Evaluation of comfort levels in office space equipped with HVAC system based in personalized ventilation system using energy produced in DSF systems

E. Conceicao, M. Conceição, M. Lúcio, João Gomes, H. Awbi
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Abstract

In this study the numerical simulation of a Heating, Ventilating and Air Conditioning (HVAC) system, based in a personalized ventilation system, installed in an occupied office desk is made. The energy is produced in a Dual Skin Facades (DSF) system installed in the outdoor environment. The personalized ventilation system, placed above and below the writing area, installed in the desk central area. The office desk is occupied by eight virtual manikins. The numerical simulation is made in a winter typical day. This numerical study considers a coupling of a differential numerical model and an integral numerical model. The differential numerical model simulates the Computational Fluids Dynamics (CFD), evaluates the air velocity, air temperature, turbulence intensity and carbon dioxide concentration and calculates the indoor air quality. The integral numerical model simulates the Multi-Node Human Thermo-physiology Model, evaluates the tissue, blood and clothing temperatures distribution and calculates the thermal comfort level. The HVAC system, based on a DSF system, is built using three DSF unities, is equipped with internal venetian blinds. Each one, installed in a virtual chamber, is turned to south. The personalized ventilation system, made with eight upper and eight lower air terminal devices, is installed in the desk central area. On each table top two upper and two lower air terminal devices are considered in the left and right manikin area, while on each side of the table two upper and two lower air terminal devices are placed between the manikins. The office desk is occupied by eight virtual manikins, one sitting on each table top and three sitting on each side of the meeting table. In this numerical study, carried out in winter conditions, the occupants’ clothing level is 1 clo. In these situations a typical activity level of 1.2 met is considered. The evolution of indoor environmental conditions, in the DSF and in the office room, are calculated during a full winter typical day. The thermal comfort, the indoor air quality, the effectiveness for heat removal, the effectiveness for contaminant removal and the Air Distribution Index (ADI), are evaluated. In accordance with the obtained results the thermal comfort levels increase when the air renovation rate increases and the indoor air quality level increases when the air renovation rate increases. However, the ADI is quite constant when the inlet airflow rate increases, because the thermal comfort number decreases when the inlet airflow rate increases and the air quality number increases when the inlet airflow rate increases.
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基于个性化通风系统的暖通空调办公空间舒适度评价
本文对安装在办公桌旁的个性化通风系统中的暖通空调系统进行了数值模拟。能量是在安装在室外环境中的双表皮立面(DSF)系统中产生的。个性化的通风系统,放置在书写区上下,安装在写字台中央区域。办公桌上摆放着八个虚拟人体模型。数值模拟是在一个典型的冬季进行的。该数值研究考虑了微分数值模型和积分数值模型的耦合。差分数值模型模拟计算流体动力学(CFD),评估风速、空气温度、湍流强度和二氧化碳浓度,并计算室内空气质量。积分数值模型模拟多节点人体热生理模型,评估组织、血液和服装温度分布,计算热舒适水平。暖通空调系统以DSF系统为基础,采用三个DSF单元建造,配有内百叶百叶窗。每一个都安装在一个虚拟的房间里,朝南。个性化的通风系统,由8个上下风终端装置组成,安装在办公桌中央区域。在每个桌子的顶部,在左右两个人体模型区域考虑两个上、两个下空气终端装置,在桌子的每一侧,在人体模型之间放置两个上、两个下空气终端装置。办公桌上有八个虚拟人体模型,每个桌面上有一个,会议桌两边各有三个。在这个数值研究中,在冬季条件下进行,居住者的服装水平为1 clo。在这些情况下,考虑的典型活动水平为1.2 met。DSF和办公室室内环境条件的演变是在整个冬季典型的一天内计算的。对热舒适、室内空气质量、排热效果、污染物去除效果和空气分布指数进行了评价。所得结果表明,随着空气更新率的增加,热舒适水平增加,室内空气质量水平随着空气更新率的增加而增加。然而,当进口气流增加时,ADI是相当恒定的,因为当进口气流增加时,热舒适数减少,而当进口气流增加时,空气质量数增加。
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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