LTE DIN Rail Analog Transmitters with Ethernet Communication and Analog outputs for Load Cell Strain Gauge Microvolt Input Signal Applications

LTE DIN Rail Analog Transmitters with Ethernet Communication and Analog outputs for Load Cell Strain Gauge Microvolt Input Signal Applications

Price: $641.00
  • P/NLTE20WM
- +

Features

  • 20, 50, 100, 250 and 500 mV full-scale input ranges
  • Accuracy ±0.01%  of reading ± 2 counts
  • 4 or 6-wire hookup to avoid power supply and lead resistance effects
  • 10V excitation supply for up to four 350-ohm load cells in parallel
  • All input ranges are user selectable and factory calibrated
  • Up to 60 conversions per second, Ideal for peak or valley capture
  • 4-20 mA, 0-20 mA, 0-10V or -10V to +10V transmitter output, (isolated)
  • Analog output resolution 0.0015%  of span, accuracy ±0.02%  of span
  • Ethernet data I/O, Modbus TCP
  • Dual 120 mA solid state relays for alarm or control (isolated)
  • 5V, 10V, 12V, or 24V dc transducer excitation output (isolated)
  • Power 85-264 Vac / 90-300 Vdc or 10-48 Vdc / 12-32 Vac (isolated)
  • DIN rail mount housing, 22.5 mm wide, detachable screw-clamp connectors
  • Operating temperature from -40°C to 70°C (-40°F to 158°F)
    Optional - Extended allows up to 180 data points for custom curve linearization and a rate derived from consecutive readings.

The Laureate™ LTE Series DIN rail analog transmitter with ethernet communication and analog outputs for versatile connectivity.

The digitally programmable transmitter features two relays for alarm or control. The series offers exceptional accuracy of 0.01% of reading ± 2 counts, with high read rates at up to 60 or 50 conversions per second. The LTE Series transmitters offer the same high performance, signal conditioning, and programmable features as Laureate digital panel meters, counters, and timers.

The Laureate 4-20 mA, 0-20 mA, 0-10V or -10V to +10V and ethernet output transmitter for load cell or microvolt input is designed for use with load cells, strain gauges and microvolt input signals where exceptional sensitivity and stability are required. A most sensitive full-scale input range ±20 mV can be scaled internally to ±99,999 counts. The selected input range for the full 0-20 mA output span can be as wide as ±99,999 counts or as narrow as 150 counts, limited only by considerations of electrical noise and time constants of the programmable moving average digital filter. The unit's serial data is accurate to ±0.01%  of reading ±2 counts in ratiometric load cell mode and ±0.01%  of full scale in ±2 counts in absolute microvolt mode.

All signal conditioner board ranges are factory-calibrated, with calibration factors for each range securely stored in an onboard EEPROM. These factors can be scaled via software to accommodate external shunts, enabling field replacement of signal conditioner boards without necessitating recalibration of the associated transmitter. For optimal accuracy, factory recalibration is recommended annually. All Laurel Electronics instruments undergo factory calibration using the industry-leading Fluke calibrators, which are recalibrated yearly and certified traceable to national standards, ensuring the highest level of precision and reliability.

The optional extended Laureate computer board enhances Laureate Transmitters by displaying rates derived from successive readings and enabling highly accurate custom curve linearization. For example, it can calculate liquid volume or flow rate in a horizontal cylindrical tank using levels from a 4-20 mA transmitter. Setup is straightforward: users input up to 180 data points into a spreadsheet or text file, and the computer calculates spline-fit segments, which are then downloaded to the transmitter for precise operation.

Laureate Transmitters are easily programmed with Laurel’s free Instrument Setup Software, downloadable from our website and compatible with Windows PCs, requiring a data interface board for setup.

High read rate of up to 50 or 60 conversions per second, the Laureate™ LTE Series transmitter uses Concurrent Slope (US Pat. 5,262,780) analog-to-digital conversion to integrate signals over a full power line cycle (50 Hz or 60 Hz). This read rate enables peak and valley capture, real-time computer interfacing, and control applications. Peak and valley values are automatically captured and can be viewed using Laurel’s free Instrument Setup Software (compatible with Windows PCs) or transmitted as serial data.

Standard Features of Laureate LTE Transmitters Include:

  • Ethernet I/O, (isolated). The supported protocols are Modbus RTU and ASCII, which are tunneled via Modbus TCP. Note that RS232 or RS485 data I/O is provided by Laurel's LT Series transmitters.
  • 4-20 mA, 0-20 mA or 0-10V analog transmitter output, (isolated), jumper-selectable and user scalable. All selections provide 16-bit (0.0015 ) resolution of output span and 0.02%  output accuracy of a reading from -99,999 to +99,999 counts that is also transmitted digitally. Output isolation from signal and power grounds eliminates potential ground loop problems. The supply can drive 20 mA into a 500 ohm (or lower) load for 10V compliance, or 10V into a 5K ohm (or higher) load for 2 mA compliance.
  • Dual solid state relays, (isolated). Available for local alarm or control. Rated 120 mA at 130 Vac or 180 Vdc.
  • Selectable transducer excitation output, (isolated), user selectable 5V@100 mA, 10V@120 mA, 12V@100mA, or 24V@50 mA.
  • Power 85-264 Vac, (isolated), low-voltage 10-48 Vdc or 12-32 Vac power is optional.

Digital signal filtering modes can be selected to ensure stable readings in electrically noisy environments.

  • An unfiltered selection provides true peak and valley readings and aids in control applications.
  • A batch average filter selection averages each 16 conversions.
  • An adaptive moving average filter selection provides a choice of 8 time constants from 80 ms to 9.6 seconds. When a significant change in signal level occurs, the filter adapts by briefly switching to the shortest time to follow the change, then reverts back to its selected time constant. An auto setting selects the time constant selection based on signal noise.

Two tare functions: auto-tare and manual tare. In auto-tare, an input line is grounded by an external pushbutton. This causes the current weight, which is normally the empty weight of the container to be stored in memory as an offset. In manual tare, the tare value can be entered manually via a control input pushbutton or using Laurel's free Instrument Setup Software.  

Peak and valley values are automatically captured. These may be displayed via  Laurel's free Instrument Setup Software,  which runs on a PC under MS Windows or can be transmitted as serial data.

An (isolated) 5, 10, 12, or 24 Vdc excitation output is standard to power transducers or two-wire transmitters. Ratiometric operation, which automatically compensates for changes in the applied excitation, is jumper selectable for applications, such as bridges, where the signal to be measured is proportional to the excitation level.

Removable screw terminal connections of Laurel transmitters

LTE series DIN rail transmitters & signal conditioners can be interfaced to a wide range of sensors and transducers using one of seven available plug-in signal conditioner boards. The transmitters duplicate the high performance (high accuracy, high read rate) and extensive programmable features of Laureate 1/8 DIN digital panel meters, counters and timers. They utilize the same signal conditioners boards, much of the same firmware, and Laurel's free Windows-based Instrument Setup Software. They come in a compact DIN rail mount package with detachable screw-clamp connectors for easy wiring.

The LTE series Transmitters accessible from this page include a 4-20 mA, 0-20 mA, 0-10V, or -10V to +10V analog output (isolated, user selectable), an ethernet serial data interface (isolated, user selectable), and dual 120 mA solid state AC/DC relays (isolated). An (isolated) 5, 10, 12, or 24 Vdc transducer excitation output is included with all models other than those with a temperature or AC RMS signal conditioner.

Load Cell Transmitter Connections

4-wire load cell bridge connection of load cell transmitter In 4-wire connection, the excitation and sense lines are tied together. The transmitter can make ratiometric corrections for supply voltage variations, but does not compensate for variations in lead resistance. This connection is often used with short cable runs.
4-wire load cell bridge connection of load cell transmitter In 6-wire connection, the sense lines are separate from the excitation lines, thereby eliminating effects due to variations in lead resistance. This allows long cable runs in outdoor environments with temperature extremes.
Up to six 350-ohm load cell bridges connected in parallel to a load cell transmitter For large scales, up to four 350 ohm load cells can be powered by a single Laureate, whose excitation output is rated 120 mA at 10V. The excitation and sense points of the four bridges are connected in parallel. The load cell outputs will be averaged if the load cells have the same sensitivity in mV/V.

Connecting Laureate LTE Transmitters to a Local Area Network (LAN)

Laurel LTE series Ethernet transmitters can connect directly to a LAN via an Ethernet cable. Up to 30 Laureate LT Transmitters and/or Digital Panel Meters can be configured for RS485 and daisy-chained to an LT Transmitter for seamless LAN integration. Setup for both configurations is streamlined using Laurel’s free Instrument Setup Software, which simplifies node discovery and transmitter configuration. 

Flexible Communication Options for LTE Transmitters

Laureate Transmitters can be equipped with Laurel communication boards to support various interfaces and protocols. These include serial interfaces with ASCII or Modbus RTU protocols, and Ethernet interfaces with web access, ASCII, or Modbus TCP/IP protocols, ensuring versatile connectivity for your commercial applications.

Laureate Ethernet network by Laurel Electronics

Analog Input Range Scaling Input Ohms Error at 25°C
Load Cell Input ±20.000 mV -99,999 to +99,999
zero adjust.
0 to ±99,999
span adjust.
1 GΩ ±0.01% of rdg
± 2 cts
±50.0000 mV
±100.00 mV
±250.00 mV
±500.00 mV
Microvolt Input ±20.000 mV 1 µV 1 GΩ ±0.01% of FS
± 2 cts
±50.0000 mV 2.5 µV
±100.00 mV 5.0 µV
±250.00 mV 12.5 µV
±500.00 mV 25 µV
Reading Resolution 16 bits (65,536 steps)
Reading Accuracy ±0.01% of reading ± 2 counts in ratiometric mode,
±0.01% of full scale ± 2 counts in absolute mode.
Update Rate, Max 50/sec at 50 Hz, 60/sec at 60 Hz
Max applied voltage 100 V
Recalibration: All ranges are calibrated at the factory. Recalibration is recommended every 12 months.
Analog Output (standard)
Output Levels 4-20 mA, 0-20 mA, 0-10 Vdc (jumper selectable)
Compliance, 4-20 mA 10V (0-500Ω load)
Compliance, 0-10V 2 mA (5 kΩ load or higher)
Output Resolution 16 bits (65,536 steps)
Output Accuracy 0.02% of output span plus conversion accuracy
Output Isolation 250V rms working, 2.3 kV rms per 1 minute test
Excitation Output (standard)
5 Vdc 5 Vdc ± 5%, 100 mA (jumper selectable)
10 Vdc 10 Vdc ± 5%, 120 mA (jumper selectable)
12 Vdc 12 Vdc ± 5%, 100 mA (jumper selectable)
24 Vdc 24 Vdc ± 5%, 50 mA (jumper selectable)
Output Isolation 50 Vdc from signal ground
Ratiometric operation Automatically compensates for changes in excitation level.
Dual Relay Output (standard)
Relay Type Two solid state relays, SPST, normally open, Form A
Load Rating 120 mA at 140 Vac or 180 Vdc
Ethernet Data I/O (standard)
Type 10/100 Base-T Ethernet per IEEE 802.3
Data Rates 300, 600, 1200, 2400, 4800, 9600, 19200 baud
Output Isolation 250V rms working, 2.3 kV rms per 1 min test
Serial Protocol Modbus TCPI
Modbus Compliance Modbus over Serial Line Specification V1.0 (2002)
Digital Addresses 247
Power Input
Standard Power 85-264 Vac or 90-300 Vdc
Low Power Option 10-48 Vdc or 12-32 Vac
Power Frequency DC or 47-63 Hz
Power Isolation 250V rms working, 2.3 kV rms per 1 min test
Power Consumption 2.5W at 24V, 4.0W at max excitation output
Environmental
Operating Temperature -40°C to 70°C (-40°F to 158°F)
Storage Temperature -40°C to 85°C (-40°F to 185°F)
Relative Humidity 95% at 40°C, non-condensing
Cooling Required Mount transmitters with ventilation holes at top and bottom. Leave 6 mm (1/4") between transmitters, or force air with a fan.
Mechanical
Enclosure Rugged black polycarbonate housing material
Mounting 35 mm rail per DIN EN 50022
Dimensions 129 x 104 x 22.5 mm case
Connectors Detachable screw clamp connectors meet VDE / IEC / UL / CSA standards. RJ45 jack for Ethernet
Tightening Torque Screw terminal connectors: 5 lb-in (0.56 Nm)
Weight Complete transmitter: 183 g (6.5 oz)
Replacement Case Screws
Size 6
Thread Pitch 6-19
Length 1/2"
Head Style Pan Head
Drive Style Phillips
Head Diameter 0.256-0.270
Head Height 0.087-0.097
Full/Partial Thread Full
Drive Size 2
Material Steel
Finished Black Oxide
General
Programming Utilize Laurel's free Instrument Setup Software, which runs on a PC under MS Windows. 
Security Lockout options available using Laurel's free Instrument Setup Software.
Warranty 3 years parts & labor
Recalibration: All ranges are calibrated at the factory. Recalibration is recommended every 12 months.

Transmitter Pinout

Laureate LT transmitter pinout

 

Free Instrument Setup Software for Series 2 Laureates

Digital Panel Meter Laurel Electronics Digital Transmitters
1/8 DIN Digital Panel Meters DIN Rail Transmitters

Free Downloadable Windows-based Instrument Setup (IS) software (Data Interface Board Required) for use with our programmable Digital Panel Meters, Scale Meters, Counters, Timers, Remote Displays, and Transmitters, are an easy method to set up Laureate 1/8 DIN digital panel meters, counters, timers, remote displays, and DIN-rail transmitters, as explained in the Instrument Setup Software Manual. Laureate 1/8 DIN instruments can also be set up from the front panel, as explained in their respective Owners Manuals. Instrument Setup software is of benefit whether or not the PC is connected to the instrument.

  • When the PC is connected to the instrument, Instrument Setup software can retrieve the setup file from the instrument or open a default setup file or previously saved setup file from disk View Setup, then provides graphical user interface (GUI) screens with pull-down menus applicable to input, display, scaling, filtering, alarms, communications, analog output, and front panel lockouts. Fields that are not applicable to the instrument as configured are either left out or grayed out. Clicking on any item will bring up a detailed Help screen for that item. After editing, the setup file can be downloaded, uploaded to the instrument, or saved to a disk. The same setup file can then be downloaded into multiple instruments.
  • When the PC is not connected to the instrument, the above GUI screens can be used to set up a virtual instrument. The setup file can then be saved to disk. Switching toView Menu then brings up a screen with the required front panel programming steps. This view can be printed out for use at the instrument site and to serve as a hard copy record.

    Download Free Instrument Setup Software


Installation

Set User Account Control (UAC) of MS Windows to "Never notifiy me" so that Instrument Setup Software can create directories. The UAC change screen can be reached as follows:

  • Under Windows 7, click on the Windows Start button in the lower left of the desktop and enter "UAC" in the search field.
  • Under Windows 8, navigate to Control Panel, then to the "User Accounts and Family Safety" section, and click on "Change User Account Control Settings."
  • Under Windows 10, click on the Windows Start button in the lower left of the desktop, then on "Settings", and enter "UAC" in the search field.
  • Reboot your computer for the changed UAC setting to take effect.
Meter board with USB Type-B connector

RJ11-to-DB9 cable with rear view of DB9 connector to PC

Laurel USB cable, P/N CBL05

RS232 cable, meter to PC, P/N CBL01

Laureate 1/8 DIN Laureate instruments must be equipped with a serial communications board and be connected to the computer via a serial communications cable. The connection can be via RS232, RS485, USB or Ethernet. Following setup, the serial communications board may be removed from the instrument if desired. The wiring of the RS232 cable is illustrated above with end views of the two connectors.

Laureate LT Series transmitters come standard with a 3-wire serial interface, which can be jumpered for RS232 or RS485.
Laureate LTE Series transmitters come standard with an Ethernet interface.

Meter Setup Screens

Click on any of the reduced screens below for a full-size screen view, then click on the Back button of your browser to return to this page. The screens examples below are for a fully-loaded Series 2 Digital Panel Meter (DPM), which is connected to the PC via RS232. If the meter is a Series 1 meter (pre-2007), this is sensed by the software, and somewhat different screens are brought up. Please see Series 1 setup screens.

Laurel Dual Channel Pulse Input Rate Meter
Welcome Screen
From the computer desktop, click on Start > Programs > IS2 > IS2. Or click on the IS icon on your desktop. This splash screen will be displayed for three seconds. The software revision number is in the lower right.
more
Setup Screen 02s for Digital Panel Meters and Digital Transmitters
Communications Selection Screen
Specify your desired communication protocol and the serial communications bus type, which should match the jumper setup of the instrument. Select None if the PC is not connected to the instrument.
more
Setup Screen 3 for Digital Panel Meters and Digital Transmitters
Establish Communications Screen
If you selected RS-232, you will be asked to specify the PC Com Port and Baud Rate, which should match the jumper setup of the instrument. Click on Establish. With the right settings, the Communications Established field will light up in green, and the Meter Type will be recognized. If so, click onMain Menu.
more
Setup Screen 4 for Digital Panel Meters and Digital Transmitters
Main Menu Screen
Click on File > Default Setup to retrieve the default setup file from disk for your type of meter. Click on File > Open Setupto retrieve a previously saved setup file from disk or on File > Save Setup to save your edited setup file to disk. Click onDPM > Get Setup to retrieve the setup file from your meter or on DPM > Put Setup to download your edited setup file into the meter.
more
Setup Screen 5 for Digital Panel Meters and Digital Transmitters
DPM Input + Display Setup Screen
From the Main Menu, click on View > Setup, then on theInput+Display tab. You can now specify the meter hardware, signal type, display mode, and functions of control inputs A and B. Clicking on any item brings up a pull-down menu with the available choices.
more
Setup Screen 6 for Digital Panel Meters and Digital Transmitters
DPM Scaling Setup Screen
Click on the Scaling tab, which provides three scaling methods to relate the signal to the displayed reading: 1) Scale and Offset method, 2) Coordinates of two points method, and 3) Reading Coordinates of Two Points method. The last method uses actual high and low signals, and the computer will prompt you.
more
Setup Screen 7 for Digital Panel Meters and Digital Transmitters
DPM Filter Setup Screen
Click on the Filter tab, which allows you to specify the digital filter time constant (if any), the adaptive filter threshold, and whether Peak / Valley values are filtered or unfiltered. As for all setup screens, clicking on the F1 key while an item is highlighted brings up a Help screen for that item, as illustrated.
more
Setup Screen 8 for Digital Panel Meters and Digital Transmitters
DPM Relay Alarms Setup Screen
Click on the Relay Alarms tab, which allows you to set up Alarms 1 and 2 for the optional dual relay output board. Clicking on any of the four numeric fields changes these to green and brings up a special field to enter the desired numeric value, which is tied to the displayed reading.
more
Setup Screen 9 for Digital Panel Meters and Digital Transmitters
DPM Communications Setup Screen
Click on the Communications tab so set up serial communications. In particular, you can special the Serial Protocol and the meter address if multiple meters are to be addressed on the same serial data line.
more
Setup Screen 10 for Digital Panel Meters and Digital Transmitters
DPM Analog Output Setup Screen
Click on the Analog Out tab so set up the optional analog output board. Three output ranges are selectable, the endpoints of which can be tied to user-specified High and Low readings.
more
Setup Screen 11 for Digital Panel Meters and Digital Transmitters
DPM Lockouts Setup Screen
Click on the Lockouts tab to check off menu items which will no longer be accessible from the front panel of the meter. This will simplify meter operation and prevent unintended setup changes.
more

Meter Setup Utilities

Setup Screen 12 for Digital Panel Meters and Digital Transmitters
DPM Front Panel Setup Screen
As an aid to programming the meter from the front panel when a serial connection is not available, you can return to the Main Menu and click on View > Menu. The required sequence of front panel screens will then be displayed. Click on any step in the sequence for the meaning of each digit, as illustrated for the FILtEr step. For a hardcopy, simply press on Print.
more
Setup Screen 13 for Digital Panel Meters and Digital Transmitters
DPM Jumper Setup Screen
Specify your desired communication protocol and the serial communications bus type, which should match the jumper setup of the instrument. Select None if the PC is not connected to the instrument.
more
Setup Screen 14 for Digital Panel Meters and Digital Transmitters
DPM Jumper Setup Screens
Click on any of the displayed plug-in boards, and you will be presented with the jumper positions and electrical connections for your selected board. This minimizes the need to refer to the printed manual.
more
Setup Screen 15 for Digital Panel Meters and Digital Transmitters
DPM Commands Screen
This page allows you set up external input, serial communications, an analog output proportional to the display (optional), and lockouts for Laureate digital counters. The grayed out area at the top right of the screen applies to Laureate remote displays.
more
Graphical Output Screens (not available with Ethernet)

From the Main Menu, click on Readings if your PC is connected to the meter. A pull-down menu then offers three choices: ListPlot and Graph.

  • List presents the latest readings in a 20-row by 10-column table. Press Pause at any time to freeze the display. This is one method to capture peak readings.   
  • Plot generates a plot of readings vs. time in seconds. It effectively turns the DPM-PC combination into a printing digital oscilloscope.
    more 
  • Graph generates a histogram where the horizontal axis is the reading and the vertical axis is the number of occurrences of readings. The display continually resizes itself as the number of readings increases.
    more
Setup Screen 18 for Digital Panel Meters and Digital Transmitters
DPM Calibration Screens
Click on the Scaling tab, which provides three scalClick on the Scaling tab, which provides three scaling methods to relate the signal to the displayed reading: 1) Scale and Offset method, 2) Coordinates of two points method, and 3) Reading Coordinates of Two Points method. The last method uses actual high and low signals, and the computer will prompt you.
more
Setup Screen 19 for Digital Panel Meters and Digital Transmitters
Frequency Meter Calibration Screen
Calibration of the quartz crystal of the Laureate frequency meter requires the input of a known frequency from a calibrator. Apply the frequency, then enter the frequency in Hertz. Calibration will be automatic, with storage of the calibration factor stored in non-volatile memory.
more

 

Dimensions

Laurel transmitter case

Dimensioned CAD assembly drawings in EPRT, STEP, x_t, .dwg, pdf file formats: Laureate-transmitter-case.zip (zipping prevents browser from opening CAD files as text files).

 

 

CAL-Analog

Certificate of Calibration

$65.00

CBL02

USB-to-RS232 Adapter Cable

$47.00

CBL04

RS232 Cable for LT Transmitters

$47.00

CBL12

12-foot Power Cable

$47.00

CBL6

6-foot Power Cable

$41.00
Ordering Guide
Part Number as Configured: LTE20WM
Price as Configured: $641.00

Click on the Option Board Links for More Product Information

Base Item
$388.00
Main Board
$0.00
Extended allows up to 180 data points for custom curve linearization and a rate derived from consecutive readings.
$33.00
Power (Isolated)
$89.00
$89.00
Signal Input (Isolated)
$164.00
Specify min signal and displayed reading, max signal and displayed reading. 20-500 mV. Default excitation of 10V for up to four 350-ohm load cells in parallel.
$239.00
Part Number as Configured:
LTE20WM
Price as Configured:
$641.00
Quantity:
- +
Extended Price:
$641.00

Understanding the Laureate™ LTE Series DIN Rail Transmitter for Load Cell & Microvolt Input

The Laureate™ LTE Series DIN rail transmitter for load cell or microvolt input is designed for load cells, strain gauges, and microvolt input signals where exceptional sensitivity and stability are required. The most sensitive full-scale input range, ±20 mV, can be scaled internally to ±99,999 counts. The selected input range for the full 0-20 mA output span can be as wide as ±99,999 counts or as narrow as 150 counts, limited only by electrical noise and the time constants of the programmable moving average digital filter.

Ratiometric vs. Absolute Accuracy

Serial data is accurate to ±0.01% of reading ±2 counts in ratiometric load cell mode, and ±0.01% of full scale ±2 counts in absolute microvolt mode. Five full-scale ranges are available: ±20.000 mV, ±50.0000 mV, ±100.00 mV, ±250.00 mV, and ±500.00 mV, all with 1 GΩ input impedance. In microvolt mode, resolution scales with range from 1 µV at ±20.000 mV to 25 µV at ±500.00 mV. Maximum applied voltage is 100V. Update rate is up to 50/sec at 50 Hz or 60/sec at 60 Hz.

4-Wire and 6-Wire Load Cell Connections

In 4-wire connection, the excitation and sense lines are tied together; the transmitter makes ratiometric corrections for supply voltage variations but does not compensate for variations in lead resistance — often used with short cable runs. In 6-wire connection, sense lines are separate from excitation lines, eliminating effects due to lead resistance variation and allowing long cable runs in outdoor environments with temperature extremes. For large scales, up to four 350-ohm load cells can be powered by a single Laureate, whose excitation output is rated 120 mA at 10V, with excitation and sense points of the bridges connected in parallel; load cell outputs are averaged if the load cells share the same mV/V sensitivity.

Ethernet Data I/O

Standard Ethernet Data I/O is 10/100 Base-T per IEEE 802.3, isolated to 250V rms working / 2.3 kV rms per 1 minute test. The supported serial protocol is Modbus TCP at digital address 247, compliant with the Modbus over Serial Line Specification V1.0 (2002). Analog output levels are 4-20 mA, 0-20 mA, or 0-10 Vdc (jumper selectable), with 16-bit resolution and 0.02% of output span accuracy plus conversion accuracy. Power consumption is 2.5W at 24V, 4.0W at max excitation output — the transmitter is powered through its own standard AC/DC power input (85-264 Vac or low-voltage 10-48 Vdc/12-32 Vac options), separate from its Ethernet data connection.

Factory-Calibrated Accuracy

All signal conditioner board ranges are factory-calibrated, with calibration factors stored in EEPROM, enabling field replacement of signal conditioner boards without necessitating recalibration of the transmitter. Factory recalibration is recommended annually. The optional Extended computer board displays rate derived from successive readings and allows custom curve linearization using up to 180 data points.

Where LTE Load Cell & Microvolt Transmitters Are Used

  • Networked Weighing Systems — direct Ethernet connection to SCADA/PLC for scale and hopper weight monitoring.
  • Remote-Site Load Cell Monitoring — bridge signal conditioning at locations reached via existing Ethernet infrastructure.
  • Structural Health Monitoring Networks — distributed strain gauge readings reported over a common network.
  • Multi-Scale Networked Installations — several transmitters on one Modbus TCP network reporting to a central controller.
  • Laboratory & Test Stand Force Measurement — networked microvolt-level force/strain data acquisition.
  • OEM Networked Weighing Instrumentation — DIN rail integration into Ethernet-based control panels.

LTE Load Cell & Microvolt Transmitter Frequently Asked Questions

Is this LTE transmitter itself powered via Power over Ethernet (PoE), given "power over ethernet" appears among the page's listed keywords?

No — documented Power Input specification lists standard AC/DC power options (85-264 Vac or 90-300 Vdc standard, with 10-48 Vdc or 12-32 Vac as a low-power option), separate and distinct from the transmitter's Ethernet Data I/O connection; the transmitter's own power input is documented independently of its network cable, so PoE is not documented as this transmitter's actual power source despite the term's appearance among the page's general keyword list.

Why does this LTE transmitter's documented analog output include 4-20 mA, unlike the DC Voltage/Current LTE variant's documented 0-20 mA/0-10V-only output set?

Documented analog output levels for this load cell/microvolt LTE transmitter specifically list "4-20 mA, 0-20 mA, 0-10 Vdc (jumper selectable)" — a genuinely different, broader set than documented on some other LTE Series variants; this reflects that documented output level options can differ by specific transmitter model within the LTE family, so the exact available options should be confirmed against each individual product's own specification table.

Does choosing ratiometric load cell mode versus absolute microvolt mode change which accuracy specification applies?

Yes — documented specification lists two separate accuracy figures for these two modes: ±0.01% of reading ±2 counts in ratiometric load cell mode, versus ±0.01% of full scale ±2 counts in absolute microvolt mode; since "of reading" and "of full scale" accuracy calculations produce different absolute error magnitudes at partial-scale readings, the selected mode genuinely changes how the transmitter's real-world accuracy should be calculated for a given measurement.

Why does the 6-wire connection specifically enable longer cable runs in outdoor environments with temperature extremes, compared to the 4-wire connection?

Documented description specifically attributes this to the 6-wire connection's separate sense lines eliminating effects due to variations in lead resistance — since lead resistance itself changes with temperature and cable length, the documented 4-wire connection (where excitation and sense are tied together) accumulates this temperature- and length-dependent error, while the 6-wire connection's independent sense path is documented as specifically avoiding it, which is why 6-wire is the documented choice for longer, more thermally variable cable runs.

Does connecting up to four 350-ohm load cells in parallel to a single transmitter require the load cells to be identical models?

Not necessarily identical models, but they must share a specific characteristic — documented description specifically states load cell outputs "will be averaged if the load cells have the same sensitivity in mV/V," meaning the specific requirement documented is matched mV/V sensitivity across the paralleled load cells, rather than requiring identical model numbers; load cells from different sources with matching documented sensitivity specifications would be consistent with this stated averaging behavior.

Does this transmitter's documented Modbus TCP-only protocol support limit which control systems can poll it, compared to the RS232/RS485 LT Series variant's broader documented protocol set?

The LTE variant's documented Ethernet Data I/O supports Modbus TCP specifically at digital address 247, while the LT Series serial variant is documented elsewhere as separately supporting Modbus RTU/ASCII and Laurel Custom ASCII protocols — a control system needing a protocol other than Modbus TCP would need to reference the LT Series serial variant instead, since this specific LTE page documents Modbus TCP as the supported protocol for its Ethernet interface.

Does the documented maximum applied voltage of 100V represent a working measurement limit, or a survivable overvoltage limit before damage?

Documented specification lists "Max applied voltage: 100 V" as a single figure without separately distinguishing normal operating range from a documented overvoltage survival rating — given the transmitter's documented full-scale ranges top out at ±500.00 mV, a 100V figure sits far above the intended measurement span, consistent with this being documented as a protective maximum the input circuitry can tolerate without damage, rather than a range within which accurate measurement is expected.

Can the Extended board's custom curve linearization be applied to correct for known nonlinearity in a specific load cell's response?

Documented capability describes the Extended board's custom curve linearization generally as extending accuracy for applications like tank volume calculation from level readings, without restricting its use case to flow or level applications specifically — since custom curve linearization is documented as accepting up to 180 user-supplied data points to build a spline-fit correction, this general capability is consistent with also being applied to correct a load cell's known nonlinear response, provided the correcting data points are supplied during setup.

Does selecting the WM1 custom scaling option change the transmitter's documented core accuracy specifications from the standard WM option?

Documented WM1 option describes custom scaling (specifying min/max input and corresponding min/max displayed reading across a 20-500 mV span) as a configuration choice for how raw signal is mapped to a displayed reading, not as a change to the transmitter's underlying signal conditioning accuracy; the documented accuracy specifications in the main table are consistent with applying to both WM and WM1 configurations, since both use the same underlying load cell signal conditioner hardware.

Does the transmitter's documented 1 GΩ input impedance on the load cell ranges serve the same purpose as the 1 GΩ impedance documented on the most sensitive LT Series DC voltage ranges?

Yes, in principle — both are documented as minimizing loading on a sensitive, typically low-power source signal; for load cells specifically, documented high input impedance helps ensure the transmitter draws negligible current from the bridge output, similarly to how the same high impedance figure on sensitive DC voltage ranges is documented as minimizing load on the measured voltage signal, reflecting a shared design principle across the LT/LTE family's most sensitive input ranges.

Power over Ethernet (PoE) Deployment Questions From the Field

What is the documented maximum cable distance for standard Power over Ethernet, and what specifically limits it?

Documented standard specifically limits PoE transmission to 100 meters (about 328 feet) per standard twisted-pair Ethernet cabling specifications — documented explanation notes that beyond this distance, wire resistance, heat generation, and electromagnetic interference begin degrading the data signal, leading to attenuation and eventual packet loss, which is why this figure represents a hard, physics-based ceiling rather than an arbitrary standards choice.

Does voltage drop over a PoE cable run increase in direct proportion to cable distance?

Yes — documented explanation specifically states that as PoE transmission distance increases, voltage drop increases proportionally, which is a genuinely different and compounding problem on top of the general data-signal attenuation that also worsens with distance; both effects are documented as growing together as cable length approaches the standard's maximum.

Are there documented solutions for extending PoE-powered device deployments beyond the standard 100-meter cable limit?

Yes — documented industrial solutions specifically include PoE injectors and extenders designed to deliver power and data over a single Ethernet cable to remote sites, with one documented example specifically citing a Gigabit-rated, IP30-rated, DIN-rail-mountable injector unit backward-compatible with earlier PoE standards, specifically engineered to address long cable runs in remote industrial deployments.

Does heat generation from PoE current specifically require ambient temperature-based safeguards in real deployments?

Yes — documented technical description specifically identifies current passing through PoE cable conductors as a genuine source of heat generation, with documented safeguards designed to lower the current limit if ambient temperature exceeds a specified threshold (one documented example cites 45°C) to prevent the system from reaching an unsafe operating temperature (documented as 60°C in that same example).

Do PoE systems have built-in protections against overload conditions that could damage connected equipment?

Yes — documented guidance specifically states that PoE switches and devices have built-in safeguards monitoring power usage, which can shut down or limit power delivery if an overload is detected; this documented protection specifically aims to reduce the risk of overheating or fire in both the power sourcing equipment and the powered device.

Can a remote monitoring system automatically detect and recover a nonresponsive PoE-powered device without a site visit?

Yes — documented system design specifically describes a monitoring device detecting nonresponsive PoE devices connected through a network switch, and automatically instructing the switch's API to power-cycle either the specific nonresponsive port or the entire switch, depending on how many devices are found nonresponsive; this documented remote power-cycling capability is specifically aimed at reducing the need for in-person site visits to recover a stalled device.

Is proper network design and cabling planning specifically documented as necessary before large-scale industrial PoE rollout, or can it generally be added ad hoc?

Documented industry guidance specifically recommends organizations properly plan PoE deployment in advance — considering appropriate power sources, proper cabling, and overall network design — rather than treating it as an incremental, ad hoc addition; this documented planning emphasis reflects that power delivery, not just data connectivity, becomes a genuine design constraint once PoE is deployed at scale.

Beyond powering cameras and lighting, is PoE documented as enabling broader industrial data collection strategies at remote or unmanned sites?

Yes — documented field description specifically frames PoE-enabled remote connectivity as an "operational intelligence layer," citing real-time visibility from IoT sensors streaming process performance, machine health, energy consumption, and environmental data back to centralized systems; this is documented as particularly relevant at remote sites that run with minimal or zero onsite personnel, where a reliable networked power-and-data backbone becomes mission-critical infrastructure.