首页> 外文会议>ASME Conference on Smart Materials, Adaptive Structures and Intelligent Systems >ANALYTICAL MODELING OF A MULTIFUNCTIONAL SEGMENTED LITHIUM ION BATTERY UNIMORPH ACTUATOR
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ANALYTICAL MODELING OF A MULTIFUNCTIONAL SEGMENTED LITHIUM ION BATTERY UNIMORPH ACTUATOR

机译:多功能分段锂离子电池立管致动器的分析模型

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摘要

Silicon anodes in lithium ion batteries have high theoretical capacity and large volumetric expansion. In this paper, both characteristics are used in a segmented unimorph actuator consisting of several Si composite anodes on a copper current collector. Each unimorph segment is self-actuating during discharge and the discharge power can be provided to external circuits. With no external forces and zero current draw, the unimorph segments will maintain their actuated shape. Stress-potential coupling allows for the unimorph actuator to be self-sensing because bending changes the anodes' potential. An analytical model is derived from a superposition of pure bending and extensional deformation forces and moments induced by the cycling of a Si anode. An approximately linear relationship between axial strain and state of charge of the anode drives the bending displacement of the unimorph. The segmented device consists of electrically insulated and individually controlled segments of the Si-coated copper foil to allow for variable curvature throughout the length of the beam. The model predicts the free deflection along the length of the beam and the blocked force. Tip deflection and blocked force are shown for a range of parameters including segment thicknesses, beam length, number of segments, and state of charge. The potential applications of this device include soft robots and dexterous 3D grippers.
机译:锂离子电池中的硅阳极具有高理论能力和大容量膨胀。在本文中,两种特性用于分段的单身形式致动器,其由铜集电器上的几个Si复合阳极组成。在放电期间,每个单身段是自致的,并且可以向外部电路提供放电功率。没有外力和零电流绘制,单身段将保持其致动的形状。应力 - 电位耦合允许单身移动致动器是自感的,因为弯曲改变了阳极的潜力。分析模型来自纯弯曲和延伸变形力的叠加和Si阳极循环诱导的矩形。轴向应变和阳极的充电状态之间的大致线性关系驱动了单身弯曲的弯曲位移。分段装置由Si涂覆的铜箔的电绝缘和单独控制的区段组成,以允许在光束的整个长度中进行可变曲率。该模型预测沿光束的长度和阻挡力的自由偏转。尖端偏转和阻塞力被示出为一系列参数,包括段厚度,光束长度,段数和充电状态。该装置的潜在应用包括软机器和Dexterous 3D夹具。

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