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Accuracy of lumped element model for cyclic sensible thermal energy storage systems

机译:循环感热储能系统集总模型的精度

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The sensible thermal energy storage system proposed in the present study is composed by a set of flat parallel plates and is meant to work as a thermal rectifier, continuously powered by a cyclical thermal stream in order to retrieve a conditioned output. The energy storage system is modeled by a lumped element model, but its accurateness needed to be ascertained. Computational fluid dynamic is used as a reference modeling to assess the lumped model deviations following a Design of Experiments planning, performed by the Box-Behnken method. Nine controlled and independent parameters are identified to operate the energy storage system, equally representative of the heat storage material, the plate geometry and the working fluid. The temporal evolution of the fluid temperature at the system discharge is used to observe the amplitude and phase deviations in respect to reference modeling. Amplitude deviations are found to be below 6% and phase deviations below 4% for 130 simulated cases assigned by the Box-Behnken method. Heat conduction along the plate axial direction is prevailing in respect to the transversal transfer, meaning that significant deviations from the lumped model to the reference one are only noticed when the storage system combines high values for the number of transfer units and the plate thermal conductivity. The present study shows that thermal energy storage systems like the one proposed in this paper can be simulated with lumped element models.
机译:本研究中提出的明智的热能存储系统由一组扁平的平行板组成,旨在用作热整流器,由循环热流连续供电以获取调节后的输出。储能系统由集总元素模型建模,但需要确定其准确性。计算流体动力学被用作参考模型,以按照Box-Behnken方法执行的“实验设计”计划评估集总模型偏差。确定了九个受控且独立的参数来运行储能系统,这些参数均代表储热材料,板的几何形状和工作流体。系统排放时流体温度的时间演变用于观察参考模型的幅度和相位偏差。对于通过Box-Behnken方法分配的130个模拟案例,发现振幅偏差低于6%,相位偏差低于4%。相对于横向传递,沿板轴向的热传导占主导地位,这意味着仅当存储系统结合了传递单元数量和板导热率的高值时,才注意到从集总模型到参考模型的明显偏差。本研究表明,可以使用集总元素模型来模拟像本文中提出的那样的热能存储系统。

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