Structural Analysis and Optimization of Urban Gas Pressure Regulator Based on Thermo-Hydro-Mechanical Coupling

被引:0
|
作者
Cui, Yue [1 ]
Lin, Nan [2 ]
Yuan, Zhong [3 ]
Lan, Huiqing [3 ]
Wang, Junqiang [2 ]
Wang, Huigang [1 ]
机构
[1] Tangshan Univ, Key Lab Intelligent Equipment Digital Design & Pro, Tangshan 063009, Peoples R China
[2] China Special Equipment Inspection & Res Inst, Beijing 100029, Peoples R China
[3] Beijing Jiaotong Univ, Key Lab Vehicle Adv Mfg Measuring & Control Techno, Minist Educ, Beijing 100044, Peoples R China
来源
APPLIED SCIENCES-BASEL | 2023年 / 13卷 / 11期
基金
国家重点研发计划;
关键词
gas pressure regulator; thermo-hydro-mechanical coupling; response surface method; structural optimization; RESPONSE-SURFACE METHODOLOGY;
D O I
10.3390/app13116548
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
As a core component in the gas transmission process, the internal wall surface of a gas pressure regulator is prone to failure due to long-term exposure to a high-pressure gas environment, resulting in poor reliability of the regulator. Thus, a thermo-hydro-mechanical coupling model for the FL gas pressure regulator is established in this paper, and the thermo-hydro-mechanical coupling results are verified by engineering data. The effect of valve opening on the parameters (temperature, deformation, and stress) of the gas pressure regulator is studied in detail through simulation. The results show that the stress is greater at the sleeve, valve bore, and outlet valve seat wall under the opening of 20% of the regulator. Finally, the response surface method is used to optimize the regulator to obtain a good fit and high predictive ability of the response surface equation. The optimal parameters for the gas pressure regulator are as follows: the wall thickness of the sleeve is 7.25 mm, the diameter of the valve bore is 25 mm, and the wall thickness of the outlet seat is 31.05 mm. The maximum equivalent stress with this combination of parameters is 135.62 MPa.
引用
收藏
页数:16
相关论文
共 50 条
  • [1] Thermo-hydro-mechanical coupling analysis of a thermal pile
    Rui, Yi
    Soga, Kenichi
    PROCEEDINGS OF THE INSTITUTION OF CIVIL ENGINEERS-GEOTECHNICAL ENGINEERING, 2019, 172 (02) : 155 - 173
  • [2] Upgrade and validation of thermo-hydro-mechanical coupling analysis platform
    Liu, Naifei
    Li, Ning
    He, Min
    Yanshilixue Yu Gongcheng Xuebao/Chinese Journal of Rock Mechanics and Engineering, 2014, 33 (SUPPL.1): : 2750 - 2757
  • [3] Analysis of Thermo-Hydro-Mechanical Coupling of Coal and Gas with Absorption/Desorption Thermal Effect
    Hao, Jianfeng
    Liang, Bing
    Sun, Weiji
    SHOCK AND VIBRATION, 2020, 2020
  • [4] Thermo-hydro-mechanical coupling in clay barriers
    Collin, F
    Li, XL
    Charlier, R
    Radu, JP
    POROMECHANICS: A TRIBUTE TO MAURICE A. BIOT, 1998, : 377 - 383
  • [5] Thermo-hydro-mechanical coupling in clay barriers
    Collin, F
    Li, XL
    Radu, JP
    Charlier, R
    ENGINEERING GEOLOGY, 2002, 64 (2-3) : 179 - 193
  • [6] Modelling process of thermo-hydro-mechanical coupling
    Dang Xu-guang
    Zhu Qing-jie
    Liu Feng
    Cheng Yu
    ROCK AND SOIL MECHANICS, 2009, 30 : 229 - 231
  • [7] Thermo-hydro-mechanical coupling analysis of a thermo-active diaphragm wall
    Rui, Yi
    Yin, Mei
    CANADIAN GEOTECHNICAL JOURNAL, 2018, 55 (05) : 720 - 735
  • [8] Research on gas injection to increase coalbed methane production based on thermo-hydro-mechanical coupling
    Yu, Hongjin
    Li, Ziwen
    Bai, Yansong
    Wang, Yinji
    Hu, Hongqing
    FUEL, 2023, 354
  • [10] On the modeling of thermo-hydro-mechanical coupling in concrete.
    Obeid, W
    Alliche, A
    Mounajed, G
    COMPUTATIONAL MECHANICS, VOLS 1 AND 2, PROCEEDINGS: NEW FRONTIERS FOR THE NEW MILLENNIUM, 2001, : 819 - 824