Aerodynamic instability of brush seals in gas turbine engines based on a fluid-structure interaction method

被引:0
作者
Liu, Yuxin [1 ]
Dong, Wenlei [2 ]
Yue, Benzhuang [3 ]
Kong, Xiaozhi [1 ]
Liu, Cunliang [1 ]
机构
[1] Northwestern Polytech Univ, 127 West Youyi Rd, Xian 710072, Peoples R China
[2] Guangdong Automot Test Ctr Co Ltd, 2 Kehui Rd, Foshan 528061, Peoples R China
[3] Dalian Maritime Univ, 1 Linghai Rd, Dalian 116026, Peoples R China
基金
中国国家自然科学基金;
关键词
PERFORMANCE; FLOW;
D O I
10.1063/5.0243909
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
By brush seal, we mean a type of mechanical seal that uses a large number of closely packed, thin, and flexible bristles to create an outstanding seal between rotating and stationary components in gas turbine engines. However, at high levels of swirling and pressured environments in engines, bristles of brush seals tend to circumferentially slip, which leads to reduced sealing performance and seal failure. In this paper, the effects of upstream-downstream pressure differences Delta p (0.2-0.5 MPa), downstream static pressure (0.1-1.0 MPa), and the coverage of bristles by a front plate (0%-90%) on the mechanical characteristics and deflections of bristles of a brush seal at highly swirling inlet were investigated based on a two-way fluid-structure coupling method. A key criterion for bristle instability, based on a simplified two-dimensional (2D) theoretical analysis, is obtained from the fluid-structure coupling simulations. The results indicate that a fundamental reason for the bristle circumferential slip is the ratio of the normal to the axial aerodynamic forces (F-n/F-ax) acting on the first row of bristles. When this ratio exceeds 0.9, the bristles will slip circumferentially. The effects of the pressure differential across the seal, the downstream pressure, inlet swirl velocity, and front plate coverage of the bristles on bristle stability can all be explained through their influences on this force ratio. At relatively low outlet static pressure of 0.1 MPa, upstream bristles slip when the inlet swirl is in the range of 230-300 m/s and the bristle slip instability is more likely to occur at higher pressure difference conditions. However, at high downstream pressures, F-n/F-ax declines with the growth of Delta p, contributing to the stability tendency. With the constant Delta p, the value of F-n/F-ax significantly increases as the downstream pressure rises, and the critical swirl velocity required to trigger bristle slip is considerably reduced. Additionally, the front plate shields a part of the bristles away from pressure gradient in axial direction but leads to outward radial flow upstream of the bristle pack, thereby increasing the F-n/F-ax. Thus, front plate does not offer protection to bristles under high inlet swirl conditions, on the contrary, it may cause early slip of the bristles.
引用
收藏
页数:14
相关论文
共 50 条
  • [21] Numerical simulation of fluid-structure interaction with the volume penalization method
    Engels, Thomas
    Kolomenskiy, Dmitry
    Schneider, Kai
    Sesterhenn, Joern
    JOURNAL OF COMPUTATIONAL PHYSICS, 2015, 281 : 96 - 115
  • [22] A reduced mesh movement method based on pseudo elastic solid for fluid-structure interaction
    Zhong, Jize
    Xu, Zili
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART C-JOURNAL OF MECHANICAL ENGINEERING SCIENCE, 2018, 232 (06) : 973 - 986
  • [23] Optimal design of an aerostatic spindle based on fluid-structure interaction method and its verification
    Lu, Lihua
    Chen, Wanqun
    Wu, Bin
    Gao, Qiang
    Wu, Quanhui
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART J-JOURNAL OF ENGINEERING TRIBOLOGY, 2016, 230 (06) : 690 - 696
  • [24] Fluid-Structure Interaction Analysis on Turbulent Annular Seals of Centrifugal Pumps during Transient Process
    Jiang, Qinglei
    Zhai, Lulu
    Wang, Leqin
    Wu, Dazhuan
    MATHEMATICAL PROBLEMS IN ENGINEERING, 2011, 2011
  • [25] Fluid-Structure Interaction Analysis of Multi-Storey Vertical Axis Wind Turbine
    Madapur, Amrita
    Malge, Abhijeet
    Pawar, Prashant M.
    TECHNO-SOCIETAL 2018: PROCEEDINGS OF THE 2ND INTERNATIONAL CONFERENCE ON ADVANCED TECHNOLOGIES FOR SOCIETAL APPLICATIONS - VOL 2, 2020, : 693 - 703
  • [26] A vorticity based approach to handle the fluid-structure interaction problems
    Farahbakhsh, Iman
    Ghassemi, Hassan
    Sabetghadam, Fereidoun
    FLUID DYNAMICS RESEARCH, 2016, 48 (01)
  • [27] Numerical Solution of Fluid-Structure Interaction Problems by Finite Element Method
    Svacek, P.
    NUMERICAL ANALYSIS AND APPLIED MATHEMATICS, VOLS 1 AND 2, 2009, 1168 : 661 - 664
  • [28] STUDY ON VIBRATION AND THERMAL EXPANSION OF HEATING FURNACE MANIFOLD BASED ON FLUID-STRUCTURE INTERACTION METHOD
    Zhang, Jinya
    Tan, Zheng
    Hu, Wei
    Wang, Ke
    Zhang, Yongxue
    HEAT TRANSFER RESEARCH, 2023, 54 (10) : 19 - 36
  • [29] Fluid-Structure Interaction Analysis of Flexible Plate with Partitioned Coupling Method
    Lim, W. Z.
    Xiao, R. Y.
    CHINA OCEAN ENGINEERING, 2019, 33 (06) : 713 - 722
  • [30] Multi-objective optimization design method of marine propeller based on fluid-structure interaction
    Guan, Guan
    Zhang, Xiangyu
    Wang, Panpan
    Yang, Qu
    OCEAN ENGINEERING, 2022, 252