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Fast and experimentally validated model of a latent thermal energy storage device for system level simulations

机译:用于系统级仿真的潜热能量存储设备的快速且经过实验验证的模型

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摘要

Latent storages utilising phase change materials (PCM) to store thermal energy offer a considerably higher energy density at a nearly constant temperature level in comparison to sensible storage systems. Despite this advantage, only a few latent storage technologies have been integrated successfully to the market. This may be due several engineering challenges and in particular the lack of a computationally fast and accurate mathematical model to facilitate the optimal incorporation of latent heat storages into an energy system. The presented study fills this gap and proposes a new, fast and experimentally validated mathematical modelling approach for latent heat storage units. The numerical model proposed combines high accuracy, low computational effort and numerical stability. The validation was performed with two different commercial latent storage units supplied by Sunamp Ltd. with a nominal phase change temperatures of 34 degrees C and of 58 degrees C. Both units use a salt hydrate based phase change material in combination with a fin-tube heat exchanger. The proposed model may be used for both fast system level performance investigations as well as latent storage design for a given application. It may therefore be implemented in commercial software packages such as TRNSYS [1] or Simulink [2].
机译:与合理的存储系统相比,利用相变材料(PCM)来存储热能的潜在存储在几乎恒定的温度水平下提供了更高的能量密度。尽管具有这一优势,但只有少数潜在存储技术已成功集成到市场中。这可能是由于一些工程挑战,尤其是缺乏快速计算和准确的数学模型来促进将潜热存储器最佳地合并到能源系统中。提出的研究填补了这一空白,并提出了一种新的,快速的并经过实验验证的潜热存储单元数学建模方法。所提出的数值模型兼具高精度,低计算量和数值稳定性。验证是使用Sunamp Ltd.提供的两个不同的商业潜伏存储单元进行的,它们的标称相变温度分别为34摄氏度和58摄氏度。这两个单元均使用基于水合盐的相变材料以及翅片管加热交换器。建议的模型可用于快速系统级性能研究以及给定应用程序的潜在存储设计。因此,可以在商用软件包(例如TRNSYS [1]或Simulink [2])中实现。

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