通过约束相场模型实现无枝晶锂金属电池

IF 1.3 Q2 MATHEMATICS, APPLIED
Ben Mansour Dia , Guy Olivier Ngongang Ndjawa
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引用次数: 0

摘要

采用锂金属阳极的高容量电池在阳极/电解质界面处会出现丝状枝晶生长,这对电池的性能和安全性产生了重大影响。在本研究中,我们引入了一种约束相场方法,通过将最优控制机制纳入相场演化中来模拟无枝晶电沉积。具体来说,通过引入能量泛函来抑制具有高曲率突起的界面的形成,可以减轻枝晶的形成。我们建立了一个耦合的多物理场模型,其中包括金属电极界面的非守恒Allen-Cahn方程,离子输运的反应-扩散(cahn - hilliard型)方程,以及具有Butler-Volmer边界动力学的静电电荷守恒。该模型在变分框架下求解,得到改进的相场演化方程,使沉积远离树突路径。我们的研究结果为设计充电协议和接口修改提供了一种新的范例,可以实现更安全的无枝晶锂金属电池。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enabling dendrite-free lithium metal batteries through a constrained phase-field model
High-capacity batteries that employ lithium-metal anodes experience filamentary dendrite growth at the anode/electrolyte interface, which significantly impacts battery performance and safety. In this study, we introduce a constrained phase-field approach to model dendrite-free electro-deposition by incorporating an optimal control mechanism into the phase-field evolution. Specifically, dendrite formation is mitigated by introducing an energy functional that penalizes the formation of interfaces with high-curvature protrusions. We develop a coupled multiphysics model comprising a nonconserved Allen–Cahn equation for the metal electrode interface, a reaction–diffusion (Cahn–Hilliard-type) equation for ionic transport, and electrostatic charge conservation with Butler–Volmer boundary kinetics. The model is solved under a variational framework, yielding modified phase-field evolution equations that steers deposition away from dendritic pathways. Our findings suggest a novel paradigm for designing charging protocols and interface modifications that could enable safer dendrite-free lithium-metal batteries.
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来源期刊
Results in Applied Mathematics
Results in Applied Mathematics Mathematics-Applied Mathematics
CiteScore
3.20
自引率
10.00%
发文量
50
审稿时长
23 days
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