What Is the LTE Series DIN Rail Analog Transmitter with Ethernet Communication for
Process and Ratiometric Signals?
In the realm of industrial automation and control systems, the LTE Series DIN Rail Analog Transmitter stands out as a vital component designed to enhance the accuracy and efficiency of signal measurement and transmission. This transmitter handles both process signals and ratiometric signals, converting them into a standardized analog output while communicating over Ethernet rather than serial data.
Overview of the LTE Series DIN Rail Analog Transmitter
The LTE Series DIN Rail Analog Transmitter is a versatile device used in industrial settings to convert various types of analog signals into standardized output formats. It is specifically designed to be mounted on a DIN rail, a common method for securing electrical and automation equipment in control cabinets.
Key Features
- DIN Rail Mounting: Offers a standardized and organized way to install and connect electrical components in control panels.
- Analog Outputs: Provides reliable analog outputs used to interface with other components or systems, including PLCs and data acquisition systems.
- Process Signals: Handles process signals used to monitor and control industrial processes — temperature, pressure, flow, and level measurements — ensuring accurate, real-time data representation. Six DC voltage and four DC current input ranges are jumper selectable, with the two most sensitive voltage ranges (200.00 mV and 2.0000V) providing 1 GΩ input impedance to minimize the load on the voltage signal.
- Ratiometric Signals: Supports ratiometric signals, proportional to the supply voltage, crucial for precise and consistent measurements even with variations in the power supply. The transmitter can be set to a ratio (or potentiometer follower) mode via connector and software selection — output tracks a ratio of the applied excitation voltage and is unaffected by changes in that excitation voltage, providing 0.01% of reading ± 2 counts accuracy. This is used with the 5V or 10V excitation output for load cells and Wheatstone bridges, and the 5V excitation output for potentiometers tracking wiper position.
- Ethernet Communication: Allows seamless integration into modern industrial networks, enabling remote monitoring, configuration, and data acquisition through standard Ethernet protocols.
Custom Curve Linearization
With the Extended main board option, up to 180 data points can be entered into a spreadsheet, and the system creates multiple non-linear spline-fit segments, providing much better accuracy than linear segments. One application is reading out the volume of irregularly shaped tanks based on measured liquid level or pressure; altimeters and thermistors are further applications.
Where Is This Transmitter Used?
Industrial Process Control
The transmitter converts signals from sensors measuring parameters like temperature, pressure, and flow into standard analog outputs that can be interpreted by control systems, ensuring accurate process monitoring and control and enhancing operational efficiency and safety.
Building Automation
In building automation systems, the transmitter tracks environmental conditions such as temperature and humidity. Ethernet communication allows building managers to access real-time data and control systems remotely, optimizing energy usage and maintaining optimal environmental conditions.
Manufacturing and Production
Widely used on production lines where precise measurement of process variables is crucial — for instance, where temperature and pressure must be closely monitored, the transmitter ensures these variables remain accurately measured and converted into signals used to adjust machinery and processes in real-time.
Energy Management Systems
The transmitter can monitor various parameters related to energy consumption and efficiency, providing accurate and timely data through analog outputs and Ethernet communication to help optimize energy usage and reduce operational costs.
Automotive Industry
Employed to monitor and control various processes within automotive manufacturing systems, ensuring critical parameters such as temperature and pressure remain accurately measured, contributing to high-quality automotive component production.
Chemical and Pharmaceutical Industries
Accurate measurement and control of process parameters are essential in these industries. The transmitter's ability to handle process signals and provide reliable analog outputs makes it a fit for chemical processing, pharmaceutical manufacturing, and quality control.
Water Treatment
Used for monitoring and controlling water quality parameters in treatment facilities.
Conclusion
The LTE Series DIN Rail Analog Transmitter with Ethernet Communication and Analog Outputs is a highly versatile tool for industrial automation. Its ability to handle both process and ratiometric signals, along with Ethernet-based remote access and configuration, makes it suitable across industrial process control, building automation, manufacturing, energy management, automotive, and chemical/pharmaceutical applications — whether monitoring flow rates, managing batch processes, or integrating with sophisticated control systems, this transmitter offers the precision and flexibility needed for accurate data handling.
LTE Process and Ratiometric Signal Transmitter Frequently Asked Questions
What's the difference between absolute mode and ratiometric mode on this transmitter?
Absolute mode measures the input signal against a fixed internal reference, with accuracy specified as 0.01% of full scale ±2 counts. Ratiometric mode instead measures the signal relative to the transmitter's own excitation voltage, automatically compensating for changes in that excitation, with accuracy specified as 0.01% of reading ±2 counts.
What is potentiometer follower mode, and when is it used?
In this mode, the transmitter tracks a potentiometer's wiper position as a ratio of the applied 5V excitation, so the reading follows the mechanical position of the potentiometer rather than an absolute voltage — useful for position feedback applications where excitation stability would otherwise be a concern.
Does the Ethernet interface affect measurement accuracy or update rate?
No — accuracy and the update rate of up to 50 or 60 conversions per second are determined by the Concurrent Slope signal conditioning, identical to the serial LT Series; Ethernet only changes how the reading is transmitted digitally.
Why do the two most sensitive voltage ranges get 1 GΩ input impedance?
The 200.00 mV and 2.0000V ranges carry 1 GΩ input impedance specifically to minimize the load on the voltage signal, since low-level sources are typically higher-impedance and more easily loaded down by a measuring instrument's own input resistance.
Can this transmitter be used with both bridge circuits and potentiometers in ratiometric mode?
Yes — ratiometric operation uses the transmitter's 5V or 10V excitation output for load cells and Wheatstone bridges, and its 5V excitation output for potentiometers tracking wiper position, covering both sensor types from the same hardware.
What does custom curve linearization let me do that standard scaling doesn't?
Standard scaling maps a signal linearly between two points, but many physical relationships (like liquid volume in an irregularly shaped tank) aren't linear. Custom curve linearization uses up to 180 user-entered data points to build non-linear spline-fit segments, providing much better accuracy than a linear approximation.
Why does the 5A current range have a different accuracy spec than the other current ranges?
The 5A range is specified at ±10 mA rather than the 0.01% FS ±2 counts accuracy of the other current ranges, reflecting the practical tradeoff of extending measurement to a higher current level through shunt-based sensing.
Do I need a gateway device to connect this transmitter to my network?
No — the transmitter connects directly to a LAN via its own RJ45 jack over Modbus TCP, without requiring a separate RS485-to-Ethernet gateway.
What's the difference between the P and SG signal input options for this transmitter?
Both use the same DC signal conditioner board, precalibrated in EEPROM for all standard DC voltage and current ranges; the P and SG designations differ in their default field scaling (4-20 mA in/out vs. 0-200 mV to 0-100.00), with custom scaling available on either as an option.
Can multiple LTE process transmitters be networked together?
Yes — the transmitter supports up to 247 digital addresses via Modbus TCP, allowing many individually addressable transmitters to coexist on the same Ethernet network.
LTE Process and Ratiometric Signal Transmitter Questions From the Field
My ratiometric reading changes slightly when the excitation supply voltage fluctuates — is that expected?
Some residual sensitivity can remain even in ratiometric mode if the compensation isn't perfectly matched to the specific sensor's characteristics; if the fluctuation exceeds the specified reading accuracy, checking the excitation wiring connections and verifying the transmitter is genuinely configured for ratiometric rather than absolute mode is the first troubleshooting step.
My tank volume reading is accurate at the top and bottom of the range but off in the middle — what does that suggest?
This pattern points to an inadequate or missing custom curve linearization rather than a sensor fault — a simple two-point linear scale will match at the endpoints by definition but diverge across a non-linear tank shape in between; adding more data points to the custom curve setup typically resolves it.
My transmitter isn't showing up on the network — what should I check first?
Confirming the transmitter's IP configuration matches what the network expects, and that the physical Ethernet cable and switch port are functioning, are the standard first checks before suspecting a transmitter fault.
Why does my potentiometer-based position reading drift or jump at certain positions?
Mechanical wear or dirty contact points on the potentiometer wiper are common causes of erratic readings at specific positions, since the transmitter is faithfully reporting whatever ratio the wiper actually produces; inspecting the potentiometer itself is the standard first step before suspecting the transmitter.
My process signal reads correctly at low input values but clips or maxes out early — what should I check?
This typically points to a scaling or range mismatch between the actual input signal range and what's configured in the transmitter's setup software, rather than a hardware fault; verifying the jumper-selected range matches the sensor's actual output span is the first step.
My Modbus TCP polling occasionally times out even though the transmitter appears connected — what's the likely cause?
Network congestion or too many devices polling the same transmitter simultaneously can cause intermittent timeouts; checking polling frequency from all connected clients and network traffic load is a common troubleshooting step.
Can two seemingly identical process transmitters read slightly differently for the same input?
Small unit-to-unit differences can occur since each unit's factory calibration is specific to its own signal conditioner board; if the difference exceeds the specified tolerance, verifying both units against a known reference signal is the standard field step.
Why would my reading be noisy specifically in a location near variable-frequency drives?
Variable-frequency drives are a well-documented source of electrical noise that couples into nearby signal wiring; checking cable shielding, grounding, and physical separation from the noise source is the standard remedy before suspecting a transmitter fault.


























