School of Engineering, Indian Institute of Technology Mandi, MANDI, Kamand, 175075, Himachal Pradesh, India.
School of Mechanical and Aerospace Engineering, Nanyang Technological University, 50 Nanyang Avenue, Singapore, 639798, Singapore.
Sci Rep. 2022 Dec 30;12(1):22610. doi: 10.1038/s41598-022-26834-3.
Finite element studies were conducted on 0.5Ba(Zr Ti) O-0.5(Ba Ca)TiO (BCZT) piezoelectric particles embedded in polyethylene matrix to create a piezocomposite having a positive and negative Poisson's ratio of -0.32 and 0.2. Polyethylene with a positive Poisson's ratio is referred to as non-auxetic while those with negative Poisson's ratio are referred to as auxetic or inherently auxetic. The effective elastic and piezoelectric properties were calculated at volume fractions of (4%, 8% to 24%) to study their sensing and harvesting performance. This study compared lead-free auxetic 0-3 piezocomposite for sensing and energy harvesting with non-auxetic one. Inherently auxetic piezocomposites have been studied for their elastic and piezoelectric properties and improved mechanical coupling, but their sensing and energy harvesting capabilities and behavior patterns have not been explored in previous literatures. The effect of Poisson's ratio ranging between -0.9 to 0.4 on the sensing and energy harvesting performance of an inherently auxetic lead free piezocomposite composite with BCZT inclusions has also not been studied before, motivating the author to conduct the present study. Auxetic piezocomposite demonstrated an overall improvement in performance in terms of higher sensing voltage and harvested power. The study was repeated at a constant volume fraction of 24% for a range of Poisson's ratio varied between -0.9 to 0.4. Enhanced performance was observed at the extreme negative end of the Poisson's ratio spectrum. This paper demonstrates the potential improvements by exploiting auxetic matrices in future piezocomposite sensors and energy harvesters.
对 0.5Ba(ZrTi)-0.5(BaCa)TiO3 (BCZT) 压电颗粒嵌入聚乙烯基体的有限元研究,以制造具有-0.32 和 0.2 的正、负泊松比的压电器件复合材料。具有正泊松比的聚乙烯称为非各向异性,而具有负泊松比的聚乙烯称为各向异性或固有各向异性。在体积分数为(4%、8%至 24%)的范围内计算了有效弹性和压电性能,以研究其传感和采集性能。这项研究比较了无铅各向异性 0-3 压电器件复合材料在传感和能量采集方面与非各向异性材料的性能。固有各向异性压电器件复合材料因其弹性和压电性能以及改进的机械耦合而得到研究,但它们的传感和能量采集能力及其行为模式在以前的文献中尚未得到探索。以前也没有研究过泊松比在-0.9 到 0.4 之间对具有 BCZT 夹杂物的无铅固有各向异性压电器件复合材料的传感和能量采集性能的影响,这促使作者进行了本研究。在传感电压和采集功率方面,各向异性压电器件复合材料的性能得到了整体提高。在泊松比在-0.9 到 0.4 之间变化的恒定体积分数为 24%的条件下,重复进行了该研究。在泊松比谱的极端负端观察到了增强的性能。本文通过利用各向异性矩阵在未来的压电器件复合材料传感器和能量收集器中展示了潜在的改进。