参考文献/References:
[1]李玉国,程盼,钱华.新型冠状病毒的主要传播途径及其对室内环境设计的影响[J].科学通报,2021,66(Z1):417-423.
LI Yuguo, CHENG Pan, QIAN Hua. Dominant transmission route of SARS-CoV-2 and its implication to indoor environment[J]. Science Bulletin, 2021,66(Z1):417-423.
[2]朱妮,曹磊,杨国婧,等.陕西本土新型冠状病毒肺炎无症状感染者流行特征及传播途径[J].西安交通大学学报(医学版),2021,42(2):186-189.
ZHU Ni, CAO Lei, YANG Guojing, et al. Epidemiological characteristics and transmission routes of COVID-19 asymptomatic infected patients in Shaanxi Province[J]. Journal of Xi'an Jiaotong University(Medical Sciences),2021,42(2):186-189.
[3]袁朝晖,周延彬,崔加楹,等.基于自然通风的长沙高校图书馆中庭形态研究[J].西安建筑科技大学学报(自然科学版),2020,52(4):579-586.
YUAN Zhaohui, ZHOU Yanbin, CUI Jiaying, et al. Research on atrium form of Changsha university libraries based on natural ventilation[J]. J. Xi'an Univ. of Arch. &. Tech.(Natural Science Edition), 2020,52(4):579-586.
[4]刘智伟,黄晶晶,张美峰.酒店建筑平疫结合设计技术要点研究[J].建筑与文化,2023(7):133-135.
LIU Zhiwei, HUANG Jingjing, ZHANG Meifeng. Research on the key points of design technology for the integration of hotel architecture and epidemic prevention[J]. Architecture and Culture,2023(7), 133-135.
[5]卜德清,张勃.数字时代酒店后线区域建筑设计[M].北京:中国建筑工业出版社,2021.
BU Deqing, ZHANG Bo. Architecture design of BOH area for hotel in digital age[M]. Beijing: China Architecture & Building Press,2021.
[6]RILEY E C, MURPHY G, RILEY R L. Airborne spread of measles in a suburban elementary school[J]. American Journal of Epidemiology, 1978, 107(5): 421-432.
[7]钱华, 郑晓红, 张学军.呼吸道传染病空气传播的感染概率的预测模型[J]. 东南大学学报(自然科学版), 2012, 42(3): 468-472.
QIAN Hua, ZHENG Xiaohong, ZHANG Xuejun. Prediction of risk of airborne transmitted diseases[J]. Journal of Southeast University(Natural Science Edition), 2012, 42(3): 468-472.
[8]YANG X, OU C, YANG H, et al. Transmission of pathogen-laden expiratory droplets in a coach bus[J]. Journal of Hazardous Materials, 2020, 397: 122609.
[9]吴家麟,翁文国.新冠肺炎病毒颗粒在空调大巴中的传播与乘客感染风险[J].清华大学学报(自然科学版),2021,61(2):89-95.
WU Jialin, WENG Wenguo. Transmission of COVID-19 viral particles and the risk of infection among passengers in air-conditioned buses[J]. Journal of Tsinghua University(Science and Technology), 2021, 61(2): 89-95.
[10]张静,吕文超,李安桂,等.基于医疗废物高温蒸汽处理车间的通风方案优化及效果预测[J].西安建筑科技大学学报(自然科学版),2022,54(5):742-752.
ZHANG Jing, LV Wenchao, LI Angui, et al. Optimization and effect prediction of ventilation scheme for medical waste high-temperature steam treatment workshop[J]. J. Xi'an Univ. of Arch. &. Tech.(Natural Science Edition), 2022,54(05):742-752.
[11]黎家雄,唐海达,李春莹.基于人活动轨迹的住院楼新冠病毒气溶胶传播风险研究[J].建筑科学,2022,38(6):88-96.
LI Jiaxiong, TANG Haida, LI Chunying. The risk assessment of SARS-COV-2 Aerosol Transmission in inpatient Buildings based on human activity trajectory[J]. Building Science, 2022,38(6):88-96.
[12]刘刚,张亦弛,曲冠华,等.考虑人员密度分布的儿童医院候诊空间感染风险研究[J].天津大学学报(自然科学与工程技术版),2022,55(12):1249-1261.
LIU Gang, ZHANG Yichi, QU Guanhua. Risk of infection in the waiting rooms in children's hospitals considering population density distribution[J]. Journal of Tianjin University(Science and Technology), 2022, 55(12): 1249-1261.
[13]钟志涛,李春莹,唐海达.医院诊区空间设计探析与感染风险评价[J].城市建筑,2022,19(10):105-111.
ZHONG Zhitao, LI Chunying, TANG Haida. Analysis on the spatial design of hospital consulting area and its infection risk assessment[J]. Urbanism and Architeture, 2022,19(10):105-111.
[14]DONG Y, ZHU L, LI S, et al. Optimal design of building openings to reduce the risk of indoor respiratory epidemic infections[C]. Beijing: Tsinghua University Press, 2022: 1-14.
[15]陈红兵,王文谦,王聪聪,等.北京某高校教室自然通风下新冠感染概率实验和模拟研究[J].暖通空调,2023,53(5):124-129,135.
CHEN Hongbing, WANG Wenqian, WANG Congcong, et al. Experimental and simulation study on infection rate of SARS-CoV-2 under natural ventilation in classrooms of a university in Beijing[J]. Heating Ventilating & Air Conditioning, 2023,53(5):124-129,135.
[16]SHAO X, LI X. COVID-19 transmission in the first presidential debate in 2020[J]. Physics of Fluids, 2020, 32(11):115125.
[17]LIANG C, JIANG S, SHAO X, et al. Is it safe to reopen theaters during the COVID-19 pandemic?[J]. Frontiers in Built Environment, 2021, 7: 637277.
[18]陈国强,刘澜,陈玉婷,等.基于Wells-Riley模型的公交车辆内部COVID-19传播及防控研究[J].公路交通科技,2022,39(6):144-152.
CHEN Guoqiang, LIU Lan, CHEN Yuting, et al. Study on spread and prevention of COVID-19 inside buses based on Wells-Riley model[J]. Journal of Highway and Transportation Research and Development, 2022,39(6):144-152.
[19]马剑,李慧文,宋丹丹,等.校园通勤行人流时空伴随分析与疫情防控策略[J].中国安全科学学报,2022,32(9):86-93.
MA Jian, LI Huiwen, SONG Dandan, et al. Spatiotemporal concomitant analysis and epidemic control strategies for commuter pedestrian flow in campus[J]. China Safety Science Journal, 2022,32(9):86-93.
[20]邓巧明,李晓峰,刘宇波.基于人流模拟方法的高校疫情防控研究——以华南理工大学为例[J].建筑技艺,2022,28(9):30-33.
DENG Qiaoming, LI Xiaofeng, LI Yubo. Research on the prevention and control of epidemic in campus based on the pedestrian flow simulation method[J]. Architecture Technique, 2022,28(9):30-33.
[21]SUN C, ZHAI Z. The efficacy of social distance and ventilation effectiveness in preventing COVID-19 transmission[J]. Sustainable Cities and Society,2020,62: 102390.
[22]HARWEG T, BACHMANN D, WEICHERT F. Agent-based simulation of pedestrian dynamics for exposure time estimation in epidemic risk assessment[J]. Journal of Public Health,2023, 31(2):221-228.
[23]NASYROV R. The study of the dynamics of the spread of viral infection in the premises of the critical infrastructure using a hybrid model on the example of a medical organization[C]//8th Scientific Conference on Information Technologies for Intelligent Decision Making Support(ITIDS 2020). Ufa,Russia:Atlantis Press, 2020: 397-402.
[24]李瑞彬,吴妍,牛建磊,等.人体呼出颗粒物的传播特性及呼吸道传染病感染概率预测方法[J].暖通空调,2020,50(9):41-54.
LI Ruibin, WU Yan, NIU Jianlei, et al. Transmission characteristics of human exhaled particles and risk prediction methods of respiratory infectious diseases[J]. Heating Ventilating & Air Conditioning, 2020,50(9):41-54.
[25]XIAO S, LI Y, SUNG M, et al. A study of the probable transmission routes of MERS-CoV during the first hospital outbreak in the Republic of Korea[J]. Indoor air, 2018, 28(1): 51-63.
[26]YANG W, GAO N P. The transport of gaseous pollutants due to stack effect in high-rise residential buildings[J]. International Journal of Ventilation,2015,14(2): 191-208.
[27]王冰冰,薛聪聪,王珊.基于排队论和Anylogic仿真的三甲医院门诊采血区设计指标研究[J].建筑学报,2020,22(S2):185-189.
WANG Bingbing, XUE Congcong, WANG Shan. Research on design indexes of outpatient blood collection area in grade Ⅲ level a hospital based on queuing theory and anylogic simulation[J].The journal of Architecture, 2020, 22(S2):185-189.
[28]董嘉,李力,韩冬青.模型法与模拟法对自发性活动人流密度预测的比较[J].新建筑,2018(3):90-93.
DONG Jia, LI Li, Han Dongqing. Comparison of modelling and simulation methods in predicting optional activity people density[J]. New Architecture, 2018(3):90-93.
[29]赵加宁,武丽霞,王昭俊,等.大型超市客流量的调查与分析[J].暖通空调,2004(6):53-56.
ZHAO Jianing, WU Lixia, WANG Zhaojun et al. Investigation and analysis of consumer flow rate in large supermarket[J]. Heating Ventilating & Air Conditioning,2004(6): 53-56.
[30]居发礼,付祥钊.医院门诊公共空间人流量特性及新风量需求[J].建筑科学,2017,33(12):110-116,181.
JU Fali, FU Xiangzhao. Characteristics of people flow and outdoor air requirement in outpatient department public area[J]Building Science, 2017,33(12):110-116,181.
[31]CHEN X, CHEN Z, AZMAN A S, et al. Serological evidence of human infection with SARS-CoV-2: a systematic review and meta-analysis[J]. The Lancet Global Health,2021,9(5): e598-e609.