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도시 바람길 활용을 위한 수원시 찬공기 유동 분석

Analysis of the Cold Air Flow in Suwon for the Application of Urban Wind Corridor

  • 차재규 (국립생태원 생태평가연구실) ;
  • 최태영 (국립생태원 생태평가연구실) ;
  • 강다인 (국립생태원 생태평가연구실) ;
  • 정응호 (계명대학교 환경계획학과)
  • CHA, Jae-Gyu (Division of Ecosystem Assessment, National Institute of Ecology) ;
  • CHOI, Tae-Young (Division of Ecosystem Assessment, National Institute of Ecology) ;
  • KANG, Da-In (Division of Ecosystem Assessment, National Institute of Ecology) ;
  • JUNG, Eung-Ho (Dept. of Environmental Planning, Keimyung University)
  • 투고 : 2019.10.21
  • 심사 : 2019.12.05
  • 발행 : 2019.12.31

초록

도시는 산업화에 따른 극적인 공간적 변화로 대기오염 및 도시열섬현상 등 환경문제가 발생하고 있다. 도시 외곽의 산림에서 생성된 신선하고 차가운 공기가 도심으로 이동하는 통로인 바람길은 도시 환경문제 개선을 위한 공간계획적 방안으로 활용할 수 있다. 찬공기는 도시의 지형 및 토지이용에 따라 유동의 특성이 결정되며 이를 기반으로 한 중장기적인 대책이 마련되어야 한다. 따라서 본 연구는 바람길 활용에 필요한 기초 자료 마련을 위해 경기도 수원시를 대상으로 KLAM_21 모델을 통해 야간의 찬공기 유동 분석을 수행하였다. 분석 결과 수원시의 찬공기는 주로 북쪽의 대규모 산지인 광교산에서 생성되어 시가화지역으로 유입되며, 일몰 후 약 3시간이 지나서 도심까지 찬공기가 유입되었다. 구별로 지형 및 토지이용의 특성에 따라 찬공기 층의 깊이, 풍속, 풍향이 다르게 형성되고 있으며, 대규모 산림 인접 지역에서 찬공기의 유동이 활발하게 나타났다. 수원시 도심으로 찬공기가 유동되는 주요 바람길은 3개이며 모두 하천을 중심으로 형성되고 있다. 특히 하천과 주변 녹지의 연결성이 높으면 효과가 높은 것으로 파악되었다. 수원시의 바람길 활용을 위해서는 본 연구 결과를 기반으로 찬공기 유동에 대한 실측과 복합적 분석을 통해 기후지도를 작성하고 주요한 바람길의 보전과 확대를 위한 중장기적인 계획을 수립해야 할 것이다.

Due to the dramatic spatial changes caused by industrialization, environmental problems such as air pollution and urban heat island phenomenon, etc. are occurring in cities. In this case, the wind corridor, which is a passage through which fresh and cool air generated in forests outside cities move to the downtown, can be used as a spatial planning method for improving urban environmental problems. Cold air is determined by the characteristics of the flow depending on the topography and land use of cities, and based on this, the medium- and long-term plan should be established. Therefore, this study analyzed the flow of cold air at night through the KLAM_21 model in Suwon-si, Gyeonggi-do, to prepare the basic data required to apply the wind corridors. As a result, it turned out that cold air of Suwon-si was mainly generated from Gwanggyo Mountain that is a large mountain area in the north, and flowed into the urbanization promotion area, and about three hours after sunset, cold air flowed into the downtown. By district, the depth, wind speed, and direction of the cold air layer were formed differently according to the characteristics of the topography and land use. In the areas where large forests were adjacent, the flow of cold air was active. There are three main wind corridors where cold air flows to the downtown of Suwon-si, all of which are formed around rivers. Especially, if the connection between rivers and the surrounding green areas is high, the effect of wind corridors is found to be significant. In order to utilize the wind corridors of Suwon-si, based on the results of this study, it is necessary to make climate maps through actual survey and complex analysis of cold air flow and establish mid-to-long-term plans for the conservation and expansion of major wind corridors.

키워드

참고문헌

  1. Alexandri, E., and P. Jones, 2008. Temperature decreases in an urban canyon due to green walls and green roofs in diverse climates. Building and Environment 43(4):480-493. https://doi.org/10.1016/j.buildenv.2006.10.055
  2. Eum, J.H. 2019. Foreign cases of reducing fine dust using wind corridor. Planning and Policy 452:13-19
  3. Eum, J.H. 2019. Management strategies of local cold air in Jeongmaek for utilizing urban ventilaion corridor-A case study of the Nak-mam Jeongmaek. Journal of the Korea Association of Geographic Information Studies 22(1):154-167 https://doi.org/10.11108/KAGIS.2019.22.1.154
  4. Hathway, E.A., and S. Sharples, 2012. The interaction of rivers and urban form in mitigating the Urban Heat Island effect: A UK case study. Building and Environment 58:14-22. https://doi.org/10.1016/j.buildenv.2012.06.013
  5. He, B.J., 2018. Potentials of meteorological characteristics and synoptic conditions to mitigate urban heat island effects. Urban Climate 24:26-33. https://doi.org/10.1016/j.uclim.2018.01.004
  6. Holmer, B., S. Thorsson, and I. Eliasson, 2007. Cooling rates, sky view factors and the development of intra-urban air temperature difference. Geografiska Annaler: Series A, Physical Geography 89(4):237-248. https://doi.org/10.1111/j.1468-0459.2007.00323.x
  7. Jackson, L.E., 2003. The relationship of urban design to human health and condition. Landscape and Urban Planning 64(4):191-200. https://doi.org/10.1016/S0169-2046(02)00230-X
  8. Jung, E.H., D.W. Kim, J.W. Ryu, J.G. Cha, and K.S. Son. 2008. Evaluation of spatial characteristic of wind corridor formation in Daegu area using satellite data. Journal of the Korea Association of Geographic Information Studies 11(2):73-84
  9. Kazmierczak, A., and J. Carter, 2010. Adaptation to climate change using green and blue infrasturcture-A database of case studies. The University of Manchester, Manchester, UK. pp.26-34.
  10. Kim, S.B., E.H. Jung, and C.W. Lee. 2007. A study on the review of legislation and practical application to establish wind corridor. Journal of Nakdonggang Environmental Research Institute 12(1):127-143
  11. Kuttler, W. 2002. Local cold air and its significance for the urban climate. 4th AMS Symposium on the Urban Environment. Norfolk, pp.56-57.
  12. Monteiro, M.V., K.J. Doick, P. Handley, and A. Peace, 2016. The impact of greenspace size on the extent of local nocturnal air temperature cooling in London. Urban Forestry & Urban Greening 16:160-169. https://doi.org/10.1016/j.ufug.2016.02.008
  13. Ryu, J.W., E.H. Jung, D.W. Kim, J.G. Cha, and K.S. Son. 2008. A study on evaluation analysis of wind formation function using KLAM_21-The case of daegu city. Journal of the Korea Association of Geographic Information Studies 11(2):85-92
  14. Seo, B.Y. and E.H. Jung. 2017. Comparative analysis of wind flows in wind corridor based on spatial and geomorphological characteristics to improve urban thermal environments. Journal of the Korea Association of Geographic Information Studies 20(2):75-88 https://doi.org/10.11108/kagis.2017.20.2.075
  15. Sievers, U. 2005. Das Kaltluftmodell KLAM_21-Theoretische Grundlagen, Anwendung und Handhabung des PC-Modells, Berichte des Deutschen Wetterdienstes 227, Offenbach am Main. Deutscher Wetterdienst.
  16. Sievers, U., and M. Kossmann, 2016. The cold air drainage model KLAM_21-Model formulation and comparison with observations. Weather and Climate 36:2-24. https://doi.org/10.2307/26779385
  17. Smith, C., and G. Levermore, 2008. Designing urban spaces and buildings to improve sustainability and quality of life in a warmer world. Energy Policy 36(12):4558-4562. https://doi.org/10.1016/j.enpol.2008.09.011
  18. Song, B.G. and K.H. Park. 2010. An analysis of cold air generation area considering climate-ecological function. Journal of the Korea Association of Geographic Information Studies 13(1):114-127 https://doi.org/10.11108/kagis.2010.13.1.114
  19. Song, B.G. and K.H. Park. 2013. Air ventilation evaluation at nighttime for the construction of wind corridor in urban area. Journal of the Korea Association of Geographic Information Studies 16(2):16-29 https://doi.org/10.11108/kagis.2013.16.2.016
  20. World Health Organization. 2016. https://www.who.int/news-room/detail/12-05-2016-air-pollution-levels-rising-in-many-of-the-world-s-poorest-cities(Accessed August 2019).
  21. Yi, C.Y., J.H. Eum, Y.J. Choi, K.R. Kim, D. Scherer, U. Fehrenbach, and G.H. Kim. 2011. Development of climate analysis seoul(CAS) maps based on landuse and meteorogical model. Journal of the Korea Association of Geographic Information Studies 14(1):12-25 https://doi.org/10.11108/kagis.2011.14.1.012