Application of Hardware-in-the-Loop Simulation for the Development and Testing of Advanced Control Systems for Joint Wear Simulators

K. Iyer, D. Keeling, R. Hall
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引用次数: 1

Abstract

Hardware-in-the-loop (HIL) simulation is an advanced technique for developing and testing complex real-time control systems. This paper presents the benefits of HIL simulation to develop, test and validate advanced control algorithms used in an artificial joint wear simulator for the tribological testing of prostheses.A benchtop HIL setup is created for experimentation, controller verification, and validation purposes, allowing different control strategies to be tested rapidly in a safe environment. The HIL simulation attempts to replicate similar joint motion and loading conditions of that of the spinal wear simulator. The simulator contains a four-bar link powered by electromechanical actuators. As a result, the implant articulates with an angular motion specified in the international standards, ISO-18192-1, that defines fixed sinusoid motion and load profiles for wear testing of both lumbar and cervical disc implants.Using a PID controller, a velocity-based position control algorithm was developed to interface with the benchtop setup that performs HIL simulation. The simulation results strongly support the efficacy of the test setup using HIL simulation to verify and validate the accuracy and robustness of the prospective controller before its deployment into the spinal wear simulator. This method of testing controllers enables a wide range of possibilities to test advanced control algorithms that can potentially utilize real-world data of patients performing daily living activities that place adverse demands on the artificial joint.
硬件在环仿真在关节磨损模拟器先进控制系统开发与测试中的应用
硬件在环仿真是一种用于开发和测试复杂实时控制系统的先进技术。本文介绍了HIL仿真在开发、测试和验证用于假肢摩擦学测试的人工关节磨损模拟器的先进控制算法方面的好处。为实验、控制器验证和验证目的创建了一个台式HIL设置,允许在安全环境中快速测试不同的控制策略。HIL模拟试图复制与脊柱磨损模拟器相似的关节运动和加载条件。模拟器包含一个由机电致动器驱动的四杆连杆。因此,植入物以国际标准ISO-18192-1规定的角度运动关节,该标准定义了腰椎和颈椎椎间盘植入物磨损测试的固定正弦运动和负载剖面。使用PID控制器,开发了基于速度的位置控制算法,以与执行HIL仿真的台式设置接口。仿真结果有力地支持了测试装置的有效性,在将预期控制器部署到脊柱磨损模拟器之前,使用HIL仿真来验证和验证其准确性和鲁棒性。这种测试控制器的方法为测试先进的控制算法提供了广泛的可能性,这些算法可以潜在地利用患者进行日常生活活动的真实数据,这些数据对人工关节有不利的要求。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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