CN201177634Y - Microtubule gas-liquid two-phase flow speed measuring apparatus based on capacitance and crosscorrelation method - Google Patents

Microtubule gas-liquid two-phase flow speed measuring apparatus based on capacitance and crosscorrelation method Download PDF

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Publication number
CN201177634Y
CN201177634Y CNU2008200831965U CN200820083196U CN201177634Y CN 201177634 Y CN201177634 Y CN 201177634Y CN U2008200831965 U CNU2008200831965 U CN U2008200831965U CN 200820083196 U CN200820083196 U CN 200820083196U CN 201177634 Y CN201177634 Y CN 201177634Y
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electric capacity
liquid
gas
capacitance
phase flow
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姜娓娓
黄志尧
冀海峰
王保良
李海青
何潮洪
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Zhejiang University ZJU
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Zhejiang University ZJU
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Abstract

The utility model discloses a micropipe gas-liquid two-phase flow rate measurement device based on capacitance and cross correlation method, which comprises an insulating measurement micropipe, two capacitance sensors, a capacitance-voltage conversion circuit, a data collection circuit and a computer. The two capacitance sensors acquire two groups of capacitance signals reflecting the phase holdup distribution information of a gas-liquid two-phase flow; the capacitance signals is transmitted to the computer through the data collection circuit after capacitance-voltage conversion; the cross correlation function of the two groups of capacitance signals is calculated by the cross correlation speed measurement principle; and the transit time of the signals is determined according to the peak position of the cross correlation function, thereby obtaining the flow rate information of the gas-liquid two-phase flow in the pipe. The micropipe gas-liquid two-phase flow rate measurement device provides an effective path for solving the problem in measuring the flow rate of the non-conductive gas-liquid two-phase flow in the micropipe. The device has the advantages of simple structure, non-invasive structure, no influence on the gas-liquid two-phase flow in the pipe, low cost, etc., and suits continuous online flow rate measurement of the non-conductive gas-liquid two-phase flow in micropipes of millimeter level.

Description

Microtubule gas-liquid two-phase flow rate measuring device based on electric capacity and cross-correlation method
Technical field
The utility model relates to field of measuring techniques, relates in particular to a kind of microtubule gas-liquid two-phase flow rate measuring device based on electric capacity and cross-correlation method.
Background technology
Two-phase flow extensively is present among the fields such as petro chemical industry, and biphase gas and liquid flow is as a kind of typical diphasic flow phenomenon, and is very general in the middle of production reality.Biphase gas and liquid flow is furtherd investigate parameters such as usually needing to measure its flow velocity, voidage.Because the complicacy of diphasic flow system, the continuous on-line detection of these parameters is often very difficult.
Two-phase flow phenomenon in the microsystem is a current research focus, receive increasing the concern and attention, for example the micro-tube reactor has obtained the extensive studies application in many industrial circles, and the detection of diphasic stream parameter also becomes a new direction in polyphasic flow parameter detecting field in the micro-tube.Flow velocity carries out continuous on-line detection to it and has very important and practical meanings as the important parameter of two-phase flow phenomenon.At present, the detection to two-phase flow velocity in the micro-tube mainly contains two kinds of methods: high speed image Photographic technique and optical method.These methods still are in the laboratory study stage, though certain feasibility is arranged, still not mature enough perfect, be difficult in the actual industrial environment, be applied.Under the industrial condition in the micro-tube detection of two-phase flow velocity also lack efficient ways at present, need further research.
Capacitance method is with a long history, has characteristics simple in structure, with low cost, is convenient to commercial Application.Capacitance method mainly obtains the voidage information of non-conductive medium, successfully utilization under conventional yardstick, but, rarely have bibliographical information in the micro-tube of millimeter level micro-tube environment, especially caliber below 5mm.Capacitance method combines with the simple crosscorrelation measuring principle and can realize non-intrusion type on-line measurement to gas-liquid two-phase fluid speed, does not see use at present in micro-tube gas-liquid two-phase flow velocity is measured.
The current situation that the utility model detects at gas-liquid two-phase flow velocity in the current micro-tube, proposition is based on the measurement scheme of capacitance method and simple crosscorrelation measuring principle, design a covering device, comprise capacitive transducer, capacitance voltage change-over circuit, data acquisition circuit and computing machine, can realize continuous on-line measurement non-conductive biphase gas and liquid flow rate of flow of fluid in the millimeter level micro-tube.
Summary of the invention
The purpose of this utility model provides a kind of stable, reliable microtubule gas-liquid two-phase flow rate measuring device based on electric capacity and cross-correlation method.
Microtubule gas-liquid two-phase flow rate measuring device based on electric capacity and cross-correlation method comprises that caliber is the miniature measuring channel of millimetre-sized insulation, two capacitive transducers that structure is identical are installed in the periphery of pipeline, capacitive transducer is connected with the capacitance voltage change-over circuit, two capacitive transducers respectively with the first capacitance voltage change-over circuit, the second capacitance voltage change-over circuit is connected, change-over circuit is connected with computing machine by data acquisition circuit, capacitive transducer is made of the metal electrode of two symmetries, be respectively excitation end and test side, two electrodes are symmetry and be close to the outer wall installation of the miniature measuring channel that insulate mutually, electrode is connected with lead, and the whole measuring channel outside evenly surrounds metal screen layer.
The described first capacitance voltage change-over circuit is identical with the second capacitance voltage converting circuit structure, connected mode is an end of first electronic switch, one end and second switch one end process capacitive transducer and the 3rd electronic switch, one end of the 3rd electric capacity, the first operational amplifier reverse input end is connected, second switch other end ground connection, the capacitive transducer two ends respectively with first electric capacity, one end, second electric capacity, one end is connected, the first electric capacity other end and the second electric capacity other end ground connection, first operational amplifier output terminal and first resistance, one end, the 3rd electric capacity other end, the 3rd switch other end is connected, the first resistance other end and second resistance, one end, the second operational amplifier reverse input end is connected, the first operational amplifier positive input and the second operational amplifier positive input ground connection, second operational amplifier output terminal and the second resistance other end, the first sampling holder input end, the second sampling holder input end is connected, the first sampling holder output terminal and the 4th electric capacity one end, the differential amplifier reverse input end is connected, the second sampling holder output terminal and the 5th electric capacity one end, the differential amplifier positive input is connected, the differential amplifier output terminal is connected with quadrielectron switch one end, the 4th electric capacity and the equal ground connection of the 5th electric capacity other end.
Described data acquisition circuit is: digital signal processor respectively with A/D converter, programmable gain amplifier, instrument amplifier, D/A converter, CPLD, the USB communication module is connected, D/A converter successively with instrument amplifier, programmable gain amplifier, A/D converter is connected, CPLD respectively with D/A converter, instrument amplifier, programmable gain amplifier, A/D converter is connected, CPLD respectively with D/A converter, instrument amplifier, programmable gain amplifier, A/D converter is connected.
The utility model can be used for non-conductive gas-liquid two-phase flow velocity in the millimeter level micro-tube is carried out on-line measurement, that corresponding device thereof has is simple in structure, non-intruding flows to gas-liquid two-phase in the pipeline does not have influence, low cost and other advantages, is applicable to the continuous on-line measurement of non-conductive gas-liquid two-phase flow velocity in the micro-tube.
Description of drawings
Fig. 1 is based on the structural representation of the microtubule gas-liquid two-phase flow rate measuring device of electric capacity and cross-correlation method;
Fig. 2 is the sectional view of capacitive transducer of the present utility model along the pipeline direction;
Fig. 3 is the sectional view of capacitive transducer of the present utility model along the tube section direction;
Fig. 4 is a data acquisition circuit block scheme of the present utility model;
Fig. 5 is capacitance voltage change-over circuit figure of the present utility model.
Among the figure: computing machine 1, data acquisition circuit 2, the first capacitance voltage change-over circuit 3, the second capacitance voltage change-over circuit 4, metal screen layer 5, capacitive transducer 6, the miniature measuring channel 7 of insulation, lead 8, excitation termination electrode 9, test side electrode 10.
Embodiment
As shown in Figure 1, microtubule gas-liquid two-phase flow rate measuring device based on electric capacity and cross-correlation method comprises that caliber is the miniature measuring channel 7 of millimetre-sized insulation, two capacitive transducers 6 that structure is identical are installed in the periphery of pipeline, two capacitive transducers respectively with the first capacitance voltage change-over circuit 3, the second capacitance voltage change-over circuit 4 is connected, the capacitance voltage change-over circuit is connected with computing machine 1 by data acquisition circuit 2, capacitive transducer is made of the metal electrode of two symmetries, be respectively excitation end 9 and test side 10, two electrodes are symmetry and be close to the outer wall installation of the miniature measuring channel that insulate mutually, electrode is connected with lead 8, and the whole measuring channel outside evenly surrounds metal screen layer 5.
Two capacitive transducers obtain the capacitance signal of two groups of reflection gas-liquid two-phase flow containing rates distributed intelligence, are sent in the computing machine by data acquisition circuit after capacitance voltage transforms, and are stored and analyzing and processing by the data handling system in the computing machine.
As shown in Figure 2, on the outer wall of the miniature measuring channel of insulation two capacitive transducers 6 with same structure are installed successively, spacing distance is l.The metal electrode that this sensor is W by two width constitutes.The measuring channel outer wall that installs capacitive transducer is surrounded by metal screen layer 5.
As shown in Figure 3, two metal electrodes of capacitive transducer 6 are symmetrically distributed in the measuring channel outer wall, and the pairing subtended angle of electrode represents that with α the lead of drawing from electrode passes screen layer, is connected with the capacitance voltage change-over circuit.
As shown in Figure 4, data acquisition circuit 2 is: digital signal processor is connected with A/D converter, programmable gain amplifier, instrument amplifier, D/A converter, CPLD, USB communication module respectively, D/A converter is connected with instrument amplifier, programmable gain amplifier, A/D converter successively, and CPLD is connected with D/A converter, instrument amplifier, programmable gain amplifier, A/D converter respectively.
Each original paper model adopts respectively: digital signal processor ADSP-2188N, CPLD XC9572XL, programmable gain amplifier AD526, instrument amplifier INA128, A/D converter AD7472BR, D/A converter TL5619.
Controlling of sampling is core with the digital signal processor, assist control with CPLD, during system works, computing machine sends to digital signal processor to order, and digital signal processor comes latch control signal by CPLD then; The USB communication module adopts highly integrated USB interface chip, USB interface chip intelligent engine can send data to computing machine automatically, other operation of this process of transmitting and digital signal processor walks abreast, after the data-signal that collects is sent to computing machine, realize analysis and processing on computers to signal.
As shown in Figure 5, the first capacitance voltage change-over circuit 3 is identical with the second capacitance voltage change-over circuit, 4 structures, and connected mode is the first electronic switch S 1One end and second switch S 2One end is through a capacitive transducer C xWith the 3rd electronic switch S 3An end, the 3rd capacitor C 3An end, first operational amplifier A 1Reverse input end is connected, second switch S 2Other end ground connection, capacitive transducer C xTwo ends respectively with first capacitor C 1One end, second capacitor C, 2 one ends are connected first capacitor C 1The other end and second capacitor C 2Other end ground connection, first operational amplifier A 1The output terminal and first resistance R 1One end, the 3rd capacitor C 3The other end, the 3rd switch S 3The other end is connected, first resistance R 1The other end and second resistance R 2One end, second operational amplifier A 2Reverse input end is connected, first operational amplifier A 1The positive input and second operational amplifier A 2Positive input ground connection, second operational amplifier A 2The output terminal and second resistance R 2The other end, the first sampling holder U 1Input end, the second sampling holder U 2Input end is connected, the first sampling holder U 1Output terminal and the 4th capacitor C 4One end, differential amplifier A 3Reverse input end is connected, the second sampling holder U 2Output terminal and the 5th capacitor C 5One end, differential amplifier A 3Positive input is connected, differential amplifier A 3Output terminal and quadrielectron switch S 4One end is connected, the 4th capacitor C 4With the 5th capacitor C 5The equal ground connection of the other end.
The break-make control of electronic switch encourages capacitive transducer excitation end, and the test side of capacitive transducer is responded to, and produces induced charge, to the 3rd capacitor C 3Charging, the output voltage of second operational amplifier is sampled through sampling holder and is held, the difference of two sampling holder sustaining voltages of instrument amplifier output, this difference can reflect the capacitance signal on the sensor as the result of capacitance voltage change-over circuit.The job order of capacitance voltage change-over circuit is: (1) S 3Disconnect, electronic switch has electric charge and injects C when disconnecting 3, cause V 1Place's voltage raises; (2) two sampling holders are sampled simultaneously, after sampling a period of time, and the first sampling holder U 1Keep; (3) S 2Disconnect S 1Close, the capacitive transducer excited target produces induced charge in its test side, and induced charge is to C 3Charging causes V 1Further raise, according to the voltage superposition principle, this moment V 1Be to disconnect the electric charge that produces and encourage the electric charge that produces to C by electronic switch 3Common charging causes; (4) second sampling holder U 2Sample and keep V 3(5) difference of two sampling holder sustaining voltages of instrument amplifier output, it is to encourage the induced charge that produces to C 3The change in voltage that charging causes, i.e. the result of capacitance voltage conversion.
Microtubule gas-liquid two-phase flow velocity measuring method based on electric capacity and cross-correlation method comprises the steps:
1) two capacitive transducer C that structure is identical xBe installed on the miniature measuring channel outer wall of insulation, this sensor produces the independent capacitance signal of two groups of reflection gas-liquid two-phase flow containing rates distributed intelligence, is recorded by the capacitance voltage change-over circuit, and sends into computing machine by data acquisition circuit;
2) earlier two groups of capacitance signals are carried out normalization and handle, the signal E after handling with going average X1, E X2Carry out cross correlation process, the formula of cross correlation process is as follows:
R E x 1 E x 2 ( j ) = 1 N Σ n = 1 N E x 1 ( n ) E x 2 ( n + j ) , j = 1,2,3 . . . . . . , J
Wherein:
N---be used for the number of the sampled point of cross-correlation calculation
3) according to by step 2) the cross correlation process result's that obtains peak of function position establishes the transit time τ of signal, and formula is as follows:
τ=KΔt,
Wherein:
K---the signal lag of cross correlation function peak value correspondence is counted
Δ t---sampling interval
4) according to transit time τ and two capacitive transducer C of signal xCenter distance L, determine the speed v of gas-liquid two-phase fluid in the micro-tube, formula is as follows:
v = L τ .
Described to two groups of capacitance signals carry out normalization with go the average disposal route to comprise the steps:
1) two groups of capacitance signals are carried out normalized, the formula of normalized is as follows:
C x 1 ′ = C x 1 - C 01 C m 1 - C 01 - - - ( 1 )
C x 2 ′ = C x 2 - C 02 C m 2 - C 02 - - - ( 2 )
Wherein:
C 01---first group of capacitance signal when all being gas in the measuring channel,
C 02---second group of capacitance signal when all being gas in the measuring channel,
C M1---first group of capacitance signal when all being liquid in the measuring channel,
C M2---second group of capacitance signal when all being liquid in the measuring channel,
C ' X1---first group of normalized result of capacitance signal,
C ' X2---second group of normalized result of capacitance signal,
2) the signal C ' to obtaining by step 1) X1, signal C ' X2Go average to handle, the formula that goes average to handle is as follows:
E x1=C′ x1-C′ x1 (3)
E x2=C′ x2-C′ x2 (4)
Wherein:
C ' X1---the average of signal after first group of normalization,
C ' X2---the average of signal after second group of normalization,
E X1---first group of signal after the past average is handled,
E X2---second group of signal after the past average is handled.
Now the biphase gas and liquid flow that has formed at non-conductive medium air and glycerine is 1.56mm at internal diameter, 2.65mm, 3.96mm the horizontal glass pipeline on test, utilize apparatus and method mentioned in the utility model, the convection cell velocity range situation that is about 0~0.1m/s is tested, has obtained good effect.

Claims (3)

1. microtubule gas-liquid two-phase flow rate measuring device based on electric capacity and cross-correlation method, it is characterized in that: comprise that caliber is the miniature measuring channel of millimetre-sized insulation (7), two capacitive transducers (6) that structure is identical are installed in the periphery of pipeline, two capacitive transducers respectively with the first capacitance voltage change-over circuit (3), the second capacitance voltage change-over circuit (4) is connected, change-over circuit is connected with computing machine (1) by data acquisition circuit (2), capacitive transducer is made of the metal electrode of two symmetries, be respectively excitation end (9) and test side (10), two electrodes are symmetry and be close to the outer wall installation of the miniature measuring channel that insulate mutually, electrode is connected with lead (8), and the whole measuring channel outside evenly surrounds metal screen layer (5).
2. a kind of microtubule gas-liquid two-phase flow rate measuring device according to claim 1 based on electric capacity and cross-correlation method, it is characterized in that: the described first capacitance voltage change-over circuit (3) is identical with second capacitance voltage change-over circuit (4) structure, and connected mode is the first electronic switch (S 1) end and second switch (S 2) end is through a capacitive transducer (C x) and the 3rd electronic switch (S 3) an end, the 3rd electric capacity (C 3) an end, the first operational amplifier (A 1) reverse input end is connected second switch (S 2) other end ground connection, capacitive transducer (C x) two ends respectively with the first electric capacity (C 1) end, second electric capacity (C2) end be connected the first electric capacity (C 1) other end and the second electric capacity (C 2) other end ground connection, the first operational amplifier (A 1) output terminal and the first resistance (R 1) end, the 3rd electric capacity (C 3) other end, the 3rd switch (S 3) other end is connected the first resistance (R 1) other end and the second resistance (R 2) end, the second operational amplifier (A 2) reverse input end is connected the first operational amplifier (A 1) positive input and the second operational amplifier (A 2) positive input ground connection, the second operational amplifier (A 2) output terminal and the second resistance (R 2) other end, the first sampling holder (U 1) input end, the second sampling holder (U 2) input end is connected the first sampling holder (U 1) output terminal and the 4th electric capacity (C 4) end, differential amplifier (A 3) reverse input end is connected the second sampling holder (U 2) output terminal and the 5th electric capacity (C 5) end, differential amplifier (A 3) positive input is connected differential amplifier (A 3) output terminal and quadrielectron switch (S 4) end is connected the 4th electric capacity (C 4) and the 5th electric capacity (C 5) the equal ground connection of the other end.
3. a kind of microtubule gas-liquid two-phase flow rate measuring device according to claim 1 based on electric capacity and cross-correlation method, it is characterized in that described data acquisition circuit (2) is: digital signal processor respectively with A/D converter, programmable gain amplifier, instrument amplifier, D/A converter, CPLD, the USB communication module is connected, D/A converter successively with instrument amplifier, programmable gain amplifier, A/D converter is connected, CPLD respectively with D/A converter, instrument amplifier, programmable gain amplifier, A/D converter is connected.
CNU2008200831965U 2008-02-04 2008-02-04 Microtubule gas-liquid two-phase flow speed measuring apparatus based on capacitance and crosscorrelation method Expired - Lifetime CN201177634Y (en)

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CN100587492C (en) * 2008-02-04 2010-02-03 浙江大学 Apparatus and method for measuring microtubule gas-liquid diphasic flow rate based on capacitance and correlational method
CN101957385A (en) * 2010-08-27 2011-01-26 东南大学 Electrostatic induction measurement method and device for local particle velocity in fluidized bed
CN101493186B (en) * 2009-02-27 2013-01-30 保定市金迪科技开发有限公司 Groundwater supply pipe network water leakage detecting method
CN103308712A (en) * 2012-03-08 2013-09-18 通用电气公司 Methods and systems for inlet airflow measurement using inert gas
US9777637B2 (en) 2012-03-08 2017-10-03 General Electric Company Gas turbine fuel flow measurement using inert gas
CN110376399A (en) * 2019-07-18 2019-10-25 东南大学 The measuring system and measurement method of particle flow parameter
CN110579622A (en) * 2019-08-22 2019-12-17 西安理工大学 Metal particle flow velocity measuring device and method based on triangular electrode capacitance sensor

Cited By (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN100587492C (en) * 2008-02-04 2010-02-03 浙江大学 Apparatus and method for measuring microtubule gas-liquid diphasic flow rate based on capacitance and correlational method
CN101493186B (en) * 2009-02-27 2013-01-30 保定市金迪科技开发有限公司 Groundwater supply pipe network water leakage detecting method
CN101957385A (en) * 2010-08-27 2011-01-26 东南大学 Electrostatic induction measurement method and device for local particle velocity in fluidized bed
CN101957385B (en) * 2010-08-27 2012-02-22 东南大学 Electrostatic induction measurement method and device for local particle velocity in fluidized bed
CN103308712A (en) * 2012-03-08 2013-09-18 通用电气公司 Methods and systems for inlet airflow measurement using inert gas
US9777637B2 (en) 2012-03-08 2017-10-03 General Electric Company Gas turbine fuel flow measurement using inert gas
CN110376399A (en) * 2019-07-18 2019-10-25 东南大学 The measuring system and measurement method of particle flow parameter
CN110376399B (en) * 2019-07-18 2020-11-20 东南大学 Measuring system and measuring method for particle flow parameters
CN110579622A (en) * 2019-08-22 2019-12-17 西安理工大学 Metal particle flow velocity measuring device and method based on triangular electrode capacitance sensor
CN110579622B (en) * 2019-08-22 2021-08-06 西安理工大学 Metal particle flow velocity measuring device and method based on triangular electrode capacitance sensor

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