面向电网应用的大型混合动力、氢电池和储能系统的设计

IF 3.2 Q3 ENERGY & FUELS
Marvin Dorn;Jonas Lotze;Uwe Këhnapfel;André Weber;Veit Hagenmeyer
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引用次数: 0

摘要

由于能源转型涉及逐步淘汰煤炭等基本负荷发电厂,因此需要在能源系统内建立存储系统,以补偿可再生能源的波动。电池适用于昼夜循环,特别是短周期应用。在没有风能和太阳能的情况下,为了解决黑暗低潮的问题,天然气和在更遥远的未来,氢发电厂将被使用。通过在混合储能系统中结合电池和氢发电厂,在电网稳定性和系统设计方面产生了进一步的优势和应用可能性。这项工作说明了子系统之间的相互关系,优化了比例,并演示了逻辑系统的大小、技术及其成本。工作的中心部分是系统设计的自衍生方法和这些方法的证明。介绍了各子系统的存储压力、运行时间、可用时间、年周期和设计。这种规模的系统是难以想象的。作为这项工作的一部分,开发了一个程序来实现这些方法,使系统可视化,显示系统参数,并显示最佳情况和最差情况下的资本支出。给出了系统的优化设计。系统设计中的不同组合显示了对资本支出的影响。从2到4小时的可用时间开始,混合动力系统在资本支出方面比纯电池系统更便宜。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Design of Large-Scale Hybrid, Hydrogen and Battery, and Energy Storage Systems for Grid Applications
Due to the energy transition, which involves phasing out base load power plants such as coal, there is a need to establish storage systems within the energy system to compensate for fluctuations of renewable energies. Batteries are suitable for day-night cycles and particularly for short-cycle applications. To address the problem of dark-doldrums, when neither wind nor solar energy is available, gas and, in the more distant future, hydrogen power plants are to be used. By combining batteries and hydrogen power plants in a hybrid energy storage system, further advantages and application possibilities arise regarding grid stability and system design. This work illustrates interrelationships between the subsystems, optimizes proportions, and demonstrates logical system sizes, technologies, and their costs. A central part of the work are the self-derived methods for system design and the justification of these. Storage pressure, running times, availability time, annual cycles and design of the subsystems are described. Systems of this scale are difficult to imagine. A program developed as part of this work to implement the methods, visualizes the system, displays the system parameters, and shows the best-case and worst-case capital expenditures. An optimized system design is presented. Different combinations in the system design show the effects on capital expenditures. Starting from 2 to 4 hours of availability time, the hybrid system becomes cheaper than a pure battery system in terms of capital expenditures.
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来源期刊
CiteScore
7.80
自引率
5.30%
发文量
45
审稿时长
10 weeks
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