Near-zero environmental impact aircraft

IF 5 3区 材料科学 Q2 CHEMISTRY, PHYSICAL Sustainable Energy & Fuels Pub Date : 2024-07-02 DOI:10.1039/d4se00419a
Prakash Prashanth, Jad Elmourad, Carla Grobler, Stewart Isaacs, Syed Shayan Zahid, James Abel, Christoph Falter, Thibaud Fritz, Florian Allroggen, Jayant S. Sabnis, Sebastian D. Eastham, Raymond L. Speth, Steven R. H. Barrett
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Abstract

The fundamental challenge facing today's aviation industry is to achieve net zero climate impacts while simultaneously sustaining growth and global connectivity. Aviation's impact on surface air quality, which is comparable to aviation's climate impact when monetized, further heightens this challenge. Prior studies have proposed solutions that aim to mitigate either aviation's climate or air quality impacts. No previous work has proposed an aircraft-energy system that simultaneously addresses both aviation's climate and air quality impacts. In this paper we (1) use a multi-disciplinary design approach to optimize aircraft and propulsion systems, (2) estimate lifecycle costs and emissions of producing sustainable fuels including the embodied emissions associated with electricity generation and fuel production, (3) use trajectory optimization to quantify the fuel penalty to avoid persistent contrail formation based on a full year of global flight operations (including, for the first time, contrail avoidance for a hydrogen burning aircraft), and (4) quantify climate and air quality benefits of the proposed solutions using a simplified climate model and sensitivities derived from a global chemistry transport model. We propagate uncertainties in environmental impacts using a Monte-Carlo approach. We use these models to propose and analyze near-zero environmental impact aircraft, which we define as having net zero climate warming and a greater than 95% reduction in air quality impacts relative to present day. We contrast the environmental impacts of today's aircraft-energy system against one built around either “drop-in” fuels or hydrogen. We find that a “zero-impact” aircraft is possible using either hydrogen or power-to-liquid “drop-in” fuels. The proposed aircraft-energy systems reduce combined climate and air quality impacts by 99%, with fuel costs increasing by 40% for hydrogen and 70% for power-to-liquid fueled aircraft relative to today's fleet (i.e., within the range of historical jet fuel price variation). Beyond the specific case presented here, this work presents a framework for holistic analysis of future aviation systems that considers both climate and air quality impacts.

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近乎零环境影响的飞机
当今航空业面临的根本挑战是在保持增长和全球连通性的同时,实现对气候的净零影响。航空对地表空气质量的影响与航空对气候的影响在货币化后不相上下,这进一步加剧了这一挑战。之前的研究已经提出了旨在减轻航空对气候或空气质量影响的解决方案。之前的研究还没有提出同时解决航空对气候和空气质量影响的飞机能源系统。在本文中,我们(1)使用多学科设计方法来优化飞机和推进系统,(2)估算生产可持续燃料的生命周期成本和排放,包括发电和燃料生产相关的体现排放、(3) 根据全年的全球飞行运行情况,使用轨迹优化来量化避免持续形成尾迹所需的燃料损耗(包括首次对氢燃烧飞机进行尾迹避免),以及 (4) 使用简化的气候模型和全球化学传输模型得出的敏感性来量化建议解决方案的气候和空气质量效益。我们采用 Monte-Carlo 方法传播环境影响的不确定性。我们利用这些模型提出并分析了近零环境影响飞机,我们将其定义为气候变暖净值为零,空气质量影响比现在减少 95% 以上。我们将当今飞机能源系统与 "无须改造 "燃料或氢气系统对环境的影响进行了对比。我们发现,使用氢气或 "滴入式 "液化燃料都可以实现 "零影响 "飞机。建议的飞机能源系统可将对气候和空气质量的综合影响降低 99%,与目前的机队相比,氢燃料飞机的燃料成本增加 40%,液化电力飞机的燃料成本增加 70%(即在历史喷气燃料价格变化范围内)。除了本文介绍的具体案例外,这项研究还提出了一个对未来航空系统进行整体分析的框架,该框架同时考虑了气候和空气质量的影响。
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来源期刊
Sustainable Energy & Fuels
Sustainable Energy & Fuels Energy-Energy Engineering and Power Technology
CiteScore
10.00
自引率
3.60%
发文量
394
期刊介绍: Sustainable Energy & Fuels will publish research that contributes to the development of sustainable energy technologies with a particular emphasis on new and next-generation technologies.
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