An efficient ordered conversion system for hydrogen and electricitycogeneration driven by concentrated solar energy

Updated:2025-01-13 15:03Source:Applied Energy

An Efficient Ordered Conversion System for Hydrogen and Electricity Cogeneration Driven by Concentrated Solar Energy

https://www.sciencedirect.com/science/article/pii/S2666792420300020

  Efficient utilization of full-spectrum solar photons is significant for improving the efficiency of solar energy conversion and thus alleviating energy shortage. In this work, a novel concentrated ordered conversion system based on a parabolic trough collector (PTC) that couples photocatalysis and Rankine cycle for hydrogen and electricity cogeneration to more efficiently use the full-spectrum solar energy is proposed. Higher-energy photons are absorbed by the photocatalytic layer for water splitting hydrogen production, and the remaining photons with lower energy that cannot excite electron-hole pairs (EHPs) are transmitted to the photocatalytic layer and converted into thermal energy to drive the Rankine cycle for electricity generation. Furthermore, the EHPs dissipated heat and absorber tube radiation heat loss can be reutilized in the photocatalytic layer to preheat the circulating water to increase the reaction temperature and solar evaporator inlet temperature to the designate temperature of 140 ℃. Solar photocatalysis model and thermodynamic model are developed to simulate and analyze the system performance. Of the input solar energy, 10.34% and 17.85% are converted into hydrogen and electricity by photocatalysis and Rankine cycle processes, respectively. The total exergy efficiency increases from 23.51% for the conventional PTC thermal power generation system to 28.49% for the proposed system under the design condition. Then, the effects of the photocatalyst bandgap and temperature on the system exergy efficiency are analyzed, which indicates that when the photocatalyst bandgap increases, its operating temperature should be adjusted downward. The photocatalytic layer temperature is adjusted for corresponding maximum system exergy efficiency under different direct nominal irradiation (DNI) conditions, and it can maintain 140 ℃ of operation when DNI is greater than 240 W·m⁻²  This research provides a new approach to improve the efficiency and flexibility of full-spectrum solar utilization.

Keywords

Solar energy

Ordered conversion

Hydrogen-electricity cogeneration

Full-spectrum

Graphics

图1 图形摘要

图2 聚光太阳能有序转化氢电联产系统

图3 光催化与热发电光子转化效率

图4 催化剂带隙与温度对系统性能的影响规律:(a)光催化效率;(b)发电效率;(c)热水㶲效率;(d)系统㶲效率;

图5 全工况条件下系统参数优化:(a)太阳辐照强度与催化层温度匹配规律探究;(b)不同太阳辐照强度下系统性能表现

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