首页> 外文会议>2011 IEEE Long Island Systems, Applications and Technology Conference >Active cell balancing system using an isolated share bus for Li-Ion battery management: Focusing on satellite applications
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Active cell balancing system using an isolated share bus for Li-Ion battery management: Focusing on satellite applications

机译:使用隔离共享总线进行锂离子电池管理的有源电池平衡系统:专注于卫星应用

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Commercial and military satellites rely on high performance battery systems to supplement power provided by solar panels. Lithium Ion (Li-Ion) batteries have a higher power density and can operate at a higher state of charge (SOC) than the Nickel Hydrogen (NiH2) batteries commonly used on communications satellites. The higher energy density and SOC of Li-Ion allows designers to utilize a smaller and lighter battery for a given space mission requirement. This reduces the launch mass and volume of the satellite electrical power system (EPS), allowing more to be allocated to payload. Li-Ion batteries require specialized management, monitoring and control to maintain the safe operation of the power system with mission critical reliability in space flight. Improper charging, balancing or discharge can cause a battery to operate unsafely. It can permanently degrade battery cell performance, or in the worst case, cause catastrophic cell failure. With proper cell charging and balancing, a high state of charge (SOC) can be maintained, and longer battery life achieved. This paper describes an autonomous, active Li-Ion battery cell balancing methodology for GEO (geosynchronous orbit) and LEO (low earth orbit) satellites that employs innovative design and circuit features. The BEU (Battery Electronics Unit) described herein incorporates an isolated “share bus” architecture with resonant magnetic coupling in a synchronous, floating voltage balancing system. It also includes individual cell voltage monitoring, telemetry data, and cell bypass drivers. The authors explain the need for such balancing systems and how they interoperate with charging mechanisms currently in use on satellites today. The advantages of the active BEU balancing methods compared to the alternative passive resistor-shunt method are discussed in the context of the extreme environments and conditions of a GEO/LEO space vehicle. Applications for cell balancing and management in utility grade Li---Ion battery energy storage as well as electric and PHEV vehicles (Plug in Hybrid Electric Vehicles) are also considered.
机译:商业和军事卫星依靠高性能电池系统来补充太阳能电池板提供的电力。与通常用于通信卫星的镍氢(NiH2)电池相比,锂离子(Li-Ion)电池具有更高的功率密度,并且可以在更高的充电状态(SOC)下运行。锂离子电池的较高能量密度和SOC可让设计人员针对给定的太空任务需求使用更小更轻的电池。这减少了卫星电力系统(EPS)的发射质量和体积,从而可以将更多分配给有效载荷。锂离子电池需要专门的管理,监视和控制,以维持电力系统的安全运行,并且在太空飞行中具有至关重要的可靠性。不正确的充电,平衡或放电会导致电池运行不安全。它可能会永久降低电池的性能,或者在最坏的情况下会导致灾难性的电池故障。通过适当的电池充电和平衡,可以维持较高的充电状态(SOC),并可以实现更长的电池寿命。本文介绍了采用创新设计和电路功能的GEO(地球同步轨道)和LEO(低地球轨道)卫星的自主,有源锂离子电池平衡方法。本文所述的BEU(电池电子单元)在同步,浮动电压平衡系统中结合了具有共振磁耦合功能的隔离式“共享总线”架构。它还包括单个电池电压监控,遥测数据和电池旁路驱动器。作者解释了对这种平衡系统的需求,以及它们如何与当今卫星上当前使用的充电机制互操作。在GEO / LEO航天器的极端环境和条件下,讨论了有源BEU平衡方法与替代性无源电阻分流方法相比的优势。公用事业锂电池在电池平衡和管理中的应用- -- 还考虑了离子电池能量存储以及电动和PHEV车辆(混合动力车辆中的插头)。

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