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Related Experiment Video

Updated: Oct 11, 2025

Uncoupling Coriolis Force and Rotating Buoyancy Effects on Full-Field Heat Transfer Properties of a Rotating Channel
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Modeling temperature effects on a Coriolis mass flowmeter.

Fábio Ouverney Costa1, Jodie G Pope2, Keith A Gillis2

  • 1Instituto Nacional de Metrologia/Directory of Scientific and Industrial Metrology/Fluid Dynamics Metrology Division, Duque de Caxias, RJ, Brazil.

Flow Measurement and Instrumentation : FMI
|December 3, 2021
PubMed
Summary

A new model explains Coriolis mass flowmeter temperature dependence down to cryogenic temperatures. Initial tests show model predictions align with experimental data, paving the way for accurate flow measurements in extreme conditions.

Keywords:
Coriolis meterCryogenicFlowmeterPhysical modelTemperature-effects

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Area of Science:

  • Mechanical Engineering
  • Metrology
  • Thermodynamics

Background:

  • Coriolis mass flowmeters are crucial for custody transfer and proficiency testing, particularly for liquified natural gas (LNG).
  • Understanding their temperature dependence is vital for accurate measurements, especially at cryogenic temperatures.
  • Existing models may not fully capture the behavior of these meters across wide temperature ranges.

Purpose of the Study:

  • To develop and validate a model explaining the temperature dependence of Coriolis mass flowmeters.
  • To extend the applicability of Coriolis flowmeter models to cryogenic temperatures (down to 5 K).
  • To propose correction coefficients for enhanced accuracy in extreme temperature environments.

Main Methods:

  • Development of a theoretical model for Coriolis mass flowmeter temperature dependence.
  • Experimental testing of the model within a specific temperature range (285 K to 318 K).
  • Analysis of literature values for material properties to extrapolate model behavior to cryogenic temperatures.

Main Results:

  • The developed model accurately predicts temperature dependence within ± 0.08 % compared to experimental data.
  • The model exhibits an uncertainty of 0.16 % (95 % confidence level) within the tested temperature range.
  • The study lays the groundwork for correction coefficients valid down to 5 K.

Conclusions:

  • The model provides a reliable method for understanding Coriolis mass flowmeter behavior across varying temperatures.
  • The research enables more accurate flow measurements in cryogenic applications.
  • Further development based on this model can lead to improved custody transfer and metrology standards.