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Ultra-fast DC-charge infrastructures for EV-mobility and future smart grids

机译:超快速直流充电基础设施,用于电动汽车和未来的智能电网

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Nowadays Power Electronics (PE) is entering more and more in technology which traditionally belongs to different engineering disciplines. E-mobility is one of these. Power Electronics in fact imposes itself as an emerging technology to enhance sustainable mobility, addressing all the engineering aspects starting from energy distribution for charging purposes until energy transformation on board of the traction related vehicles. This paper in particular focuses on newly developed PE infrastructure technologies enabling fast battery charging processes. Depending on the battery and vehicle type, a recharge sufficient for a travel range of more than 100km in less than 10 min is readily achievable. As battery technologies continuously advance, recharging will become available with the speed and simplicity of a today's fuel stop. Two PE converter architectures for recharging infrastructure applications will be presented and discussed based on both low-frequency (LF) and high-frequency (HF) isolation requirements. Technical evaluation of the two different technologies will be addressed and presented, including a pro- and contra analysis. The impact on the grid is studied by means of simulation with the assumption of a dc fast charging station placed in a rural area in Sweden.
机译:如今,电力电子(PE)越来越多地进入传统上属于不同工程学科的技术。电动汽车就是其中之一。实际上,电力电子技术本身就是一种增强可持续交通能力的新兴技术,涉及从充电分配能源到牵引相关车辆的能量转换等所有工程问题。本文特别关注于实现快速电池充电过程的最新开发的PE基础设施技术。根据电池和车辆类型的不同,很容易在不到10分钟的时间内完成100公里以上行驶里程的充足充电。随着电池技术的不断发展,今天的加油站的速度和简便性将使充电成为可能。基于低频(LF)和高频(HF)隔离要求,将介绍和讨论用于基础设施充电的两种PE转换器架构。将介绍和介绍两种不同技术的技术评估,包括前后对比分析。假设在瑞典农村地区放置了一个直流快速充电站,通过模拟研究了对电网的影响。

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