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Review of electrical energy storage technologies, materials and systems: challenges and prospects for large-scale grid storage

机译:电能存储技术,材料和系统的回顾:大规模电网存储的挑战和前景

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摘要

Increased interest in electrical energy storage is in large part driven by the explosive growth in intermittent renewable sources such as wind and solar as well as the global drive towards decarbonizing the energy economy. However, the existing electrical grid systems in place globally are not equipped to handle mass scale integration of intermittent energy sources without serious disruptions to the grid. It is generally agreed that more than 20% penetration from intermittent renewables can greatly destabilize the grid system. Certainly, large-scale electrical energy storage systems may alleviate many of the inherent inefficiencies and deficiencies in the grid system, and help improve grid reliability, facilitate full integration of intermittent renewable sources, and effectively manage power generation. Electrical energy storage offers two other important advantages. First, it decouples electricity generation from the load or electricity user, thus making it easier to regulate supply and demand. Second, it allows distributed storage opportunities for local grids, or microgrids, which greatly improve grid security, and hence, energy security. Currently, there is only 170 GW of installed storage capacity around the world, but more than 96% is provided by pumped-hydro, which is site-constrained and not available widely. Hence, a battery of technologies is needed to fully address the widely varying needs for large-scale electrical storage. The focus of this article is to provide a comprehensive review of a broad portfolio of electrical energy storage technologies, materials and systems, and present recent advances and progress as well as challenges yet to overcome. The article discusses the status and options for mechanical, thermal, electrochemical, and chemical storage. Where appropriate, it also provides tutorial level background information on fundamental principles for the interested non-expert. It is hoped that this article is of interest to the uninitiated as well as active scientists and engineers engaged in energy storage technologies, with particular focus on large-scale electrical energy storage.
机译:人们对电能存储的兴趣日益增长,这在很大程度上是由间歇性可再生能源(例如风能和太阳能)的爆炸性增长以及全球实现能源经济脱碳的动力所驱动。但是,全球范围内现有的现有电网系统都无法在不严重破坏电网的情况下处理间歇性能源的大规模集成。人们普遍认为,间歇性可再生能源渗透率超过20%会极大地破坏电网系统的稳定性。当然,大规模的电能存储系统可以缓解电网系统中许多固有的效率低下和不足之处,并有助于提高电网可靠性,促进间歇性可再生能源的充分整合以及有效地管理发电。电能存储具有另外两个重要的优点。首先,它使发电与负载或电力用户脱钩,从而使调节供需更加容易。其次,它为本地电网或微电网提供了分布式存储机会,从而极大地提高了电网安全性,从而提高了能源安全性。当前,全球仅170 GW的已安装存储容量,但是96%以上是由抽水式水力发电提供的,抽水式水力发电受限于站点,并且无法广泛使用。因此,需要一系列技术来完全满足对大规模电存储的广泛变化的需求。本文的重点是对电能存储技术,材料和系统的广泛组合进行全面的综述,并介绍最新的进展和进步以及尚待克服的挑战。本文讨论了机械,热,电化学和化学存储的状态和选项。在适当的地方,它还为感兴趣的非专家提供了有关基本原理的教程级别的背景信息。希望本文对从事储能技术的初学者以及活跃的科学家和工程师感兴趣,尤其是对大规模电能的存储。

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  • 来源
    《Energy & environmental science》 |2018年第10期|2696-2767|共72页
  • 作者

    Turgut M. Gür;

  • 作者单位

    Department of Materials Science and Engineering, Stanford University,Stanford,USA;

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  • 原文格式 PDF
  • 正文语种 eng
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