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Thermal analysis and design of a multi-layered rigidity tunable composite

机译:多层刚度可调复合材料的热分析与设计

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Elastomer-based composites embedded with thermally-responsive material (TRM) and a liquid-phase Joule heater are capable of reversibly changing their elastic rigidity by up to four orders of magnitude. At room temperature, the TRM layer is rigid and prevents the surrounding elastomer from elastically bending or stretching. When activated, the embedded Joule heater softens or melts the TRM, which leads to a dramatic reduction in the elastic rigidity of the composite. In this manuscript, we examine the activation of these composites by performing analytical, numerical, and experimental studies of the temperature distribution, thermal history, and phase transition. We consider both low melting point (LMP) metal alloys (e.g. Field's metal) and shape memory polymer (SMP). An analytical solution using the Galer-kin Based Integral (GBI) method is derived for the cases where no phase change is involved, while a numerical scheme using the Latent Heat Accumulation (LHA) method is utilized to probe scenarios where phase change has a central role in the elastic rigidity change. The analytical and numerical studies predict a temperature history that is in good agreement with experimental measurements obtained with an IR thermometer. Analysis of the internal temperature distribution leads to scaling laws for determining the required activation time and allowable input power rate for composites containing either LMP alloys or SMP. These scaling laws could potentially be used to inform the design of rigidity tunable composites (RTC) used in assistive wearable technologies and biologically-inspired soft-matter robotics.
机译:嵌入了热响应材料(TRM)的弹性体基复合材料和液相焦耳加热器能够可逆地改变其弹性刚度达四个数量级。在室温下,TRM层是刚性的,可防止周围的弹性体发生弹性弯曲或拉伸。激活后,嵌入式焦耳加热器会软化或熔化TRM,从而导致复合材料的弹性刚度大大降低。在本手稿中,我们通过对温度分布,热历史和相变进行分析,数值和实验研究,研究了这些复合材料的活化。我们同时考虑了低熔点(LMP)金属合金(例如Field的金属)和形状记忆聚合物(SMP)。在不涉及相变的情况下,使用基于Galer-kin积分(GBI)的方法得出分析解决方案,而使用潜热累积(LHA)方法的数值方案则用于探究相变具有中心位置的情况在弹性刚度变化中的作用。分析和数值研究预测的温度历史与使用红外测温仪获得的实验测量结果非常吻合。内部温度分布的分析导致确定包含LMP合金或SMP的复合材料所需的活化时间和允许的输入功率比的定律。这些缩放定律可潜在地用于指导可穿戴辅助技术和受生物启发的软性机器人技术中使用的刚性可调复合材料(RTC)的设计。

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