Correlation of Accelerated Tests with Human Body Measurements for Flexible Electronics in Wearable Applications

P. Lall, Tony Thomas, Jinesh Narangaparambil, Kartik Goyal, Hye-Yoen Jang, Vikas Yadav, Wei Liu
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引用次数: 3

Abstract

The increase in the use of flexible electronics in wearable applications has resulted in an increased focus on the study of movement characteristics of the human body and its impact on electronics under various day-to-day actions. The flexible electronics that are attached to the human body are tested for reliability under various conditions of human activity such as walking, jumping, squats, lunges, and bicep curls. The human body motion data during these different actions were measured using a set of ten Vicon cameras to measure the position, velocity, and accelerations of a standard full-body sensor location of a human body. The reliability model presented in this study uses the angle variations of each joint in the human body for all the five human activities listed above. Statistical analysis on the difference of each joint angle was tested with hypothesis testing strategies with different subjects and with various human body actions as well. Acceleration factor modeling on the reliability of the electronics was carried out using test data of flexible electronics subjected to bending, twisting, stretching, and folding experiments. These experiments are conducted on flexible electronic substrates until failure with in-situ resistance measurements to monitor the changes in the board during each of these experiments. The experimental measurements of the boards were combined with the human body motion data to model the acceleration factor for each of these tests.
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可穿戴应用中柔性电子产品加速测试与人体测量的相关性
在可穿戴应用中使用柔性电子产品的增加导致人们越来越关注人体运动特性及其在各种日常活动下对电子产品的影响的研究。附着在人体上的柔性电子设备在行走、跳跃、深蹲、弓步和肱二头肌弯曲等各种人体活动条件下进行可靠性测试。在这些不同的动作中,人体的运动数据是用一组十个Vicon相机来测量人体的位置、速度和加速度的标准全身传感器位置。本研究中提出的可靠性模型使用了上述所有五种人类活动中人体每个关节的角度变化。采用假设检验策略对不同被试和不同人体动作的关节角度差异进行统计分析。利用柔性电子器件的弯曲、扭转、拉伸和折叠实验数据,建立了电子器件可靠性的加速度因子模型。这些实验是在柔性电子基板上进行的,直到在每次实验期间使用原位电阻测量来监测板中的变化为止。将板子的实验测量结果与人体运动数据相结合,为每项测试建立加速因子模型。
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