Research on multi-phase flow test and flow simulation test in energy enterprise automation

Abstract:In the process of oil extraction and transportation, due to the interaction between oil, gas and water, hydrates are easily generated and pipelines are blocked. Based on this, from the perspective of energy enterprise automation technology, testing and research on oil and gas multiphase flo...

Full description

Bibliographic Details
Main Authors: Ying Liang, Jinxi Wang
Format: Article
Language:English
Published: Frontiers Media S.A. 2022-08-01
Series:Frontiers in Energy Research
Subjects:
Online Access:https://www.frontiersin.org/articles/10.3389/fenrg.2022.972570/full
_version_ 1811321496835981312
author Ying Liang
Ying Liang
Ying Liang
Jinxi Wang
Jinxi Wang
author_facet Ying Liang
Ying Liang
Ying Liang
Jinxi Wang
Jinxi Wang
author_sort Ying Liang
collection DOAJ
description Abstract:In the process of oil extraction and transportation, due to the interaction between oil, gas and water, hydrates are easily generated and pipelines are blocked. Based on this, from the perspective of energy enterprise automation technology, testing and research on oil and gas multiphase flow models and flow models are carried out. The hydrate formation area is analyzed by using the hydrate formation phase equilibrium theory, and the formation rate, deposition characteristics and blockage formation mechanism are analyzed. The influence of phase flow and heat transfer; after the boundary interface coefficient between oil, gas and water is clarified, a multiphase flow model of oil, gas and water is established. In the experimental test, the differential pressure signal is used to carry out the research on the oil and gas multiphase flow model and flow model, and it is concluded that the minimum critical superficial liquid velocity among the three flow patterns of oil, water and gas is 0.113 m/s, It can clearly characterize the characteristics of the flow pattern transition, which has certain practical significance for the sustainable development of energy enterprises.
first_indexed 2024-04-13T13:17:47Z
format Article
id doaj.art-d348aa702f86435699ab9d32cf7f9d2c
institution Directory Open Access Journal
issn 2296-598X
language English
last_indexed 2024-04-13T13:17:47Z
publishDate 2022-08-01
publisher Frontiers Media S.A.
record_format Article
series Frontiers in Energy Research
spelling doaj.art-d348aa702f86435699ab9d32cf7f9d2c2022-12-22T02:45:24ZengFrontiers Media S.A.Frontiers in Energy Research2296-598X2022-08-011010.3389/fenrg.2022.972570972570Research on multi-phase flow test and flow simulation test in energy enterprise automationYing Liang0Ying Liang1Ying Liang2Jinxi Wang3Jinxi Wang4School of Chemistry & Chemical Engineering, Yulin University, Yulin, ChinaSchool of Chemical Engineering, Northwest University, Xi’an, ChinaShaanxi Key Laboratory of Low Metamorphic Coal Clean Utilization, School of Chemistry and Chemical Engineering, Yulin University, Yulin, ChinaSchool of Chemistry & Chemical Engineering, Yulin University, Yulin, ChinaShaanxi Key Laboratory of Low Metamorphic Coal Clean Utilization, School of Chemistry and Chemical Engineering, Yulin University, Yulin, ChinaAbstract:In the process of oil extraction and transportation, due to the interaction between oil, gas and water, hydrates are easily generated and pipelines are blocked. Based on this, from the perspective of energy enterprise automation technology, testing and research on oil and gas multiphase flow models and flow models are carried out. The hydrate formation area is analyzed by using the hydrate formation phase equilibrium theory, and the formation rate, deposition characteristics and blockage formation mechanism are analyzed. The influence of phase flow and heat transfer; after the boundary interface coefficient between oil, gas and water is clarified, a multiphase flow model of oil, gas and water is established. In the experimental test, the differential pressure signal is used to carry out the research on the oil and gas multiphase flow model and flow model, and it is concluded that the minimum critical superficial liquid velocity among the three flow patterns of oil, water and gas is 0.113 m/s, It can clearly characterize the characteristics of the flow pattern transition, which has certain practical significance for the sustainable development of energy enterprises.https://www.frontiersin.org/articles/10.3389/fenrg.2022.972570/fullenergymultiphase flow testhydratecontinuity equationmultiphase flow model
spellingShingle Ying Liang
Ying Liang
Ying Liang
Jinxi Wang
Jinxi Wang
Research on multi-phase flow test and flow simulation test in energy enterprise automation
Frontiers in Energy Research
energy
multiphase flow test
hydrate
continuity equation
multiphase flow model
title Research on multi-phase flow test and flow simulation test in energy enterprise automation
title_full Research on multi-phase flow test and flow simulation test in energy enterprise automation
title_fullStr Research on multi-phase flow test and flow simulation test in energy enterprise automation
title_full_unstemmed Research on multi-phase flow test and flow simulation test in energy enterprise automation
title_short Research on multi-phase flow test and flow simulation test in energy enterprise automation
title_sort research on multi phase flow test and flow simulation test in energy enterprise automation
topic energy
multiphase flow test
hydrate
continuity equation
multiphase flow model
url https://www.frontiersin.org/articles/10.3389/fenrg.2022.972570/full
work_keys_str_mv AT yingliang researchonmultiphaseflowtestandflowsimulationtestinenergyenterpriseautomation
AT yingliang researchonmultiphaseflowtestandflowsimulationtestinenergyenterpriseautomation
AT yingliang researchonmultiphaseflowtestandflowsimulationtestinenergyenterpriseautomation
AT jinxiwang researchonmultiphaseflowtestandflowsimulationtestinenergyenterpriseautomation
AT jinxiwang researchonmultiphaseflowtestandflowsimulationtestinenergyenterpriseautomation