首页> 外文会议>ASME International Technical Conference on Packaging and Intergation of Electronic and Photonic Microsystems >EFFECT OF FLEX-TO-INSTALL AND DYNAMIC FOLDING ON LI-ION BATTERY PERFORMANCE DEGRADATION SUBJECTED TO VARYING ORIENTATIONS, FOLDING SPEEDS, DEPTHS OF CHARGE AND C-RATES
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EFFECT OF FLEX-TO-INSTALL AND DYNAMIC FOLDING ON LI-ION BATTERY PERFORMANCE DEGRADATION SUBJECTED TO VARYING ORIENTATIONS, FOLDING SPEEDS, DEPTHS OF CHARGE AND C-RATES

机译:弯曲到安装和动态折叠对锂离子电池性能降解的影响,对不同取向,折叠速度,充电深度和C率的劣化

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摘要

The growing need for wearable devices, fitness accessories and biomedical equipment has led to the upsurge in research and development of thin flexible battery research and development. Wearable equipment and other asset monitoring applications require versatile installation of power sources on non-planar surfaces. For power sources in wearable electronics, perseverance towards repetitive mechanical stresses induced by human body motion is necessary along with the usual desirable characteristics such as high capacity, high C-rate capability and good life cycle stability. Prior studies which document the reliability of power sources subject to static and dynamic folding are scarce and at times fail to follow definitive test protocols which limit their application to real-life battery use scenarios. Particularly, the use of manual mechanical stressing of the power sources instead of a mechanical test setup is a key shortcoming in existing literature. Data is lacking on battery life cycling and in-situ mechanical stressing of the power sources including their impact of performance and reliability. Present study aims to overcome these deficiencies by testing a commercial Li-ion power source under static as well as dynamic folding. Furthermore, the fold-orientation and its fold-speed are varied to evaluate the effect of different mechanical stress topologies on the power source. Finally, a regression model was developed to capture the effect of these use parameters on battery capacity degradation.
机译:越来越需要可穿戴设备,健身配件和生物医学设备导致了薄柔性电池研发的研发的高潮。可穿戴设备和其他资产监视应用程序需要多功能安装非平面曲面上的电源。对于可穿戴电子设备中的电源,需要使用人体运动诱导的重复机械应力,以及通常所需的特性,例如高容量,高C速率能力和良好的生命周期稳定性。先前的研究记录了经过静态和动态折叠的动力源可靠性的研究是稀缺的并且有时无法遵循最终的测试协议,这将其应用于实际电池使用场景。特别是,使用手动机械应力的电源而不是机械测试设置是现有文献中的关键缺点。数据缺乏电池寿命循环和原位机械强调的电源,包括它们对性能和可靠性的影响。目前的研究旨在通过在静态以及动态折叠下测试商业锂离子电源来克服这些缺陷。此外,改变折叠取向及其折叠速度以评估不同机械应力拓扑对电源的影响。最后,开发了回归模型以捕获这些使用参数对电池容量劣化的影响。

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