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Blueprint and Implementation of Rural Stand-Alone Power Grids with Second-Life Lithium Ion Vehicle Traction Battery Systems for Resilient Energy Supply of Tropical or Remote Regions

机译:带有第二生命锂离子车辆牵引电池系统的农村独立电网的蓝图和实施用于热带或偏远地区的弹性能源供应

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摘要

Developed societies with advanced economic performance are undoubtedly coupled with the availability of electrical energy. Whilst industrialized nations already started to decrease associated carbon emissions in many business sectors, e.g., by substituting combustion engines with battery-powered vehicles, less developed countries still lack broad coverage of reliable electricity supply, particularly in rural regions. Progressive electrification leads to a need for storage capacity and thus to increasing availability of advanced battery systems. To achieve a high degree of sustainability, re-used batteries from the electromobility sector are appropriate, as they do not consume further primary resources and still have sufficient residual capacity for stationary electrical storage applications. In this article, a blueprint for the electrification of a remote region by utilizing second-life lithium ion traction batteries for an integrated energy system in a stand-alone grid is presented and the implementation by the example case of a Tanzanian island in Lake Victoria is demonstrated. First, economic potentials and expected trends in the disposability of second-life lithium ion batteries and their foreseeable costs are outlined. Subsequently, key decision variables are identified to evaluate logistic aspects and the feasibility of the implementation of an off-grid electrical system in remote areas for economically and geographically unfavorable environments. The practical realization is pictured in detail with a focus on technical performance and safety specificities associated with second-life applications. Therefore, a new type of battery management system is introduced, which meets the special requirements of climate compatibility, low maintenance, enhanced cell balancing capability and cell configuration flexibility, and combined with a fiber-optical sensor system, provides reliable status monitoring of the battery. By carrying out on-site measurements, the overall system efficiency is evaluated along with a sustainability analysis. Finally, the socioeconomic and humanitarian impact for the people on the island is debated.
机译:经济发达的发达社会无疑与电能的可获得性相结合。工业化国家已经开始减少许多商业领域的相关碳排放量,例如通过用电池驱动的车辆代替内燃机,而欠发达国家仍然缺乏可靠的电力供应,特别是在农村地区。渐进的电气化导致对存储容量的需求,从而导致高级电池系统的可用性增加。为了实现高度的可持续性,来自电动汽车领域的可重复使用的电池是合适的,因为它们不会消耗更多的主要资源,并且对于固定式电存储应用仍然具有足够的剩余容量。在本文中,提出了通过在独立电网中利用二次生命锂离子牵引电池用于集成能源系统的偏远地区电气化的蓝图,并以维多利亚湖中坦桑尼亚小岛的实例为例进行了实现。演示。首先,概述了第二次使用锂离子电池的可处置性的经济潜力和预期趋势以及可预见的成本。随后,确定关键决策变量,以评估物流方面以及在偏远地区针对经济和地理环境不利的环境实施离网电力系统的可行性。详细描述了实际实现,重点关注与第二次生命应用相关的技术性能和安全特性。因此,推出了一种新型的电池管理系统,该系统可满足气候兼容性,低维护,增强的电池平衡能力和电池配置灵活性的特殊要求,并与光纤传感器系统结合使用,可提供可靠的电池状态监控。通过进行现场测量,可以评估整体系统效率以及可持续性分析。最后,对岛上人民的社会经济和人道主义影响进行了辩论。

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