Vibronic Point Level Detection

Point level switches in liquids and solids.

1 - 31 of 31 Products
Vibronic Point Level Detection Soliphant FTM51
Endress+Hauser
Vibronic Point level detection Soliphant FTM51
Extended Extended
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Vibronic Point Level Detection Soliphant FTM20
Endress+Hauser
Vibronic Point level detection Soliphant FTM20
Fundamental Fundamental
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Liquiphant FTL51B Point Level Switch for Liquids
Endress+Hauser
Liquiphant FTL51B - digital, simple and safe
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Vibronic Point Level Detection Nivotester FTL325N
Endress+Hauser
Vibronic Point level detection Nivotester FTL325N
Extended Extended
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Conductive Point Level Switch Nivotester FTW325
Endress+Hauser
Conductive Point level switch Nivotester FTW325
Lean Lean
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Vibronic Point Level Detection Soliphant FTM52
Endress+Hauser
Vibronic Point level detection Soliphant FTM52
Extended Extended
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Vibronic Point Level Detection Liquiphant FTL31
Endress+Hauser
Vibronic Point level detection Liquiphant FTL31
Fundamental Fundamental
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Liquiphant FTL43 Hygienic Point Level Switch for Liquids
Endress+Hauser
Liquiphant FTL43 – hygienic point level switch for liquids
Lean Lean
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Oil Leak Detector Float Sensor NAR300
Endress+Hauser
Oil leak detector Float Sensor NAR300
Xpert Xpert
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Conductive Point Level Detection One Rod Probe 11375Z
Endress+Hauser
Conductive Point level detection One rod probe 11375Z
Lean Lean
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Capacitance Point Level Switch Nivotester FTC325
Endress+Hauser
Capacitance Point level switch Nivotester FTC325
Extended Extended
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Vibronic Point Level Detection Liquiphant FTL33
Endress+Hauser
Vibronic Point level detection Liquiphant FTL33
Fundamental Fundamental
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Liquiphant FTL41
Endress+Hauser
Liquiphant FTL41
Lean Lean
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Vibronic Point Level Detection Liquiphant FTL85
Endress+Hauser
Vibronic Point level detection Liquiphant FTL85
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Liquiphant FTL63 Hygienic Point Level Switch for Liquids
Endress+Hauser
Liquiphant FTL63 – hygienic point level switch for liquids
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Vibronic Point Level Detection Nivotester FailSafe FTL825
Endress+Hauser
Vibronic Point level detection Nivotester FailSafe FTL825
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Conductive Point Level Detection One Rod Probe 11961Z
Endress+Hauser
Conductive Point level detection One rod probe 11961Z
Lean Lean
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Vibronic Point Level Detection Liquiphant FTL50H
Endress+Hauser
Vibronic Point level detection Liquiphant FTL50H
Extended Extended
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Vibronic Point Level Detection Soliphant FTM21
Endress+Hauser
Vibronic Point level detection Soliphant FTM21
Fundamental Fundamental
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Conductive Point Level Detection One Rod Probe 11371
Endress+Hauser
Conductive Point level detection One rod probe 11371
Lean Lean
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Conductive Point Level Detection Double Rod Probe 11362Z
Endress+Hauser
Conductive Point level detection Double rod probe 11362Z
Lean Lean
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Liquiphant FTL62 Point Level Switch
Endress+Hauser
Liquiphant FTL62 - the specialist for aggressive media
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Vibronic Point Level Detection Nivotester FTL325P
Endress+Hauser
Vibronic Point level detection Nivotester FTL325P
Extended Extended
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Oil Leak Detector Transmitter NRR261
Endress+Hauser
Oil leak detector Transmitter NRR261
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Vibronic Point Level Detection Soliphant FTM50
Endress+Hauser
Vibronic Point level detection Soliphant FTM50
Extended Extended
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Conductive Point Level Detection Triple Rod Probe 11363Z
Endress+Hauser
Conductive Point level detection Triple rod probe 11363Z
Lean Lean
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Vibronic Point Level Detection Liquiphant FTL81
Endress+Hauser
Vibronic Point level detection Liquiphant FTL81
Xpert Xpert
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Liquiphant FTL64 Point Level Switch
Endress+Hauser
Liquiphant FTL64 - reliable detection at high temperatures
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Oil Leak Detector Transmitter NRR262
Endress+Hauser
Oil leak detector Transmitter NRR262
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Vibronic Point Level Detection Liquiphant FTL51H
Endress+Hauser
Vibronic Point level detection Liquiphant FTL51H
Extended Extended
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Vibronic Point Level Detection Liquiphant FTL80
Endress+Hauser
Vibronic Point level detection Liquiphant FTL80
Xpert Xpert
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Vibronic Point Level Detection

Vibronic point level detection is a robust switching technology used for overfill prevention and point level control in both liquids and bulk solids. It is positioned as highly reliable across changing process conditions and is described as unaffected by factors such as changing media properties, turbulence, foam, vibration, or build-up. The category includes tuning-fork style sensors for liquids (Liquiphant) and rod-style sensors for solids (Soliphant), supporting a wide range of industries and applications.

The measuring principle is based on resonance behavior. For liquids, a tuning fork is excited at its resonant frequency using a piezoelectric drive; when the fork is covered by liquid, the oscillation frequency changes and the instrument converts that change into a switching signal. For solids, a one-rod sensor is excited similarly; as material covers the sensor, the oscillation amplitude changes and is analyzed to produce the switch output. This resonance-based detection provides a clear covered/uncovered indication without relying on conductivity or dielectric thresholds.

Benefits include broad media independence, simple installation, and readiness for use without calibration in typical point level roles. The category is also described as self-monitoring, maintenance-free, and without wear and tear - an advantage where frequent cleaning or mechanical servicing would be costly. Vibronic devices are highlighted as suitable for functional safety applications (SIL 2/3) and as a “second line of defense” for overfill prevention, supporting high availability and safety strategies.

Typical applications range from basic minimum/maximum level control to certified leakage monitoring and overfill prevention, including duties tied to protective equipment and safety-rated plant sections. In solids service, vibronic switches are applied in fine-grained or powdery materials and can be used in hazardous areas with appropriate device selection. Common use cases include overfill alarms in storage silos, low-level detection for feeder protection, and reliable switching in processes where foam or turbulence would compromise float or conductive solutions.

Implementation considerations include selecting the correct sensor form factor (fork vs. rod), process connection, and insertion length to ensure the switch point represents the desired control/alarm condition. Mounting should avoid direct mechanical impact and excessive buildup zones when possible, even though the method is designed to tolerate many challenging effects. For safety functions, proof-test intervals, diagnostic coverage expectations, and fail-safe output behavior should be aligned with the overall safety lifecycle and site standards.

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