$\require{mediawiki-texvc}$

연합인증

연합인증 가입 기관의 연구자들은 소속기관의 인증정보(ID와 암호)를 이용해 다른 대학, 연구기관, 서비스 공급자의 다양한 온라인 자원과 연구 데이터를 이용할 수 있습니다.

이는 여행자가 자국에서 발행 받은 여권으로 세계 각국을 자유롭게 여행할 수 있는 것과 같습니다.

연합인증으로 이용이 가능한 서비스는 NTIS, DataON, Edison, Kafe, Webinar 등이 있습니다.

한번의 인증절차만으로 연합인증 가입 서비스에 추가 로그인 없이 이용이 가능합니다.

다만, 연합인증을 위해서는 최초 1회만 인증 절차가 필요합니다. (회원이 아닐 경우 회원 가입이 필요합니다.)

연합인증 절차는 다음과 같습니다.

최초이용시에는
ScienceON에 로그인 → 연합인증 서비스 접속 → 로그인 (본인 확인 또는 회원가입) → 서비스 이용

그 이후에는
ScienceON 로그인 → 연합인증 서비스 접속 → 서비스 이용

연합인증을 활용하시면 KISTI가 제공하는 다양한 서비스를 편리하게 이용하실 수 있습니다.

Prediction of Wind Environment and Indoor/Outdoor Relationships for PM2.5 in Different Building-Tree Grouping Patterns 원문보기

Atmosphere, v.9 no.2, 2018년, pp.39 -   

Hong, Bo ,  Qin, Hongqiao ,  Lin, Borong

초록이 없습니다.

참고문헌 (70)

  1. Brunekreef, Bert, Holgate, Stephen T. Air pollution and health. The Lancet, vol.360, no.9341, 1233-1242.

  2. Zhang, X., Zhang, X., Chen, X.. Happiness in the air: How does a dirty sky affect mental health and subjective well-being?. Journal of environmental economics and management, vol.85, 81-94.

  3. Abt, E., Suh, H. H., Catalano, P., Koutrakis, P.. Relative Contribution of Outdoor and Indoor Particle Sources to Indoor Concentrations. Environmental science & technology, vol.34, no.17, 3579-3587.

  4. Ramachandran, Gurumurthy, Adgate, John L., Pratt, Gregory C., Sexton, Ken. Characterizing Indoor and Outdoor 15 Minute Average PM 2.5 Concentrations in Urban Neighborhoods. Aerosol science and technology : the journal of the American Association for Aerosol Reserch, vol.37, no.1, 33-45.

  5. Schneider, Thomas, Alstrup Jensen, Keld, Clausen, Per A., Afshari, Alireza, Gunnarsen, Lars, Wåhlin, Peter, Glasius, Marianne, Palmgren, Finn, Nielsen, Ole J., Fogh, Christian L.. Prediction of indoor concentration of 0.5–4μm particles of outdoor origin in an uninhabited apartment. Atmospheric environment, vol.38, no.37, 6349-6359.

  6. Matson, Uve. Indoor and outdoor concentrations of ultrafine particles in some Scandinavian rural and urban areas. The Science of the total environment, vol.343, no.1, 169-176.

  7. Jones, A.P.. Indoor air quality and health. Atmospheric environment, vol.33, no.28, 4535-4564.

  8. Liao, Chung-Min, Huang, Su-Jui, Yu, Hsin. Size-dependent particulate matter indoor/outdoor relationships for a wind-induced naturally ventilated airspace. Building and environment, vol.39, no.4, 411-420.

  9. de Jong, T., Bot, G.P.A.. Air exchange caused by wind effects through (window) openings distributed evenly on a quasi-infinite surface. Energy and buildings, vol.19, no.2, 93-103.

  10. Miguel, A.F., van de Braak, N.J., Silva, A.M., Bot, G.P.A.. Wind-induced airflow through permeable materials, Part II: air infiltration in enclosures. Journal of wind engineering and industrial aerodynamics, vol.89, no.1, 59-72.

  11. Tominaga, Yoshihide, Mochida, Akashi, Shirasawa, Taichi, Yoshie, Ryuichiro, Kataoka, Hiroto, Harimoto, Kazuyoshi, Nozu, Tsuyoshi. Cross Comparisons of CFD Results of Wind Environment at Pedestrian Level around a High-rise Building and within a Building Complex. Journal of Asian architecture and building engineering, vol.3, no.1, 63-70.

  12. Zhang, Aishe, Gao, Cuilan, Zhang, Ling. Numerical simulation of the wind field around different building arrangements. Journal of wind engineering and industrial aerodynamics, vol.93, no.12, 891-904.

  13. Asfour, Omar S., Gadi, Mohamed B.. A comparison between CFD and Network models for predicting wind-driven ventilation in buildings. Building and environment, vol.42, no.12, 4079-4085.

  14. Tominaga, Yoshihide, Mochida, Akashi, Yoshie, Ryuichiro, Kataoka, Hiroto, Nozu, Tsuyoshi, Yoshikawa, Masaru, Shirasawa, Taichi. AIJ guidelines for practical applications of CFD to pedestrian wind environment around buildings. Journal of wind engineering and industrial aerodynamics, vol.96, no.10, 1749-1761.

  15. Kubota, T., Miura, M., Tominaga, Y., Mochida, A.. Wind tunnel tests on the relationship between building density and pedestrian-level wind velocity: Development of guidelines for realizing acceptable wind environment in residential neighborhoods. Building and environment, vol.43, no.10, 1699-1708.

  16. Mochida, Akashi, Lun, Isaac Y.F.. Prediction of wind environment and thermal comfort at pedestrian level in urban area. Journal of wind engineering and industrial aerodynamics, vol.96, no.10, 1498-1527.

  17. Asfour, Omar S.. Prediction of wind environment in different grouping patterns of housing blocks. Energy and buildings, vol.42, no.11, 2061-2069.

  18. You, Wei, Gao, Zhi, Chen, Zhi, Ding, Wowo. Improving Residential Wind Environments by Understanding the Relationship between Building Arrangements and Outdoor Regional Ventilation. Atmosphere, vol.8, no.6, 102-.

  19. Mochida, Akashi, Tabata, Yuichi, Iwata, Tatsuaki, Yoshino, Hiroshi. Examining tree canopy models for CFD prediction of wind environment at pedestrian level. Journal of wind engineering and industrial aerodynamics, vol.96, no.10, 1667-1677.

  20. Chen, Hong, Ooka, Ryozo, Kato, Shinsuke. Study on optimum design method for pleasant outdoor thermal environment using genetic algorithms (GA) and coupled simulation of convection, radiation and conduction. Building and environment, vol.43, no.1, 18-30.

  21. Hong, Bo, Lin, Borong, Hu, Lihui, Li, Shuhua. Optimal tree design for sunshine and ventilation in residential district using geometrical models and numerical simulation. Building simulation, vol.4, no.4, 351-363.

  22. Hong, Bo, Lin, Bo-rong, Wang, Bing, Li, Shu-hua. Optimal design of vegetation in residential district with numerical simulation and field experiment. Journal of Central South University, vol.19, no.3, 688-695.

  23. Hong, B., Lin, B.. Numerical studies of the outdoor wind environment and thermal comfort at pedestrian level in housing blocks with different building layout patterns and trees arrangement. Renewable energy, vol.73, 18-27.

  24. Chen, C., Zhao, B.. Review of relationship between indoor and outdoor particles: I/O ratio, infiltration factor and penetration factor. Atmospheric environment, vol.45, no.2, 275-288.

  25. Braniš, Martin, Řezáčová, Pavla, Domasová, Markéta. The effect of outdoor air and indoor human activity on mass concentrations of PM10, PM2.5, and PM1 in a classroom. Environmental research, vol.99, no.2, 143-149.

  26. Massey, D., Masih, J., Kulshrestha, A., Habil, M., Taneja, A.. Indoor/outdoor relationship of fine particles less than 2.5μm (PM2.5) in residential homes locations in central Indian region. Building and environment, vol.44, no.10, 2037-2045.

  27. Chithra, V.S., Shiva Nagendra, S.M.. Indoor air quality investigations in a naturally ventilated school building located close to an urban roadway in Chennai, India. Building and environment, vol.54, 159-167.

  28. Mohammadyan, Mahmoud, Ghoochani, Mahboobeh, Kloog, Itai, Abdul-Wahab, Sabah Ahmed, Yetilmezsoy, Kaan, Heibati, Behzad, Godri Pollitt, Krystal J.. Assessment of indoor and outdoor particulate air pollution at an urban background site in Iran. Environmental monitoring and assessment, vol.189, no.5, 235-.

  29. Hahn, Intaek, Brixey, Laurie A., Wiener, Russell W., Henkle, Stacy W.. Parameterization of meteorological variables in the process of infiltration of outdoor ultrafine particles into a residential building. Journal of environmental monitoring : JEM, vol.11, no.12, 2192-2200.

  30. Chithra, V.S., Shiva Nagendra, S.M.. Impact of outdoor meteorology on indoor PM10, PM2.5 and PM1 concentrations in a naturally ventilated classroom. Urban climate, vol.10, no.1, 77-91.

  31. Nı́ Riain, C.M., Mark, D., Davies, M., Harrison, R.M., Byrne, M.A.. Averaging periods for indoor–outdoor ratios of pollution in naturally ventilated non-domestic buildings near a busy road. Atmospheric environment, vol.37, no.29, 4121-4132.

  32. Massey Seasonal trends of PM10, PM5.0, PM2.5& PM1.0 in indoor and outdoor environments of residential homes located in North-Central India Build. Environ. 2012 10.1016/j.buildenv.2011.07.018 47 223 

  33. Zhao, X., Zhang, X., Xu, X., Xu, J., Meng, W., Pu, W.. Seasonal and diurnal variations of ambient PM2.5 concentration in urban and rural environments in Beijing. Atmospheric environment, vol.43, no.18, 2893-2900.

  34. Yang, F., Kang, Y., Gao, Y., Zhong, K.. Numerical simulations of the effect of outdoor pollutants on indoor air quality of buildings next to a street canyon. Building and environment, vol.87, 10-22.

  35. Zhao, Bin, Zhang, Ying, Li, Xianting, Yang, Xudong, Huang, Dongtao. Comparison of indoor aerosol particle concentration and deposition in different ventilated rooms by numerical method. Building and environment, vol.39, no.1, 1-8.

  36. Quang, T.N., He, C., Morawska, L., Knibbs, L.D.. Influence of ventilation and filtration on indoor particle concentrations in urban office buildings. Atmospheric environment, vol.79, 41-52.

  37. Kopperud, Royal J., Ferro, Andrea R., Hildemann, Lynn M.. Outdoor Versus Indoor Contributions to Indoor Particulate Matter (PM) Determined by Mass Balance Methods. Journal of the Air & Waste Management Association, vol.54, no.9, 1188-1196.

  38. Zhao, L., Chen, C., Wang, P., Chen, Z., Cao, S., Wang, Q., Xie, G., Wan, Y., Wang, Y., Lu, B.. Influence of atmospheric fine particulate matter (PM2.5) pollution on indoor environment during winter in Beijing. Building and environment, vol.87, 283-291.

  39. Hussein, Tareq. Indoor-to-outdoor relationship of aerosol particles inside a naturally ventilated apartment – A comparison between single-parameter analysis and indoor aerosol model simulation. The Science of the total environment, vol.596, 321-330.

  40. Bo, Matteo, Salizzoni, Pietro, Clerico, Marina, Buccolieri, Riccardo. Assessment of Indoor-Outdoor Particulate Matter Air Pollution: A Review. Atmosphere, vol.8, no.8, 136-.

  41. Hong, Bo, Lin, Borong, Qin, Hongqiao. Numerical investigation on the coupled effects of building-tree arrangements on fine particulate matter (PM2.5) dispersion in housing blocks. Sustainable cities and society, vol.34, 358-370.

  42. Annual Report on Chinese Building Energy Conservation Development 2016 2016 

  43. Shi, Shanshan, Zhao, Bin. Occupants’ interactions with windows in 8 residential apartments in Beijing and Nanjing, China. Building simulation, vol.9, no.2, 221-231.

  44. Ye, Boming, Ji, Xueli, Yang, Haizhen, Yao, Xiaohong, Chan, Chak K, Cadle, Steven H, Chan, Tai, Mulawa, Patricia A. Concentration and chemical composition of PM2.5 in Shanghai for a 1-year period. Atmospheric environment, vol.37, no.4, 499-510.

  45. Real-Time Air Quality in Beijing http://www.bjmemc.com.cn 

  46. WHO Air Quality Guidelines for Particulate Matter, Ozone, Nitrogen Dioxide and Sulfur Dioxide http://apps.who.int/iris/bitstream/10665/69477/1/WHO_SDE_PHE_OEH_06.02_eng.pdf 

  47. Freer-Smith, P.H., Beckett, K.P., Taylor, Gail. Deposition velocities to Sorbus aria, Acer campestre, Populus deltoides × trichocarpa ‘Beaupré’, Pinus nigra and × Cupressocyparis leylandii for coarse, fine and ultra-fine particles in the urban environment. Environmental pollution, vol.133, no.1, 157-167.

  48. Franke, J., Hellsten, A., Schlunzen, K.H., Carissimo, B.. The COST 732 Best Practice Guideline for CFD simulation of flows in the urban environment: a summary. International journal of environment and pollution, vol.44, no.1, 419-427.

  49. Lin, Borong, Li, Xiaofeng, Zhu, Yingxin, Qin, Youguo. Numerical simulation studies of the different vegetation patterns’ effects on outdoor pedestrian thermal comfort. Journal of wind engineering and industrial aerodynamics, vol.96, no.10, 1707-1718.

  50. Finnigan, John. Turbulence in Plant Canopies. Annual review of fluid mechanics, vol.32, 519-571.

  51. Sanz, Christophe. A Note on k - ε Modelling of Vegetation Canopy Air-Flows. Boundary-layer meteorology, vol.108, no.1, 191-197.

  52. Katul, Gabriel G., Mahrt, Larry, Poggi, Davide, Sanz, Christophe. ONE- and TWO-Equation Models for Canopy Turbulence. Boundary-layer meteorology, vol.113, no.1, 81-109.

  53. Endalew, A. Melese, Hertog, M., Delele, M.A., Baetens, K., Persoons, T., Baelmans, M., Ramon, H., Nicolaï, B.M., Verboven, P.. CFD modelling and wind tunnel validation of airflow through plant canopies using 3D canopy architecture. The International journal of heat and fluid flow, vol.30, no.2, 356-368.

  54. Ji, Wenjing, Zhao, Bin. Numerical study of the effects of trees on outdoor particle concentration distributions. Building simulation, vol.7, no.4, 417-427.

  55. Vranckx, S., Vos, P., Maiheu, B., Janssen, S.. Impact of trees on pollutant dispersion in street canyons: A numerical study of the annual average effects in Antwerp, Belgium. The Science of the total environment, vol.532, 474-483.

  56. Jeanjean, A.P.R., Monks, P.S., Leigh, R.J.. Modelling the effectiveness of urban trees and grass on PM2.5 reduction via dispersion and deposition at a city scale. Atmospheric environment, vol.147, 1-10.

  57. Santiago, J. L., Martilli, A., Martin, F.. On Dry Deposition Modelling of Atmospheric Pollutants on Vegetation at the Microscale: Application to the Impact of Street Vegetation on Air Quality. Boundary-layer meteorology, vol.162, no.3, 451-474.

  58. Air Pollution and Plant Life 2003 

  59. Concentration Data of Street Canyons (CODASC) http://www.windforschung.de/CODASC.htm 

  60. Gromke, C., Blocken, B.. Influence of avenue-trees on air quality at the urban neighborhood scale. Part I: Quality assurance studies and turbulent Schmidt number analysis for RANS CFD simulations. Environmental pollution, vol.196, 214-223.

  61. Roache, P. J.. Perspective: A Method for Uniform Reporting of Grid Refinement Studies. Journal of fluids engineering, vol.116, no.3, 405-413.

  62. Gromke, Christof, Ruck, Bodo. Pollutant Concentrations in Street Canyons of Different Aspect Ratio with Avenues of Trees for Various Wind Directions. Boundary-layer meteorology, vol.144, no.1, 41-64.

  63. Hanna, Steven, Chang, Joseph. Acceptance criteria for urban dispersion model evaluation. Meteorology and atmospheric physics, vol.116, no.3, 133-146.

  64. Hong, Bo, Lin, Borong, Qin, Hongqiao. Numerical Investigation on the Effect of Avenue Trees on PM2.5 Dispersion in Urban Street Canyons. Atmosphere, vol.8, no.7, 129-.

  65. Hefny, M.M., Ooka, R.. CFD analysis of pollutant dispersion around buildings: Effect of cell geometry. Building and environment, vol.44, no.8, 1699-1706.

  66. Barratt Atmospheric Dispersion Modeling: An Introduction to Practical Applications 2001 

  67. Jin, Ruiqiu, Hang, Jian, Liu, Shanshan, Wei, Jianjian, Liu, Yang, Xie, Jielan, Sandberg, Mats. Numerical investigation of wind-driven natural ventilation performance in a multi-storey hospital by coupling indoor and outdoor airflow. Indoor + built environment : the journal of the International Society of the Built Environment, vol.25, no.8, 1226-1247.

  68. Lee, Byung Hee, Yee, Su Whan, Kang, Dong Hwa, Yeo, Myoung Souk, Kim, Kwang Woo. Multi-zone simulation of outdoor particle penetration and transport in a multi-story building. Building simulation, vol.10, no.4, 525-534.

  69. King, Marco-Felipe, Gough, Hannah L., Halios, Christos, Barlow, Janet F., Robertson, Adam, Hoxey, Roger, Noakes, Catherine J.. Investigating the influence of neighbouring structures on natural ventilation potential of a full-scale cubical building using time-dependent CFD. Journal of wind engineering and industrial aerodynamics, vol.169, 265-279.

  70. Chan, Andy T.. Indoor–outdoor relationships of particulate matter and nitrogen oxides under different outdoor meteorological conditions. Atmospheric environment, vol.36, no.9, 1543-1551.

관련 콘텐츠

오픈액세스(OA) 유형

GOLD

오픈액세스 학술지에 출판된 논문

섹션별 컨텐츠 바로가기

AI-Helper ※ AI-Helper는 오픈소스 모델을 사용합니다.

AI-Helper 아이콘
AI-Helper
안녕하세요, AI-Helper입니다. 좌측 "선택된 텍스트"에서 텍스트를 선택하여 요약, 번역, 용어설명을 실행하세요.
※ AI-Helper는 부적절한 답변을 할 수 있습니다.

선택된 텍스트

맨위로