of signals from DBC files.

    Pressing the Scope Del Button deletes selected channels from the scope.

    Pressing the Tables Button allows conversion tables management.

    Pressing the Formula Button assigns the formula.

    Pressing the Interface Button initialises the selected interface.

    Displays the release notes containing all the details about the software's development.

    Pressing the Help Button displays the documentation regarding the software for better understanding.

    KBox Device

    aef407588e834f58a94733251617a38d

    Baud Rate

    The Baud rate at which the K-Box will communicate on the CAN Bus.

    Byte Order

    The Byte order that the K-Box will use.

    Sleep Mode

    If enabled, the logger will go to sleep when there is no CAN activity.

    If you do not wish to use this feature and want the K-Box to remain on while power is supplied, select “No Sleep”.

    Time

    Allows the user to set the “after sleep” time duration. Specifies how long the K-Box should wait before it enters sleep mode.

    Tool Options

    4f89a4d64cf34576906fcf7fe6942cb6

    Load at startup

    Pin 1

    Digital 4/+4.5V inst

    Pin 2

    CAN L

    Pin 3

    Ground

    Pin 4

    Digital 1

    Pin 5

    Power Ground

    Pin 6

    Digital 3

    Pin 7

    CAN H

    Pin 8

    Digital 2

    Pin 9

    Power Supply 4.5-36V

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    ADC Connector

    The ADC connector is a Male 25-pin Subminiature D Type connector.

    DB25

    Pin Function

    Pin 1

    +24V Output

    Pin 2

    +5V Output

    Pin 5

    Analog Ground

    Pin 6

    Analog Input 0 +

    Pin 7

    Analog Input 1 +

    hashtag
    Thermocouple Connectors

    The Thermocouple connectors on the K-Box are miniature-size flat-type sockets.

    IEC Connector

    Pin Function

    Top

    +

    Bottom

    K

    The dimensions of the Male Flat Type Miniature Size Thermocouple Plug that you would plug into it are as follows:

    DB9

    Pin Function

    K-Series: Software Links
    K-Series: Software Links
    K-Series: Software Links
    K-Box FAQs
    K-TC FAQs
    K-AN8 FAQs

    Pin 8

    Analog Input 2 +

    Pin 9

    Analog Input 3 +

    Pin 10

    Analog Input 4 +

    Pin 11

    Analog Input 5 +

    Pin 12

    Analog Input 6 +

    Pin 13

    Analog Input 7 +

    Pin 14

    Ground Out

    Pin 15

    Ground Out

    Pin 17

    Analog Ground

    Pin 18

    Analog Input 0 -

    Pin 19

    Analog Input 1 -

    Pin 20

    Analog Input 2 -

    Pin 21

    Analog Input 3 -

    Pin 22

    Analog Input 4 -

    Pin 23

    Analog Input 5 -

    Pin 24

    Analog Input 6 -

    Pin 25

    Analog Input 7 -

    K-Box: Tutorial Videos
    K-TC: Tutorial Videos
    export CAN DBC
    export data
    assign Digital functions
    set CAN-id and transmission rate
    interface K-Box
    assign BaudRate

    Pinout of the Multi Connect Cable

    The K-Box may be connected to the multi-connect cable's AUX cable to connect it to the Rebel CT or LT Loggers. The pinout is as follows:

    hashtag
    Dig/An (This Connector is used to connect Digital and Analog signals to the Logger)

    The Dig & An connector is a Female 15-pin Subminiature D Type connector.

    hashtag
    AUX/CAN1 (The port of the Multi Connect Cable that is generally used with the K-Box)

    The AUX/CAN1 connector is a Female 9-pin Subminiature D Type connector.

    hashtag
    CAN2/LIN0 (Used for connecting CAN2 and Ethernet to the Logger)

    The LAN connector is a Female 9-pin Subminiature D Type connector.

    hashtag
    CAN0/PWR (This Connector is used to power the Logger; e.g. it could be powered via the diagnostics connector of a vehicle connected to the OBD2 to DB9 Cable.)

    The CAN0/PWR connector is a Male 9-pin Subminiature D Type connector.

    hashtag
    CAN3/LIN1

    The CAN3/LIN1 is a Female 9-pin standard D-type connector with screws.

    hashtag
    OBD&INST (The multi-connect cable attaches to the Logger via this connector)

    The OBD&INST connector is a Female 25-pin Subminiature D Type connector.

    Appendix

    hashtag
    Pinout of the Multi-Connect Cable

    The K-Box may be connected to the multi-connect cable's AUX cable to the Rebel CT or LT Loggers. The pinout is as follows:

    Dig/An (This Connector is used to connect Digital and Analogue signals to the Logger)

    Analog Input 3 - do not apply voltages outside of the -10 to +10V range

    Pin 9

    Digital Input or Output 0 - When used as Input, do not apply voltages outside the 0 to +12V range. When used as an Output, ensure that the current drawn is not more than 100mA. More information on the use of this pin can be found in Appendix 2 and 3

    Pin 10

    Digital Input or Output 2 - When used as Input, do not apply voltages outside the 0 to +12V range. When used as an Output, ensure that the current drawn is not more than 100mA. More information on the use of this pin can be found in Appendix 2 and 3

    Pin 11

    Ground

    Pin 13

    Wake-Up pin to wake logger from sleep mode (for use see Appendix 1)

    Pin 14

    Analog Input 0 - do not apply voltages outside of the -10 to +10V range

    Pin 15

    Analog Input 2 - do not apply voltages outside the -10 to +10V range.

    Digital Input or Output 3 (can also be used as a switched power supply +Vd). When used as Input, do not apply voltages outside of the 0 to +12V range.

    CAN Bus 0 (High Speed Bus) High Signal

    Pin 8

    CAN Bus 1 (Medium Speed Bus) High Signal

    Pin 9

    4.5-36V Supply Voltage

    Digital Input or Output 3 (can also be used as a switched power supply +Vd). When used as Input, do not apply voltages outside of the 0 to +12V range.

    CAN Bus 1 (Medium Speed Bus) Low Signal

    Pin 7

    CAN Bus 0 (High-Speed Bus) Low Signal

    Pin 8

    K-Line (1 wire bus) of ISO 9141

    Pin 9

    4.5-36V Supply Voltage

    Pin 10

    +4.5V Instrumentation Supply Voltage, ensure that current draw is not more than 100mA

    Pin 11

    Digital Input or Output 2 - When used as Input, do not apply voltages outside the 0 to +12V range. When used as an Output, ensure that the current drawn is not more than 100mA. More information on the use of this pin can be found in Appendix 2 and 3

    Pin 12

    Digital Input or Output 0 - When used as Input, do not apply voltages outside the 0 to +12V range. When used as an Output, ensure that the current drawn is not more than 100mA. More information on the use of this pin can be found in Appendix 2 and 3

    Pin 13

    CAN / CAN FD Bus 2 (Instrumentation Bus) Low Signal

    Pin 14

    Analog Input 2 - do not apply voltages outside of the -10 to +10V range

    Pin 15

    LIN 0

    Pin 16

    CAN / CAN FD 3 H

    Pin 17

    Analog Input 0 - do not apply voltages outside of the -10 to +10V range

    Pin 18

    Analog Ground

    Pin 19

    CAN Bus 1 (Medium Speed Bus) High Signal

    Pin 20

    CAN Bus 0 (High Speed Bus) High Signal

    Pin 21

    Ground

    Pin 22

    Power Ground

    Pin 23

    Digital Input or Output 3 (can also be used as a switched power supply +Vd)

    Pin 24

    Digital Input or Output 1 - When used as Input, do not apply voltages outside the 0 to +12V range. When used as an Output, ensure that the current drawn is not more than 100mA. More information on the use of this pin can be found in Appendix 2 and 3

    Pin 25

    CAN /CAN FD Bus 2 (Instrumentation Bus) High Signal

    Pin No

    Pin Function

    Pin 2

    Digital Input or Output 1 - When used as an input, do not apply voltages outside the 0 to +12V range. When used as an Output, ensure that the current drawn is not more than 100mA. More information on the use of this pin can be found in Appendix 2 and 3

    Pin 3

    +4.5V Instrumentation Supply Voltage, ensure that current draw is not more than 100mA

    Pin 4

    Ground

    Pin 6

    Analog Ground

    Pin 7

    Analog Input 1 - do not apply voltages outside of the -10 to +10V range

    Pin No

    Pin Function

    Pin 2

    CAN Bus 1 (Medium Speed Bus) Low Signal

    Pin 3

    Ground

    Pin 5

    Power Ground

    Pin 7

    CAN Bus 1 (Medium Speed Bus) High Signal

    Pin 9

    Power Supply Switched

    Pin No

    Pin Function

    Pin 1

    LIN 0

    Pin 2

    CAN / CAN FD Bus 2 (Instrumentation Bus) Low Signal

    Pin 3

    Ground

    Pin 5

    Power Ground

    Pin 7

    CAN / CAN FD Bus 2 (Instrumentation Bus) High Signal

    Pin No

    Pin Function

    Pin 1

    CAN Bus 1 (Medium Speed Bus) Low Signal

    Pin 2

    CAN Bus 0 (High Speed Bus) Low Signal

    Pin 3

    Ground

    Pin 4

    K-Line (1 wire bus) of ISO 9141

    Pin 5

    Power Ground

    Pin No

    Pin Function

    Pin 1

    LIN 1

    Pin 2

    CAN / CAN FD Bus 3 (Instrumentation Bus) Low Signal

    Pin 3

    Ground

    Pin 5

    Power Ground

    Pin 7

    CAN / CAN FD Bus 3 (Instrumentation Bus) High Signal

    Pin No

    Pin Function

    Pin 1

    Analog Input 3 - do not apply voltages outside of the -10 to +10V range

    Pin 2

    LIN 1

    Pin 3

    CAN / CAN FD 3 L

    Pin 4

    Analog Input 1 - do not apply voltages outside of the -10 to +10V range

    Pin 5

    Wake-Up pin to wake logger from sleep mode (for use see Appendix 1)

    Pin 8

    Pin 9

    Pin 7

    Pin 9

    Pin 6

    The Dig & An connector is a Female 15-pin Subminiature D Type connector.

    Pin No

    Pin Function

    Pin 2

    Digital Input or Output 1 - Do not apply voltages outside the 0 to +12V range when used as an input. When used as an Output, ensure that the current drawn is not more than 100mA. More information on the use of this pin can be found in Appendix 2 and 3

    Pin 3

    +4.5V Instrumentation Supply Voltage, ensure that the current drawn is not more than 100mA

    Pin 4

    Ground

    Pin 6

    Analog Ground

    Pin 7

    Analog Input 1 - do not apply voltages outside of the -10 to +10V range

    AUX/CAN1 (The port of the Multi Connect Cable generally used with the K-Box)

    The AUX/CAN1 connector is a Female 9-pin Subminiature D Type connector.

    Pin No

    Pin Function

    Pin 2

    CAN Bus 1 (Medium Speed Bus) Low Signal

    Pin 3

    Ground

    Pin 5

    Power Ground

    Pin 7

    CAN Bus 1 (Medium Speed Bus) High Signal

    Pin 9

    Power Supply Switched

    CAN2/LIN0 (Used for connecting CAN2 and Ethernet to the Logger)

    The LAN connector is a Female 9-pin Subminiature D Type connector.

    Pin No

    Pin Function

    Pin 1

    LIN 0

    Pin 2

    CAN / CAN FD Bus 2 (Instrumentation Bus) Low Signal

    Pin 3

    Ground

    Pin 5

    Power Ground

    Pin 7

    CAN / CAN FD Bus 2 (Instrumentation Bus) High Signal

    CAN0/PWR (This Connector is used to power the Logger, e.g. it could be powered via the diagnostics connector of a vehicle connected to the OBD2 to DB9 Cable)

    The CAN0/PWR connector is a Male 9-pin Subminiature D Type connector.

    Pin No

    Pin Function

    Pin 1

    CAN Bus 1 (Medium Speed Bus) Low Signal

    Pin 2

    CAN Bus 0 (High-Speed Bus) Low Signal

    Pin 3

    Ground

    Pin 4

    K-Line (1 wire bus) of ISO 9141

    Pin 5

    Power Ground

    CAN3/LIN1

    The CAN3/LIN1 is a Female 9-pin standard D-type connector with screws.

    Pin No

    Pin Function

    Pin 1

    LIN 1

    Pin 2

    CAN / CAN FD Bus 3 (Instrumentation Bus) Low Signal

    Pin 3

    Ground

    Pin 5

    Power Ground

    Pin 7

    CAN / CAN FD Bus 3 (Instrumentation Bus) High Signal

    OBD&INST (The multi-connect cable attaches to the Logger via this connector)

    The OBD&INST connector is a Female 25-pin Subminiature D Type connector.

    Pin No

    Pin Function

    Pin 1

    Analog Input 3 - do not apply voltages outside of the -10 to +10V range

    Pin 2

    LIN 1

    Pin 3

    CAN / CAN FD 3 L

    Pin 4

    Analog Input 1 - do not apply voltages outside of the -10 to +10V range

    Pin 5

    Wake-Up pin to wake Logger from sleep mode (for use, see Appendix 1)

    Pin 8

    Analog Input 3 - do not apply voltages outside of the -10 to +10V range

    Pin 9

    Digital Input or Output 0 - When used as Input, do not apply voltages outside the 0 to +12V range. When used as an Output, ensure that the current drawn is not more than 100mA. More information on the use of this pin can be found in Appendix 2 and 3

    Pin 10

    Digital Input or Output 2 - When used as Input, do not apply voltages outside the 0 to +12V range. When used as an Output, ensure that the current drawn is not more than 100mA. More information on the use of this pin can be found in Appendix 2 and 3

    Pin 11

    Ground

    Pin 13

    Wake-Up pin to wake Logger from sleep mode (for use, see Appendix 1)

    Pin 14

    Analog Input 0 - do not apply voltages outside of the -10 to +10V range

    Pin 15

    Analog Input 2 - do not apply voltages outside of the -10 to +10V range.

    Pin 9

    Digital Input or Output 3 (can also be used as a switched power supply +Vd). When used as Input, do not apply voltages outside of the 0 to +12V range.

    Pin 7

    CAN Bus 0 (High-Speed Bus) High Signal

    Pin 8

    CAN Bus 1 (Medium Speed Bus) High Signal

    Pin 9

    4.5-36V Supply Voltage

    Pin 9

    Digital Input or Output 3 (can also be used as a switched power supply +Vd). When used as Input, do not apply voltages outside of the 0 to +12V range.

    Pin 6

    CAN Bus 1 (Medium Speed Bus) Low Signal

    Pin 7

    CAN Bus 0 (High-Speed Bus) Low Signal

    Pin 8

    K-Line (1 wire bus) of ISO 9141

    Pin 9

    4.5-36V Supply Voltage

    Pin 10

    +4.5V Instrumentation Supply Voltage, ensure that the current draw is not more than 100mA

    Pin 11

    Digital Input or Output 2 - When used as Input, do not apply voltages outside the 0 to +12V range. When used as an Output, ensure that the current drawn is not more than 100mA. More information on the use of this pin can be found in Appendix 2 and 3

    Pin 12

    Digital Input or Output 0 - When used as Input, do not apply voltages outside the 0 to +12V range. When used as an Output, ensure that the current drawn is not more than 100mA. More information on the use of this pin can be found in Appendix 2 and 3

    Pin 13

    CAN / CAN FD Bus 2 (Instrumentation Bus) Low Signal

    Pin 14

    Analog Input 2 - do not apply voltages outside of the -10 to +10V range

    Pin 15

    LIN 0

    Pin 16

    CAN / CAN FD 3 H

    Pin 17

    Analog Input 0 - do not apply voltages outside of the -10 to +10V range

    Pin 18

    Analog Ground

    Pin 19

    CAN Bus 1 (Medium Speed Bus) High Signal

    Pin 20

    CAN Bus 0 (High-Speed Bus) High Signal

    Pin 21

    Ground

    Pin 22

    Power Ground

    Pin 23

    Digital Input or Output 3 (can also be used as a switched power supply +Vd)

    Pin 24

    Digital Input or Output 1 - When used as Input, do not apply voltages outside the 0 to +12V range. When used as an Output, ensure that the current drawn is not more than 100mA. More information on the use of this pin can be found in Appendix 2 and 3

    Pin 25

    CAN /CAN FD Bus 2 (Instrumentation Bus) High Signal.