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首页> 外文期刊>IEEE transactions on industrial informatics >Optimal Sizing and Energy Management for Cost-Effective PEV Hybrid Energy Storage Systems
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Optimal Sizing and Energy Management for Cost-Effective PEV Hybrid Energy Storage Systems

机译:具有成本效益PEV混合能量存储系统的最佳施胶和能量管理

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摘要

In battery/ultracapacitor (UC) hybrid energy storage systems (HESS), sizing and energy management strategies are crucial, which determine the system cost and performance. However, research on these two problems in a coupled manner for plug-in electric vehicles is still immature. This article aims at resolving this issue in the perspective of minimizing the average operating cost. Both manufacturing cost and system end-of-life timing are incorporated. A quantitative battery degradation model is employed to evaluate the battery dynamic capacity loss and cycle life. Dynamic programming algorithm is then deployed to achieve optimal power distribution between battery and UC. Furthermore, the power management and HESS optimal sizing strategies are unified into a single cost-minimization problem. Combining those efforts, the optimal size of the HESS with minimized average operating cost is solved by simulated annealing method. Optimization results illustrate that a minimum cost of 15.52 USD is achieved with 72 UC cells and 7100 battery cells. A large set of simulation data has proved the optimality of the optimization results. Compared with the battery-only solution, the proposed solution demonstrates 11.9% cost reduction and 21.7% battery cycle life extension under the Urban Dynamometer Driving Schedule. Moreover, the temperature rise of the battery is reduced by 31.1%. Finally, based on the optimal results, the energy management strategy is extended to fit real-time applications by utilizing Markov chain and stochastic dynamic programming.
机译:在电池/超容量(UC)混合能量存储系统(HESS)中,尺寸和能量管理策略至关重要,确定系统成本和性能。然而,以耦合的方式用于插入电动车辆的这两个问题仍然是不成熟的。本文旨在以最大限度地降低平均运营成本的角度解决此问题。制造成本和系统寿命结束时机都是合并的。采用定量电池劣化模型来评估电池动态容量损耗和循环寿命。然后部署动态编程算法以在电池和UC之间实现最佳功率分布。此外,电源管理和HESS最佳尺寸策略统一到单一的成本最小化问题中。结合那些努力,通过模拟的退火方法解决了具有最小化平均操作成本的HESS的最佳尺寸。优化结果表明,使用72 UC电池和7100个电池单元实现了15.52 USD的最小成本。一组大量仿真数据已经证明了优化结果的最优性。与仅电池的解决方案相比,所提出的解决方案表现出11.9%的成本降低和城市测力计驾驶日程下的21.7%的电池循环寿命延伸。此外,电池的温度升高减少了31.1%。最后,根据最佳结果,通过利用马尔可夫链和随机动态规划,扩展了能量管理策略以适应实时应用。

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