天津大学电气自动化与信息工程学院,天津300072
唐山冀东石油机械有限责任公司,河北唐山063200
徐英(1970—),女,博士,教授,xuying@tju.edu.cn
袁超(1987—),男,博士,副教授,yuanchao@tju.edu.cn
收稿:2026-04-14,
修回:2026-07-07,
录用:2026-07-15,
移动端阅览
徐英, 欧杰俊, 侯金龙, 等. 基于RESNET及微波文丘里技术的湿气双参数测量方法[J/OL]. 化工学报, 2026.
XU Ying, OU Jiejun, HOU Jinlong, et al. Two-parameter measurement method for wet gas based on RESNET and microwave Venturi technology[J/OL]. CIESC Journal, 2026.
徐英, 欧杰俊, 侯金龙, 等. 基于RESNET及微波文丘里技术的湿气双参数测量方法[J/OL]. 化工学报, 2026. DOI: 10.11949/0438-1157.20260519.
XU Ying, OU Jiejun, HOU Jinlong, et al. Two-parameter measurement method for wet gas based on RESNET and microwave Venturi technology[J/OL]. CIESC Journal, 2026. DOI: 10.11949/0438-1157.20260519.
构建了微波谐振腔-文丘里组合式测量系统,利用COMSOL Multiphysics进行了文丘里的动态流场仿真,通过流场和电磁场耦合,发现
<math id="M1"><msub><mrow><mi>T</mi><mi>M</mi></mrow><mrow><mn mathvariant="normal">310</mn></mrow></msub></math>
模式有利于湿气含水率测量,提出一种MRCS含水率感知—Venturi虚高流量测量—深度残差网络多参数预测的湿气测量方法,将微波谐振腔12个频点的检测值、文丘里差压、压力及虚高气相流量拼接为15维输入特征,通过融合微波谐振特征与文丘里的差压规律,实现湿气双参数的精确测量。首先在0.9 MPa、1.2 MPa下开展了湿气两相流实验,采集湿气两相流数据,进一步,设计残差网络(RESNET),并引入通道注意力机制(SE-Block)为低含水样本增加权重,实现低含液率下的湿气含水率测量。结果表明,对于气相流速3m/s~20m/s,含水率为0%~4%的湿气,在95%置信概率下,LVF和气相体积流量的预测MARE分别为2.57%和1.74%,为湿气在线计量提供了一种无需放射源、精度高且易工程化的新思路。
In this study
a wet gas measurement method is proposed by integrating a microwave water-cut sensor with a Venturi meter and a deep residual network(RESNET).The method combines microwave resonance-based water fraction sensing
Venturi over-reading gas flow extraction
and data-driven multi-parameter prediction
aiming to overcome the limitations of weak liquid-phase sensitivity and low signal-to-noise ratio under low water-cut conditions.Dynamic simulations of the Venturi flow field were conducted using COMSOL Multiphysics
and coupled flow–electromagnetic analysis identified the TM₃₁₀ mode as optimal for water fraction measurement.A microwave resonant cavity–Venturi measurement system was then developed
and experiments were performed at 0.9 MPa and 1.2 MPa.A total of 15 input features
including 12 microwave resonance responses
differential pressure
static pressure
and the over-reading gas flow rate(
<math id="M2"><msub><mrow><mi>Q</mi><mi>g</mi></mrow><mrow><mi>O</mi><mi>R</mi></mrow></msub></math>
)was calculated.A RESNET model with squeeze-and-excitation attention was designed to enhance sensitivity to low water-cut conditions.Results show that for gas velocities of 3–20 m/s and water volume fractions(LVF)of 0–4%
the proposed method achieves mean absolute relative errors of 2.57%for LVF and 1.74%for gas volumetric flow rate at a 95%confidence level.This study provides a high-accuracy and non-radioa
ctive solution for online wet gas metering.
Abdul-Majeed G H . Liquid holdup in horizontal two-phase gas: liquid flow [J ] . Journal of Petroleum Science and Engineering , 1996 , 15 ( 2/3/4 ): 271 - 280 .
张强 , 刘丁发 , 王辉 . 湿天然气不分离测量技术在页岩气井口的应用研究 [C ] // 2018年全国天然气学术年会 , 2018 : 251 - 257 .
Zhang Q , Liu D F , Wang H , et al . Application research of wet natural gas non separation measurement technology in shale gas wellhead [C ] // Proceedings of the 2018 National Natural Gas Academic Annual Conference , 2018 : 251 - 257 .
林宗虎 . 气液两相流和沸腾传热 [M ] . 西安 : 西安交通大学出版社 , 2003 .
Lin Z H . Gas-liquid two-phase flow and boiling heat transfer [M ] . Xi’an : Xi’an Jiaotong University Press , 2003 .
Meribout M , Azzi A , Ghendour N , et al . Multiphase flow meters targeting oil & gas industries [J ] . Measurement , 2020 , 165 : 108111 .
Zhao F , Li S S , Zheng X B , et al . A modified model for wet gas flowrate measurement considering entrainment downstream of a cone meter [J ] . Flow Measurement and Instrumentation , 2021 , 77 : 101839 .
Fang L D , Zhang T , Jin N D . A comparison of correlations used for Venturi wet gas metering in oil and gas industry [J ] . Journal of Petroleum Science and Engineering , 2007 , 57 ( 3/4 ): 247 - 256 .
ISO/TR 11583:2012(E) . Measurement of Wet Gas Flow by Means of Pressure Differential Devices Inserted in Circular Cross-Section Conduits :[S ] .
Yuan C , Xu Y , Zhang T , et al . Experimental investigation of wet gas over reading in Venturi [J ] . Experimental Thermal and Fluid Science , 2015 , 66 : 63 - 71 .
He D H , Bai B F . Numerical investigation of wet gas flow in Venturi meter [J ] . Flow Measurement and Instrumentation , 2012 , 28 : 1 - 6 .
Li S S , Bai B F . Gas-liquid two-phase flow rates measurement using physics-guided deep learning [J ] . International Journal of Multiphase Flow , 2023 , 162 : 104421 .
Fang L D , Zhang T , Xu Y . Venturi wet gas flow modeling based on homogeneous and separated flow theory [J ] . Mathematical Problems in Engineering , 2008 , 2008 : 807287 .
Xu Y , Yuan C , Long Z H , et al . Research the wet gas flow measurement based on dual-throttle device [J ] . Flow Measurement and Instrumentation , 2013 , 34 : 68 - 75 .
Wang W W , Liang X , Zhang M Z . Measurment of gas-liquid two-phase slug flow with a Venturi meter based on blind source separation [J ] . Chinese Journal of Chemical Engineering , 2015 , 23 ( 9 ): 1447 - 1452 .
Zheng W B , Liang R M , Zhang X K , et al . Wet gas measurements of long-throat Venturi Tube based on forced annular flow [J ] . Flow Measurement and Instrumentation , 2021 , 81 : 102037 .
Li C F , Zhang T , Zang X L , et al . Void fraction measurement based on flow noise decoupling and differential pressure [J ] . IEEE Transactions on Instrumentation and Measurement , 2022 , 71 : 1 - 12 .
Liu W X , Jin N D , Han Y F , et al . Characterising dynamic instability in high water-cut oil-water flows using high-resolution microwave sensor signals [J ] . Zeitschrift fÜr Naturforschung A , 2018 , 73 ( 6 ): 485 - 499 .
Yang Y G , Xu Y , Zhang T . Research on low water volume fraction measurement of two-phase flow based on TM010 mode microwave cavity sensor [C ] // 2019 IEEE International Instrumentation and Measurement Technology Conference (I2MTC) . May 20 - 23 , 2019 . Auckland, New Zealand . IEEE , 2019: 1 - 5 .
Xu Y , Zuo R J , Yuan C , et al . A water volume fraction measurement method based on flow regime insensitivity-microwave resonant cavity sensor (FRI-MRCS) [J ] . IEEE Sensors Journal , 2023 , 23 ( 18 ): 21226 - 21233 .
Arsalan M , Karimi M A , Shamim A . Multiphase flow meter combining extended throat venturi with microwave resonators : EP20715616.7 [P ] . -0-0 .
David M. Pozar . 微波工程 [M ] . 张肇仪, 周乐柱, 吴德明, 译. 北京 : 电子工业出版社 , 2015 .
Pozar D M . Microwave engineering [M ] . Zhang Z Y, Zhou (L /Y)Z, Wu D M, trans. Beijing : Publishing House of Electronics Industry , 2015 .
Qian J B , Yan S M , Li Z Y , et al . Modification of the Maxwell–Wagner heterogeneous dielectric model for heterogeneous polymers and emulsions [J ] . Polymers , 2022 , 14 ( 13 ): 2743 .
Xu Y , Sun Z B , Yuan C , et al . Research on frequency-tunable microwave resonant cavity sensor to overcome the influence of salinity in ultralow water content detection [J ] . IEEE Sensors Journal , 2025 , 25 ( 15 ): 28341 - 28348 .
马慧敏 . 正交微波场中两相流的相含率及流量测量方法研究 [D ] . 天津 : 天津大学 , 2023 .
Ma H M . Study on phase holdup and flow measurement method of two-phase flow in orthogonal microwave field [D ] . Tianjin : Tianjin University , 2023 .
Xu Y , Zuo R J , Yuan C , et al . Research on the measurement method of gas-water two-phase flow based on dual-sensor system [J ] . Flow Measurement and Instrumentation , 2023 , 93 : 102393 .
Xu Y , Zhang Y M , Yuan C , et al . Measurement method of wet gas two-phase flow rate based on the main frequency and the modulus of vector acceleration of swirl flowmeter [J ] . Measurement , 2023 , 221 : 113539 .
Xu Y , Wei C S , Yuan C , et al . Using three-axis acceleration sensor to measure the frequency of the precession vortex signal [C ] // 2022 IEEE International Instrumentation and Measurement Technology Conference (I2MTC) . May 16-19, 2022 , Ottawa, ON, Canada . IEEE , 2022 : 1 - 6 .
Xu L J , Zhou W L , Li X M , et al . Wet gas metering using a revised venturi meter and soft-computing approximation techniques [J ] . IEEE Transactions on Instrumentation and Measurement , 2011 , 60 ( 3 ): 947 - 956 .
Shaban H , Tavoularis S . Measurement of gas and liquid flow rates in two-phase pipe flows by the application of machine learning techniques to differential pressure signals [J ] . International Journal of Multiphase Flow , 2014 , 67 : 106 - 117 .
Emerson Automation Solutions , " Roxar 2600 Multiphase Flow Meter Product Data Sheet," Emerson Electric Co .[EB/OL ] .[ 2025-06-02 ] . https://www.emerson.com/documents/automation/product-data-sheet-roxar-2600-multiphase https://www.emerson.com/documents/automation/product-data-sheet-roxar-2600-multiphase .
0
浏览量
0
下载量
0
CSCD
关联资源
相关文章
相关作者
相关机构
京公网安备11010102001995号