热化学循环
制氢
分解水
工艺工程
太阳能
环境科学
生产(经济)
氢
热能储存
材料科学
化学
热力学
工程类
电气工程
物理
宏观经济学
催化作用
经济
有机化学
光催化
生物化学
作者
Xiaofei Li,Xue Sun,Sheng Qiang,Zhen Yang,Haiming Wang,Yuan-Yuan Duan
标识
DOI:10.1016/j.ijhydene.2022.07.249
摘要
The development of clean hydrogen production methods is important for large-scale hydrogen production applications. The solar thermochemical water-splitting cycle is a promising method that uses the heat provided by solar collectors for clean, efficient, and large-scale hydrogen production. This review summarizes state-of-the-art concentrated solar thermal, thermal storage, and thermochemical water-splitting cycle technologies that can be used for system integration from the perspective of integrated design. Possible schemes for combining these three technologies are also presented. The key issues of the solar copper-chlorine (Cu–Cl) and sulfur-iodine (S–I) cycles, which are the most-studied cycles, have been summarized from system composition, operation strategy, thermal and economic performance, and multi-scenario applications. Moreover, existing design ideas, schemes, and performances of solar thermochemical water-splitting cycles are summarized. The energy efficiency of the solar thermochemical water-splitting cycle is 15–30%. The costs of the solar Cu–Cl and S–I hydrogen production systems are 1.63–9.47 $/kg H2 and 5.41–10.40 $/kg H2, respectively. This work also discusses the future challenges for system integration and offers an essential reference and guidance for building a clean, efficient, and large-scale hydrogen production system.
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