Design and thermo-environmental analysis of a novel solar-driven system integrating desalination, photocatalytic water splitting, and fuel cell technologies

IF 9.9 1区 工程技术 Q1 ENERGY & FUELS
Yan Yang , Rushan Yang , Xiaobin Chen , Xingyu Ma , Shizhi Yu , Shanke Liu , Yaqian Zheng , Liang Zhao , Dengwei Jing
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引用次数: 0

Abstract

Photocatalytic water splitting (PWS) is one of the promising hydrogen production technologies. Studying the operation characteristics of multi-energy coupling system based on photocatalytic hydrogen production is beneficial to the popularization and application of this technology. A novel zero-carbon emission system that integrates freshwater, hydrogen, and electricity co-generation driven by solar energy is developed in this paper. The integrated system comprises a multistage flash desalination (MSFD) subsystem, a PWS subsystem, and a fuel cell (FC) subsystem. Considering the inherent variability and intermittency of solar energy availability, an energy storage module is strategically implemented to ensure stable and reliable system operation. The detailed model of the complete integrated system is meticulously developed and refined using Aspen Plus software. Taking the meteorological data of Hainan, China as an example, the operational parameters of the system are designed. Parametric analyses are conducted on the system’s freshwater production, hydrogen generation, and electricity output. A comprehensive evaluation is made on the thermodynamic and environmental aspects of the integrated system. The results demonstrate that the system, designed to operate continuously throughout the year, achieves this with an initial storage capacity of 85 m3 for freshwater and 130 kmol for hydrogen. Over an annual cycle, MSFD subsystem produces approximately 1812.23 m3 of freshwater, while PWS subsystem utilizes 1560.00 m3 of this freshwater to generate 2830.82 kg of hydrogen. Subsequently, FC subsystem consumes approximately 2816.63 kg of hydrogen per year to generate 43,800 kWh of electricity, while the total annual electricity consumption for the integrated system is recorded at 1995.01 kWh. The system demonstrates an average annual energy efficiency of 58.4 % and exergy efficiency of 11.2 %, illustrating both effective energy use and conversion. Furthermore, the system’s operation leads to a significant reduction in carbon dioxide emissions, amounting to a total annual decrease of 31884.98 kg. Collectively, the significant contribution of this study is to emphasize the potential of autonomously operated joint systems through the synergistic utilization of renewable energy and hydrogen energy. The specific innovative zero-carbon emission system, driven by solar energy, provides a theoretical framework for the development of integrated strategies for the utilization of solar and hydrogen energy.
集成海水淡化、光催化水分离和燃料电池技术的新型太阳能驱动系统的设计和热环境分析
光催化水分离(PWS)是一种前景广阔的制氢技术。研究基于光催化制氢的多能源耦合系统的运行特性,有利于该技术的推广和应用。本文开发了一种新型的零碳排放系统,该系统集成了淡水、氢气和太阳能驱动的电能联产。该集成系统由多级闪蒸海水淡化(MSFD)子系统、水处理系统(PWS)子系统和燃料电池(FC)子系统组成。考虑到太阳能可用性固有的多变性和间歇性,该系统战略性地采用了储能模块,以确保系统稳定可靠地运行。整个集成系统的详细模型是利用 Aspen Plus 软件精心开发和完善的。以中国海南的气象数据为例,设计了系统的运行参数。对系统的淡水生产、氢气生产和电力输出进行了参数分析。对综合系统的热力学和环境方面进行了综合评估。结果表明,该系统设计为全年连续运行,初始淡水储存量为 85 立方米,氢气储存量为 130 千摩尔。在一个年度周期内,MSFD 子系统产生约 1812.23 立方米淡水,而 PWS 子系统利用其中的 1560.00 立方米淡水生成 2830.82 千克氢气。随后,FC 子系统每年消耗约 2816.63 千克氢气来发电 43,800 千瓦时,而综合系统的年总耗电量为 1995.01 千瓦时。该系统的年平均能源效率为 58.4%,放能效率为 11.2%,显示了能源的有效利用和转换。此外,该系统的运行还显著减少了二氧化碳排放量,每年共减少 31884.98 千克。总之,本研究的重要贡献在于通过可再生能源和氢能的协同利用,强调了自主运行联合系统的潜力。由太阳能驱动的具体创新型零碳排放系统为制定太阳能和氢能综合利用战略提供了理论框架。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Energy Conversion and Management
Energy Conversion and Management 工程技术-力学
CiteScore
19.00
自引率
11.50%
发文量
1304
审稿时长
17 days
期刊介绍: The journal Energy Conversion and Management provides a forum for publishing original contributions and comprehensive technical review articles of interdisciplinary and original research on all important energy topics. The topics considered include energy generation, utilization, conversion, storage, transmission, conservation, management and sustainability. These topics typically involve various types of energy such as mechanical, thermal, nuclear, chemical, electromagnetic, magnetic and electric. These energy types cover all known energy resources, including renewable resources (e.g., solar, bio, hydro, wind, geothermal and ocean energy), fossil fuels and nuclear resources.
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