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Evaluation and investigation of the effects of ventilation layout, rate, and room temperature on pollution dispersion across a laboratory indoor environment

机译:透气布局,率和室温对实验室室内环境污染分散效应的评价与调查

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The presence of chemicals in laboratories and research centers exposes the staff working at such indoor environment to health risks. In this piece of research, a study was performed on the indoor environment of the Center for Environmental Engineering Research at Sahand University of Technology (Tabriz, Iran). For this purpose, the parameters affecting the dispersion of volatile organic compounds (VOCs), including ventilation rate, room temperature, pollution emission time, venting location, air flow regime within the indoor environment, and the number of vents, were simulated via CFD modeling. The CFD modeling was performed three-dimensionally in unsteady state. In case of turbulent flow within the indoor environment, k-epsilon turbulence model was used to obtain air velocity profile. Experimental data was used to validate the model. Results of the present research showed that when the venting location is on the ceiling, pollution concentration of 25ppm can be achieved at some low temperature under a particular set of conditions. However, when the venting location was on the walls close to the pollution source, concentrations as low as 5ppm and lower were observed within the laboratory indoor environment.
机译:实验室和研究中心的化学品的存在使工作人员在此类室内环境下工作到健康风险。在这一项研究中,在撒哈拉工业大学环境工程研究中心(Tabriz,Iran)的环境工程研究中心的室内环境进行了一项研究。为此,通过CFD建模模拟了影响挥发性有机化合物(VOC)分散的参数,包括通风率,室温,污染发射时间,通风位置,通风口的空气流量,以及通风口的数量。 CFD建模在不稳定状态下三维进行。在室内环境内的湍流的情况下,用于获得空气速度曲线的K-Epsilon湍流模型。实验数据用于验证模型。目前研究结果表明,当通风位置在天花板上时,在特定条件下,在一些低温下可以实现25ppm的污染浓度。然而,当通风位置位于靠近污染源的墙壁上时,在实验室室内环境中观察到低至5ppm和更低的浓度。

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