• CN:11-2187/TH
  • ISSN:0577-6686

机械工程学报 ›› 2018, Vol. 54 ›› Issue (15): 100-116.doi: 10.3901/JME.2018.15.100

• 摩擦学 • 上一篇    下一篇

轮廓参数对活塞二阶运动和裙部润滑性能的影响研究

吕延军1,2, 李猛3, 张永芳4, 刘万万1,2, 严冬1,2   

  1. 1. 西安理工大学机械与精密仪器工程学院 西安 710048;
    2. 西安交通大学机械结构强度与振动国家重点实验室 西安 710049;
    3. 西安聚能超导磁体科技有限公司 西安 710018;
    4. 西安理工大学印刷包装与数字媒体学院 西安 710048
  • 收稿日期:2017-08-11 修回日期:2018-03-06 出版日期:2018-08-05 发布日期:2018-08-05
  • 通讯作者: 张永芳(通信作者),女,1975年出生,博士,副教授,硕士研究生导师。主要研究方向为非线性动力学及控制、先进润滑理论和新型轴承技术。E-mail:zhangyf@xaut.edu.cn
  • 作者简介:吕延军,男,1972年出生,博士,教授,博士研究生导师。主要研究方向为非线性动力学及控制、先进润滑理论和新型轴承技术。E-mail:yanjunlu@xaut.edu.cn
  • 基金资助:
    国家自然科学基金(51375380)、机械结构强度与振动国家重点实验室开放课题(SV2016-KF-10)、陕西省自然科学基金(2014JM2-5082)和陕西省教育厅科学研究计划(15JS068)资助项目。

Effect of Piston Skirt Profile Parameter on Secondary Motion and Lubrication Performance of Piston

LÜ Yanjun1,2, LI Meng3, ZHANG Yongfang4, LIU Wanwan1,2, YAN Dong1,2   

  1. 1. School of Mechanical and Precision Instrument Engineering, Xi'an University of Technology, Xi'an 710048;
    2. State Key Laboratory for Strength and Vibration of Mechanical Structures, Xi'an Jiaotong University, Xi'an 710049;
    3. Xi'an Superconducting Magnet Technology Co., Ltd., Xi'an 710018;
    4. School of Printing, Packaging Engineering and Digital Media Technology, Xi'an University of Technology, Xi'an 710048
  • Received:2017-08-11 Revised:2018-03-06 Online:2018-08-05 Published:2018-08-05

摘要: 在考虑连杆惯性的基础上,根据活塞的力和力矩平衡建立活塞的二阶运动模型。在对活塞-缸套系统的混合润滑和活塞动力学行为进行耦合分析的基础上,研究活塞裙部纵向、横向型线、活塞销偏置和热变形对裙部摩擦学性能的影响。运用FDM求解裙部润滑的平均Reynolds方程,在此基础上,运用Runge-Kutta法求解活塞的二阶运动轨迹。在综合考虑连杆惯性、活塞裙部和缸套表面粗糙度的基础上,研究了活塞纵向、横向型线、活塞销偏置和热变形对活塞裙部二阶位移、速度和摩擦功耗等的影响。数值结果表明,连杆惯性力对活塞裙部摩擦特性的影响较大。当中凸变椭圆活塞采用纵向抛物线型轮廓,分别取较小的上端椭圆度和较大的下端椭圆度,较小的上端径向缩减量和较大的下端径向缩减量,并将活塞销向主推力边偏置时,可减小二阶运动幅值和速度,同时增大裙部润滑油膜厚度,减小活塞-缸套系统的摩擦功耗。研究为考虑活塞裙部热变形的轮廓型线设计提供了依据,可进一步改善活塞-缸套系统的摩擦学性能。

关键词: 二阶运动, 活塞裙部润滑, 热变形, 中凸变椭圆活塞

Abstract: The secondary motion of piston is modeled by considering the inertia of connecting rod according to the balance of the forces and moments acting on the piston. The influence of the structural parameters of the piston skirt longitudinal molded lines, the horizontal molded lines, the offset of piston pin and the thermal deformation on tribological properties of the piston skirt is investigated by considering coupling of the mixed lubrication of the piston-cylinder liner system and the dynamic behaviors of the piston. The average Reynolds equation of skirt lubrication is solved with FDM, and then the secondary motion trajectory of the piston is calculated by Runge-Kutta method. The influence of the piston skirt longitudinal molded lines, the horizontal molded lines, the offset of piston pin and the thermal deformation on the displacements and velocities of secondary motion, and friction power consumption is investigated by taking the inertia of the connecting rod, the surface roughness of the piston skirt and cylinder liner into consideration. The numerical results show that the inertia force of the connecting rod has important influence on the tribological property of the piston skirt. When the parabolic longitudinal molded line is applied for the middle-convex and varying ellipse piston, the amplitude and velocity of the secondary motion can be reduced. When the top and bottom ellipticities of the middle-convex and varying ellipse piston are chosen as smaller and bigger values respectively, the top and bottom radial reductions are chosen as smaller and bigger values respectively, the amplitude and velocity of the secondary motion can be also reduced. When the offset of piston pin is put to the thrust side slightly, the amplitude and velocity of the secondary motion can be also reduced. Meanwhile, the oil film thickness is increased, and the friction power consumption of the piston-cylinder liner system is reduced. The proposed model and numerical results can provide a theoretical direction to the design of piston skirt molded lines and further improvement of tribological properties of the piston-cylinder liner system.

Key words: piston skirt lubrication, secondary motion, The middle-convex and varying ellipse piston, thermal deformation

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