Renewable energy chemical engineering and technology

被引:0
|
作者
Ma Z. [1 ]
He Y. [1 ]
Chen J. [2 ]
机构
[1] School of Chemistry and Chemical Engineering, Shanghai Jiao Tong University, Shanghai
[2] School of Chemical Engineering, Beijing University of Chemical Technology, Beijing
关键词
Biochemical engineering; Electrochemical engineering; Energy storage; Photochemical engineering; Renewable energy;
D O I
10.16085/j.issn.1000-6613.2021-1613
中图分类号
学科分类号
摘要
Exploiting renewable energy sources is the only way to achieve carbon neutrality. This perspective first outlined the key strategies for the conversion and utilization of renewable energy, and stated that the theoretical foundation of new energy chemical engineering and technology covered various engineering science including the electrochemical engineering, photochemical engineering, biochemical engineering, molecular chemical engineering, systems engineering, and artificial intelligence, etc. Secondly, taking hydrogen generation from renewable power, fuel cells for chemical and energy cogeneration, solar energy conversion as examples, we elucidated the role of chemical engineering in the process of renewable energy conversion and utilization. Thirdly, we revealed the process engineering characteristics of electrochemical energy storage materials and devices according to the manufacturing process of multi-element transition metal oxide cathodes for lithium- and sodium-ion batteries. Fourthly, we introduced the applications of process system engineering and artificial intelligence in the construction of a battery state of charge/health/power prediction model, integrated energy system management, as well as optimal photovoltaic-energy storage-charge system. Finally, based on detailed case studies, we concluded that the essence of renewable energy chemical engineering is the scaling up of bio-, photo- and electro-chemical reactions involved in renewable energy conversion and storage from laboratory-scale to large-scale devices, and to elucidate the corresponding mass, heat and charge transfer mechanisms and the reaction engineering characteristics. Regarding the future research and development of renewable energy chemical engineering technology, multiple research directions were proposed in respect of the common scientific issues and key technologies. © 2021, Chemical Industry Press Co., Ltd. All right reserved.
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页码:4687 / 4695
页数:8
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共 30 条
  • [11] CHEN Hongzhang, MA Litong, Breakthroughs in key technologies and prospects of the biomass industry, Journal of Engineering Studies, 4, 3, pp. 237-244, (2012)
  • [12] LIU Wei, LIU Congmin, GOGOI Parikshit, Et al., Overview of biomass conversion to electricity and hydrogen and recent developments in low-temperature electrochemical approaches, Engineering, 6, 12, pp. 1351-1363, (2020)
  • [13] HUANG Xuejie, ZHAO Wenwu, SHAO Zhigang, Et al., Development strategies for new energy materials in China, Strategic Study of CAE, 22, 5, pp. 60-67, (2020)
  • [14] JIAO Kui, XUAN Jin, DU Qing, Et al., Designing the next generation of proton-exchange membrane fuel cells, Nature, 595, 7867, pp. 361-369, (2021)
  • [15] YUAN Xiaozi, MA Zifeng, JIANG Qizhong, Et al., Cogeneration of cyclohexylamine and electrical power using PEM fuel cell reactor, Electrochemistry Communications, 3, 11, pp. 599-602, (2001)
  • [16] ZHENG Zhilin, YUAN Xiaozi, YIN Yimei, Et al., Fuel cells reactor for chemicals and electric energy cogeneration, Journal of Electrochemistry, 24, 6, pp. 615-627, (2018)
  • [17] CHE Haiying, YANG Xinrong, YU Yan, Et al., Engineering optimization approach of nonaqueous electrolyte for sodium ion battery with long cycle life and safety, Green Energy & Environment, 6, 2, pp. 212-219, (2021)
  • [18] CHEN Jianfeng, High gravity technology and application, (2021)
  • [19] NIU Yuchao, DU Shaofu, SHENG Lei, Et al., High-efficient crystal particle manufacture by microscale process intensification technology, Green Chemical Engineering, 2, 1, pp. 57-69, (2021)
  • [20] LI Jingkun, MA Zifeng, Past and present of LiFePO<sub>4</sub>: from fundamental research to industrial applications, Chem, 5, 1, pp. 3-6, (2019)