西安交通大学能源与动力工程学院,西安,710049
: 2022-02-05。作者简介: 赵琪(1995—),男,博士生
赖天伟(通信作者),男,副教授,博士生导师。基金项目: 国家重点研发计划资助项目(2019YFB1504600)
网络首发:2022-07-10,
纸质出版:2022
移动端阅览
赵琪, 任雄豪, 侯予, 等. 库伦摩擦对波箔气体轴承特性的影响[J]. 西安交通大学学报, 2022,56(7):177-183.
ZHAO Qi, REN Xionghao, HOU Yu, et al. Effects of Coulomb Friction on Bump Foil Gas Bearing[J]. 2022, 56(7): 177-183.
赵琪, 任雄豪, 侯予, 等. 库伦摩擦对波箔气体轴承特性的影响[J]. 西安交通大学学报, 2022,56(7):177-183. DOI: 10.7652/xjtuxb202207019.
ZHAO Qi, REN Xionghao, HOU Yu, et al. Effects of Coulomb Friction on Bump Foil Gas Bearing[J]. 2022, 56(7): 177-183. DOI: 10.7652/xjtuxb202207019.
为了深入了解库伦摩擦对波箔气体轴承特性的影响
考虑了波箔片与平箔片间摩擦力以及波箔片与轴承座间摩擦力
通过有限元梁单元模型计算波箔轴承单个波拱的位移
采用能量耗散的方法对波箔轴承的刚度和阻尼特性进行了评价
分析了载荷基准值和载荷波动幅值以及摩擦因数对库伦阻尼耗散能量以及箔片刚度特性的影响规律。研究结果表明:随着载荷基准值和载荷波动幅值增大
库伦阻尼耗散能量明显增加
有助于提高轴承运行的稳定性; 载荷波动幅值增大
波箔轴承刚度先迅速减小然后逐渐趋于稳定; 载荷基准值变化对波箔刚度影响较小
波箔刚度基本不发生变化。载荷由最大值逐渐减小时
波箔拱顶部摩擦力刚开始时仍为滑动摩擦力。进入滞止阶段后
滑动摩擦力逐渐转变为静摩擦力且摩擦力方向逐渐由同向变为反向。箔片轴承设计过程中
应以支撑刚度或阻尼耗散为目标
选择最优的摩擦因数。
In this paper
the friction between the bump foil and the flat foil and between the bump foil and the bearing housing is taken into account to evaluate the effects of coulomb friction on bump foil gas bearing. The displacement of a single bump is calculated using the finite element beam model. Thereafter
the stiffness and damping characteristics of the bearing are evaluated through energy dissipation method. The effects of load reference value
load fluctuation amplitude and friction coefficient on energy dissipation and foil stiffness are analyzed. The results indicate that the energy dissipation increases as the reference value and fluctuation amplitude increase
which is conducive to the operating stability. The stiffness grows rapidly and then asymptoticly stabilizes as the amplitude increases. The stiffness basically does not change with the reference value. When the load decreases from the maximum value
the friction at the bump top still remains as sliding friction at the beginning. After entering the hysterias condition
the sliding friction gradually turns into static friction
and the direction of friction changes from the same direction to the opposite direction. In the bearing design process
the optimal friction coefficient should be selected properly based on the principle in favor of support stiffness or energy dissipation.
AGRAWAL G L. Foil air/gas bearing technology: an overview [C]∥ASME 1997 International Gas Turbine and Aeroengine Congress and Exhibition. New York, NY, USA: ASME, 1997: V001T04A006.
陈汝刚, 席光, 陈韬. 掌上透平弹性箔片动压气体轴承的试验研究 [J]. 西安交通大学学报, 2014, 48(7): 1-4.
CHEN Rugang, XI Guang, CHEN Tao. Miniature aerodynamic elastic foil gas bearing for palm-sized high speed turboexpander [J]. Journal of Xi'an Jiaotong University, 2014, 48(7): 1-4.
李宏钦. 氢燃料电池车用高速离心式压缩机的设计及研究 [D]. 杭州: 浙江大学, 2019.
GUO Yu, HOU Yu, ZHAO Qi, et al. Numerical and experimental studies on the thermal and static characteristics of multi-leaf foil thrust bearing [J]. Proceedings of the Institution of Mechanical Engineers: Part J Journal of Engineering Tribology, 2022, 236(3): 405-420.
LI Hao, GENG Haipeng, WANG Bo, et al. Feasibility investigation of a compressor rotor supported by gas foil bearings with inhomogeneous bump foils [J]. Proceedings of the Institution of Mechanical Engineers: Part J Journal of Engineering Tribology, 2022, 236(1): 174-183.
赖天伟, 马斌, 郑越青, 等. 多层弹性支承箔片动压气体径向轴承稳定性的实验研究 [J]. 西安交通大学学报, 2014, 48(3): 79-83.
LAI Tianwei, MA Bin, ZHENG Yueqing, et al. Experimental investigation on stability of multi-decked protuberant foil gas journal bearing [J]. Journal of Xi'an Jiaotong University, 2014, 48(3): 79-83.
HOU Yu, ZHAO Qi, GUO Yu, et al. Application of gas foil bearings in China [J]. Applied Sciences, 2021, 11(13): 6210.
LATRAY N, KIM D. Novel thrust foil bearing with pocket grooves for enhanced static performance [J]. Journal of Tribology, 2021, 143(11): 111803.
李昊, 耿海鹏, 孙岩桦, 等. 拱箔成型工艺对箔片轴承性能影响的仿真分析 [J]. 西安交通大学学报, 2019, 53(4): 9-14.
LI Hao, GENG Haipeng, SUN Yanhua, et al. Simulation analysis for influence of bump forming process on gas bearing performances [J]. Journal of Xi'an Jiaotong University, 2019, 53(4): 9-14.
LE LEZ S, ARGHIR M, FRENE J. Static and dynamic characterization of a bump-type foil bearing structure [J]. Journal of Tribology, 2007, 129(1): 75-83.
LEE Y B, KIM T H, KIM C H, et al. Dynamic characteristics of a flexible rotor system supported by a viscoelastic foil bearing(VEFB)[J]. Tribology International, 2004, 37(9): 679-687.
KU C P R, HESHMAT H. Structural stiffness and coulomb damping in compliant foil journal bearings: theoretical considerations [J]. Tribology Transactions, 1994, 37(3): 525-533.
王林忠, 侯予, 崔明现, 等. 箔片轴承结构阻尼的评价 [J]. 西安交通大学学报, 2006, 40(1): 40-44.
WANG Linzhong, HOU Yu, CUI Mingxian, et al. Damping evaluation of foil bearings [J]. Journal of Xi'an Jiaotong University, 2006, 40(1): 40-44.
XU Zhenni, LI Changlin, DU Jianjun. Modeling and static characteristics study of the double-layer bump gas foil bearing [J]. Tribology International, 2021, 164: 107202.
王伟, 李晓疆, 曾强, 等. 高速透平机械全金属鼓泡箔片动压气体轴承稳定性研究 [J]. 西安交通大学学报, 2017, 51(8): 84-89.
WANG Wei, LI Xiaojiang, ZENG Qiang, et al. Stability analysis for fully hydrodynamic gas-lubricated protuberant foil bearings in high speed turbomachinery [J]. Journal of Xi'an Jiaotong University, 2017, 51(8): 84-89.
GUO Yu, HOU Yu, ZHAO Qi, et al. Application of multi-leaf foil bearings in high-speed turbo-machinery [J]. Journal of Advanced Mechanical Design, Systems, and Manufacturing, 2020, 14(6): JAMDSM 0085.
GUO Yu, HOU Yu, WANG Yu, et al. Numerical analysis of aerodynamic lubricated double-decked protuberant foil thrust bearing [J]. Journal of Advanced Mechanical Design, Systems, and Manufacturing, 2019, 13(3): JAMDSM0056.
周权, 侯予, 陈汝刚. 应用于高速透平膨胀机的箔片动压气体止推轴承的试验研究 [J]. 西安交通大学学报, 2012, 46(11): 49-52, 111.
ZHOU Quan, HOU Yu, CHEN Rugang. Experimental research on compliant foil thrust bearings for high speed turbine expander [J]. Journal of Xi'an Jiaotong University, 2012, 46(11): 49-52, 111.
绳春晨, 杨榆, 谢洪涛, 等. 箔片动压轴承的研制及在机载环控涡轮的应用 [J]. 润滑与密封, 2020, 45(5): 86-90.
SHENG Chunchen, YANG Yu, XIE Hongtao, et al. Development and application of aerodynamic foil bearings in high-speed turbo-machinery of airborne ECS [J]. Lubrication Engineering, 2020, 45(5): 86-90.
赵琪, 侯予, 任雄豪, 等. 鼓泡箔片动压气体径向轴承库仑阻尼耗散的数值分析 [J]. 西安交通大学学报, 2021, 55(10): 150-156.
ZHAO Qi, HOU Yu, REN Xionghao, et al. Numerical analysis of coulomb damping dissipation of protuberant gas foil journal bearing [J]. Journal of Xi'an Jiaotong University, 2021, 55(10): 150-156.
LEE D H, KIM Y C, KIM K W. The effect of Coulomb friction on the static performance of foil journal bearings [J]. Tribology International, 2010, 43(5/6): 1065-1072.
成德夫, 姬奎生, 韩学铨, 等. 机械设计手册 [M]. 北京: 化学工业出版社, 2017.
LE LEZ S, ARGHIR M, FRENE J. A new bump-type foil bearing structure analytical model [C]∥ASME Turbo Expo 2007: Power for Land, Sea, and Air. New York, NY, USA: ASME, 2007: 747-757.
IORDANOFF I. Analysis of an aerodynamic compliant foil thrust bearing: method for a rapid design [J]. Journal of Tribology, 1999, 121(4): 816-822.
HESHMAT H, WALOWIT J A, PINKUS O. Analysis of gas lubricated compliant thrust bearings [J]. Journal of Lubrication Technology, 1983, 105(4): 638-646.
杨延宝. 箔片气体动压轴承设计与微动磨损研究 [D]. 沈阳: 沈阳工业大学, 2021.
陈海峰, 许田琦, 杨杰, 等. 微动损伤机理与防护工艺研究现状与进展 [J]. 涂层与防护, 2020, 41(11): 58-62.
CHEN Haifeng, XU Tianqi, YANG Jie, et al. Research and development of fretting damage mechanism and protective process [J]. Coating and Protection, 2020, 41(11): 58-62.
0
浏览量
5
下载量
0
CSCD
关联资源
相关文章
相关作者
相关机构
京公网安备11010802024621