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VACUUM ›› 2026, Vol. 63 ›› Issue (3): 104-110.doi: 10.13385/j.cnki.vacuum.2026.03.15

• Vacuum Technology Application • Previous Articles     Next Articles

Critical Load Analysis of Dynamic Instability of Valve Body for a Newly Made Three Eccentric Vacuum Butterfly Valve Under the Action of Fluid Medium

FU Yanjie, MIN Linfeng   

  1. Wenzhou Vocational and Technical College, Wenzhou, 325003, China
  • Received:2025-08-12 Online:2026-05-25 Published:2026-06-01

Abstract: The dynamic coupling effect of medium pressure pulsation and valve plate opening in vacuum systems seriously threatens the vacuum sealing integrity of the system, exacerbates the uneven stress distribution and deformation of the valve body, and thereby affects the instability load of the valve body. Therefore, the critical load of dynamic instability of the newly made three eccentric vacuum butterfly valve body is analyzed under the action of fluid medium. Based on the ANSYS Workbench platform, a three-dimensional parametric model is established to perform bidirectional fluid structure coupling (FSI) calculations between the unsteady flow of vacuum/low-pressure fluid medium (150℃ water vapor, Knudsen number 0.003-0.1, slip flow zone) and the valve body structure. In the fluid domain, the k-ω SST turbulence model is used to accurately simulate complex flow characteristics and calculate the distribution of fluid forces. In the structural domain, geometric nonlinear buckling analysis is performed based on the arc length method to accurately capture the instability behavior of the valve body under fluid forces, draw displacement load curves, and determine the critical load of instability under the dynamic coupling of medium pressure pulsation and valve plate opening. The results show that, under the dynamic coupling condition of 300 Hz medium pressure pulsation and valve plate 90° opening, the critical load for dynamic instability of the valve body is the worst, only 3×103 Pa, and the risk of instability is the highest, which can easily lead to seal failure and vacuum degree damage.

Key words: vacuum sealing, triple eccentric vacuum butterfly valve, maximum unstable load, k-ω SST turbulence model, arc-length method

CLC Number:  TP53.27

[1] 余鑫,师建元,郑晓东,等.暂冲式高速风洞中大口径蝶阀的设计与应用[J].兵工自动化,2025,44(5):23-27.
[2] 高普阳,胡小林.非牛顿流固耦合问题的半隐式分区ALE有限元-间断有限元耦合算法研究[J].浙江大学学报(理学版),2024,51(4):450-458.
[3] 朱昕辰,蔡鑫伟,严微微,等.Squirmer在方腔流中受限行为的数值模拟研究[J].力学季刊,2025,46(2):429-445.
[4] 张金,戚志刚,张磊.钢纤维混凝土冲击破坏特性GDEM软件模拟[J].应用数学和力学,2025,46(5):621-632.
[5] 魏继锋,李新菊,吉耿杰,等.Q355ND钢静动态力学行为与Johnson-Cook本构参数拟合[J].北京理工大学学报,2025,45(5):437-443.
[6] 李哲,洪志辉,涂玲,等.全位移视觉机器人实训平台设计[J].电子设计工程,2023,31(3):28-32,37.
[7] 余瑞明,马云艳,池伟,等.全金属硬密封双向零泄漏三偏心蝶阀设计与分析[J].工程设计学报,2024,31(4):511-520.
[8] 朱兰馨,蔡振威,王炜哲.基于流-热-固单向耦合计算的LNG船用蝶阀流动及结构改进设计[J].热能动力工程,2024,39(4):122-130.
[9] 朱志颖,于洪杰,朱国栋,等.管壳式换热器管束有限元模拟合理性研究及失稳分析[J].压力容器,2024,41(9):39-47.
[10] 蒙博斌,马海鹏,田帅,等.基于有限元方法的铁塔结构虚拟仿真分析试验[J].实验技术与管理,2023,40(11):116-122.
[11] 赵广迪,臧喜民,王博,等.B对A514Gr.Q齿条钢淬透性影响的数值模拟及实验验证[J].材料热处理学报,2025,46(6):179-189.
[12] 张鹏程,郑少锋,王权民,等.钢筋桁架混凝土梁弯剪性能数值模拟研究[J].建筑科学与工程学报,2025,42(3):37-47.
[13] 李波,韩文,韩顺,等.300M钢起落架作动筒挤压成形数值模拟[J].锻压技术,2025,50(5):165-172.
[14] 张仁杰,陈露阳,曾云,等.偏大流量工况下离心泵叶轮空化流动特性数值模拟[J].水力发电学报,2025,44(5):10-21.
[15] 邓嘉隆,郑俊杰,郑烨炜.筋材蠕变特性对加筋土桥台力学行为影响的数值模拟研究[J].中国科学:技术科学,2025,55(6):1055-1066.
[16] 邓金睿,蒋华全,柳扬,等.天然气井口节流阀数值模拟研究[J].石油化工,2025,54(5):653-662.
[17] 任然,冯美艳,陈俊杰,等.大容量海上风电塔筒纵焊残余应力和变形的数值模拟[J].精密成形工程,2025,17(5):207-219.
[18] 孔令轩,宋文艳.超声速二次喉道扩压器流动特性的数值模拟[J].电子设计工程,2014,22(21):48-51.
[19] 李彦峰,孟龙,王凯,等.基于导流板结构的再热调节蝶阀在小开度工况下内部噪声特性数值模拟研究[J].汽轮机技术,2025,67(2):119-122.
[20] SELVARAJU V, VELAN D S, KUMAR S D.Numerical analysis on lateral torsional buckling strength characteristics of parallel flange steel beams due to geometric imperfections[J].International Journal of Vehicle Structures & Systems (Ijvss), 2024, 16(6):887-890.
[21] BACAK A, PNARBA A, DALKL A S.A 3-D fsi simulation for the performance prediction and valve dynamic analysis of a hermetic reciprocating compressor[J].International Journal of Refrigeration, 2023,150(6):135-148.
[22] KIM M S, SEONG H S, YANG J H, et al.Fluid flow and effect of turbulence model on large-sized triple-offset butterfly valve[J].Journal of Applied Fluid Mechanics, 2023, 16(12):2364-2380.
[23] ZHAO J, YIN H, TANG Z, et al.Numerical analysis of erosion characteristics of three eccentric butterfly valves based on CFD[J].The European Physical Journal Plus, 2024, 139(8):1-16.
[24] GE G Y, XIAO Y K, DU Z C.Real-time compensation strategy for clamping force-induced error in face milling of mass-produced valve bodies[J]. The International Journal of Advanced Manufacturing Technology, 2023, 127:2465-2474.
[25] 谢小雨, 李睿, 崔又文, 等.基于双向流固耦合的倒虹吸管道水击压力波与拱式桥架组合结构动力响应分析[J].应用力学学报, 2024, 41(2):466-476.
[26] 费根胜,温航,黄刚.基于流固耦合的全封闭往复式压缩机数值仿真及吸气舌簧阀的优化[J].机械设计, 2024, 41(2):123-132.
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