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Liquid air energy storage (LAES) with packed bed cold thermal storage - From component to system level performance through dynamic modelling

机译:带填充床冷储热器的液态空气储能(LAES)-通过动态建模从组件到系统级性能

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Energy storage is more important today than ever. It has a key role in storing intermittent electricity from renewable sources - wind, solar and waves - enabling the decarbonisation of the electricity sector. Liquid air energy storage (LAES) is a novel technology for grid scale energy storage in the form of liquid air with the potential to overcome the drawbacks of pumped-hydro and compressed air storage. In this paper we address the performance of next generation LAES standalone plants. Starting our experience with LAES pilot plant at Birmingham (UK), we developed for the first time a validated model to address the dynamic performance of LAES. The model allows us to understand the relationship between component and system level performance through dynamic modelling. We found that the temporary storage of cold thermal energy streams using packed beds improves efficiency of LAES by similar to 50%. However, due to dynamic cycling charge/discharge, packed beds can bring an undesired 25% increase in the energy expenditure needed to liquefy air. In summary, this work points outs that (a) dynamics of LAES should not be neglected; (b) novel design for cold thermal storage are needed and (c) linking component and system level performance is crucial for energy storage. (C) 2016 Elsevier Ltd. All rights reserved.
机译:今天,储能比以往任何时候都更加重要。它在存储来自风能,太阳能和海浪等可再生能源的间歇性电力方面具有关键作用,可以使电力部门实现脱碳。液态空气储能(LAES)是一种以液态空气的形式用于电网规模储能的新颖技术,具有克服抽水蓄能和压缩空气储藏的缺点的潜力。在本文中,我们讨论了下一代LAES独立工厂的性能。从我们在英国伯明翰的LAES中试工厂的经验开始,我们首次开发了经过验证的模型来解决LAES的动态性能。该模型使我们能够通过动态建模来了解组件和系统级性能之间的关系。我们发现,使用填充床临时存储冷热能流可使LAES的效率提高约50%。但是,由于动态循环充电/放电,填充床可以使液化空气所需的能源消耗增加25%,这是不希望的。总而言之,这项工作指出:(a)LAES的动力学不容忽视; (b)需要新颖的冷库设计,并且(c)链接组件和系统级性能对于储能至关重要。 (C)2016 Elsevier Ltd.保留所有权利。

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