CN102252722B - Three-differential-pressure gas liquid two-phase fluid flow metering device - Google Patents

Three-differential-pressure gas liquid two-phase fluid flow metering device Download PDF

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Publication number
CN102252722B
CN102252722B CN2010105177866A CN201010517786A CN102252722B CN 102252722 B CN102252722 B CN 102252722B CN 2010105177866 A CN2010105177866 A CN 2010105177866A CN 201010517786 A CN201010517786 A CN 201010517786A CN 102252722 B CN102252722 B CN 102252722B
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pressure
pressure difference
difference transmitter
gas liquid
impulse
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CN102252722A (en
Inventor
王以顺
杨力
王彦祺
张逸群
赵武
钱小贵
刘永胜
刘兴平
张开清
祝莹
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China Petroleum and Chemical Corp
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China Petroleum and Chemical Corp
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Abstract

The invention relates to a fluid flow metering device, in particular to a three-differential-pressure gas liquid two-phase fluid flow metering device capable of measuring gas liquid mixed fluid. The device comprises a horizontal pipe and a vertical pipe, wherein the horizontal pipe and the vertical pipe are connected with an inlet and an outlet of an elbow sensor respectively; pressure introducing ports on the inner side and the outer side of the elbow sensor are connected to a first pressure difference transmitter; two pressure introducing ports are arranged on the vertical pipe at intervals and are connected to a second pressure difference transmitter; two pressure introducing ports are arranged on the horizontal pipe at intervals and are connected to a third pressure difference transmitter; the space between the two pressure introducing ports of the second pressure difference transmitter is equal to the space between the two pressure introducing ports of the third pressure difference transmitter; and signal output ends of the first pressure difference transmitter, the second pressure difference transmitter and the third pressure difference transmitter are connected to an integrating meter. The three-differential-pressure gas liquid two-phase fluid flow metering device has a compact structure, does not additional pressure loss, has wear resistance and high pressure resistance and is difficult to block, wherein the precision of the device can be controlled to be within 1 percent completely; a new idea is provided for solving the metering problems of gas liquid two-phase fluid; and the applicability and the precision of measuring a high-pressure high-flow-velocity medium are more excellent than those of the traditional mass flowmeter.

Description

Three differential pressure gas-liquid two-phase flow metering apparatus
Technical field
The present invention relates to a kind of fluid flow rate measurement apparatus, the particularly a kind of three differential pressure gas-liquid two-phase flow metering apparatus that can measure gas, liquid fluid-mixing.
Background technology
Common flow measurement device is merely able to the gas of constant density or the capable metering of liquid usually.But often run into the gas-liquid two-phase flow measuring problem in some industry spot.
For example saturated vapour metering, at uniform temp, liquid under pressure composition ratio can be from 0% (dry saturated steam) to 100% (wet saturated steam), fluid density changes very greatly, and tradition is according to temperature, the accurate bulk density of method of pressing the definite density of compensation.But owing to do not find feasible method, can only suppose a steam moisture, this is very big to the flowmeter accuracy influence, and humidity is big more, and error is big more.
Again for example, in petrochemical industry, the measurement of high-pressure carbon dioxide gas well rate of discharge also runs into this type of problem.Operating mode 25-30 ℃, the 7.0Mpa condition is gas-liquid mixed phase district just, and under high pressure like this, the subtle change of fluid heat content can cause gaseous state to transform mutually with liquid, and classic method is not sure of liquid ratio at all.Once wanted to use mass flowmeter in early days, but the too high cisco unity malfunction of hydrodynamic pressure can only estimate because of can not find the desired flow meter for many years, give produce, management brings a lot of inconvenience.
Publication number is that the one Chinese patent application of CN1609563A discloses a kind of gas, liquid two-phase flowmeter device; Can measure gas, liquid mixing material flow; Its structure is that a pressure difference transmitter and a common discharge meter are set respectively in the different transportation sections of liquid conducting pipes, and the measurement result of pressure difference transmitter and flowmeter is sent into integrating instrument and carried out gas and the fluid flow that computing obtains standard state.Though the measurement mechanism of this structure can carry out flow metering to gas, liquid two-phase, its measuring accuracy is still lower, and its error in dipping can be difficult to satisfy the request for utilization of Trade Measures up to more than 15%.In addition, because the use of common quantifier restriction, the WT-MSR of said structure only can measure the lower fluid of pressure, can't satisfy the request for utilization under the condition of high voltage.
Summary of the invention
Technical matters to be solved by this invention is, a kind of three differential pressure gas-liquid two-phase flow metering apparatus that hydrodynamic pressure is big, measuring accuracy is high of measuring of allowing are provided.
Three differential pressure gas-liquid two-phase flow metering apparatus of the present invention include internal diameter orthogonal one section horizontal tube and the one section VERTICAL TUBE consistent with the inner wall surface roughness, and horizontal tube is connected with the entrance and exit of a Bending Tube Sensor respectively with VERTICAL TUBE; The medial and lateral impulse mouth of Bending Tube Sensor is connected to first pressure difference transmitter through pressure guiding pipe respectively; On VERTICAL TUBE, be arranged at intervals with two impulse mouths, these two impulse mouths are connected to second pressure difference transmitter through pressure guiding pipe respectively; On horizontal tube, also be arranged at intervals with two impulse mouths, these two impulse mouths are connected to the 3rd pressure difference transmitter through pressure guiding pipe respectively; Two impulse mouth spacings of said second pressure difference transmitter are suitable with two impulse mouth spacings of the 3rd pressure difference transmitter; The signal output part of first pressure difference transmitter, second pressure difference transmitter and the 3rd pressure difference transmitter all is connected on the integrating instrument, by integrating instrument the testing result of each several part is iterated computing, obtains the fluid mass flow.
Device of the present invention is ingenious to utilize outside pressure difference Δ P1 and Bending Tube Sensor two side VERTICAL TUBE and the differential pressure value Δ P2 of horizontal tube generation in the 90 degree Bending Tube Sensors, the quality that Δ P3 directly measures the gas-liquid two-phase fluid; Its compact conformation, the loss of no additonal pressure, wear-resistant, high pressure resistant, the difficult obstruction; Its precision can be controlled in 1% fully; Solution to the gas-liquid two-phase flow measuring problem provides a kind of new thinking again, especially all is superior to the traditional quality flowmeter in applicability and the degree of accuracy of measuring high pressure high flow rate medium.
Description of drawings
Fig. 1 is the structural representation of apparatus of the present invention.
Embodiment
The inventive system comprises internal diameter orthogonal one section horizontal tube 1 and the one section VERTICAL TUBE 2 consistent with the inner wall surface roughness, horizontal tube is connected with the entrance and exit of a Bending Tube Sensor 3 respectively with VERTICAL TUBE; The medial and lateral impulse mouth of Bending Tube Sensor 3 is connected to first pressure difference transmitter 4 through pressure guiding pipe respectively; On VERTICAL TUBE, be arranged at intervals with two impulse mouths, these two impulse mouths are connected to second pressure difference transmitter 5 through pressure guiding pipe respectively; On horizontal tube, also be arranged at intervals with two impulse mouths, these two impulse mouths are connected to the 3rd pressure difference transmitter 6 through pressure guiding pipe respectively; Two impulse mouth spacings of second pressure difference transmitter are suitable with two impulse mouth spacings of the 3rd pressure difference transmitter; The signal output part of first pressure difference transmitter, second pressure difference transmitter and the 3rd pressure difference transmitter all is connected on the integrating instrument, by integrating instrument two-part testing result is iterated computing, obtains the fluid mass flow.
The measuring principle of apparatus of the present invention is following:
1. the force value that is recorded by two impulse mouths of second pressure difference transmitter is P 1, P 2, according to Bernoulli equation
P 1 + 1 2 ρV 1 2 + ρgh 1 = P 2 + 1 2 ρV 2 2 + ρgh 2 + δP
Wherein, V 1≈ V 2
Drag losses between δ P---two impulse mouths
Following formula can be reduced to
P 1+ρgh 1=P 2+ρgh 2+δP
P 1-P 2=ρg(h 2-h 1)+δP
ΔP 2=ρgh+δP (1)
2. ask 1-2 friction loss δ P
Classic method is wanted to ask the Reynolds number under the different in flow rate according to fluid mechanics earlier, confirms the friction loss coefficient again, and then obtains friction loss.This computation process more complicated, and along with the difference of flow, Reynolds number and friction loss coefficient constantly change, can not be simply all with a coefficient representative.Flow is big more, and this contradiction is outstanding more.For this reason, device of the present invention has increased by the 3rd pressure difference transmitter, and the spacing of its impulse mouth is the same with the impulse mouth spacing of second pressure difference transmitter, friction loss too, the pressure that does not just have action of gravity that difference in height causes to produce.
Δ P then 3=δ P (2)
3. ask the two-phase fluid density p
(1), (2) simultaneous:
ΔP 2=ρgh+δP=ρgh+ΔP 3
Draw ρ = Δ P 2 - Δ P 3 Gh - - - ( 3 )
4. rate of flow of fluid
According to the mathematical model of Bending Tube Sensor, utilize the differential pressure value Δ P1 in the outside in the elbowmeter to calculate
v = Cα ( Re , Fr , Ma , R D , L 1 D , L 2 D , λ 1 D , λ 2 D , λ 3 D , λ 4 D , Δ D , β 1 , β 2 ) Δp 1 ρ - - - ( 4 )
Wherein:
V is a flow velocity,
C α is experiment correction factor (0.996≤C≤1.004),
Re is a Reynolds number, the ratio of expression viscous force and inertial force,
Fr is the Fu Lude number, the ratio of expression gravity and inertial force,
Ma is a Mach number, the ratio of expression elastic force and inertial force,
R/D, L1/D, L2/D, λ 1/D, λ 2/D, λ 3/D, λ 4/D, Δ/D are the elbowmeter geometric feature, Δ p1 is the pressure differential of Bending Tube Sensor medial and lateral impulse mouth.
5. ask mass rate
(3), (4) simultaneous:
Q = 0.9 π D 2 α R D ΔP 1 ( ΔP 2 - Δ P 3 ) gh ( t / h )

Claims (1)

1. differential pressure gas-liquid two-phase flow metering apparatus; It is characterized in that: it includes the internal diameter orthogonal one section horizontal tube (1) consistent with the inner wall surface roughness and one section VERTICAL TUBE (2), and horizontal tube is connected with the entrance and exit of a Bending Tube Sensor (3) respectively with VERTICAL TUBE; The medial and lateral impulse mouth of Bending Tube Sensor (3) is connected to first pressure difference transmitter (4) through pressure guiding pipe respectively; On VERTICAL TUBE, be arranged at intervals with two impulse mouths, these two impulse mouths are connected to second pressure difference transmitter (5) through pressure guiding pipe respectively; On horizontal tube, also be arranged at intervals with two impulse mouths, these two impulse mouths are connected to the 3rd pressure difference transmitter (6) through pressure guiding pipe respectively; Two impulse mouth spacings of second pressure difference transmitter are the same with two impulse mouth spacings of the 3rd pressure difference transmitter; The signal output part of first pressure difference transmitter, second pressure difference transmitter and the 3rd pressure difference transmitter all is connected on the integrating instrument.
CN2010105177866A 2010-10-25 2010-10-25 Three-differential-pressure gas liquid two-phase fluid flow metering device Expired - Fee Related CN102252722B (en)

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* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN105865558A (en) * 2016-05-03 2016-08-17 西南石油大学 Flow measuring device for multiphase flow of natural gas hydrate and measuring method of flow measuring device
CN106323536A (en) * 2016-10-13 2017-01-11 北京神雾环境能源科技集团股份有限公司 Staged pressure difference measuring method for high pressure closed container
CN106644928A (en) * 2016-11-22 2017-05-10 青岛石大石仪科技有限责任公司 Experimental device and method for measuring pipe wall stress and frictional resistance coefficients
CN112629601B (en) * 2019-09-24 2024-08-20 中国石油化工股份有限公司 Differential pressure type cyclone flowmeter
CN111982212A (en) * 2020-08-26 2020-11-24 无锡市星翼仪表科技有限公司 Domestic double-elbow gas meter
CN113959679B (en) * 2021-09-29 2023-07-18 西安交通大学 Multiphase flow type transition position prediction system and method for long-distance mixed transportation pipeline

Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5526684A (en) * 1992-08-05 1996-06-18 Chevron Research And Technology Company, A Division Of Chevron U.S.A. Inc. Method and apparatus for measuring multiphase flows
CN2293799Y (en) * 1996-10-09 1998-10-07 西安交通大学 Oil, gas & water three-phase flowmeter
CN2527973Y (en) * 2002-03-28 2002-12-25 河北理工学院智能仪器厂 Bent-tube sensor for gas measurement
CN1609563A (en) * 2004-11-25 2005-04-27 卢玖庆 Gas and liquid two-phase flowmeter
CN101482429A (en) * 2008-12-23 2009-07-15 河北理工大学智能仪器厂 Apparatus for checking elbow meter

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5526684A (en) * 1992-08-05 1996-06-18 Chevron Research And Technology Company, A Division Of Chevron U.S.A. Inc. Method and apparatus for measuring multiphase flows
CN2293799Y (en) * 1996-10-09 1998-10-07 西安交通大学 Oil, gas & water three-phase flowmeter
CN2527973Y (en) * 2002-03-28 2002-12-25 河北理工学院智能仪器厂 Bent-tube sensor for gas measurement
CN1609563A (en) * 2004-11-25 2005-04-27 卢玖庆 Gas and liquid two-phase flowmeter
CN101482429A (en) * 2008-12-23 2009-07-15 河北理工大学智能仪器厂 Apparatus for checking elbow meter

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