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EPSRC Centre for Doctoral Training for Sustainable Electric Propulsion (CDT SEP)

EPSRC Centre for Doctoral Training for Sustainable Electric Propulsion (CDT SEP)
EPSRC 可持续电力推进博士培训中心 (CDT SEP)
批准号:
EP/S024069/1
负责人:
金额:
$712.47万
依托单位:
依托单位国家:
英国
项目类别:
Training Grant
财政年份:
2019
资助国家:
英国
项目状态:
未结题
起止时间:
2019 至 --

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中文摘要
翻译
未来20年,汽车和航空航天领域将经历一场推进技术的根本性革命。汽车行业将迅速从汽油和柴油发动机驱动的汽车转向全电动汽车,而飞机将从纯煤油动力的喷气发动机转向混合动力电动推进。汽车和航空航天工业在过去的二十年里一直致力于发展电力推进研究,但直到最近,由于立法滞后,工业和政府的开发投资一直很低,以显着减少温室气体。自2016年批准旨在将本世纪全球气温上升控制在2摄氏度以下的《巴黎协定》以来,工业发达国家的政府现已立法禁止新的燃烧动力车辆(英国和法国将于2040年前,德国将于2030年前,中国预计将很快出台类似立法)。这一禁令的实施将使全球电动汽车市场在2020年急剧增长至750万辆,并呈指数级增长。在航空航天领域,空中客车、西门子和劳斯莱斯宣布,在成功测试2座电动飞机后,将于2030年推出100座混合动力飞机。其他美国和欧洲的航空航天工业,如波音和通用电气,也必须为推进技术的这一根本性转变做好准备。每一辆电动汽车和每一架混合动力飞机都需要一个电力驱动(推进)系统,该系统通常包括一个电机和控制能量流向电机的电子设备。为了实现这一目标,与当今的驱动系统相比,电力驱动的成本必须减半,其尺寸和重量必须减少500%。这些目标只能通过彻底集成构成电动驱动的两个子系统来实现:电动机和电力电子设备(电容器、电感器和半导体开关)。目前,这两个系统被构建为两个独立的系统,两者的融合在电力电子元件和电动机之间产生了新的相互作用和物理现象。例如,所有的电力电子元件都将经历来自电动机的大量机械振动和热量。其他挑战是将毫米薄的电力电子半导体连接到一个大几百倍的铝块上,铝块容纳电动机以获得机械强度。为了实现这种类型的整合,行业认识到,未来的专业工程师需要超越传统的多学科方法的技能,在这种方法中,单个专家在团队中一起工作。未来的推进工程师必须采用跨学科和创造性思维,以了解其他学科的要求。此外,他们还需要了解非传统的工程学科,如商业思维,大数据的使用,环境问题和道德影响。未来的推进工程师将需要经历一个强调深入的学科知识和跨学科思维的培训环境。这EPSRC CDT在电力电子可持续电力推进是由两个英国最大和最前瞻性的研究小组在这一领域(在纽卡斯尔和诺丁汉大学),包括16个领先的工业合作伙伴(康明斯,戴森,中车,Protean,仅举几例)。他们都有一个共同的愿景:培养新一代的英国电力电子专家,以满足未来汽车和航空航天运输基础设施对清洁电力推进系统的社会和工业需求。
英文摘要
Over the next twenty years, the automotive and aerospace sector will undergo a fundamental revolution in propulsion technology. The automotive sector will rapidly move away from petrol and diesel engine powered cars towards fully electric propelled vehicles whilst planes will move away from pure kerosene powered jet engines to hybrid-electric propulsion. The automotive and aerospace industry has worked for the last two decades on developing electric propulsion research but development investment from industry and governments was low until recently, due to lag of legislation to significantly reduce greenhouse gases. Since the ratification of the 2016 Paris Agreement, which aims to keep global temperature rise this century well below 2 degrees Celsius, governments of industrial developed nations have now legislated to ban new combustion powered vehicles (by 2040 in the UK and France, by 2030 in Germany and similar legislation is expected soon in China). The implementation of this ban will see a sharp rise of the global electric vehicle market to 7.5 million by 2020 with exponential growth. In the aerospace sector, Airbus, Siemens and Rolls-Royce have announced a 100-seater hybrid-electric aircraft to be launched by 2030 following successful tests of 2 seater electric powered planes. Other American and European aerospace industries such as Boeing and General Electric must also prepare for this fundamental shift in propulsion technology. Every electric car and every hybrid-electric plane needs an electric drive (propulsion) system, which typically comprises a motor and the electronics that controls the flow of energy to the motor. In order to make this a cost-effective reality, the cost of electric drives must be halved and their size and weight must be reduced by up to 500% compared to today's drive systems. These targets can only be achieved by radical integration of these two sub-systems that form an electric drive: the electric motor and the power electronics (capacitors, inductors and semiconductor switches). These are currently built as two independent systems and the fusion of both creates new interactions and physical phenomena between power electronics components and the electric motor. For example, all power electronics components would experience lots of mechanical vibrations and heat from the electric motor. Other challenges are in the assembly of connecting millimetre thin power electronics semiconductors onto a large hundred times bigger aluminium block that houses the electric motor for mechanical strength. To achieve this type of integration, industry recognises that future professional engineers need skills beyond the classical multi-disciplinary approach where individual experts work together in a team. Future propulsion engineers must adopt cross-disciplinary and creative thinking in order to understand the requirements of other disciplines. In addition, they will need an understanding of non-traditional engineering subjects such as business thinking, use of big data, environmental issues and ethical impact. Future propulsion engineers will need to experience a training environment that emphasises both deep subject knowledge and cross-disciplinary thinking. This EPSRC CDT in Power Electronics for Sustainable Electric Propulsion is formed by two of UK's largest and most forward thinking research groups in this field (at Newcastle and Nottingham Universities) and includes 16 leading industrial partners (Cummins, Dyson, CRRC, Protean, to name a few). All of them sharing one vision: To create a new generation of UK power electronics specialists, needed to meet the societal and industrial demand for clean, electric propulsion systems in future automotive and aerospace transport infrastructures.
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