首页> 外文会议>IECEC 2012;Annual international energy conversion engineering conference >Numerical Investigations of Air Flow Patterns and Thermal Comfort in an Ice-Cream Factory Conditioned By Conventional Air Conditioning or Radiant Cooling Systems
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Numerical Investigations of Air Flow Patterns and Thermal Comfort in an Ice-Cream Factory Conditioned By Conventional Air Conditioning or Radiant Cooling Systems

机译:常规空调或辐射冷却系统对制冰霜工厂中气流模式和热舒适性的数值研究

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Cooling nonresidential buildings in contributes significantly to electrical power consumption and peak power demand. Part of the electrical energy used to cool buildings is drawn by fans transporting cool air through the ducts. The typical thermal cooling peak load component for office buildings can be divided as follows: 31% for lighting, 13% for people, 14% for air transport, and 6% for equipment (these account for 62.5% of the electrical peak load, labeled "chiller"). Approximately 37% of the electrical peak power is required for air transport, and the remainder is necessary to operate the compressor. The present thesis is devoted to numerically investigate the difference between using conventional air conditioning and radiant cooling to remove a huge heat load from an Ice Cream factory, this load dissipated from 8 equipments. The work focuses on air flow patterns, and thermal behavior in this factory. The effectiveness of an air flow system is commonly assessed by the successful removal of that heat load from the equipments area in the factory and to improve the indoor air quality; this is the main target during the present thesis work. The study is carried out using computational fluid dynamics (CFD) simulation techniques as embedded in the commercially available CFD code (FLUENT 6.2).
机译:给非住宅建筑物供冷对功率消耗和峰值功率需求有很大贡献。用于冷却建筑物的部分电能是由通过管道输送冷空气的风扇吸收的。办公楼的典型热冷却峰值负荷分量可分为以下几类:照明31%,人13%,航空运输14%和设备6%(这些占电气峰值负荷的62.5%,标记为“冷却器”)。空气传输需要大约37%的电气峰值功率,而其余的功率是运行压缩机所必需的。本论文致力于数值研究使用传统空调和辐射冷却来消除冰淇淋工厂的巨大热负荷之间的区别,该负荷从8个设备中消散了。该工作着重于该工厂的气流模式和热性能。通常通过成功消除工厂设备区域的热负荷并改善室内空气质量来评估空气流通系统的有效性;这是本论文工作的主要目标。该研究是使用嵌入在市售CFD代码(FLUENT 6.2)中的计算流体动力学(CFD)模拟技术进行的。

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