美国轻型汽车采用共同优化的多模式发动机和燃料的潜力和益处

IF 5.2 3区 工程技术 Q2 ENERGY & FUELS Energy & Fuels Pub Date : 2024-11-05 DOI:10.1021/acs.energyfuels.4c0283710.1021/acs.energyfuels.4c02837
Doris Oke, Lauren Sittler, Troy R. Hawkins*, George G. Zaimes, Hao Cai, Aaron Brooker, Douglas Longman, Ram Vijayagopal, David Gohlke, Emily Newes, Avantika Singh, Jennifer Dunn and Daniel J. Gaspar, 
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引用次数: 0

摘要

探索多样化的脱碳技术组合对于了解不同技术解决方案的潜在影响及其对环境的相关影响至关重要。在共同优化的多模式发动机中使用高辛烷值、高灵敏度的生物燃料混合物可以提高发动机效率,减少汽车尾气排放。多模式发动机研究的重点是轻型汽车发动机的优势,这些发动机可以根据车辆的负载情况以多种模式运行。在低负荷运行时,低温燃烧可提高效率并减少排放(如氮氧化物和颗粒物的排放),而在高负荷运行时,火花点火性能得以保持。这些先进的发动机可以进行优化,以使用生物燃料混合燃料。本分析模拟了市场可能采用以三种不同生物燃料(乙醇、异丙醇和异丁醇)为燃料的共同优化多模式汽车的情景。采用综合建模方法预测了 2020-2050 年间轻型汽车领域采用共同优化的多模式车辆和燃料对能源和环境的影响。这种多学科方法结合了汽车销售建模、生物炼制工业系统动力学建模和生命周期评估,以估算排放和能源效益。模型考虑了市场力量,如消费者对汽车属性的偏好、生物燃料供需动态(受生物精炼产能建设和生物资源限制)以及美国大宗能源系统随时间推移的变化预测。在车辆增量成本和发动机效率改进的广泛参数空间内,对联合优化车辆的市场采用情况进行了评估。该分析表明,与 "一切照旧 "情景相比,到 2050 年,采用共同优化的多模式燃料和车辆可使整个行业生命周期内的温室气体(GHG)年排放量最多减少 5%,但同时也会带来环境权衡,如生命周期内更高的用水量。2050 年以后,随着新技术进入市场并站稳脚跟,排放效益可能会增加。研究结果还表明,在某些情况下,为使用高辛烷值、高灵敏度生物燃料混合燃料而对发动机进行共同优化的车辆,其成本与传统汽油相比具有竞争力,同时还能减少温室气体排放。我们的建模结果表明,协同优化的多模式燃料和发动机可与电气化一起战略性地用于轻型汽车领域的脱碳。共同优化的车辆可在时间跨度的早期发挥作用,而电动汽车(EV)则可在后期变得更具竞争力,这凸显了这些技术在减少温室气体排放方面的互补优势。
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Potential Adoption and Benefits of Co-Optimized Multimode Engines and Fuels for U.S. Light-Duty Vehicles

Exploring a diverse portfolio of technologies for decarbonization is crucial to understanding the potential impacts of different technological solutions and their associated environmental implications. Using high-octane, high-sensitivity biofuel blends in co-optimized multimode engines can increase engine efficiency and reduce vehicle emissions. The multimode engine research focuses on the benefits of light-duty vehicle engines, which can operate in multiple modes depending on the vehicle’s load. Low-temperature combustion can improve efficiency and reduce emissions (such as those from oxides of nitrogen and particulate matter) during low-load operation, while spark ignition performance is maintained in high-load operation. These advanced engines can be optimized to run on blends of biobased fuels. This analysis models scenarios for potential market adoption of co-optimized multimode vehicles fueled by three different bioblendstocks: ethanol, isopropanol, and isobutanol. An integrated modeling approach is used to forecast the energy and environmental impacts of the deployment of co-optimized multimode vehicles and fuels in the light-duty sector over the 2020-to-2050 time horizon. The multidisciplinary approach combines vehicle sales modeling, system dynamics modeling of the biorefining industry, and life cycle assessment to estimate the emissions and energy benefits. The models consider market forces such as consumer preferences for vehicle attributes, biofuel supply and demand dynamics subject to biorefinery capacity build-out and bioresource constraints, and forecasted changes to the U.S. bulk energy system over time. Market adoption of co-optimized vehicles is evaluated across a wide parameter space for incremental vehicle cost and engine efficiency improvement. This analysis reveals that the deployment of co-optimized multimode fuels and vehicles results in up to a 5% reduction in annual sector-wide life cycle greenhouse gas (GHG) emissions by 2050, relative to a business-as-usual scenario, but is also indicates environmental trade-offs, such as higher life cycle water-use. Emission benefits could potentially increase beyond 2050, as the new technologies penetrate the market and gain a foothold. Results also show that, under certain circumstances, vehicles with engines co-optimized for use with high-octane, high-sensitivity biofuel blends can be cost-competitive with conventional gasoline, while reducing GHG emissions. Our modeling results indicate that co-optimized multimode fuels and engines can be strategically leveraged in tandem with electrification to decarbonize the light-duty sector. Co-optimized vehicles could play a role in the early years of the time horizon, while electric vehicles (EVs) could become more competitive in the later years, highlighting the complementary benefits of these technologies for GHG reductions.

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来源期刊
Energy & Fuels
Energy & Fuels 工程技术-工程:化工
CiteScore
9.20
自引率
13.20%
发文量
1101
审稿时长
2.1 months
期刊介绍: Energy & Fuels publishes reports of research in the technical area defined by the intersection of the disciplines of chemistry and chemical engineering and the application domain of non-nuclear energy and fuels. This includes research directed at the formation of, exploration for, and production of fossil fuels and biomass; the properties and structure or molecular composition of both raw fuels and refined products; the chemistry involved in the processing and utilization of fuels; fuel cells and their applications; and the analytical and instrumental techniques used in investigations of the foregoing areas.
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