Efficiency of Different Roof Vent Designs on Natural Ventilation of Single-Span Plastic Greenhouse

A. Rasheed, J. W. Lee, H. Kim, H. W. Lee
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引用次数: 9

Abstract

In the summer season, natural ventilation is commonly used to reduce the inside air temperature of greenhouse when it rises above the optimal level. The greenhouse shape, vent design, and position play a critical role in the effectiveness of natural ventilation. In this study, computational fluid dynamics (CFD) was employed to investigate the effect of different roof vent designs along with side vents on the buoyancy-driven natural ventilation. The boussinesq hypothesis was used to simulate the buoyancy effect to the whole computational domain. RNG K-epsilon turbulence model was utilized, and a discrete originates (DO) radiation model was used with solar ray tracing to simulate the effect of solar radiation. The CFD model was validated using the experimentally obtained greenhouse internal temperature, and the experimental and computed results agreed well. Furthermore, this model was adopted to compare the internal greenhouse air temperature and ventilation rate for seven different roof vent designs. The results revealed that the inside-to-outside air temperature differences of the greenhouse varied from 3.2 to 9.6oC depending on the different studied roof vent types. Moreover, the ventilation rate was within the range from 0.33 to 0.49 min-1. Our findings show that the conical type roof ventilation has minimum inside-to-outside air temperature difference of 3.2oC and a maximum ventilation rate of 0.49 min-1.
不同顶板通风口设计对单跨塑料大棚自然通风效果的影响
在夏季,当温室内空气温度高于最佳水平时,通常采用自然通风来降低温室内的温度。温室的形状、通风设计和位置对自然通风的有效性起着至关重要的作用。本研究采用计算流体力学(CFD)方法研究了不同顶板通风口设计及侧通风口对浮力驱动自然通风的影响。采用boussinesq假设对整个计算域的浮力效应进行模拟。采用RNG K-epsilon湍流模型,采用离散源(DO)辐射模型进行太阳射线追踪,模拟太阳辐射的影响。利用实验得到的温室内部温度对CFD模型进行了验证,实验结果与计算结果吻合较好。此外,采用该模型比较了7种不同屋顶通风口设计的温室内部温度和通风量。结果表明,不同的屋顶通风口类型对温室内外温差的影响在3.2 ~ 9.6℃之间。通风量在0.33 ~ 0.49 min-1之间。研究结果表明,锥形屋面通风的室内外温差最小为3.2oC,最大通风量为0.49 min-1。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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