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A reduced order electrochemical and thermal model for a pouch type lithium ion polymer battery with LiNixMnyCo1-x-yO2/LiFePO4 blended cathode

机译:具有LiNixMnyCo1-x-yO2 / LiFePO4混合阴极的袋型锂离子聚合物电池的降阶电化学和热模型

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摘要

LiNixMnyCo1-x-yO2 (NMC) and LiFePO4 (LFP) as a cathode material have been widely employed for cells designed for high power applications. However, NMC needs further improvements in rate capability and stability that can be accomplished by blending it with LFP. Working mechanism of the blended cells is very complex and hard to understand. In addition, characteristics of the blended cells, particularly the plateau and path dependence of LFP materials, make it extremely difficult to estimate the state of charge and state of health using classical electric equivalent circuit models. Therefore, a reduced order model based on electrochemical and thermal principles is developed with objectives for real time applications and validated against experimental data collected from a large format pouch type of lithium ion polymer battery. The model for LFP is based on a shrinking core model along with moving boundary and then integrated into NMC model. Responses of the model that include SOC estimation and responses of current and voltage are compared with those of experiments at CC/CV charging and CC discharging along with different current rates and temperatures. In addition, the model is used to analyze effects of mass ratios between two materials on terminal voltage and heat generation rate. (C) 2015 Elsevier B.V. All rights reserved.
机译:LiNixMnyCo1-x-yO2(NMC)和LiFePO4(LFP)作为阴极材料已被广泛用于设计用于高功率应用的电池。但是,NMC需要进一步提高速率能力和稳定性,这可以通过将其与LFP混合来实现。混合细胞的工作机制非常复杂且难以理解。此外,混合电池的特性,特别是LFP材料的平稳性和路径依赖性,使得使用经典的等效电路模型来估计电荷状态和健康状态极为困难。因此,开发了基于电化学和热原理的降阶模型,其目标是实时应用,并针对从大​​型袋式锂离子聚合物电池收集的实验数据进行了验证。 LFP模型基于收缩核心模型和移动边界,然后集成到NMC模型中。将模型的响应(包括SOC估计以及电流和电压的响应)与CC / CV充电和CC放电以及不同电流速率和温度下的实验的响应进行了比较。此外,该模型还用于分析两种材料之间的质量比对端电压和产热率的影响。 (C)2015 Elsevier B.V.保留所有权利。

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