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Integrating battery energy storage with a BMS for reliability, efficiency, and safety in vehicles

机译:将电池储能用BMS集成,以实现车辆的可靠性,效率和安全性

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The choice of energy storage chemistry and battery management for transportation applications is at best challenging. The use of regenerative braking puts strain on some chemistries and the BMS (Battery Management System) needs to manage disparate criteria (temperature, altitude, maximum C rate, state of charge, cycle life, etc) to obtain maximum energy storage, round trip efficiency and safety. The different requirements of POWER needs compared with ENERGY needs are yet another set of constraints. The advent of PHEV (Plug in Hybrid Electric Vehicles) adds more complication and the vision of V to G (Vehicle to Grid) complicates the matter significantly more. This paper reviews safety criteria for lithium ion battery chemistries system and then introduces criteria for matching the battery type to the BMS system. The question of why a computer notebook type BMS isn't the best choice for a vehicle is discussed. Since most vehicles can stop faster than they start, there is more kinetic power available with regenerative braking than the power necessary for accelerating the vehicle. This gives rise to either choosing symmetric charge-discharge chemistries or over designing for a non-symmetric case. The marriage of the battery energy storage system to the BMS/power electronics provides the system with efficiency, reliability, and safety. This marriage must be completely understood for optimized system design.
机译:用于运输应用的能量存储化学和电池管理的选择处于最佳挑战性。再生制动的使用对一些化学物质进行了应变,并且BMS(电池管理系统)需要管理不同的标准(温度,高度,最大C速率,充电状态,充电状态,循环寿命等),以获得最大的能量存储,往返效率和安全。与能量需求相比,电力需求的不同要求是另一组约束。 PHEV的出现(插头在混合动力电动车辆)增加了更多的复杂性,V到G的视野(车辆到Grid)显着变得更加复杂。本文审查了锂离子电池化学物质系统的安全标准,然后引入了与BMS系统相匹配的标准。为什么计算机笔记本类型BMS的问题不是讨论了车辆的最佳选择。由于大多数车辆可以比开始速度更快地停止,因此具有比加速车辆所需的功率更高的动力可用。这导致选择对称电荷 - 放电化学物质或在非对称情况下设计。电池储能系统与BMS / Power Electronics的婚姻提供效率,可靠性和安全性的系统。对于优化的系统设计,必须完全理解这种婚姻。

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