Data Analysis of Two-Phase Flow Simulation Experiment of Array Optical Fiber and Array Resistance Probe
To solve the problem that traditional single-probe instruments cannot accurately measure the gas and water holdup, the domestic design of the array holdup measuring instrument Array of Optical and Resistance Tool (AORT), composed of five sets of optical fiber probes and five sets of resistance probe...
Guardado en:
Autores principales: | , , , |
---|---|
Formato: | article |
Lenguaje: | EN |
Publicado: |
MDPI AG
2021
|
Materias: | |
Acceso en línea: | https://doaj.org/article/184d9cca1ef140f3a860514622d6b266 |
Etiquetas: |
Agregar Etiqueta
Sin Etiquetas, Sea el primero en etiquetar este registro!
|
id |
oai:doaj.org-article:184d9cca1ef140f3a860514622d6b266 |
---|---|
record_format |
dspace |
spelling |
oai:doaj.org-article:184d9cca1ef140f3a860514622d6b2662021-11-25T17:17:02ZData Analysis of Two-Phase Flow Simulation Experiment of Array Optical Fiber and Array Resistance Probe10.3390/coatings111114202079-6412https://doaj.org/article/184d9cca1ef140f3a860514622d6b2662021-11-01T00:00:00Zhttps://www.mdpi.com/2079-6412/11/11/1420https://doaj.org/toc/2079-6412To solve the problem that traditional single-probe instruments cannot accurately measure the gas and water holdup, the domestic design of the array holdup measuring instrument Array of Optical and Resistance Tool (AORT), composed of five sets of optical fiber probes and five sets of resistance probes, is carried out in both gas–water and oil–water. Simulated measurement experiments were conducted under different water cut in phase flow. Through the analysis of the experimental data, the response relationship between the optical fiber probe and the resistance probe of the AORT instrument in different fluids was obtained. Then, the data under different conditions of fluid, flowrate and water cut in the experiment were compared by drawing. Interpolation algorithm was used to perform two-maintenance holdup imaging, and finally the holdup image was compared with the pictures of the flow in the pipe recorded during the experiment. The results show that the resistance probe has a better response under low water cut conditions, and the optical fiber probe has a better response under high gas cut conditions, which is consistent with the theoretical analysis. The imaging diagram and the flow pattern in the pipe during the experiment are in good agreement. It can be seen that the accuracy of the holdup measured by the AORT instrument under the test conditions is verified, and can provide technical support for further carrying out the measurement and interpretation of the holdup in future, as well as the improvement of the instrument and on-site testing.Shuaifei CuiJunfeng LiuKui LiQinze LiMDPI AGarticlegas–water/oil–water two phase flowholdupoptical fiber array proberesistance array probesimulation experimentEngineering (General). Civil engineering (General)TA1-2040ENCoatings, Vol 11, Iss 1420, p 1420 (2021) |
institution |
DOAJ |
collection |
DOAJ |
language |
EN |
topic |
gas–water/oil–water two phase flow holdup optical fiber array probe resistance array probe simulation experiment Engineering (General). Civil engineering (General) TA1-2040 |
spellingShingle |
gas–water/oil–water two phase flow holdup optical fiber array probe resistance array probe simulation experiment Engineering (General). Civil engineering (General) TA1-2040 Shuaifei Cui Junfeng Liu Kui Li Qinze Li Data Analysis of Two-Phase Flow Simulation Experiment of Array Optical Fiber and Array Resistance Probe |
description |
To solve the problem that traditional single-probe instruments cannot accurately measure the gas and water holdup, the domestic design of the array holdup measuring instrument Array of Optical and Resistance Tool (AORT), composed of five sets of optical fiber probes and five sets of resistance probes, is carried out in both gas–water and oil–water. Simulated measurement experiments were conducted under different water cut in phase flow. Through the analysis of the experimental data, the response relationship between the optical fiber probe and the resistance probe of the AORT instrument in different fluids was obtained. Then, the data under different conditions of fluid, flowrate and water cut in the experiment were compared by drawing. Interpolation algorithm was used to perform two-maintenance holdup imaging, and finally the holdup image was compared with the pictures of the flow in the pipe recorded during the experiment. The results show that the resistance probe has a better response under low water cut conditions, and the optical fiber probe has a better response under high gas cut conditions, which is consistent with the theoretical analysis. The imaging diagram and the flow pattern in the pipe during the experiment are in good agreement. It can be seen that the accuracy of the holdup measured by the AORT instrument under the test conditions is verified, and can provide technical support for further carrying out the measurement and interpretation of the holdup in future, as well as the improvement of the instrument and on-site testing. |
format |
article |
author |
Shuaifei Cui Junfeng Liu Kui Li Qinze Li |
author_facet |
Shuaifei Cui Junfeng Liu Kui Li Qinze Li |
author_sort |
Shuaifei Cui |
title |
Data Analysis of Two-Phase Flow Simulation Experiment of Array Optical Fiber and Array Resistance Probe |
title_short |
Data Analysis of Two-Phase Flow Simulation Experiment of Array Optical Fiber and Array Resistance Probe |
title_full |
Data Analysis of Two-Phase Flow Simulation Experiment of Array Optical Fiber and Array Resistance Probe |
title_fullStr |
Data Analysis of Two-Phase Flow Simulation Experiment of Array Optical Fiber and Array Resistance Probe |
title_full_unstemmed |
Data Analysis of Two-Phase Flow Simulation Experiment of Array Optical Fiber and Array Resistance Probe |
title_sort |
data analysis of two-phase flow simulation experiment of array optical fiber and array resistance probe |
publisher |
MDPI AG |
publishDate |
2021 |
url |
https://doaj.org/article/184d9cca1ef140f3a860514622d6b266 |
work_keys_str_mv |
AT shuaifeicui dataanalysisoftwophaseflowsimulationexperimentofarrayopticalfiberandarrayresistanceprobe AT junfengliu dataanalysisoftwophaseflowsimulationexperimentofarrayopticalfiberandarrayresistanceprobe AT kuili dataanalysisoftwophaseflowsimulationexperimentofarrayopticalfiberandarrayresistanceprobe AT qinzeli dataanalysisoftwophaseflowsimulationexperimentofarrayopticalfiberandarrayresistanceprobe |
_version_ |
1718412514532786176 |