首页> 外文会议>ASME Annual Dynamic Systems and Control Conference >MAXIMIZING PARAMETER IDENTIFIABILITY OF AN EQUIVALENT-CIRCUIT BATTERY MODEL USING OPTIMAL PERIODIC INPUT SHAPING
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MAXIMIZING PARAMETER IDENTIFIABILITY OF AN EQUIVALENT-CIRCUIT BATTERY MODEL USING OPTIMAL PERIODIC INPUT SHAPING

机译:最大限度地利用最优周期性输入整形最大限度地提高等效电路电池型号的参数标识

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This paper shapes the periodic cycling of a lithium-ion battery to maximize the battery's parameter identifiability. The paper is motivated by the need for faster and more accurate lithium-ion battery diagnostics, especially for transportation. Poor battery parameter identifiability makes diagnostics challenging. The existing literature addresses this challenge by using Fisher information to quantify battery parameter identifiability, and showing that test trajectory optimization can improve identifiability. One limitation is this literature's focus on offline estimation of battery model parameters from multi-cell laboratory cycling tests. This paper is motivated, in contrast, by online health estimation for a target battery or cell. The paper examines this "targeted estimation" problem for both linear and nonlinear second-order equivalent-circuit battery models. The simplicity of these models leads to analytic optimal solutions in the linear case, providing insights to guide the setup of the optimization problem for the nonlinear case. Parameter estimation accuracy improves significantly as a result of this optimization. The paper demonstrates this improvement for multiple electrified vehicle configurations.
机译:本文塑造了锂离子电池的周期性循环,以最大限度地提高电池的参数可识别性。本文的推动是需要更快,更准确的锂离子电池诊断,特别是用于运输。较差的电池参数可识别性使诊断具有挑战性。现有文献通过使用Fisher信息来量化电池参数可识别性,并显示测试轨迹优化可以提高可识别性的挑战来解决这一挑战。这种文献是来自多电池实验室循环试验的电池模型参数的离线估计的一个限制。相比之下,本文是通过针对目标电池或细胞的在线健康估计的动机。该论文检查了线性和非线性二阶等效电路电池模型的“目标估计”问题。这些模型的简单性导致线性情况下的分析最佳解决方案,提供了引导非线性情况的优化问题的洞察。参数估计精度因该优化而显着提高。本文展示了多个电气化的车辆配置的这种改进。

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