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Numerical study on the heat release capacity of the active-passive phase change wall affected by ventilation velocity

机译:通风速度对主动-被动相变壁散热能力的数值研究

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The north wall of Chinese solar greenhouses (CSGs) plays an important role in maintaining their indoor thermal environment without additional heating during the wintertime. To enhance the heat storage/release capacity of the CSG wall and further improve the indoor thermal environment, an active-passive phase change thermal storage wall system has been developed in this study. The system was composed of 5 concentrating solar air collectors (CSACs), 6 tanks that were embedded in the north wall of the CSG and filled by phase change material (PCM), tubes linking the tanks and the CSACs and a centrifugal fan with variable-frequency drive (VFD). During the daytime, the solar energy was collected by the CSACs and stored in the tanks, whereas during the nighttime, the stored energy was released into the indoor environment of the CSG through a passive heat mode of the north wall or an active heat mode of the system. Then, a numerical model of the active-passive phase change thermal storage wall system has been developed. The simulation results were validated by the experimental data with the maximum relative error and average relative error being 5.6% and 3.9%, respectively. Furthermore, the heat release capacity characteristics in three cases with the air velocities of 2 m/s (Case A), 3 m/s (Case B) and 4 m/s (Case C) at indoor outlet for the active heat mode and a passive heating case (Case D) were chosen as the control groups for study. In the proposed wall, the heat release capacity of ventilation increased and that of inner surface of the wall declined with an increasing ventilation velocity. The total heat release capacities of the cases A, B and C were 38.12 MJ, 40.26 MJ, 42.00 MJ, respectively, higher than that of the case D (33.76 MJ). On the other hand, the calculated temperature distribution indicated that there was no thermal-stable layer within depth of the 360 mm in the wall due to an apparent temperature variation of the PCM layer by ventilation. These results suggested that the proposed system could effectively promote the heat storage/release capacity of the middle layer of the wall. (C) 2019 Elsevier Ltd. All rights reserved.
机译:中国的日光温室(CSG)的北墙在保持室内热环境方面发挥了重要作用,在冬季无需额外加热。为了增强CSG墙的储热/释放能力并进一步改善室内热环境,本研究开发了一种主动-被动相变储热墙系统。该系统由5个集中式太阳能集热器(CSAC),6个储罐组成,这些储罐被嵌入CSG的北壁,并由相变材料(PCM)填充;连接储罐和CSAC的管道以及带有可变流量的离心风扇变频器(VFD)。在白天,太阳能由CSAC收集并储存在储罐中,而在夜间,储存的能量通过北壁的被动加热模式或CNG的主动加热模式释放到CSG的室内环境中。系统。然后,建立了主动-被动相变储热墙系统的数值模型。实验结果验证了仿真结果,最大相对误差和平均相对误差分别为5.6%和3.9%。此外,在三种情况下,主动出风模式和室内出风速度分别为2 m / s(情况A),3 m / s(情况B)和4 m / s(情况C)时的散热能力特性。选择被动加热案例(案例D)作为研究的对照组。在建议的墙中,通风的散热量随着通风速度的增加而增加,而墙的内表面的散热量则下降。案例A,案例B和案例C的总散热量分别为案例D(33.76 MJ)的38.12 MJ,40.26 MJ,42.00 MJ。另一方面,计算出的温度分布表明,由于通风引起的PCM层的明显温度变化,在壁的360mm深度内没有热稳定层。这些结果表明,所提出的系统可以有效地提高壁的中间层的储热/释放能力。 (C)2019 Elsevier Ltd.保留所有权利。

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