首页> 外文会议>ASME Conference on Smart Materials, Adaptive Structures and Intelligent Systems >THERMODYNAMIC ANALYSIS OF A DIRECT MECHANICAL TO ELECTRICAL ENERGY HARVESTING CYCLE IN FERROELECTRIC CRYSTALS
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THERMODYNAMIC ANALYSIS OF A DIRECT MECHANICAL TO ELECTRICAL ENERGY HARVESTING CYCLE IN FERROELECTRIC CRYSTALS

机译:铁电晶体直接机械与电能收割循环的热力学分析

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Field induced phase transformations in ferroelectric crystals occur when the applied electrical or mechanical load exceeds a certain threshold. Mechanical cycling about these transformation field thresholds under varying open and closed circuit conditions has been shown to yield a near ideal mechanical to electrical energy harvesting technique. Numerical integration of experimentally measured stress - strain and electric field - electric displacement data has shown mechanical to electrical energy conversion efficiency near 60% for 0.24PIN-0.44PMN-0.32PT. In this work, the total irreversible energy is determined by the offset between the forward and reverse loading paths, equivalent to the hysteresis in the phase transformation behavior. This is equal to the available mechanical energy for conversion to electrical energy for harvesting. Following the ideal mechanical to electrical energy harvesting procedure, the total possible energy harvested is a direct function of the hysteresis area in the phase transformation and the electromechanical coupling factor. Efficiency is predicted to be equal to the electromechanical coupling factor, 0.596 (59.6%). Predicted results agree with experimental data from numerical integration. Energy densities are calculated up to 5 kJ/m~3 with potential power densities of 10~2-10~3 kW/m~3.
机译:当施加的电气或机械负载超过一定阈值时,发生铁电晶体中的励磁诱导相变。已经示出了关于这些变化场阈值的机械循环,该变化场阈值在不同的开口和闭合电路条件下已经显示出近乎理想的机械与电能收缩技术。实验测量应力 - 应变和电场 - 电置换数据的数值整合已经显示为电能转换效率的电气能转换效率接近60%,0.24pin-0.44pmn-0.32pt。在这项工作中,通过前向和反向加载路径之间的偏移来确定总不可逆能量,其等于相变行为中的滞后。这等于可用的机械能量,用于转换为用于收获的电能。在理想的机械到电能收集过程之后,收获的总可能能量是相变和机电耦合因子中的滞后区域的直接功能。预测效率等于机电耦合因子,0.596(59.6%)。预测结果与数字集成的实验数据一致。能量密度计算高达5 kJ / m〜3,潜在的电力密度为10〜2-10〜3 kW / m〜3。

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