首页> 外文期刊>Journal of Tribology >Heat Transfer and Thermal Elastic Deformation Analysis on the Piston/Cylinder Interface of Axial Piston Machines
【24h】

Heat Transfer and Thermal Elastic Deformation Analysis on the Piston/Cylinder Interface of Axial Piston Machines

机译:轴向活塞机活塞/缸体界面的传热和热弹性变形分析

获取原文
获取原文并翻译 | 示例
获取外文期刊封面目录资料

摘要

The piston/cylinder interface of swash plate-type axial piston machines represents one of the most critical design elements for this type of pump and motor. Oscillating pressures and inertia forces acting on the piston lead to its micro-motion, which generates an oscillating fluid film with a dynamically changing pressure distribution. Operating under oscillating high load conditions, the fluid film between the piston and cylinder has simultaneously to bear the external load and to seal the high pressure regions of the machine. The fluid film interface physical behavior is characterized by an elasto-hydrodynamic lubrication regime. Additionally, the piston reciprocating motion causes fluid film viscous shear, which contributes to a significant heat generation. Therefore, to fully comprehend the piston/cylinder interface fluid film behavior, the influences of heat transfer to the solid boundaries and the consequent solid boundaries' thermal elastic deformation cannot be neglected. In fact, the mechanical bodies' complex temperature distribution represents the boundary for nonisothermal fluid film flow calculations. Furthermore, the solids-induced thermal elastic deformation directly affects the fluid film thickness. To analyze the piston/cylinder interface behavior, considering the fluid-structure interaction and thermal problems, the authors developed a fully coupled simulation model. The algorithm couples different numerical domains and techniques to consider all the described physical phenomena. In this paper, the authors present in detail the computational approach implemented to study the heat transfer and thermal elastic deformation phenomena. Simulation results for the piston/cylinder interface of an existing hydrostatic unit are discussed, considering different operating conditions and focusing on the influence of the thermal aspect. Model validation is provided, comparing fluid film boundary temperature distribution predictions with measurements taken on a special test bench.
机译:斜盘式轴向柱塞机的活塞/缸接口代表了这类泵和电动机的最关键的设计要素之一。作用在活塞上的振荡压力和惯性力导致其微动,从而产生压力分布动态变化的振荡流体膜。在振荡的高负载条件下运行,活塞和气缸之间的液膜必须同时承受外部负载并密封机器的高压区域。流体膜界面的物理行为的特征在于弹性流体动力润滑方案。另外,活塞的往复运动会引起流体膜的粘性剪切,这会产生大量的热量。因此,为了充分理解活塞/气缸界面流体膜的行为,不能忽略热量传递到固体边界的影响以及由此产生的固体边界的热弹性变形。实际上,机械体的复杂温度分布代表了非等温流体膜流量计算的边界。此外,固体引起的热弹性变形直接影响流体膜的厚度。为了分析活塞/气缸界面行为,考虑到流体-结构相互作用和热问题,作者开发了一个完全耦合的仿真模型。该算法结合了不同的数值域和技术来考虑所有描述的物理现象。在本文中,作者详细介绍了用于研究传热和热弹性变形现象的计算方法。讨论了现有静液压单元的活塞/气缸接口的仿真结果,考虑了不同的运行条件,并着重于热方面的影响。提供了模型验证,将流体膜边界温度分布的预测值与在特殊测试台上进行的测量值进行了比较。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号