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Direct strain energy harvesting in automobile tires using piezoelectric PZT-polymer composites

机译:使用压电PZT-聚合物复合材料直接收集汽车轮胎中的应变能

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Direct piezoelectric strain energy harvesting can be used to power wireless autonomous sensors in environments where low frequency, high strains are present, such as in automobile tires during operation. However, these high strains place stringent demands on the materials with respect to mechanical failure or depolarization, especially at elevated temperatures. In this work, three kinds of ceramicpolymer composite piezoelectric materials were evaluated and compared against state-of-the-art piezoelectric materials. The new composites are unstructured and structured composites containing granular lead zirconate titanate (PZT) particles or PZT fibers in a polyurethane matrix. The composites were used to build energy harvesting patches which were attached to a tire and tested under simulated rolling conditions. The energy density of the piezoelectric ceramic-polymer composite materials is initially not as high as that of the reference materials (a macro-fiber composite and a polyvinylidene fluoride polymer). However, the area normalized power output of the composites after temperature and strain cycling is comparable to that of the reference devices because the piezoelectric ceramic-polymer composites did not degrade during operation.
机译:直接压电应变能采集可用于在存在低频,高应变的环境中为无线自主传感器供电,例如在操作过程中的汽车轮胎中。然而,这些高应变对材料提出了关于机械故障或去极化的严格要求,特别是在高温下。在这项工作中,对三种陶瓷聚合物复合压电材料进行了评估,并将其与最新的压电材料进行了比较。新的复合材料是非结构化和结构化的复合材料,在聚氨酯基体中包含锆酸钛酸铅(PZT)颗粒或PZT纤维。该复合材料用于构建能量收集补片,将其附着到轮胎上并在模拟滚动条件下进行测试。压电陶瓷-聚合物复合材料的能量密度最初不像参​​考材料(大纤维复合材料和聚偏二氟乙烯聚合物)那样高。但是,在温度和应变循环后,复合材料的面积归一化功率输出与参考器件相当,因为压电陶瓷-聚合物复合材料在运行过程中不会降解。

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