Optimizing Renewable Energy Integration for Sustainable Fuel Production: A Techno-Economic Assessment of Dimethyl Ether Synthesis via a Hybrid Microgrid-Hydrogen System

Fuels Pub Date : 2024-05-16 DOI:10.3390/fuels5020011
Mohammed M. Alotaibi, Abdulaziz A. Alturki
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Abstract

This study offers an in-depth analysis and optimization of a microgrid system powered by renewable sources, designed for the efficient production of hydrogen and dimethyl ether—key elements in the transition toward sustainable fuel alternatives. The system architecture incorporates solar photovoltaic modules, advanced battery storage solutions, and electrolytic hydrogen production units, with a targeted reduction in greenhouse gas emissions and the enhancement of overall energy efficiency. A rigorous economic analysis was conducted utilizing the HYSYS V12 software platform and encompassing capital and operational expenditures alongside profit projections to evaluate the system’s economic viability. Furthermore, thermal optimization was achieved through heat integration strategies, employing a cascade analysis methodology and optimization via the General Algebraic Modeling System (GAMS), yielding an 83% decrease in annual utility expenditures. Comparative analysis revealed that the energy requirement of the optimized system was over 50% lower than that of traditional fossil fuel-based reforming processes. A comprehensive assessment of CO2 emissions demonstrated a significant reduction, with the integration of thermal management solutions facilitating a 99.24% decrease in emissions. The outcomes of this study provide critical insights into the engineering of sustainable, low-carbon energy systems, emphasizing the role of renewable energy technologies in advancing fuel science.
优化可再生能源整合,促进可持续燃料生产:通过微电网-氢气混合系统合成二甲醚的技术经济评估
本研究深入分析和优化了以可再生资源为动力的微电网系统,该系统旨在高效生产氢气和二甲醚--向可持续燃料替代品过渡的关键要素。该系统架构包含太阳能光伏模块、先进的电池存储解决方案和电解制氢装置,旨在减少温室气体排放并提高整体能效。利用 HYSYS V12 软件平台进行了严格的经济分析,包括资本和运营支出以及利润预测,以评估系统的经济可行性。此外,还通过热集成策略实现了热优化,采用了级联分析方法,并通过通用代数建模系统(GAMS)进行了优化,使每年的公用事业支出减少了 83%。对比分析表明,优化系统的能源需求比基于化石燃料的传统重整工艺低 50%以上。对二氧化碳排放量的综合评估表明,排放量大幅减少,热管理解决方案的集成使排放量减少了 99.24%。这项研究的成果为可持续低碳能源系统的工程设计提供了重要启示,强调了可再生能源技术在推动燃料科学方面的作用。
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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