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Evaluating heating, ventilation, and air-conditioning systems toward minimizing the airborne transmission risk of Mucormycosis and COVID-19 infections in built environment.评估供暖、通风和空调系统,以尽量降低建筑环境中毛霉菌病和新冠肺炎感染的空气传播风险。
Case Stud Therm Eng. 2021 Dec;28:101567. doi: 10.1016/j.csite.2021.101567. Epub 2021 Oct 20.
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Mucormycosis-A serious threat in the COVID-19 pandemic?毛霉病——新冠疫情中的严重威胁?
J Infect. 2021 Aug;83(2):237-279. doi: 10.1016/j.jinf.2021.05.015. Epub 2021 May 21.
2
Fulminant mucormycosis complicating coronavirus disease 2019 (COVID-19).暴发性毛霉菌病并发2019冠状病毒病(COVID-19)
Int Forum Allergy Rhinol. 2021 Jun;11(6):1029-1030. doi: 10.1002/alr.22785. Epub 2021 Mar 13.
3
Can Air-Conditioning Systems Contribute to the Spread of SARS/MERS/COVID-19 Infection? Insights from a Rapid Review of the Literature.空调系统是否会导致 SARS/MERS/COVID-19 感染的传播?文献快速回顾的见解。
Int J Environ Res Public Health. 2020 Aug 20;17(17):6052. doi: 10.3390/ijerph17176052.
4
First aid during the COVID-19 pandemic.2019冠状病毒病大流行期间的急救
Occup Med (Lond). 2020 Oct 27;70(7):458-460. doi: 10.1093/occmed/kqaa148.
5
Airborne Transmission of COVID-19.新型冠状病毒肺炎的空气传播
Occup Med (Lond). 2020 Jul 17;70(5):297-299. doi: 10.1093/occmed/kqaa080.
6
Correction for Dietz et al., "2019 Novel Coronavirus (COVID-19) Pandemic: Built Environment Considerations To Reduce Transmission".迪茨等人的文章《2019新型冠状病毒(COVID-19)大流行:减少传播的建筑环境考量》勘误
mSystems. 2020 May 5;5(3):e00375-20. doi: 10.1128/mSystems.00375-20.
7
Active Monitoring of Persons Exposed to Patients with Confirmed COVID-19 - United States, January-February 2020.对接触确诊 COVID-19 患者的人员进行主动监测-美国,2020 年 1 月至 2 月。
MMWR Morb Mortal Wkly Rep. 2020 Mar 6;69(9):245-246. doi: 10.15585/mmwr.mm6909e1.
8
Air, Surface Environmental, and Personal Protective Equipment Contamination by Severe Acute Respiratory Syndrome Coronavirus 2 (SARS-CoV-2) From a Symptomatic Patient.空气、表面环境和个人防护设备被 SARS-CoV-2(严重急性呼吸综合征冠状病毒 2)污染:来自有症状患者的证据。
JAMA. 2020 Apr 28;323(16):1610-1612. doi: 10.1001/jama.2020.3227.
9
Community Transmission of Severe Acute Respiratory Syndrome Coronavirus 2, Shenzhen, China, 2020.2020 年中国深圳严重急性呼吸综合征冠状病毒 2 的社区传播。
Emerg Infect Dis. 2020 Jun;26(6):1320-1323. doi: 10.3201/eid2606.200239. Epub 2020 Jun 17.
10
Early Transmission Dynamics in Wuhan, China, of Novel Coronavirus-Infected Pneumonia.新型冠状病毒感染肺炎在中国武汉的早期传播动力学。
N Engl J Med. 2020 Mar 26;382(13):1199-1207. doi: 10.1056/NEJMoa2001316. Epub 2020 Jan 29.

评估供暖、通风和空调系统,以尽量降低建筑环境中毛霉菌病和新冠肺炎感染的空气传播风险。

Evaluating heating, ventilation, and air-conditioning systems toward minimizing the airborne transmission risk of Mucormycosis and COVID-19 infections in built environment.

作者信息

William Micheal A, Suárez-López María José, Soutullo Silvia, Hanafy Ahmed A

机构信息

Mechanical Engineering, School of Engineering, The Knowledge Hub, Coventry University, Cairo, Egypt.

EDZE (Energía), Campus de Viesques, Universidad de Oviedo, 33204, Gijón, Asturias, Spain.

出版信息

Case Stud Therm Eng. 2021 Dec;28:101567. doi: 10.1016/j.csite.2021.101567. Epub 2021 Oct 20.

DOI:10.1016/j.csite.2021.101567
PMID:40477377
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8527735/
Abstract

This ongoing global pandemic of the COVID-19 has generated a significant international concern for our respiratory health. For instance, the breakout of the COVID-19 pandemic was directly linked to the spread of infectious particles in indoor environments between humans, underlining the significance of rigorous and effective actions to limit the transmission of diseases. Recently, Mucormycosis infections in COVID-19 patients have been identified. This investigation aims to investigate potential infection control HVAC solutions for indoor environments, as well as their core mechanisms for reducing infectious disease risk through simulation models of a valid building in a hot climatic region. Considering recent international recommendations, the investigation relies on a methodology of testing a validated building energy model to several systems in the light of infectious diseases prevention. All proposed models are exposed to cost analysis in line with carbon emissions, and indoor thermal conditions. The analysis outlined through parametric simulations, the effectiveness of the proposed DOAS in supplying 100% fresh ventilation air and enhancing the control of the indoor relative humidity simultaneously. Finally, through an enviro-economic assessment, the study concluded that the DOAS model reduced the CO emissions to 691 tons, with a potential of reducing HVAC and whole-building energy use by 37% and 16%, respectively in the hot arid climate, with a return on investment of about 6%.

摘要

当前全球新冠疫情引发了国际社会对我们呼吸健康的重大关注。例如,新冠疫情的爆发与室内环境中人类之间传染性颗粒的传播直接相关,这凸显了采取严格有效行动限制疾病传播的重要性。最近,已发现新冠患者感染毛霉菌病。本研究旨在通过对炎热气候地区一栋有效建筑的模拟模型,研究室内环境潜在的感染控制暖通空调解决方案及其降低传染病风险的核心机制。考虑到最近的国际建议,该研究采用了一种方法,即根据传染病预防对一个经过验证的建筑能源模型进行多种系统测试。所有提出的模型都要根据碳排放和室内热条件进行成本分析。通过参数模拟概述的分析,提出的独立新风系统在提供100%新鲜通风空气并同时增强对室内相对湿度控制方面的有效性。最后,通过环境经济评估,该研究得出结论,在炎热干旱气候下,独立新风系统模型将二氧化碳排放量降至691吨,分别有潜力将暖通空调和整栋建筑的能源使用降低37%和16%,投资回报率约为6%。