机械通风对地下室室内空气质量影响的数值分析

IF 2.7 Q2 MULTIDISCIPLINARY SCIENCES Scientific African Pub Date : 2024-07-10 DOI:10.1016/j.sciaf.2024.e02310
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引用次数: 0

摘要

银行保险库和地下室等密闭空间的室内空气质量(IAQ)受到建筑布局和暖通空调系统等复杂因素的影响。本研究探讨了机械通风如何影响银行大楼地下室保险库的室内空气质量,解决了在这些密闭环境中污染物暴露所带来的重大挑战。这项研究利用 CFD(ANSYS Fluent Workbench 16.0)和 CONTAM 3.2 软件进行多区通风和空气质量分析,推进了密闭空间中对居住者健康和安全至关重要的安全室内空气质量。它分析了三种室内污染物:氡(Rn)、二氧化碳(CO2)和颗粒物(PM2.5),从而提高了研究结果的可靠性和适用性。研究结果表明,模拟的室内污染物浓度未超过室内空气质量指导水平。根据 CFD 模拟预测,地下室内氡的平均稳态值为 27.2 Bq/m3,二氧化碳为 574.80 ppm,PM2.5 为 69.36 µg/m3。针对不同的室外空气地板率,确定了 4.7 ACH 的最佳通风率和 17 kW 的冷却负荷,以将氡浓度维持在 15 Bq/m3 以下。这为在密闭空间内保持安全的室内空气质量提供了一个切实可行的解决方案,与类似研究相比迈出了一大步。这些结果与其他实验研究一致,验证了数值技术在室内空气质量研究中的应用。通过优化暖通空调系统以保持室内空气质量并最大限度地降低能耗,该研究通过提高能源效率支持了可持续发展目标 7(负担得起的清洁能源),通过减少室内污染物暴露支持了可持续发展目标 3(良好的健康和福祉),通过改善密闭空间的空气质量管理支持了可持续发展目标 11(可持续城市和社区)。研究结果与非洲尤其相关,提供了切实可行的解决方案,为政策方向提供了信息,并支持非洲联盟的《2063 年议程》和可持续发展目标 3、7 和 11。
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Numerical analysis on mechanical ventilation impact on indoor air quality in a basement

Indoor air quality (IAQ) in confined spaces like bank vaults and basements is influenced by complex factors such as building layout and HVAC systems. This study examines how mechanical ventilation impacts IAQ in a bank building's occupied basement vault, addressing significant challenges posed by pollutant exposure in these air-tight environments. This study advances safe IAQ in confined spaces, crucial for occupant health and safety, using CFD (ANSYS Fluent Workbench 16.0) and CONTAM 3.2 software for multi-zone ventilation and air quality analysis. It analysed three indoor pollutants: Radon (Rn), Carbon dioxide (CO2), and Particulate Matter (PM2.5), enhancing the reliability and applicability of the findings. The findings indicated that the simulated indoor pollutants concentrations did not exceed the indoor air quality guideline levels. The CFD simulations predicted average steady-state values of 27.2 Bq/m3 for Radon, 574.80 ppm for CO2, and 69.36 µg/m3 for PM2.5 in the basement. For different outdoor air floor rates, an optimal ventilation rate of 4.7 ACH and a cooling load of 17 kW were determined to maintain Radon concentrations below 15 Bq/m3. This provides a practical and actionable solution for maintaining safe IAQ in confined spaces, which is a significant step forward compared to similar studies. These results align with other experimental research, validating the use of numerical techniques in indoor air quality studies. By optimizing HVAC systems to maintain IAQ and minimize energy consumption, the study supports SDG 7 (Affordable and Clean Energy) by enhancing energy efficiency, SDG 3 (Good Health and Well-being) by reducing exposure to indoor pollutants, and SDG 11 (Sustainable Cities and Communities) by improving air quality management in confined spaces. The findings are particularly relevant for Africa, offering practical solutions, informing policy direction, and supporting the African Union's Agenda 2063 and SDGs 3, 7, and 11.

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来源期刊
Scientific African
Scientific African Multidisciplinary-Multidisciplinary
CiteScore
5.60
自引率
3.40%
发文量
332
审稿时长
10 weeks
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