A Gear-Slider Gravity Compensation Mechanism: Design and Experimental Study

L. Vu, C. Kuo
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引用次数: 3

Abstract

This paper presents the design and experimental study of a geared five-bar module for the gravity compensation of a rotating mass. In this design, a compression spring is installed on the rotating link and a pair of spur gears are used to transmit the elastic force to counterbalance the gravitational force. The design problem is first formulated as an optimization model for minimizing the actuation torque and then simplified to an analytical equation for approximating the perfect compensation design. One unique feature of the study is that the friction effect of the meshing gears is considered in the design of the spring stiffness. A prototype of the proposed mechanism was built and experimentally investigated via the manual and motor-driven tests. In the manual test, the measured peak static motor torque due to gravity was reduced up to 84.3% with the spring attachment. On the other hand, in the motor-driven test, the measured peak motor torque was reduced up to 90% and 72.8% during the downward and upward motions, respectively, and the power reduction rate of the driving motor could achieve up to 86.5% within the overall range of motion.
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一种齿轮滑块重力补偿机构的设计与实验研究
本文介绍了一种用于旋转物体重力补偿的齿轮五杆模块的设计和实验研究。在本设计中,在旋转连杆上安装压缩弹簧,用一对正齿轮传递弹性力来平衡重力。首先将设计问题表述为最小化驱动力矩的优化模型,然后将其简化为近似完美补偿设计的解析方程。该研究的一个独特之处在于在弹簧刚度的设计中考虑了啮合齿轮的摩擦效应。建立了该机构的原型,并通过手动和电机驱动试验对其进行了实验研究。在手动测试中,由于安装了弹簧,测量到的重力静态电机扭矩峰值减少了84.3%。另一方面,在电机驱动测试中,在向下运动和向上运动过程中,测量到的电机峰值转矩分别降低了90%和72.8%,在整个运动范围内,驱动电机的功率降低率可达到86.5%。
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