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Design of a Hydraulic Low-Speed, High-Torque, Cycloidal Actuator/Motor for Use in Medical Devices.

机译:用于医疗设备的液压低速高扭矩摆线执行器/电机的设计。

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摘要

The thesis presents the design of a meso-scale, hydraulic, rotary actuator/motor. While there are some existing devices, both hydraulic and pneumatic, it was ascertained that there are opportunities for other devices. Some particularly relevant devices that are discussed in the thesis are the PneuStep from John Hopkins University and a meso-scale linear actuator from Oak Ridge National Laboratory. The PneuStep is a pneumatic stepper motor for use in the MRI environment that achieves a max output torque of 5.31 lb·in. (600 N·mm) at an approximate speed of 15 RPM under operating pressures of 120 PSI (0.83 MPa) [1, 2]. In addition, researchers at the Oak Ridge National Laboratory (Oak Ridge, Tennessee) have developed a meso-scale linear actuator with a diameter of 0.09 in. (2.3 mm) that generates a force of 2.4 lb (10.69 N) with a stroke length of 0.3 in. (7.6 mm) [3].;The meso-scale, hydraulic, rotary actuator/motor that is the subject of this thesis incorporates an integral cycloidal speed reducer while utilizing hydraulic cylinders for actuation in a pancake-style configuration. Initial testing with a pneumatic powered rotary actuator, which was designed and fabricated, revealed a number of important considerations that were used in the final design. Piston rod side-loading, friction losses, and cylinder alignment were found to be particularly important.;The final design of the hydraulic, rotary actuator/motor was limited in its pressure supply to 85 PSI but achieved a maximum holding torque of 23 lb·in. (2.6 N·m). A Simulink model was developed that included compressibility effects, dynamics/inertial effects, and the effects of changing effective mass moment of inertia. Simulink model runs predicted a speed of 55 RPM with a resisting torque of 4 lb·in. (450 N·mm). Experimental results, under similar conditions resulted in a speed of 45 RPM.;The development of a novel rotary actuator may lead to further progress in the field of medical devices for situations where a low-speed, high-torque actuation is particularly suited. Furthermore, these developments add valuable design knowledge to both the fields of meso-scale hydraulic componentry and cycloidal actuators/motors.
机译:本文提出了一种中尺度液压旋转执行器/电动机的设计。尽管存在一些现有的设备,包括液压和气动设备,但已确定存在其他设备的机会。本文中讨论的一些特别相关的设备是约翰霍普金斯大学的PneuStep和橡树岭国家实验室的中尺度线性致动器。 PneuStep是一款用于MRI环境的气动步进电机,其最大输出扭矩为5.31 lb·in。在120 PSI(0.83 MPa)的工作压力下,以大约15 RPM的速度(600 N·mm)[1,2,]。此外,位于橡树岭国家实验室(田纳西州橡树岭)的研究人员开发了一种中尺度线性致动器,其直径为0.09英寸(2.3毫米),可产生2.4磅(10.69牛)的力,行程长度直径为0.3英寸(7.6毫米)[3] 。;本文所涉及的中尺度液压旋转执行器/电机在采用煎饼式结构的液压缸进行驱动时,集成了摆线减速器。设计和制造的气动旋转执行器的初始测试表明,最终设计中使用了许多重要的考虑因素。发现活塞杆的侧向载荷,摩擦损失和气缸对准特别重要。;液压旋转执行器/马达的最终设计将其压力供应限制为85 PSI,但最大保持扭矩为23 lb·在。 (2.6 N·m)。开发了Simulink模型,其中包括可压缩性效应,动力学/惯性效应以及有效质量惯性矩变化的影响。 Simulink模型运行预测的速度为55 RPM,抵抗扭矩为4 lb·in。 (450 N·mm)。在类似条件下的实验结果导致转速为45 RPM。新型旋转执行器的开发可能会在医疗设备领域进一步发展,以应对低速,高扭矩执行器特别适合的情况。此外,这些发展为中规模液压元件和摆线执行器/电机领域增加了宝贵的设计知识。

著录项

  • 作者

    Westphal, Christopher J.;

  • 作者单位

    The University of Wisconsin - Madison.;

  • 授予单位 The University of Wisconsin - Madison.;
  • 学科 Engineering Mechanical.;Engineering Biomedical.;Engineering General.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 284 p.
  • 总页数 284
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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