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Phase-field modeling and machine learning of electric-thermal-mechanical breakdown of polymer-based dielectrics

机译:聚合物基电介质电热机械击穿的相场建模和机器学习

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摘要

Understanding the breakdown mechanisms of polymer-based dielectrics is critical to achieving high-density energy storage. Here a comprehensive phase-field model is developed to investigate the electric, thermal, and mechanical effects in the breakdown process of polymer-based dielectrics. High-throughput simulations are performed for the P(VDF-HFP)-based nanocomposites filled with nanoparticles of different properties. Machine learning is conducted on the database from the high-throughput simulations to produce an analytical expression for the breakdown strength, which is verified by targeted experimental measurements and can be used to semiquantitatively predict the breakdown strength of the P(VDF-HFP)-based nanocomposites. The present work provides fundamental insights to the breakdown mechanisms of polymer nanocomposite dielectrics and establishes a powerful theoretical framework of materials design for optimizing their breakdown strength and thus maximizing their energy storage by screening suitable nanofillers. It can potentially be extended to optimize the performances of other types of materials such as thermoelectrics and solid electrolytes.
机译:了解聚合物基电介质的击穿机理对于实现高密度储能至关重要。在这里,开发了一个综合的相场模型来研究聚合物基电介质击穿过程中的电,热和机械效应。对填充有不同性质纳米粒子的P(VDF-HFP)基纳米复合材料进行了高通量模拟。从高通量模拟对数据库进行机器学习,以生成击穿强度的解析表达式,该表达式已通过有针对性的实验测量进行了验证,可用于半定量预测基于P(VDF-HFP)的击穿强度纳米复合材料。本工作为聚合物纳米复合电介质的击穿机理提供了基本的见识,并建立了强大的材料设计理论框架,以优化其击穿强度,从而通过筛选合适的纳米填料来最大化其能量存储。它可以潜在地扩展以优化其他类型的材料(例如热电和固体电解质)的性能。

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