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Impacts of Adding Photovoltaic Solar System On-Board to Internal Combustion Engine Vehicles Towards Meeting 2025 Fuel Economy CAFE Standards

机译:将光伏太阳能系统载入内燃机车辆达到2025型燃料经济性咖啡馆标准的影响

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The challenge of meeting the Corporate Average Fuel Economy (CAFE) standards of 2025 has led to major developments in the transportation sector, among which is the attempt to utilize clean energy sources. To date, use of solar energy as an auxiliary source of on-board fuel has not been extensively investigated. This paper is the first study at undertaking a comprehensive analysis of using solar energy on-board by means of photovoltaic (PV) technologies to enhance automotive fuel economies, extend driving ranges, reduce greenhouse gas (GHG) emissions, and ensure better economic value of internal combustion engine (ICE) -based vehicles to meet CAFE standards though 2025. This paper details and compares various aspects of hybrid solar electric vehicles with conventional ICE vehicles. Different driving locations, vehicle sizes, various driving patterns and different cost scenarios are used in order to enhance the current understanding of the applicability and effectiveness of using on-board PV modules in individual automobiles and ensure an accurate representation of driving conditions in all U.S states at any time. These times and location-dependent results obtained over a year show an increase in the combined mile per gallon (MPG) at noon in the range of 2.9-9.5% for a vehicle similar to a Tesla S, and a significant increase in the range of 10.7-42.2% for lightweight and aerodynamic efficient vehicles. In addition, by adding on-board PVs to cover less than 50% of the projected horizontal surface area of a typical mid-size vehicle (e.g., Toyota Camry or Nissan Leaf), up to 50% of total daily miles traveled by an average U.S. person could be driven by solar energy. Also, the return on investment (ROI) of adding PVs on-board with ICE vehicle over its lifetime shows only negative values when the price of gasoline remains below $4.0 per gallon and the vehicle is driven in low-solar energy area (e.g., Boston, MA). The same ROI is more than 250% if the vehicle is driven in high-solar energy area (e.g., Arizona), even if the gasoline price remains low. For future price scenarios, this ROI is much higher - nearly 10 times the investment cost under some scenarios, with the assumption of an eventual decline in battery costs. With regard to environmental impacts, significant gasoline gallons savings (~500-3400) and CO_2 emission reduction (~5.0 to 34.0 short tons) are achieved.
机译:满足公司平均燃油经济(咖啡厅)标准的挑战导致了运输部门的主要发展,其中包括利用清洁能源。迄今为止,迄今为止,使用太阳能作为载燃料燃料源的辅助来源尚未得到广泛研究。本文是第一次通过光伏(PV)技术采用太阳能车床综合分析,以增强汽车燃料经济体,延长驾驶范围,减少温室气体(GHG)排放,确保更好的经济价值基于2025年的内燃机(ICE)基于咖啡厅标准的车辆。本文详细介绍了混合太阳能电动汽车与传统冰车的各个方面。使用不同的行驶位置,车辆尺寸,各种驾驶模式和不同的成本场景,以提高当前对单个汽车上使用车载光伏模块的应用性和有效性的现有认识,并确保所有美国各州的驾驶条件准确表示随时。在一年中获得的这些时间和地点依赖结果显示中午的每加仑(MPG)的联合英里的增加的增加2.9-9.5%的车辆,类似于Tesla S的载体,以及范围内的显着增加重量轻和空气动力学高效车辆10.7-42.2%。此外,通过添加典型中型车辆(例如,丰田Camry或Nissan Leaf)的投影水平表面区域的载舷内PV,占每日总线的50%,平均美国人可以由太阳能驱动。此外,当汽油价格低于每加仑4.0美元时,在其寿命中添加PVS车载载板的投资回报(ROI)仅显示负值,并且车辆在低太阳能区域(例如,波士顿)驱动, 嘛)。如果车辆在高太阳能区域(例如,亚利桑那州)的驱动,同样的ROI也超过250%,即使汽油价格仍然低。对于未来的价格方案,这项投资回报率较高 - 在某些情况下的投资成本近10倍,假设最终的电池成本下降。关于环境影响,实现了显着的汽油加仑(〜500-3400)和CO_2排放减少(〜5.0至34.0短吨)。

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