Radar Level Measurement

Continuous level measurement in liquids and solids with free space radar sensors.

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Radar Measurement Micropilot NMR81
Endress+Hauser
Radar measurement Micropilot NMR81
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Micropilot FMR30B Radar Sensor for Basic Applications
Endress+Hauser
Micropilot FMR30B - radar sensor for basic applications
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Micropilot FMR10B Radar Sensor for Basic Applications
Endress+Hauser
Micropilot FMR10B – radar sensor for basic applications
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Radar Measurement Time-of-Flight Micropilot FMR51
Endress+Hauser
Radar measurement Time-of-Flight Micropilot FMR51
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Radar Measurement Time-of-Flight Micropilot FMR57
Endress+Hauser
Radar measurement Time-of-Flight Micropilot FMR57
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Micropilot FMR20B Radar Sensor for Basic Applications
Endress+Hauser
Micropilot FMR20B - radar sensor for basic applications
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Micropilot FMR60B 80 GHz Radar Sensor
Endress+Hauser
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Radar Measurement Time-of-Flight Micropilot FMR52
Endress+Hauser
Radar measurement Time-of-Flight Micropilot FMR52
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Micropilot FMR43 Radar Sensor for Hygienic Processes
Endress+Hauser
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Micropilot FMR63B 80 GHz Radar Sensor
Endress+Hauser
Micropilot FMR63B – 80 GHz radar sensor
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Radar Measurement Time-of-Flight Micropilot FMR54
Endress+Hauser
Radar measurement Time-of-Flight Micropilot FMR54
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Microwave Flow Indicator Solimotion FTR20
Endress+Hauser
Microwave flow indicator Solimotion FTR20
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Micropilot FWR30 The Cloud Connected Radar Level Sensor
Endress+Hauser
Micropilot FWR30 - The cloud connected radar level sensor
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Micropilot FMR62B 80 GHz Radar Sensor
Endress+Hauser
Micropilot FMR62B – 80 GHz radar sensor
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Radar Measurement Micropilot NMR84
Endress+Hauser
Radar measurement Micropilot NMR84
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Micropilot FMR66B 80 GHz Radar Sensor
Endress+Hauser
Micropilot FMR66B – 80 GHz radar sensor
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Micropilot FMR67B 80 GHz Radar Sensor
Endress+Hauser
Micropilot FMR67B – 80 GHz radar sensor
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Radar Level Measurement

Radar Level – Free Space measurement uses non-contact radar sensors that emit microwave signals toward the product surface and measure level from the signal’s time-of-flight and reflection behavior. Because the energy travels through the vapor space and reflects off the surface, the method provides continuous level measurement in both liquids and solids without wetted contact. Modern implementations span multiple frequencies and antenna designs to match vessel geometry and process conditions.

Radar’s benefits include high accuracy, long-term stability, and low maintenance due to the absence of moving parts and minimal process contact. It remains reliable across wide ranges of pressure and temperature and is generally insensitive to changes in gas composition compared with acoustic methods. Narrow-beam, higher-frequency options support challenging installations such as small nozzles, tall tanks, and vessels with internal structures by improving echo discrimination.

Engineering considerations include managing foam, heavy condensation on the antenna, and low-reflectivity surfaces that can reduce echo strength. Antenna selection (horn, rod, lens, etc.) and mounting geometry (nozzle length, standpipe use, aiming) are central to achieving a clean echo profile. In solids, dust and angled repose surfaces can introduce scattering, so setup often includes echo mapping, false-echo suppression, and careful placement away from fill streams.

Typical applications include chemical and petrochemical storage, tank farms, process vessels, water and wastewater basins, and solids silos for powders and granulates. Radar is often selected for corrosive or hygienic services where non-contact measurement reduces contamination risk and maintenance burden. It also supports inventory management and process control where stable continuous measurement is required over large measuring ranges.

System integration commonly uses 4–20 mA with digital communications and/or fieldbus, supporting remote commissioning, diagnostics, and echo-curve evaluation. Functional-safety variants are used for overfill prevention strategies, and device health information can be incorporated into asset management programs. Proper specification aligns frequency/antenna with vessel constraints, product reflectivity, and environmental conditions such as condensation and dust.

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