材料科学
能量转换效率
能量转换
复合材料
超声波电动机
弹性模量
剪切模量
超声波传感器
弹性(物理)
机械能
图层(电子)
模数
弹性能
扭矩
高效能源利用
杨氏模量
接触面积
变形(气象学)
刚度
液力偶合器
还原(数学)
体积模量
摩擦力矩
摩擦学
作者
Hucheng Chen,Lianghong Guo,Chaoqi Wang,Guo Ma,Hongli Ji,Gai Zhao,J. Qiu
标识
DOI:10.1177/1045389x251405133
摘要
This paper investigates the influence mechanism of the elastic modulus of the friction layer on the interface contact characteristics and energy conversion efficiency of traveling wave rotary ultrasonic motors (TRUMs), based on the established stator-rotor dynamic coupling model that considers the elasticity of the friction layer and rotor. A method to enhance energy conversion efficiency by increasing the elastic modulus of the friction layer is proposed. The calculation results indicate that as the elastic modulus of the friction layer increases, the motor’s output performance and energy conversion efficiency improve, while interfacial friction loss decreases. This reduction in interfacial friction loss is attributed to the diminished tangential hindrance friction sub-zone and the enhanced shear deformation capacity at the interface contact points, which results in decreased slippage. Comparative experiments of ultrasonic motors using polyimide-based (PI) and polytetrafluoroethylene (PTFE) as friction layer materials reveal that increasing the elastic modulus of the friction layer significantly enhances the energy conversion efficiency of TRUM. Specifically, the maximum energy conversion efficiency of the motor rises from 46.3% to 52.1%, and the torque range exhibiting high energy conversion efficiency is also expanded.
科研通智能强力驱动
Strongly Powered by AbleSci AI