- Description
- Quick Selector Guide
- Specifications
- Setup Software
- Mechanical
- Documents
- Applications
- Accessories

Features
- Programmable to read phase angle or power factor with two waveshapes of identical period
- Phase angle resolution of 1°, 0.° or 0.01°, accuracy of 0.03% at AC line frequency
- Power factor from 1.000 to 0.000 with sinusoidal signals
- Accepts AC signals from 1 Hz to 10 kHz at voltages up to 250 Vrms
- Transmits phase angle between two AC wave shapes of similar period
- Transmits power factor from 1.000 to 0.000 with sinusoidal signals
- For frequencies from 0.005 Hz to 10 kHz, voltages from 10 mV to 250 Vac
- 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
- RS232 or RS485 serial data, Modbus or Laurel ASCII protocol (isolated)
- 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)
- Extended allows up to 180 data points for custom curve linearization and a rate derived from consecutive readings
The Laureate™ LT Series DIN rail analog transmitter with serial data communication and analog outputs for versatile connectivity.
The digitally programmable transmitter features two relays for alarm or control. The series offers exceptional accuracy with Input frequencies from 0.005 Hz to 1 MHz. The LT 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 RS232/RS485 output transmitter for phase angle transmits the lead or lag in degrees from 0° to 360° between two periodic signals of the same period. In the illustration to the right, phase angle is 360*P1/P. The signals are applied to the Channel A and B inputs of the Laureate dual-channel pulse input signal conditioner board. A resolution of 1°, 0.1° or 0.01° is selectable. Accuracy is 0.01% up to 100 Hz, 0.1% at 1 kHz, and 1% at 10 kHz.
Phase Angle Measurement

Phase angle in degrees indicates the phase lead or lag between two periodic signals of the same period, as determined from their zero crossings. These two signals will typically be the voltage and current applied to a load. As illustrated, the phase angle in degrees is +360*P1/P.
Power Factor Measurement
The power factor of an AC power system is the ratio of real power in watts (W) divided by apparent power in volt-amperes (VA). For sinusoidal signals, power factor is the cosine of phase angle.
The Laureate power factor transmitter computes power factor as the cosine of phase angle. Power factor readings can range from 1.000 to 0.000 with three decimal places and an accuracy of 0.1% for sinusoidal signals at 50/60 Hz power line frequency. While power factor is always positive, the transmitter artificially assigns a minus sign to power factor for negative phase angles, and it sets power factor to 0 for phase angles greater than 90°.
Designed for flexibility
Phase angle and power factor are determined by timing crystal clock pulses over a specified gate time which is selectable from 10 ms to 199.99 s. By selecting the minimum gate time of 10 ms, the update rate can be up to 20/s for 50/60 Hz AC line frequency. Improved accuracy is obtained by making the gate time long enough so that multiple cycles can be averaged.
Exceptional Accuracy and Stability. Laureate transmitters determine frequency by taking the inverse of period as measured with a calibrated quartz crystal time base. This results in extremely accurate and stable 6-digit internal readings (±999,999 counts), which are then processed in software. The analog output is generated by an ultra-linear 16-bit (65,536 step) digital-to-analog converter (DAC) for 0.02% output accuracy. The update rate of the transmitter output is a programmed gate time + 30 ms + 0-2 signal periods. For a 60 Hz signal, the update rate would be 20 per second. Such fast update rates are ideal for alarm and control.
The update rate of the transmitter output is a programmed gate time + 30 ms + 0-2 signal periods. For a 60 Hz signal, the update rate would be 20 per second. Such fast update rates are ideal for alarm and control.
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.
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.
The extended Laureate computer board can display rate based on successive readings. It also allows exceptionally accurate custom curve linearization, for example to read out liquid volume or rate of flow in a horizontal cylindrical tank based on level reported by a 4-20 mA transmitter. For setup, up to 180 data points can be input into a computer spreadsheet or text file by the user. The computer then calculates spline-fit segments, which are downloaded into the transmitter.
Standard Features of Laureate LT Transmitters Include:
- Serial communications output, (isolated), RS232 or RS485 (half or full duplex), jumper selectable. Three protocols are user selectable: Modbus RTU, Modbus ASCII, or Laurel ASCII. Modbus operation is fully compliant with Modbus Over Serial Line Specification V1.0 (2002). The Laurel ASCII protocol is simpler than the Modbus protocol and is recommended when all devices are Laureates.
- 4-20 mA, 0-10V or -10V to +10V analog transmitter output, (isolated), jumper-selectable and user scalable. All selections provide 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. Note that Ethernet data I/O is provided by Laurel's LTE series transmitters.
- Dual-channel pulse inputs for voltage signals, NPN or PNP proximity switches, contact closures, magnetic pickups or flow meters.
- Dual solid state relays, (isolated), for alarm or control. Rated 120 mA at 130 Vac or 170 Vdc.
- Selectable transducer excitation output, (isolated), user selectable 5V@100 mA, 10V@120 mA, 12V@100 mA, 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.
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.
Two control inputs (CMOS/TTL levels, logic 0 = tied to digital ground, logic 1 = open) or dry contacts that can be set to control / activate 14 transmitter commands.
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.
LT 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 LT 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 RS232 or RS485 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.
Connecting Laureate LT Transmitters to a Local Area Network (LAN)
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. Alternatively, Laurel LTE series Ethernet transmitters can connect directly to a LAN via an Ethernet cable. Setup for both configurations is streamlined using Laurel’s free Instrument Setup Software, which simplifies node discovery and transmitter configuration.
Flexible Communication Options for LT 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.
LT Transmitter Signal Input & Function | Model Series | Analog Output | RS232 & RS485 | Dual Relays | |
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1 | DC Input Voltage and Current | LT-DC | ![]() |
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2 | AC RMS Voltage or Current | LT-RMS | ![]() |
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3 | Process Voltage or Current | LT-P | ![]() |
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4 | Weighing Applications | LT-WA | ![]() |
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5 | Load Cell & Microvolt Signals | LT-WM | ![]() |
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6 | Thermocouple (Types J, K, T, E, N, R, S) | LT-TC | ![]() |
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7 | RTD Temperature | LT-RTD | ![]() |
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8 | Resistance in Ohms | LT-R | ![]() |
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9 | Frequency, Rate, Speed | LT-FR | ![]() |
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10 | Pulse Input Totalizer | LT-FR | ![]() |
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11 | Process Signal Totalizer | LT-VF | ![]() |
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12 | Sum, Difference, Ratio, Product of 2 Inputs | LT-FR | ![]() |
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13 | Batch Controller Pulse Input | LT-FR | ![]() |
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14 | Batch Controller Analog Input | LT-FR | ![]() |
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15 | On/Off Duty Cycle | LT-FR | ![]() |
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16 | Stopwatch Timing for Single Events | LT-FR | ![]() |
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17 | Average Time of Periodic Events | LT-FR | ![]() |
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18 | AC Phase Angle and Power Factor | LT-FR | ![]() |
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19 | Quadrature Position or Rate | LT-QD | ![]() |
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4-20 mA & Serial Data Transmitter for AC Phase Angle & Power Factor
Phase Angle Mode | ||||
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Item Transmitted | Phase angle difference between two waves of same period | |||
Transmitted Units | 1°, 0.1°, 0.01° | |||
Frequency Range | .005 Hz to 10 kHz | |||
Resution | .01°, .005 Hz to 100 Hz, 0.1° at 1 kHz, 1° at 10 kHz | |||
Accuracy | 0.03° at 50 or 60 Hz | |||
Maximum Timing Interval | 200 sec | |||
Recalibration: All ranges are calibrated at the factory. Recalibration is recommended every 12 months. | ||||
Power Factor Mode | ||||
Item Transmitted | Power factor between two sine waves of same period | |||
Transmitted Units | 1.000 to 0.000, 1.00 to 0.00, or 1.0 to 1.0 | |||
Polarity | Negative sign indicates negative phase angle | |||
Frequency Range | 0.005 Hz to 10 kHz | |||
Accuracy | 0.1% at power line frequencies | |||
Inputs | ||||
Signal Types | Sinusoidal AC and square waves | |||
Signal Ranges | 10 mV to 250 Vac | |||
Signal Ground | Common ground for channels A & B | |||
Noise Filter | 1 MHz, 30 kHz, 250 Hz (selectable) | |||
Update Rate | ||||
Conversion Interval | Gate time + 30 ms + 0-2 signal periods | |||
Gate Time | Selectable 10 ms to 199.99 s | |||
Time Before Zero Output | Selectable 10 ms to 199.99 s | |||
Analog Output (standard) | ||||
Output Levels | 4-20 mA, 0-20 mA, 0-10 Vdc, -10 to +10Vdc (user selectable) | |||
Compliance, 4-20 mA | 10V (0-500 ohm load) | |||
Compliance, 0-10V | 2 mA ( kOhm load) | |||
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 | |||
Serial Data Output (standard) | ||||
Signal Types | RS232 or RS485 (half or full duplex), jumper selectable | |||
Data Rates | 300, 600, 1200, 2400, 4800, 9600, 19200 baud | |||
Output Isolation | 250V rms working, 2.3 kV rms per 1 min test | |||
Serial Protocols | Modbus RTU, Modbus ASCII, Laurel ASCII | |||
Modbus Compliance | Modbus over Serial Line Specification V1.0 (2002) | |||
RS232/485 Connector | Screw terminals for easy daisy chaining | |||
Digital Addresses | 247 for Modbus, 31 for Laurel ASCII | |||
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 | |||
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 | |||
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 at 24V | 1.5W typical, 3W with 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) | |||
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

Free Instrument Setup Software for Series 2 Laureates
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.

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

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.











Meter Setup Utilities




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


Dimensions

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).
Using Laureate Meters, Counters or Transmitters to Synchronize Motor Generators |
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![]() Synchronization of two motor generators requires that the two frequencies be identical, that the lines be in phase, and that the line voltages be close to each other. In this illustration, a single Laureate dual channel counter (or frequency transmitter) measures both frequencies to six-figure accuracy in a few line cycles. Another Laureate dual channel counter (or phase transmitter) measures phase angle to 0.1° resolution. Two Laureate AC RMS Voltmeters, which offer ranges of 200.00 V and 600.0 V, are used to display the two RMS voltage to 0.1% accuracy. |
CLB02
USB-to-RS232 Adapter Cable
CBL04
RS232 Cable for LT Transmitters
What is the LT DIN Rail Digital Transmitters with Serial Data Communication and Analog Outputs for AC Phase Angle & Power Factor
In modern industrial and commercial electrical systems, accurate monitoring and control of electrical parameters are crucial for ensuring efficiency, safety, and reliability. One advanced solution for achieving this is the LT DIN Rail Digital Transmitter, a sophisticated device designed for precise measurement and communication of AC phase angle and power factor. This article will explore the features, functionality, and benefits of these transmitters, focusing on their role in optimizing electrical systems.
What is an LT DIN Rail Digital Transmitter?
An LT DIN Rail Digital Transmitter is an electronic device mounted on a DIN rail—a standard rail used for mounting electrical components in industrial control cabinets. These transmitters are designed to measure specific electrical parameters and convert them into standardized output signals that can be used for monitoring, control, and data analysis.
Key Features
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Digital Measurement: Unlike traditional analog devices, LT DIN Rail Transmitters use digital technology to measure electrical parameters with high precision. This digital approach ensures accuracy and reliability in capturing data.
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AC Phase Angle Measurement: These transmitters can measure the phase angle between the voltage and current in an AC circuit. The phase angle is crucial for understanding the relationship between voltage and current, which affects the power consumption and efficiency of electrical systems.
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Power Factor Measurement: Power factor is a measure of how effectively electrical power is being used in a system. LT DIN Rail Transmitters provide accurate readings of the power factor, helping to identify inefficiencies and potential issues in power consumption.
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Serial Data Communication: The transmitters are equipped with serial data communication capabilities, allowing them to transmit measurement data to other devices or systems. This feature enables integration with control systems, data loggers, and other monitoring equipment.
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Analog Outputs: In addition to serial data communication, LT DIN Rail Transmitters offer analog output signals. These analog signals provide real-time data on phase angle and power factor, which can be used for various control and monitoring purposes.
Benefits of LT DIN Rail Digital Transmitters
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Enhanced Accuracy: The digital nature of these transmitters ensures that measurements are precise, reducing the likelihood of errors compared to analog devices.
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Improved Monitoring: With the ability to measure phase angle and power factor, these transmitters provide valuable insights into the performance and efficiency of electrical systems.
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Real-Time Data Access: The combination of serial data communication and analog outputs allows for real-time monitoring and analysis, facilitating prompt response to any issues that may arise.
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System Integration: The ability to communicate with other devices and systems makes it easier to integrate these transmitters into existing control and monitoring setups, enhancing overall system performance.
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Efficiency Optimization: By providing accurate data on power factor and phase angle, these transmitters help in optimizing electrical systems, reducing energy consumption, and improving overall efficiency.
Applications
LT DIN Rail Digital Transmitters are used in various applications, including:
- Industrial Automation: For monitoring and controlling electrical systems in manufacturing and processing plants.
- Building Management Systems: To track and optimize energy usage in commercial and residential buildings.
- Power Distribution: For managing and analyzing electrical distribution networks.
- Renewable Energy Systems: To monitor performance and efficiency in solar and wind energy systems.
Conclusion
The LT DIN Rail Digital Transmitter with Serial Data Communication and Analog Outputs for AC Phase Angle and Power Factor is a vital tool for modern electrical systems. Its advanced features provide accurate measurements, real-time data, and seamless integration with existing systems. By leveraging these transmitters, industries and facilities can enhance their energy efficiency, improve system performance, and ensure reliable operation of their electrical infrastructure.
Applications of LT DIN Rail Digital Transmitters with Serial Data Communication and Analog Outputs for AC Phase Angle and Power Factor
In the ever-evolving landscape of industrial automation and control systems, precision and reliability are paramount. LT DIN Rail digital transmitters equipped with serial data communication and analog outputs for AC phase angle and power factor measurements are pivotal components that cater to these needs. Here's a closer look at where these devices are used and their significance.
1. Industrial Automation
In industrial settings, maintaining precise control over electrical parameters is crucial for optimizing performance and ensuring equipment longevity. LT DIN Rail digital transmitters are commonly used to monitor AC phase angle and power factor in various industrial automation systems. By providing accurate phase angle and power factor measurements, these devices help in balancing loads, improving power factor correction, and minimizing energy losses. This ensures smoother operation of machinery and reduces the risk of electrical faults.
2. Power Quality Monitoring
Power quality is a critical concern in industries where sensitive equipment is in use. LT DIN Rail digital transmitters play a vital role in power quality monitoring by measuring the phase angle and power factor of AC signals. This data is essential for identifying and addressing issues such as voltage sags, surges, and harmonic distortions. By integrating these transmitters into power quality monitoring systems, operators can take proactive measures to enhance power quality and prevent potential disruptions.
3. Energy Management Systems
Energy management systems (EMS) are designed to optimize energy consumption and reduce costs. LT DIN Rail digital transmitters contribute significantly to EMS by providing real-time data on phase angle and power factor. Accurate measurements allow for effective monitoring and control of energy usage, leading to improved energy efficiency and reduced operational costs. Additionally, these transmitters help in assessing the performance of power factor correction devices, ensuring that they operate at peak efficiency.
4. Building Management Systems
In modern building management systems (BMS), energy efficiency and equipment reliability are key concerns. LT DIN Rail digital transmitters are used to monitor the power factor and phase angle of electrical systems within commercial and residential buildings. By integrating these transmitters, facility managers can ensure that electrical systems are operating efficiently, detect potential issues early, and implement corrective actions to maintain optimal performance.
5. Power Generation and Distribution
In power generation and distribution networks, precise measurement of electrical parameters is crucial for maintaining stability and efficiency. LT DIN Rail digital transmitters provide valuable data on phase angle and power factor, which are essential for balancing loads across generators and transformers. This data helps in optimizing the operation of power plants and distribution networks, ensuring reliable and efficient power delivery.
6. Renewable Energy Systems
With the growing adoption of renewable energy sources, monitoring and managing electrical parameters have become increasingly important. LT DIN Rail digital transmitters are used in renewable energy systems, such as solar and wind power installations, to measure phase angle and power factor. This information is vital for ensuring that renewable energy systems are integrated effectively with the grid and operate efficiently.
Conclusion
LT DIN Rail digital transmitters with serial data communication and analog outputs for AC phase angle and power factor are integral to a wide range of applications, from industrial automation and energy management to power quality monitoring and renewable energy systems. Their ability to provide accurate and reliable measurements helps in optimizing performance, improving energy efficiency, and maintaining system stability. As technology continues to advance, these transmitters will remain essential tools in the quest for enhanced electrical control and management.
Less Information.