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Method and Apparatus for Measuring Fluid FlowThe invention is a method and apparatus for monitoring the presence, concentration, and the movement of fluids. It is based on utilizing electromagnetic measurements of the complex permittivity of the fluids for detecting and monitoring the fluid. More particularly the apparatus uses one or more microwave probes which are placed at the locations where the measurements are to be made. A radio frequency signal is transmitted to the probe and the reflected signal is phase and amplitude detected at a rapid rate for the purpose of identifying the fluids, based on their dielectric constant at the probe. The apparatus can be used for multiple purposes including measures of flow rates, turbulence, dispersion, fluid identification, and changes in flow conditions of multiple fluids or multiple states of a single fluid in a flowline or a holding container. The apparatus includes a probe consisting of two electrical conductors separated by an insulator. A radio frequency signal is communicated to the probe and is reflected back from the portion of the probe exposed to the fluid. The radio frequency signal also provides a reference signal. An oscillator generates a second signal which combined with each of the reference signal and the reflected signal to produce signals of lower frequencies to facilitate filtering and amplifying those signals. The two signals are then mixed in a detector to produce an output signal that is representative of the phase and amplitude change caused by the reflection of the signal at the probe exposed to the fluid. The detector may be a dual phase detector that provides two such output signals that are in phase quadrature. A phase shifter may be provided for selectively changing the phase of the reference signal to improve the sensitivity of at least one of the output signals for more accurate readings and/or for calibration purposes. The two outputs that are in quadrature with respect to each other may be simultaneously monitored to account for drift errors. The output signals are digitized and provided to a computer at a sample rate which may be very high. The computer is operable to identify the fluid based on its complex permittivity as may be useful for identifying the flow rates, determining the fluid mixture ratio, detecting impurities in the fluid, and so forth. Novelty is believed to reside in the use of the real part of complex permittivity to measure small difference in permittivity of the fluid.
Document ID
19960028167
Acquisition Source
Johnson Space Center
Document Type
Other - Patent Application
Authors
Arndt, G. Dickey
(NASA Johnson Space Center Houston, TX United States)
Nguyen, Than X.
(NASA Johnson Space Center Houston, TX United States)
Carl, James R.
(Lockheed Martin Corp. Houston, TX United States)
Date Acquired
September 6, 2013
Publication Date
September 14, 1995
Subject Category
Fluid Mechanics And Heat Transfer
Report/Patent Number
NAS 1.71:MSC-22366-1
Patent Number: NASA-Case-MSC-22366-1
Patent Application Number: US-Patent-Appl-SN-528069
Report Number: NAS 1.71:MSC-22366-1
Accession Number
96N29225
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
Patent
NASA-Case-MSC-22366-1
Patent Application
US-Patent-Appl-SN-528069
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