Development of Biomechanical Response Curves for the Calibration of Biofidelic Measuring Devices Used in Robot Collision Testing.

IF 1.7 4区 医学 Q4 BIOPHYSICS
Roland Behrens, Jan Zimmermann, Zechang Wang, Sebastian Herbster, Norbert Elkmann
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引用次数: 0

Abstract

Collaborative robots (cobots) can be employed in close proximity to human workers without safety fences. The operation mode Power and Force Limiting requires that cobots not exceed the biomechanical limits of ISO/TS 15066 to ensure protection against injuries caused by collisions with them. Collision tests must be performed to prove that cobots cannot exceed the biomechanical limits. Such tests are performed with a biofidelic measuring device that measures contact forces and replicates the biomechanics of the human body. Biomechanical response curves serve as a reference for the calibration of such devices. In order to be able to compare measurements and limits correctly and reliably, the limits and response curves for calibration must be obtained from the same data with the same methodology. In this article, we present a new technique for developing biomechanical response curves, which employs a statistical model we used to calculate biomechanical limits for cobots in a previous study. This technique's development process entails normalizing the data over force, resampling them and then fitting the newly obtained samples to a log-normal distribution. The statistical model makes it possible to produce response curves for the same quantile we used for the limits. Our technique adds a confidence region around each response curve to express the sufficiency of the available data. We have produced response curves for 24 different body locations for which we have calculated limits. These curves will enable manufacturers of cobot testing equipment to calibrate their measuring devices precisely.

开发生物力学响应曲线,用于校准机器人碰撞测试中使用的生物保真度测量设备。
协作机器人(cobots)可以在没有安全围栏的情况下与人类工人近距离操作。操作模式 "功率和力限制 "要求协作机器人不能超过 ISO/TS 15066 规定的生物力学极限,以确保与协作机器人碰撞时不会造成伤害。必须进行碰撞测试,以证明机器人不会超过生物力学极限。此类测试使用生物仿真测量装置进行,该装置可测量接触力并复制人体的生物力学。生物力学响应曲线可作为校准此类设备的参考。为了能够正确可靠地比较测量值和极限值,校准用的极限值和响应曲线必须采用相同的方法从相同的数据中获得。在本文中,我们介绍了一种开发生物力学响应曲线的新技术,该技术采用了我们在之前的研究中用于计算 cobots 生物力学极限的统计模型。该技术的开发过程包括对力的数据进行归一化处理、重新取样,然后将新获得的样本拟合为对数正态分布。通过统计模型,我们可以生成与限值相同的响应曲线。我们的技术在每条响应曲线周围增加了一个置信区域,以表示可用数据的充分性。我们已经为 24 个不同的身体位置生成了响应曲线,并计算出了限值。这些曲线将帮助 cobot 测试设备制造商精确校准其测量设备。
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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来源期刊
CiteScore
3.40
自引率
5.90%
发文量
169
审稿时长
4-8 weeks
期刊介绍: Artificial Organs and Prostheses; Bioinstrumentation and Measurements; Bioheat Transfer; Biomaterials; Biomechanics; Bioprocess Engineering; Cellular Mechanics; Design and Control of Biological Systems; Physiological Systems.
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