汽车工程
电池(电)
燃料效率
柴油
再生制动器
环境科学
工程类
电气工程
化学
制动器
功率(物理)
物理
量子力学
作者
Bryant Goodenough,Alexander Czarnecki,Darrell Robinette,Jeremy Worm,David Subert,Dylan Kiefer,Matthew J. Heath,Bob Brunet,Robert Kisul,Phil Latendresse,J.J. Westman,T. Andrew Black
标识
DOI:10.4271/14-14-02-0009
摘要
<div>With current and future regulations continuing to drive reductions in carbon dioxide equivalent (CO<sub>2</sub>e) emissions in the on-road industry, the off-road industry is also likely to be regulated for fuel and CO<sub>2</sub>e savings. This work focuses on converting a heavy-duty off-road material handler from a conventional diesel powertrain to a plug-in series hybrid, achieving a 49% fuel reduction and 29% CO<sub>2</sub>e reduction via simulation. Control strategies were refined for energy savings, including a regenerative braking strategy to increase regenerative braking and a load-following hydraulic strategy to decrease electrical energy consumption. The load-following hydraulic control shuts off the hydraulic electric machine when it is not needed—an approach not previously seen in a load-sensing, pressure-compensated system. These strategies achieved a 24.1% fuel savings, resulting in total savings of 61% in fuel and 41% in CO<sub>2</sub>e in the plug-in series compared to the conventional machine. Beyond control strategies, this study evaluated battery chemistry and charging strategy refinements for total cost of ownership (TCO) and lifetime CO<sub>2</sub>e. LFP batteries emerged as the most cost-effective and least emitting due to their longer lifespan, which reduced replacement frequency. Charging comparisons showed that Level 2 charging (L2C) typically resulted in lower TCO but higher lifetime CO<sub>2</sub>e than DC fast charging (DCFC). DCFC costs were heavily influenced by local demand charges, and DCFC emissions were heavily influenced by local grid emissions.</div>
科研通智能强力驱动
Strongly Powered by AbleSci AI