First‐principles modeling for optimal design, operation, and integration of energy conversion and storage systems

First‐principles modeling for optimal design, operation, and integration of energy conversion and storage systems
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DOI:
10.1002/aic.16482
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发表时间:
2018-12
期刊:
影响因子:
3.7
通讯作者:
Yuriy Y. Smolin;K. Lau;M. Soroush
Yuriy Y. Smolin;K. Lau;M. Soroush
中科院分区:
工程技术3区
文献类型:
--
作者:
Yuriy Y. Smolin;K. Lau;M. Soroush

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预期能源及电力消耗于可见将来将增加。与此同时,化石能源的可持续性问题促使人们使用可再生和可重复使用的能源,以及使用更有效的能源转换和能源消耗系统。因此,在过去的十年中,在(1)可再生和可重复使用资源的能源发电和(2)能源消耗和能源转换设备方面取得了重大的理论和实验进展。这篇综述文章重点介绍了光伏和燃料电池等可再生能源转换装置以及可充电电池、液流电池和超级电容器等储能装置的最新理论进展。由于这些系统具有相似的化学、电化学和物理特性,因此突出了不同能量系统之间的建模相似性。这篇综述透视了第一原理数学建模如何有助于这些系统的优化设计,操作和集成的系统性进展。© 2018美国化学工程师学会AIChE J,65:e16482 2019
Energy and electricity consumption is expected to increase in the foreseeable future. Concurrently, sustainability concerns of fossil‐based energy resources have motivated the use of renewable and reusable energy resources, and the use of more efficient energy‐converting and energy‐consuming systems. Consequently, for the past decade, there have been major theoretical and experimental advances in (1) energy generation from renewable and reusable resources and (2) energy‐consuming and energy‐converting devices. This review article focuses on the recent theoretical advances in renewable energy conversion devices such as photovoltaic and fuel cells, and in energy storage devices such as rechargeable batteries, flow batteries, and supercapacitors. Due to similar chemistry, electrochemistry, and physics of these systems, modeling similarities between different energy systems are highlighted. This review puts into perspective how first‐principles mathematical modeling has contributed to systematic advances in the optimal design, operation, and integration of these systems. © 2018 American Institute of Chemical EngineersAIChE J, 65: e16482 2019