制动器
磁流变液
扭矩
刚度
有限元法
机械工程
盘式制动器
工程类
磁电机
优化设计
流变学
结构工程
转子(电动)
材料科学
计算机科学
物理
阻尼器
复合材料
热力学
机器学习
作者
Ketill H. Gudmundsson,Fjóla Jónsdóttir,Freygardur Thorsteinsson
标识
DOI:10.1088/0964-1726/19/3/035023
摘要
Magneto-rheological (MR) fluids have been successfully introduced to prosthetic devices. One such device is a biomechanical prosthetic knee that uses MR fluids to actively control its rotary stiffness. The brake is rotational, utilizing the MR fluid in shear mode. In this study, the geometrical design of the MR brake is addressed. This includes the design of the magnetic circuit and the geometry of the fluid chamber. Mathematical models are presented that describe the rotary torque of the brake. A novel perfluorinated polyether (PFPE)-based MR fluid is introduced, whose properties are tailored for the prosthetic knee. On-state and off-state rheological measurements of the MR fluid are presented. The finite element method is used to evaluate the magnetic flux density in the MR fluid. The design is formulated as an optimization problem, aiming to maximize the braking torque. A parametric study is carried out for several design parameters. Subsequently, a multi-objective optimization problem is defined that considers three design objectives: the field-induced braking torque, the off-state rotary stiffness and the weight of the brake. Trade-offs between the three design objectives are investigated which provides a basis for informed design decisions on furthering the success of the MR prosthetic knee.
科研通智能强力驱动
Strongly Powered by AbleSci AI