Gas-Liquid Two-Phase Flow Velocity Measurement With Continuous Wave Ultrasonic Doppler and Conductance Sensor

被引:38
作者
Dong, Xiaoxiao [1 ]
Tan, Chao [1 ]
Dong, Feng [1 ]
机构
[1] Tianjin Univ, Sch Elect & Informat Engn, Tianjin Key Lab Proc Measurement & Control, Tianjin 300072, Peoples R China
基金
中国国家自然科学基金;
关键词
Conductance sensor; continuous wave ultrasonic doppler (CWUD); gas-liquid two-phase flow; slug closure model; superficial flow velocity; two-fluid model; RESOLUTION PROCESSING TECHNIQUES; COLORED NOISE; VOID FRACTION; 2-FLUID MODEL; SLUG FLOW; VELOCIMETRY; DESIGN;
D O I
10.1109/TIM.2017.2717218
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Flow velocity is an important process parameter that quantifies the volume or mass flow rate as well as monitors the process safety. To nonintrusively measure the flow velocity of horizontal gas-liquid two-phase flow, an ultrasonic Doppler sensor and a conductance sensor with dedicated measurement models are presented. The air superficial flow velocity can be directly obtained and the water superficial flow velocity can be calculated through a two-fluid model for bubble flow and plug flow. For slug flow, a correlation between the phase velocity in slug body and overall superficial flow velocity was built based on a slug closure model. In order to eliminate the influence of the changing velocity profile in the fluid, the sample volume was designed to cover the whole pipe cross section by installing a two-chip piezoelectric transducer with 1-MHz center frequency at the bottom of the pipe. The conductance sensor provided water holdup estimate to compensate the velocity measurement model. Experiments were carried out in a 50-mm inner diameter pipe to verify the proposed sensor and model. Three flow patterns (bubble flow, plug flow, and slug flow) were generated by adjusting the inlet flow rate of the air and the water. The results show that the mean relative error can achieve within 5%.
引用
收藏
页码:3064 / 3076
页数:13
相关论文
共 44 条
  • [31] Nguyen T.T., 2013, VIETNAM J MECH, V35, P239, DOI [10.15625/0866-7136/35/3/3070, DOI 10.15625/0866-7136/35/3/3070]
  • [32] An experimental investigation and two-fluid model validation for dilute viscous oil in water dispersed pipe flow
    Picchi, Davide
    Strazza, Domenico
    Demori, Marco
    Ferrari, Vittorio
    Poesio, Pietro
    [J]. EXPERIMENTAL THERMAL AND FLUID SCIENCE, 2015, 60 : 28 - 34
  • [33] An improved Doppler model for obtaining accurate maximum blood velocities
    Ricci, Stefano
    Matera, Riccardo
    Tortoli, Piero
    [J]. ULTRASONICS, 2014, 54 (07) : 2006 - 2014
  • [34] MODEL FOR PREDICTING FLOW REGIME TRANSITIONS IN HORIZONTAL AND NEAR HORIZONTAL GAS-LIQUID FLOW
    TAITEL, Y
    DUKLER, AE
    [J]. AICHE JOURNAL, 1976, 22 (01) : 47 - 55
  • [36] Tanahashi EI, 2010, P 7 N AM C MULT TECH, P125
  • [37] Measurement of bubbly two-phase flow in vertical pipe using multiwave ultrasonic pulsed Dopller method and wire mesh tomography
    Tat Thang Nguyen
    Kikura, Hiroshige
    Murakawa, Hideki
    Tsuzuki, Nobuyoshi
    [J]. FOURTH INTERNATIONAL SYMPOSIUM ON INNOVATIVE NUCLEAR ENERGY SYSTEMS (INES-4), 2015, 71 : 337 - 351
  • [38] Three-phase flow measurement in the petroleum industry
    Thorn, R.
    Johansen, G. A.
    Hjertaker, B. T.
    [J]. MEASUREMENT SCIENCE AND TECHNOLOGY, 2013, 24 (01)
  • [39] Velmurugan R., 2013, INT J COMPUT APPL, V66, P19
  • [40] Finding the Peak Velocity in a Flow From Its Doppler Spectrum
    Vilkomerson, David
    Ricci, Stefano
    Tortoli, Piero
    [J]. IEEE TRANSACTIONS ON ULTRASONICS FERROELECTRICS AND FREQUENCY CONTROL, 2013, 60 (10) : 2079 - 2088