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Effect of air flow rates on concurrent supply and exhaust kitchen ventilation system

机译:空气流量对同时供气和排风厨房通风系统的影响

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Concurrent supply and exhaust ventilation (CSEV) has been developed to effectively exhaust heat and contamination from the kitchen. The objective of this research was to investigate the performance variation of this system with respect to air flow rates. CSEV system can block the contaminated air from entering the inner space by supplying fresh air horizontally in the ceilings towards the hood where the overflowed contaminated gas tends to diffuse to inner part of the room. The system captures contaminated air in an area near the ceiling and this captured air is then exhausted through the ceiling outlet. For quantitative evaluation, heat and gas capture efficiencies were defined and calculated. Experiments were conducted to compute heat and gas capture efficiencies based on the temperature and SF6 concentration data that were measured at the exhaust locations. To find optimum operation conditions for a CSEV system, numerical analysis was carried out. The numerical results were in good agreement with the experimental values. Maximum differences between the two methods are 17% for hood system and 10% for CSEV. Both heat and gas capture efficiencies would increase as exhaust flow rate of the hood increases. However, the optimum supply flow rate of ceiling nozzle was found to be 100m(3)/h for maximum efficiency. This optimum flow rate condition would improve removing heat and contamination from the kitchen for better indoor air quality.
机译:已经开发了并排供气通风系统(CSEV),可以有效地排出厨房中的热量和污染物。这项研究的目的是研究该系统相对于空气流速的性能变化。 CSEV系统可以通过将天花板上的新鲜空气水平地朝机罩供应空气,从而阻止被污染的空气进入内部空间,在机罩中,溢出的被污染气体倾向于扩散到房间的内部。该系统捕获天花板附近区域中的污染空气,然后通过天花板出口将其捕获。为了进行定量评估,定义并计算了热量和气体的捕集效率。进行了实验以根据在排气口测得的温度和SF6浓度数据来计算热量和气体的捕集效率。为了找到CSEV系统的最佳运行条件,进行了数值分析。数值结果与实验值吻合良好。两种方法之间的最大差异是引擎盖系统的17%和CSEV的10%。随着发动机罩排气流量的增加,热量和气体的捕集效率都会提高。但是,为获得最大效率,发现天花板喷嘴的最佳供应流量为100m(3)/ h。这种最佳流速条件将改善从厨房中清除热量和污染物的能力,从而改善室内空气质量。

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