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Efficient embedded architectures for fast-charge model predictive controller for battery cell management in electric vehicles

机译:用于电动汽车电池单元管理的快速充电模型预测控制器的高效嵌入式架构

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With the ever-growing concerns about carbon emissions and air pollution throughout the world, electric vehicles (EVs) are one of the most viable options for clean transportation. EVs are typically powered by a battery pack such as lithium-ion, which is created from a large number of individual cells. In order to enhance the durability and prolong the useful life of the battery pack, it is imperative to monitor and control the battery packs at the cell level. Model predictive controller (MPC) is considered as a feasible technique for cell-level monitoring and controlling of the battery packs. For instance, the fast-charge MPC algorithm keeps the Li-ion battery cell within its optimal operating parameters while reducing the charging time. In this case, the fast-charge MPC algorithm should be executed on an embedded platform mounted on an individual cell; however, the existing algorithm for this technique is designed for general-purpose computing. In this research work, we introduce novel, unique, and efficient embedded hardware and software architectures for the fast-charge MPC algorithm, considering the constraints and requirements associated with the embedded devices. We create two unique hardware versions: register-based and memory-based. Experiments are performed to evaluate and illustrate the feasibility and efficiency of our proposed embedded architectures. Our embedded architectures are generic, parameterized, and scalable. Our hardware designs achieved 100 times speedup compared to its software counterparts.
机译:全世界对碳排放和空气污染的关注日益增长,电动汽车(EV)是清洁运输最可行的选择之一。电动汽车通常由电池组(例如锂离子电池)供电,该电池组由大量单个电池组成。为了增强电池组的耐用性并延长其使用寿命,必须在电池单元级别监视和控制电池组。模型预测控制器(MPC)被认为是用于电池组电池级监测和控制的可行技术。例如,快速充电MPC算法可将锂离子电池单元保持在最佳工作参数范围内,同时减少充电时间。在这种情况下,应在安装在单个电池单元上的嵌入式平台上执行快速充电MPC算法;但是,该技术的现有算法是为通用计算而设计的。在这项研究工作中,我们考虑到与嵌入式设备相关的约束和要求,为快速充电MPC算法引入了新颖,独特,高效的嵌入式硬件和软件架构。我们创建了两个独特的硬件版本:基于寄存器和基于内存。进行实验以评估和说明我们提出的嵌入式体系结构的可行性和效率。我们的嵌入式体系结构是通用的,参数化的和可扩展的。与软件同类产品相比,我们的硬件设计实现了100倍的加速。

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