基于发光太阳能聚光器的混合动力和插电式电动汽车的光伏重构

Caiwen Ding, Hongjia Li, Weiwei Zheng, Yanzhi Wang, N. Chang, X. Lin
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引用次数: 8

摘要

随着公众对能源危机的日益关注,混合动力和插电式电动汽车(hpev)越来越受欢迎。然而,由于hpev中电池的碳足迹相对较高,总碳足迹还不能显著减少。车载光伏系统将光伏电池安装在HPEV的引擎盖、车顶、后备箱和车门面板上,可以帮助推进车辆,并在有阳光的情况下为电池充电,因此,HPEV可以实现更好的里程。提出了一种可重构车载光伏系统,以解决不同车辆面板上太阳辐照度不均匀分布下的输出功率下降问题。然而,即使采用重构技术,在hpev上安装光伏电池仍然存在效率低、成本高、外观等局限性。为了解决这些限制,我们建议将基于半导体纳米材料的发光太阳能聚光器(LSC)增强光伏电池用于可重构的车载光伏系统。我们适当地优化了lsc增强型光伏电池的尺寸、宏电池的尺寸和重构周期,以实现系统性能与计算复杂性、能量开销和资本成本之间的平衡。此外,由于LSC聚合物的透明度和灵活性,我们考虑在车窗上使用LSC增强型光伏电池。实验表明,与基线光伏系统相比,基于lsc的光伏系统性能提高了2.49倍。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Luminescent solar concentrator-based photovoltaic reconfiguration for hybrid and plug-in electric vehicles
Along with growing public concerns over the energy crisis, hybrid and plug-in electric vehicles (HPEVs) are becoming increasingly popular. However, the total carbon footprint cannot be significantly reduced yet due to the relatively high carbon footprint of batteries in HPEVs. On-board PV systems, which mount PV cells on hood, roof, trunk, and door panels of an HPEV, can assist propelling the vehicle and enable battery charging whenever there is sunlight, and therefore, better mileage can be achieved for HPEVs. A reconfigurable on-board PV system has been proposed to tackle the output power degradation under a non-uniform distribution of solar irradiance levels on different vehicle panels. However, there are still some limitations for mounting PV cells on HPEVs even with the reconfiguration technique such as low efficiency, high cost, and appearance. To address these limitations, we propose to use semiconductor nanomaterials-based luminescent solar concentrators (LSC)-enhanced PV cells for the reconfigurable on-board PV systems. We properly optimize the size of the LSC-enhanced PV cell, the size of macrocells, and the reconfiguration period to achieve a balance between system performance and computation complexity, energy overhead, and capital cost. Furthermore, due to the transparency and flexibility of LSC polymer, we consider employing LSC-enhanced PV cells on vehicle windows. Experiments demonstrate up to 2.49× performance improvement of the proposed LSC-based PV system comparing with the baseline PV system.
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