Correcting Mass Flow Measurements Using the Reynolds Number

By employing a Reynolds number correction relationship, meter electronics accurately correct mass flow measurements in vibrometers, addressing viscosity-induced inaccuracies and improving measurement precision.

JP7734190B2Active Publication Date: 2025-09-04MICRO MOTION INC
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Patent Information

Application Number
JP2023526325
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-10-30
Filing Date
2021-09-09
Publication Date
2025-09-04
Estimated Expiration
2041-09-09

AI Technical Summary

Technical Problem

Viscosity-related effects cause inaccuracies in mass flow measurements by vibrometers such as Coriolis mass flow meters, necessitating the use of the Reynolds number to correct these measurements.

Method used

Meter electronics are configured to store a Reynolds number correction relationship, calculate the Reynolds number using measured mass flow values, and determine a correction value using this relationship to correct mass flow measurements.

Benefits of technology

The solution provides accurate mass flow measurements by compensating for viscosity-related errors, enhancing the precision of flow rate and density calculations.

✦ Generated by Eureka AI based on patent content.

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Abstract

Meter electronics (20) for correcting mass flow measurements of a fluid using a Reynolds number is provided. The meter electronics (20) includes an interface (401) communicatively coupled to a sensor assembly (10) containing a fluid and configured to receive a sensor signal from the sensor assembly (10), and a processing system (402) communicatively coupled to the interface (401). The processing system (402) stores a Reynolds number correction relationship, where the Reynolds number correction relationship associates Reynolds numerical values ​​with Reynolds number-based correction values, and is configured to calculate the Reynolds number of the fluid using measured mass flow values ​​of the fluid, and determine the Reynolds number-based correction value using the Reynolds number and the Reynolds number correction relationship.
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Description

[Technical Field]

[0001] The embodiments described below relate to mass flow measurement, and more particularly to correcting mass flow measurement using the Reynolds number. [Background technology]

[0002] Vibrometers, such as Coriolis mass flow meters, liquid density meters, gas density meters, liquid viscometers, gas / liquid specific gravity meters, gas / liquid relative density meters, and gas molecular weight meters, are commonly known and used to measure fluid properties. Generally, a vibrometer comprises a sensor assembly and meter electronics. The fluid measured by the sensor assembly may be flowing or stationary. Vibrometers can be used to measure the mass flow rate, density, and / or other properties of the material measured by the sensor assembly. However, viscosity-related effects can cause inaccuracies in measurements such as mass flow measurements. The Reynolds number can be proportional to the viscosity of the material. Therefore, the Reynolds number must be used to correct the mass flow measurement. Summary of the Invention

[0003] Meter electronics for correcting mass flow measurements of a fluid using a Reynolds number are provided. According to one embodiment, the meter electronics include an interface communicatively coupled to a sensor assembly containing a fluid and configured to receive a sensor signal from the sensor assembly, and a processing system communicatively coupled to the interface. The processing system is configured to store a Reynolds number correction relationship relating Reynolds numerical values ​​to Reynolds number-based correction values, calculate the Reynolds number of the fluid using measured mass flow values ​​of the fluid, and determine the Reynolds number-based correction value using the Reynolds number and the Reynolds number correction relationship.

[0004] A method for correcting mass flow measurements of a fluid using a Reynolds number is provided, according to one embodiment, the method includes receiving a sensor signal at meter electronics, the sensor signal being provided by a sensor assembly containing a fluid, storing a Reynolds number correction relationship in the meter electronics, the Reynolds number correction relationship relating Reynolds numerical values ​​to Reynolds number-based correction values, calculating a Reynolds number for the fluid using the measured mass flow values ​​of the fluid, and determining the Reynolds number-based correction value using the Reynolds number and the Reynolds number correction relationship.

[0005] A system for correcting mass flow measurements of a fluid using a Reynolds number is provided. According to one embodiment, the system includes a sensor assembly containing a fluid and receiving a sensor signal from the sensor assembly, and meter electronics communicatively coupled to the sensor assembly. The meter electronics is configured to store a Reynolds number correction relationship relating Reynolds numerical values ​​to Reynolds number-based correction values, calculate the Reynolds number of the fluid using measured mass flow values ​​of the fluid, and determine the Reynolds number-based correction value using the Reynolds number and the Reynolds number correction relationship.

[0006] [Aspect] According to one aspect, meter electronics (20) for correcting mass flow measurements of a fluid using a Reynolds number includes an interface (401) communicatively coupled to a sensor assembly (10) containing a fluid and configured to receive sensor signals from the sensor assembly (10), and a processing system (402) communicatively coupled to the interface (401). The processing system (402) is configured to store a Reynolds number correction relationship relating Reynolds numerical values ​​to Reynolds number-based correction values, calculate the Reynolds number of the fluid using measured mass flow values ​​of the fluid, and determine the Reynolds number-based correction value using the Reynolds number and the Reynolds number correction relationship.

[0007] Preferably, the processing system (402) configured to calculate a Reynolds number correction factor using the measured mass flow rate values ​​of the fluid includes a processing system (402) configured to calculate the Reynolds number using a viscosity value of the fluid and the measured mass flow rate values ​​of the fluid.

[0008] Preferably, the processing system (402) configured to calculate a Reynolds number correction factor using the measured mass flow rate value of the fluid includes a processing system (402) configured to calculate a Reynolds number using dimensions of a conduit within the sensor assembly (10) and the measured mass flow rate value of the fluid.

[0009] Preferably, the processing system (402) configured to calculate the Reynolds number using the measured mass flow rate value of the fluid is based on the following equation:

number

number

[0010] Preferably, the interface (401) is further configured to communicatively couple to a transducer configured to measure and provide viscosity-related information of the fluid, and the meter electronics (20) is further configured to determine a viscosity value of the fluid based on the viscosity-related information.

[0011] Preferably, the processing system (402) is further configured to determine a density value of the fluid from the sensor signal and to determine a viscosity value from the density value.

[0012] Preferably, the Reynolds number correction relationship comprises one of a mathematical relationship and an ordered pair relating a Reynolds number to a Reynolds number-based correction value.

[0013] According to one aspect, a method for correcting a mass flow measurement of a fluid using a Reynolds number includes receiving a sensor signal in meter electronics, the sensor signal being provided by a sensor assembly containing a fluid; storing a Reynolds number correction relationship in the meter electronics, the Reynolds number correction relationship relating Reynolds numerical values ​​to Reynolds number-based correction values; calculating a Reynolds number for the fluid using the measured mass flow value of the fluid; and determining the Reynolds number-based correction value using the Reynolds number and the Reynolds number correction relationship.

[0014] Preferably, the step of calculating the Reynolds number of the fluid using the measured mass flow rate of the fluid comprises calculating the Reynolds number of the fluid using a viscosity value of the fluid and the measured mass flow rate value of the fluid.

[0015] Preferably, the step of calculating the Reynolds number of the fluid using the measured mass flow rate of the fluid includes calculating the Reynolds number of the fluid using dimensions of the conduit in the sensor assembly and the measured mass flow rate value of the fluid.

[0016] Preferably, the step of calculating the Reynolds number using the measured mass flow rate value of the fluid is performed using the following formula:

number

number

[0017] Preferably, the method further comprises receiving viscosity-related information from a transducer configured to measure and provide viscosity-related information of the fluid, and determining a viscosity value of the fluid using the viscosity-related information.

[0018] Preferably, the method further comprises the steps of determining a density value of the fluid from the sensor signal and determining a viscosity value from the density value.

[0019] Preferably, the Reynolds number correction relationship comprises one of a mathematical relationship and an ordered pair that relates a Reynolds number value to a Reynolds number-based correction value.

[0020] According to one aspect, a system (600) for correcting mass flow measurements of a fluid using a Reynolds number includes a sensor assembly (10) containing a fluid and receiving a sensor signal from the sensor assembly (10), and meter electronics (20) communicatively coupled to the sensor assembly (10). The meter electronics (20) is configured to store a Reynolds number correction relationship relating Reynolds numerical values ​​to Reynolds number-based correction values, calculate the Reynolds number of the fluid using measured mass flow values ​​of the fluid, and determine the Reynolds number-based correction value using the Reynolds number and the Reynolds number correction relationship.

[0021] Preferably, the system (600) further comprises a transducer (610) communicatively coupled to the meter electronics (20), the transducer (610) configured to provide viscosity-related information to the meter electronics (20), wherein the meter electronics (20) is configured to calculate a viscosity value of the fluid using the viscosity-related information provided by the transducer (610). [Brief explanation of the drawings]

[0022] In all drawings, the same reference numbers represent the same elements. [Figure 1]FIG. 1 shows a vibrometer 5 for correcting mass flow measurements using the Reynolds number. [Figure 2] FIG. 2 shows a block diagram of a vibrometer 5 including meter electronics 20 represented in block diagram form. [Figure 3] FIG. 3 shows a graph 300 illustrating the Reynolds number correction relationship for correcting mass flow measurements using the Reynolds number. [Figure 4] FIG. 4 shows meter electronics 20 for correcting mass flow measurements using the Reynolds number. [Figure 5] FIG. 5 shows a method 500 for correcting mass flow measurements using the Reynolds number. [Figure 6] FIG. 6 shows a system 600 for correcting mass flow measurements using the Reynolds number. DETAILED DESCRIPTION OF THE INVENTION

[0023] 1 through 6 and the following description provide specific examples to teach those skilled in the art how to make and use the best mode embodiments for correcting mass flow measurements of a fluid using the Reynolds number. Some conventional aspects have been simplified or omitted for the purpose of teaching the principles of the present invention. Those skilled in the art will appreciate variations from these examples that fall within the scope of the present disclosure. Those skilled in the art will appreciate that the features described below can be combined in various ways to form multiple variations of correcting mass flow measurements using the Reynolds number. Consequently, the embodiments described below are not limited to the specific examples described below, but are limited only by the claims and their equivalents.

[0024] FIGURE 1 illustrates a vibrometer 5 for correcting mass flow measurements using the Reynolds number. As shown in FIGURE 1, the vibrometer 5 includes a sensor assembly 10 and meter electronics 20. The sensor assembly 10 responds to the mass flow rate and density of a process material. The meter electronics 20 is connected to the sensor assembly 10 via leads 100 and provides density, mass flow rate, and temperature information, as well as other information, through port 26.

[0025] The sensor assembly 10 includes a pair of manifolds 150 and 150′, flanges 103 and 103′ with flange necks 110 and 110′, a pair of parallel conduits 130 and 130′, a driver 180, a resistance temperature detector (RTD) 190, and a pair of pickoff sensors 170l and 170r. The conduits 130 and 130′ have two essentially straight inlet legs 131 and 131′ and outlet legs 134 and 134′ that converge toward each other in the conduit mounting blocks 120 and 120′. The conduits 130 and 130′ bend at two symmetrical locations along their lengths and are essentially parallel throughout their entire lengths. Brace bars 140 and 140′ serve to define axes W and W′ about which each conduit 130 and 130′ oscillates. Legs 131, 131' and 134, 134' of conduits 130, 130' are fixedly attached to conduit mounting blocks 120 and 120', which are in turn fixedly attached to manifolds 150 and 150'. This provides a continuous, closed material path through sensor assembly 10.

[0026] When flanges 103 and 103', having holes 102 and 102', are connected via inlet end 104 and outlet end 104' to a process line (not shown) carrying the process material to be metered, the material enters the meter at inlet end 104 through orifice 101 in flange 103 and is directed through manifold 150 to conduit mounting block 120, having surface 121. The material is split within manifold 150 and directed through conduits 130 and 130'. Upon exiting conduits 130 and 130', the process material is recombined into a single stream within block 120', having surface 121' and manifold 150', before being directed to outlet end 104', which is connected to the process line (not shown) by flange 103', having hole 102'.

[0027] The conduits 130, 130' are selected to have substantially the same mass distribution, moment of inertia, and Young's modulus about bending axes W--W and W'--W', respectively, and are appropriately mounted in the conduit mounting blocks 120, 120'. These bending axes pass through the brace bars 140, 140'. Because the Young's modulus of the conduit changes with temperature, which affects flow rate and density calculations, an RTD 190 is attached to the conduit 130' to continuously measure the temperature of the conduit 130'. The temperature of the conduit 130', and therefore the voltage appearing across the RTD 190 for a given current passing therethrough, is determined by the temperature of the material passing through the conduit 130'. The temperature-dependent voltage appearing across the RTD 190 is used by the meter electronics 20 in a well-known manner to compensate for changes in the elastic modulus of the conduits 130, 130' due to changes in the conduit temperature. The RTD 190 is connected to the meter electronics 20 by leads 195.

[0028] Both conduits 130, 130' are driven in opposite directions about their respective bending axes W and W' in the so-called first out-of-phase bending mode of the flow meter by a driver 180. This driver 180 may comprise any one of many well-known configurations, such as a magnet attached to conduit 130' and an opposing coil attached to conduit 130 through which an alternating current is passed to vibrate both conduits 130, 130'. An appropriate drive signal 185 is applied to driver 180 by meter electronics 20 via leads.

[0029] Meter electronics 20 receives the RTD temperature signal on lead 195 and the sensor signal 165 appearing on lead 100, which carries left and right sensor signals 165l, 165r, respectively. Meter electronics 20 generates a drive signal 185 on a lead to driver 180, causing conduits 130, 130' to vibrate. Meter electronics 20 processes left and right sensor signals 165l, 165r and RTD signal 195 to calculate the mass flow rate and density of material passing through sensor assembly 10. This information, along with other information, is utilized by meter electronics 20 as a signal via path 26. A more detailed description of meter electronics 20 follows.

[0030] Figure 2 shows a block diagram of a vibrometer 5, including a block diagram representation of meter electronics 20. As shown in Figure 2, meter electronics 20 is communicatively coupled to sensor assembly 10. As described above with reference to Figure 1, sensor assembly 10 includes left and right pickoff sensors 170l, 170r, a driver 180, and a temperature sensor 190, which are communicatively coupled to meter electronics 20 via a set of leads 100 through communication channel 112.

[0031] The meter electronics 20 provides the drive signals 185 via the leads 100. More specifically, the meter electronics 20 provides the drive signals 185 to a driver 180 within the sensor assembly 10. Additionally, sensor signals 165, including a left sensor signal 165l and a right sensor signal 165r, are provided by the sensor assembly 10. More specifically, in the illustrated embodiment, the sensor signals 165 are provided by left and right pickoff sensors 170l, 170r within the sensor assembly 10. As can be seen, the sensor signals 165 are provided to the meter electronics 20 via the communication channel 112, respectively.

[0032] Meter electronics 20 includes a processor 210 communicatively coupled to one or more signal processors 220 and one or more memories 230. Processor 210 is also communicatively coupled to user interface 30. Processor 210 is communicatively coupled to a host via a communications port through port 26 and receives power via power port 250. Any suitable processor may be used for processor 210. For example, processor 210 may be comprised of sub-processors, such as a multi-core processor, a serial communications port, a peripheral interface (e.g., a serial peripheral interface), on-chip memory, I / O ports, and / or the like. In these and other embodiments, processor 210 is configured to perform operations on received and processed signals, such as digitized signals.

[0033] The processor 210 can receive digitized sensor signals from one or more signal processors 220. The processor 210 can also receive signals from transducers, such as viscometers, densitometers, etc., via ports 26. That is, the transducers can be communicatively coupled to the processor 210 via ports 26. The transducers can be fluidly coupled to the sensor assembly 10. The transducers can be upstream and / or downstream of the sensor assembly 10. Thus, the processor 210 can be configured to determine fluid properties, such as mass flow rate, density, viscosity, etc., using the digitized sensor signals and / or signals provided by the transducers.

[0034] The processor 210 is also configured to provide information such as time delays, characteristics of the fluid within the sensor assembly 10, etc. The processor 210 can provide the information to a host via port 26. The processor 210 can also be configured to communicate with one or more memories 230 to receive and / or store information from the one or more memories 230. For example, the processor 210 can receive calibration coefficients and / or sensor assembly zeros (e.g., time difference at zero flow) from the one or more memories 230. Each of the calibration coefficients and / or sensor assembly zeros can be associated with the flow meter 5 and / or the sensor assembly 10, respectively. The processor 210 can use the calibration coefficients to process the digitized sensor signals received from the one or more signal processors 220.

[0035] The one or more signal processors 220 are shown as comprising an encoder / decoder (CODEC) 222 and an analog-to-digital converter (ADC) 226. The one or more signal processors 220 may condition analog signals, digitize the conditioned analog signals, and / or provide digitized signals. The CODEC 222 is configured to receive the sensor signals 165 from the left and right pickoff sensors 170l, 170r. The CODEC 222 is also configured to provide the drive signals 185 to the driver 180. In alternative processes, more or fewer signal processors may be used.

[0036] As shown, the sensor signal 165 is provided to the CODEC 222 via a signal conditioner 240. The drive signal 185 is supplied to the driver 180 via the signal conditioner 240. Although the signal conditioner 240 is shown as a single block, the signal conditioner 240 can be comprised of signal conditioning elements such as two or more operational amplifiers, filters such as low-pass filters, and voltage-to-current amplifiers. For example, the sensor signal 165 can be amplified by a first amplifier, and the drive signal 185 can be amplified by a voltage-to-current amplifier. The amplification can ensure that the magnitude of the sensor signal 165 is close to the full-scale range of the CODEC 222.

[0037] In the illustrated embodiment, the one or more memories 230 are comprised of read-only memory (ROM) 232, random access memory (RAM) 234, and ferroelectric random access memory (FRAM®) 236. However, the one or more memories 230 may alternatively be comprised of more or less memory. Additionally or alternatively, the one or more memories 230 may be comprised of different types of memory (e.g., volatile, non-volatile, etc.). For example, other types of non-volatile memory, such as erasable programmable read only memory (EPROM), may be employed in place of FRAM 236. The one or more memories 230 may be storage devices configured to store process data, such as drive signals or sensor signals, mass flow or density measurements, etc.

[0038] Mass flow measurement value

number

number

[0039] With respect to density, the resonant frequency at which each conduit 130, 130' vibrates may be a function of the square root of the spring constant of the conduit 130, 130' divided by the total mass of the conduit 130, 130' containing the material. The total mass of the conduit 130, 130' containing the material may be the mass of the conduit 130, 130' plus the mass of the material within the conduit 130, 130'. The mass of the material within the conduit 130, 130' is directly proportional to the density of the material. Therefore, the density of the material may be proportional to the square of the period at which the conduit 130, 130' containing the material vibrates multiplied by the spring constant of the conduit 130, 130'. Therefore, by determining the period at which the conduit 130, 130' vibrates and scaling the result appropriately, an accurate measure of the density of the material contained within the conduit 130, 130' can be obtained. Meter electronics 20 can use sensor signal 165 and / or drive signal 185 to determine the period or resonant frequency.

[0040] The mass flow rate measured by the sensor assembly 10 may be inaccurate due to, for example, viscosity-related effects. Therefore, the mass flow rate value can be corrected by using a correction value to compensate for some inaccuracies. For example, a Reynolds number-based correction value can be used to correct the mass flow rate value calculated using equation [1] above. The Reynolds number-based correction value can be used to correct the mass flow rate value by using a relationship between the Reynolds value and the Reynolds number-based correction value. An exemplary relationship is described below with reference to FIG. 3.

[0041] 3 shows a graph 300 illustrating a Reynolds number correction relationship for correcting mass flow measurements using the Reynolds number. As shown in FIG. 3, the graph 300 includes a Reynolds number axis 310 and a mass flow error axis 320. The Reynolds number axis 310 is in the range of 1×10 1 ~1×10 6and the mass flow error 320 ranges from -1.8 to 0.2 percent. Graph 300 also includes data points 330, a segmented linear relationship 340, and a polynomial relationship 350 relating Reynolds numbers to mass flow error values.

[0042] As can be seen, data point 330 is approximately 1×10 1 The mass flow error is approximately -1.0 percent at a Reynolds number of 1000, which is approximately 1 x 10 2 The mass flow error drops to about -1.6 percent at a Reynolds number of about 5 x 10 4 This increases to approximately 0.0 percent mass flow error at Reynolds numbers of 5 x 10 4 ~1×10 6 For Reynolds numbers in the range of 1×10, the mass flow percentage value remains at approximately 0.0 percent mass flow error. As can be seen, data points 330 are 1 ~1×10 2 and 1 x 10 2 ~5×10 4 and a linear function segment spanning the Reynolds number range of 5×10 4 The data points 330 may be considered to have a segmented portion consisting of a constant of 0.0 at Reynolds numbers greater than 0.0 and a constant of 0.0 at Reynolds numbers greater than 0.0. Thus, the segmented linear relationship 340 may be determined, for example, by using linear regression. However, the data points 330 may also be modeled with any suitable relationship, such as a polynomial relationship 350, for example, by using polynomial regression.

[0043] The data points 330 relate Reynolds numbers to percent mass flow error values, which can be used to determine a correction value used to correct the mass flow value. For example, the percent mass flow error value can be used to determine a coefficient to be multiplied by the mass flow value. Such a coefficient can be a Reynolds number-based correction value. Additionally or alternatively, the data points 330 can be used to derive a mathematical equation, such as a segmented linear relationship 340, a polynomial relationship 350, or the like, that relates the Reynolds number (e.g., as an independent variable) to the mass flow error and / or the Reynolds number-based correction value.

[0044] A Reynolds number-based correction value can be used to correct the mass flow measurement. An exemplary correction for the mass flow measurement may be as follows: First, the Reynolds number may be calculated, for example, using equation [7] below. An exemplary Reynolds number value may be Re=1000. Using a Reynolds number value and a Reynolds number correction relationship, such as data point 330 described above, the following percent mass flow error value of -1.1% may be determined: The percent mass flow error value of -1.1% may be converted to a Reynolds number-based correction value of 1.011 as follows:

number

[0045] The Reynolds number based correction value can be multiplied with the uncorrected mass flow rate to determine the corrected mass flow rate as follows: Corrected mass flow rate = (measured mass flow rate)·(Re Correction) [3] where: "Measured mass flow rate" is the uncorrected mass flow rate, which may be determined, for example, by using equation [1] above. As can be appreciated, the uncorrected mass flow rate may be corrected or compensated for other non-Reynolds parameters such as temperature, pressure, etc.

[0046] Continuing with reference to FIG. 3 , the data points 330 may be ordered pairs stored in meter electronics, such as the meter electronics 20 described above, to determine a correction value. Additionally or alternatively, the data points 330 can be used to derive a correction value, a relationship between the Reynolds number and the correction value, and / or the like, which can be stored in the meter electronics. For example, the meter electronics can store ordered pairs of Reynolds number-based correction values ​​and Reynolds numbers. Additionally or alternatively, for example, a segmented linear relationship 340, a polynomial relationship 350, and / or the like can be stored. In this manner, a Reynolds number correction relationship can be determined and stored in the meter electronics. Thus, the meter electronics can use the Reynolds number correction relationship to determine a Reynolds number-based correction value.

[0047] FIG. 4 illustrates meter electronics 20 for correcting mass flow measurements using the Reynolds number. As shown in FIG. 4, meter electronics 20 includes an interface 401 and a processing system 402. Meter electronics 20 receives a vibration response from a sensor assembly, such as, for example, sensor assembly 10. Meter electronics 20 processes the vibration response to obtain flow characteristics of the flow material flowing through sensor assembly 10.

[0048] The interface 401 can receive the sensor signal 165 from one of the pickoff sensors 170l, 170r shown in FIGS. 1 and 2. The interface 401 can perform any necessary or desired signal conditioning, such as formatting, amplification, buffering, etc. Alternatively, some or all of the signal conditioning can be performed in the processing system 402. Additionally, the interface 401 can facilitate communication between the meter electronics 20 and an external device. The interface 401 can be any form of electronic, optical, or wireless communication. The interface 401 can provide information based on the vibration response. The interface 401 can be coupled to a digitizer, such as the CODEC 222 shown in FIG. 2, where the sensor signal includes an analog sensor signal. The digitizer samples and digitizes the analog sensor signal to generate a digitized sensor signal.

[0049] The processing system 402 performs the operations of the meter electronics 20 and processes the flow measurements from the sensor assembly 10. The processing system 402 executes one or more processing routines, thereby processing the flow measurements to generate one or more flow characteristics. The processing system 402 is communicatively coupled to the interface 401 and configured to receive information from the interface 401.

[0050] Processing system 402 may comprise a general-purpose computer, a microprocessing system, a logic circuit, or other general-purpose or customized processing device. Additionally or alternatively, processing system 402 may be distributed among multiple processing devices. Processing system 402 may also include any form of integrated or independent electronic storage medium, such as storage system 404.

[0051] The storage system 404 can store flow meter parameters and data, software routines, constant values, and variable values. In one embodiment, the storage system 404 includes routines executed by the processing system 402, such as an operation routine 410 for the vibrometer 5 and a compensation routine 420. The storage system can also store statistical values, such as standard deviations, confidence intervals, etc.

[0052] The operating routine 410 can determine a mass flow rate 412 value and a density 414 value based on the sensor signals received by the interface 401. The mass flow rate 412 value may be a measured mass flow rate value. The mass flow rate 412 can be determined from the sensor signals, such as the time delay between the left and right pickoff sensor signals. The density 414 can also be determined from the sensor signals, for example, by determining a frequency from one or both of the left and right pickoff sensor signals.

[0053] The operating routine 410 can also determine a value for viscosity 416. Additionally or alternatively, a customer can input a fixed viscosity value, for example, via a MODBUS register. For viscometers that can be communicatively coupled to meter electronics 20, dynamic viscosity measurements can be obtained from another online device, such as a fork viscometer. In another example, viscosity can be calculated by using a known viscosity-temperature relationship. In this example, viscosity can be input, for example, by a customer, and the temperature relationship can be programmed into meter electronics 20. Viscosity can be calculated from the viscosity-temperature relationship.

[0054] The viscosity 416 value can also be determined using the sensor signal. For example, the viscosity can be determined from the density 414 value. A viscosity determined from a measured density may have greater uncertainty than a viscosity measured directly by a viscometer or a viscosity input by a customer. Additionally or alternatively, the viscosity may be determined from the attenuation measured by the sensor assembly. For example, the power of the drive signal can be determined from the drive gain or drive current. The power of the drive signal can be a function of the attenuation. The attenuation can also be determined by determining the amplitude of the −3 dB point of the resonance curve. The viscosity is for any suitable fluid, such as a power-law fluid, and the viscosity is determined at two different shear rates (e.g., velocities) of the power-law fluid. However, any suitable steps can be used to calculate the viscosity, including a combination of the steps described above.

[0055] The compensation routine 420 can correct a mass flow value, such as a measured mass flow value. For example, the compensation routine 420 can correct the mass flow rate 412 with a correction value. The correction value can be determined from a correction relationship 422. The correction relationship 422 can be a Reynolds number correction relationship that correlates a Reynolds number value with a Reynolds number-based correction value. For example, the Reynolds number correction relationship can be comprised of an ordered pair of a Reynolds number and a Reynolds number-based correction value, where the Reynolds number-based correction value is a coefficient that is multiplied by the mass flow rate 412 value to determine the corrected mass flow rate 430 value. For example, equations [2] and [3] above can be used. The corrected mass flow rate 430 can be output as a more accurate mass flow rate value because the effects of viscosity have been compensated for.

[0056] Meter electronics 20 is also shown as including a Reynolds number routine 440. Reynolds number routine 440 can determine the Reynolds number of the fluid in the sensor assembly. For example, meter electronics 20 can determine the Reynolds number using a value of viscosity 416 and a value of mass flow rate 412. As mentioned above, the value of mass flow rate 412 can be a measured mass flow rate value, as described in more detail below.

[0057] Mass flow-based Reynolds number From fluid mechanics, the Reynolds number is defined as follows:

number

[0058] To address this issue, note that the fluid velocity can be defined as:

number

number

number

number

[0059] The Reynolds number can be determined using other equations, such as the Reynolds number for a power law fluid. For example, in the example of a power law fluid, the viscosity can be measured at two different shear rates or velocities of the power law fluid within the sensor assembly. The viscosity value can be used as the effective viscosity in the following relationship:

number

[0060] The flow consistency index K and flow behavior index n can be used to determine the Reynolds number using any suitable method, such as a table or equation relating Reynolds number to mass flow rate. For example, a table or equation relating Reynolds number to mass flow rate, flow consistency index K, and flow behavior index n values ​​can be stored in the meter electronics and later used to determine the Reynolds number from measurements of mass flow rate and viscosity.

[0061] The meter electronics can include an interface, such as the interface 401 described above, configured to communicatively couple to a sensor assembly, such as the sensor assembly 10 described above, that contains a fluid and receives a sensor signal from the sensor assembly 10. The meter electronics can also include a processing system, such as the processing system 402 described above, communicatively coupled to the interface. The interface can also be configured to communicatively couple to a transducer configured to measure and provide viscosity-related information for the fluid.

[0062] The mass flow value can be calculated based on the time delay between the left pickoff sensor signal and the right pickoff sensor signal. The time delay between the left pickoff sensor signal and the right pickoff sensor signal can be calculated using the zero crossing points of the left pickoff sensor signal and the right pickoff sensor signal. The processing system can also correct the mass flow measurement, as described above with reference to equations [2] and [3], although any suitable correction formula, method, etc. can be used.

[0063] The processing system can be configured to store a Reynolds number correction relationship, where the Reynolds number correction relationship relates Reynolds numerical values ​​to Reynolds number-based correction values. The processing system can also calculate the Reynolds number of the fluid using a viscosity value of the fluid, dimensions of the conduit in the sensor assembly, and / or a measured mass flow rate value of the fluid, and determine the Reynolds number-based correction value using the Reynolds number and the Reynolds number correction relationship.

[0064] The processing system can calculate the Reynolds number using equation [7] above. The processing system can be configured to determine a density value of the fluid from the sensor signal and a viscosity value from the density value. The Reynolds number correction relationship includes one of a mathematical relationship and an ordered pair that associates a Reynolds number value with a Reynolds number-based correction value. Thus, the processing system can determine a Reynolds number-based correction value using the Reynolds number and the Reynolds number correction relationship by performing a method such as the method described below.

[0065] FIG. 5 illustrates a method 500 for correcting mass flow measurements using a Reynolds number. As shown in FIG. 5, method 500 stores a Reynolds number correction relationship in step 510. The Reynolds number correction relationship may be stored in meter electronics, such as meter electronics 20 described above. In step 520, method 500 calculates the Reynolds number using the measured mass flow value. In particular, method 500 calculates the Reynolds number using a viscosity value, dimensions of the conduit in the sensor assembly, and / or the measured mass flow value of the fluid. In step 530, method 500 determines a Reynolds number-based correction value. More specifically, method 500 determines the Reynolds number-based correction value using the Reynolds number and the Reynolds number correction relationship.

[0066] The method 500 can calculate a measured mass flow value based on a time delay between the left and right pickoff sensor signals. The time delay between the left and right pickoff sensor signals can be calculated using the zero crossing points of the left and right pickoff sensor signals. The method 500 can also correct the mass flow measurement, which can be the same as the measured mass flow value, as described above with reference to equations [2] and [3], although any suitable correction formula, method, etc. may be employed.

[0067] The Reynolds number can be calculated using the viscosity value, the dimensions of the sensor assembly conduit, and the mass flow rate value using equation [7] above, although any suitable equation can be used, including those that accommodate other conduit geometries, such as square, oval, or similar conduits. As noted above, the viscosity can be measured by a viscometer communicatively coupled to the meter electronics. Alternatively, the meter electronics may be configured to determine a density value of the fluid from the sensor signal and determine the viscosity value from the density value.

[0068] FIG. 6 illustrates a system 600 for correcting mass flow measurements of a fluid using the Reynolds number. As shown in FIG. 6, the system 600 includes the vibrometer 5 described above, although any suitable vibrometer can be used. The vibrometer 5 is shown as including the sensor assembly 10 and the meter electronics 20. The meter electronics 20 can include a processing system, such as the processing system 402 described above. The system 600 also includes a transducer 610 communicatively coupled to the meter electronics 20 and fluidly coupled to the sensor assembly 10. However, the system 600 may alternatively be comprised of the vibrometer 5 without the transducer 610, in which case the meter electronics 20 would determine viscosity using a density value determined from a sensor signal provided by the sensor assembly 10.

[0069] As indicated by the arrows, sensor assembly 10 receives and senses the fluid and provides a sensor signal to meter electronics 20. Sensor assembly 10 is also configured to provide the fluid to transducer 610. Transducer 610 is configured to receive and measure the fluid and provide viscosity-related data, such as a viscosity value, to meter electronics 20. The viscosity-related data provided by transducer 610 may have an uncertainty lower than the uncertainty of a viscosity value calculated from a density determined based on the sensor signal provided by sensor assembly 10. Thus, the meter electronics may correct the mass flow measurement as described above with reference to equations [2] and [3], although any suitable correction equation, method, etc. may be used.

[0070] The vibrometer 5, meter electronics 20, method 500, and system 600 described above can use the Reynolds number to correct mass flow measurements of a fluid. In particular, the Reynolds number can be based on measured mass flow values. As explained above, measured mass flow values ​​can have less uncertainty than density values, etc. The Reynolds number can also be calculated using a viscosity value that can be determined from a viscometer communicatively coupled to the meter electronics or from a density value determined from a sensor signal.

[0071] Viscosity values ​​determined from a viscometer may have lower uncertainty than viscosity values ​​determined from density values ​​based on sensor signals. Therefore, if uncertainty is to be minimized, the meter electronics can be configured to communicate with the viscometer. However, this may be prohibitively expensive in some applications. If a more uncertain Reynolds number is acceptable, the viscosity value used to calculate the Reynolds number may be based on density values ​​determined from the sensor signals. In the latter configuration, the Reynolds number is determined based on measured mass flow values, so the uncertainty in the Reynolds number may still be acceptably low.

[0072] The above detailed description is not an exhaustive description of all that the inventors consider to be within the scope of this description. Indeed, those skilled in the art will recognize that certain elements of the above-described embodiments can be combined or deleted in various ways to create further embodiments, and that such further embodiments will fall within the scope and teachings of this description. It will also be apparent to those skilled in the art that the above-described embodiments can be combined in whole or in part to create additional embodiments within the scope and teachings of this description.

[0073] Thus, while specific embodiments have been described herein for illustrative purposes, those skilled in the art will recognize that various equivalent modifications are possible within the scope of this description. The teachings provided herein may be applied to other meter electronics, methods, and systems for correcting mass flow measurements of a fluid using the Reynolds number, as well as the embodiments described above and shown in the accompanying drawings. Accordingly, the scope of the above-described embodiments should be determined from the following claims.

Claims

1. 1. Meter electronics (20) for correcting mass flow measurements of a fluid using a Reynolds number, comprising: an interface (401) communicatively coupled to a sensor assembly (10) containing a fluid and configured to receive a sensor signal from the sensor assembly (10); a processing system (402) communicatively coupled to said interface (401); Equipped with The processing system (402) storing an ordered pair-based Reynolds number correction relationship relating Reynolds numerical values ​​to Reynolds number-based correction values; calculating a Reynolds number for the fluid using the measured mass flow rate values ​​of the fluid; determining a Reynolds number-based correction value using the Reynolds number and the Reynolds number correction relationship; 1. The meter electronics of claim 1 , wherein the meter electronics is configured to:

2. 2. The meter electronics of claim 1, wherein the processing system configured to calculate the Reynolds number using the measured mass flow rate value of the fluid comprises the processing system configured to calculate the Reynolds number using a viscosity value of the fluid and the measured mass flow rate value of the fluid.

3. 3. The meter electronics of claim 1, wherein the processing system configured to calculate the Reynolds number using the measured mass flow rate of the fluid comprises the processing system configured to calculate the Reynolds number using dimensions of a conduit within the sensor assembly and the measured mass flow rate of the fluid.

4. a processing system (402) configured to calculate the Reynolds number using the measured mass flow rate value of the fluid, said processing system (402) being configured to calculate the Reynolds number using the following formula: [0014] a processing system (402) configured to use [Equation 15] is the measured mass flow rate of the fluid, d is the diameter of the conduit of the sensor assembly (10); μ is the viscosity of the fluid; The meter electronics (20) of claim 3.

5. the interface (401) is further configured to communicatively couple to a transducer configured to measure and provide viscosity-related information of the fluid; The meter electronics (20) of claim 2, wherein the meter electronics (20) is further configured to determine the viscosity value of the fluid based on the viscosity-related information.

6. The meter electronics of claim 2 , wherein the processing system is further configured to determine a density value of the fluid from the sensor signal and to determine the viscosity value from the density value.

7. The Reynolds number correction relationship is a mathematical relationship based on said ordered pairs relating Reynolds number values ​​to Reynolds number-based correction values; and said ordered pair associating a Reynolds number with a Reynolds number-based correction value The meter electronics (20) of any one of claims 1 to 6, comprising one of:

8. 1. A method for correcting mass flow measurements of a fluid using a Reynolds number, comprising: receiving a sensor signal with meter electronics, the sensor signal being provided by a sensor assembly containing the fluid; storing a Reynolds number correction relationship in the meter electronics, the Reynolds number correction relationship being based on ordered pairs relating Reynolds numerical values ​​to Reynolds number-based correction values; calculating a Reynolds number for the fluid using the measured mass flow rate values ​​of the fluid; determining a Reynolds number-based correction value using the Reynolds number and the Reynolds number correction relationship; A method comprising:

9. 9. The method of claim 8, wherein calculating the Reynolds number of the fluid using the measured mass flow rate of the fluid comprises calculating the Reynolds number of the fluid using a viscosity value of the fluid and the measured mass flow rate value of the fluid.

10. 10. The method of claim 8 or 9, wherein calculating the Reynolds number of the fluid using the measured mass flow rate of the fluid comprises calculating the Reynolds number of the fluid using dimensions of a conduit within the sensor assembly and the measured mass flow rate value of the fluid.

11. Calculating the Reynolds number using the measured mass flow rate values ​​of the fluid is performed using the following formula: [0016] This involves using [Equation 17] is the measured mass flow rate of the fluid, d is the diameter of the conduit of the sensor assembly (10); μ is the viscosity of the fluid; 11. The method according to any one of claims 8 to 10.

12. receiving viscosity-related information from a transducer configured to measure and provide viscosity-related information of the fluid; determining the viscosity value of the fluid using the viscosity-related information; 10. The method of claim 9, further comprising:

13. The method of claim 9 further comprising determining a density value of the fluid from the sensor signal and determining the viscosity value from the density value.

14. The Reynolds number correction relationship is a mathematical relationship based on said ordered pairs relating Reynolds number values ​​to Reynolds number-based correction values; and An ordered pair relating Reynolds numbers to Reynolds number-based correction values 14. The method of claim 8, comprising one of the steps:

15. 1. A system (600) for correcting mass flow measurements of a fluid using a Reynolds number, comprising: a sensor assembly (10) containing the fluid and receiving a sensor signal from the sensor assembly (10); meter electronics (20) communicatively coupled to the sensor assembly (10); Equipped with The meter electronics (20) storing an ordered pair-based Reynolds number correction relationship relating Reynolds numerical values ​​to Reynolds number-based correction values; calculating a Reynolds number for the fluid using the measured mass flow rate values ​​of the fluid; determining a Reynolds number-based correction value using the Reynolds number and the Reynolds number correction relationship; The system (600) is configured as follows.

16. a transducer (610) communicatively coupled to the meter electronics (20), the transducer (610) configured to provide viscosity-related information to the meter electronics (20); 16. The system (600) of claim 15, wherein the meter electronics (20) is configured to calculate a viscosity value of the fluid using the viscosity-related information provided by the transducer (610).

Citation Information

Patent Citations

  • Optical semiconductor module

    JP1991038605A

  • Coriolis mass flow / hydrometer

    JP2002532707A

  • Correcting measured flow rates for viscous effects

    JP2020519882A