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      인간 열환경 지수(HumanThermal Sensation)를 이용한 조경계획 및 디자인 방법 = Landscape Planning and Design Methods with Human Thermal Sensation

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      https://www.riss.kr/link?id=A101267965

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      다국어 초록 (Multilingual Abstract)

      Human thermal sensation based on a human energy balance model was analyzed in the study areas, the Changwon and Nanaimo sites, on clear days during thesummer of 2009. The climatic input data were air temperature, relative humidity, wind speed and solar and terrestrial radiation. The most effective factors for human thermal sensation were direct beam solar radiation, building view factor and wind speed. Shaded locations had much lower thermal sensation, slightly warm, than sunny locations, very hot. Also, narrow streets in the Nanaimo site had higher thermal sensation than open spaces because of greater reflected solar radiation and terrestrial radiation from their surrounding buildings. Calm wind speed also produced much higher thermal sensation, which reduced sensible and latent heat loss from the human body. By adopting climatic factors into landscape architecture, the human thermal sensation analysis method promises to help create thermally comfortable outdoor areas. The method can also be used for urban heat island modification and climate change studies.
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      Human thermal sensation based on a human energy balance model was analyzed in the study areas, the Changwon and Nanaimo sites, on clear days during thesummer of 2009. The climatic input data were air temperature, relative humidity, wind speed and sola...

      Human thermal sensation based on a human energy balance model was analyzed in the study areas, the Changwon and Nanaimo sites, on clear days during thesummer of 2009. The climatic input data were air temperature, relative humidity, wind speed and solar and terrestrial radiation. The most effective factors for human thermal sensation were direct beam solar radiation, building view factor and wind speed. Shaded locations had much lower thermal sensation, slightly warm, than sunny locations, very hot. Also, narrow streets in the Nanaimo site had higher thermal sensation than open spaces because of greater reflected solar radiation and terrestrial radiation from their surrounding buildings. Calm wind speed also produced much higher thermal sensation, which reduced sensible and latent heat loss from the human body. By adopting climatic factors into landscape architecture, the human thermal sensation analysis method promises to help create thermally comfortable outdoor areas. The method can also be used for urban heat island modification and climate change studies.

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      참고문헌 (Reference)

      1 문수영, "환경생태계획의 도시기후 변화 대응 가능성 연구 -남양주 월산리 마스터플랜을 중심으로" 한국생태환경건축학회 10 (10): 11-19, 2010

      2 이채연, "토지이용도와 기상모델을 이용한 서울기후분석(CAS)지도 개발" 한국지리정보학회 14 (14): 12-25, 2011

      3 이춘석, "조경포장이 옥외공간의 온열쾌적성지수(WBGT)에 미치는 영향 - 통풍과 차광이 배제된 하절기 주간의 조건에서 -" 한국조경학회 38 (38): 1-8, 2010

      4 조현길, "열쾌적성과 에너지절약을 위한 녹지계획 전략 연구" 한국조경학회 38 (38): 23-32, 2010

      5 이은주, "도시공간 구성요소와 열쾌적성과의 관련성 연구 : 서울시 사례지역을 중심으로" 한양대학교 도시대학원 2006

      6 이정아, "공간 구조별 열쾌적성 평가와 열환경 개선방안" 한국조경학회 38 (38): 12-20, 2010

      7 "http://www.utci.org"

      8 "http://www.staedtebauliche-klimafibel.de/Climate_Booklet/kap_2/kap_ 2-6.htm#"

      9 "http://www.esrl.noaa.gov/gmd/grad/solcalc/"

      10 "http://www.envi-met.com"

      1 문수영, "환경생태계획의 도시기후 변화 대응 가능성 연구 -남양주 월산리 마스터플랜을 중심으로" 한국생태환경건축학회 10 (10): 11-19, 2010

      2 이채연, "토지이용도와 기상모델을 이용한 서울기후분석(CAS)지도 개발" 한국지리정보학회 14 (14): 12-25, 2011

      3 이춘석, "조경포장이 옥외공간의 온열쾌적성지수(WBGT)에 미치는 영향 - 통풍과 차광이 배제된 하절기 주간의 조건에서 -" 한국조경학회 38 (38): 1-8, 2010

      4 조현길, "열쾌적성과 에너지절약을 위한 녹지계획 전략 연구" 한국조경학회 38 (38): 23-32, 2010

      5 이은주, "도시공간 구성요소와 열쾌적성과의 관련성 연구 : 서울시 사례지역을 중심으로" 한양대학교 도시대학원 2006

      6 이정아, "공간 구조별 열쾌적성 평가와 열환경 개선방안" 한국조경학회 38 (38): 12-20, 2010

      7 "http://www.utci.org"

      8 "http://www.staedtebauliche-klimafibel.de/Climate_Booklet/kap_2/kap_ 2-6.htm#"

      9 "http://www.esrl.noaa.gov/gmd/grad/solcalc/"

      10 "http://www.envi-met.com"

      11 "http://www.ec.gc.ca/meteo-weather/default.asp?lang=En&n=5FBF816A-1"

      12 "http://astro.kasi.re.kr/Life/SolarHeightForm.aspx?MenuID=108"

      13 "VDI(1998) 3787, Part 2: Environmental Meteorology-Methods for the Human Biometeorological Evaluation of Climate and Air Quality for Urban and Regional Planning at Regional Level Part 1: Climate"

      14 Fiala, D., "UTCI-Fiala multi-node model of human heat transfer and temperature regulation" 2011

      15 Lee, J. B., "Tropical Malaysians and temperate Koreans exhibit significant differences in sweating sensitivity in response to iontophoretically administered acetylcholine" SPRINGER 53 : 149-157, 2009

      16 Teller, J., "TownScopeII-A computer system to support solar access decision making" 70 : 187-200, 2001

      17 Lin, T. P., "Tourism climate and thermal comfort in Sun Moon Lake, Taiwan" 52 : 281-290, 2008

      18 Fanger, P. O., "Thermal Comfort: Analysis and Applications in Environmental Engineering" McGraw-Hill 1972

      19 Höppe, P. R., "The physiological equivalent temperature - a universal index for the biometeorological assessment of the thermal environment" 43 : 71-75, 1999

      20 Lindberg, F., "The influence of vegetation and building morphology on shadow patterns and mean radiant temperatures in urban areas: model development and evaluation" 2011

      21 Thom, E. C., "The discomfort index" 12 : 57-60, 1959

      22 Steadman, R. G., "The assessment of Sultriness. Part I: a temperature-humidity index based on human physiology and clothing science" 18 : 861-873, 1979

      23 Rothfusz, L. P., "The Heat Index 'Equation' (or, More Than You Ever Wanted to Know About Heat Index)" Scientific Services Division (NWS Southern Region Headquarters) 1990

      24 Lin, T. P., "Shading effect on long-term outdoor thermal comfort" 45 : 213-221, 2010

      25 Lindberg, F., "SOLWEIG 1.0- modelling spatial variations of 3D radiant fluxes and mean radiant temperature in complex urban settings" 52 (52): 697-713, 2008

      26 Chen, L., "Quantitative urban climate mapping based on a geographical database: A simulation approach using Hong Kong as a case study" 13 : 586-594, 2011

      27 Bröde, P., "Predicting urban outdoor thermal comfort by the Universal Thermal Climate Index UTCI-a case study in Southern Brazil" 2011

      28 Matzarakis, A., "Modelling radiation fluxes in simple and complex environments: basics of the RayMan model" 54 : 131-139, 2010

      29 Matzarakis, A., "Modelling radiation fluxes in simple and complex environments-application of the RayMan model" 51 : 323-334, 2007

      30 Brown, R. D., "Microclimatic Landscape Design: Creating Thermal Comfort and Energy Efficiency" Wiley 1995

      31 Siple, P. A., "Measurements of dry atmospheric cooling in subfreezing temperatures" 89 : 177-199, 1945

      32 "ISO 7730(2005) Moderate thermal environments-Determination of the PMV and PPD indices and specification of the conditions for thermal comfort"

      33 Park, S., "Human-Urban Radiation Exchange Simulation Model" University of Victoria 2011

      34 Park, S., "Human thermal sensation analysis method for landscape planning and design" 2011

      35 박수국, "Human body area factors for radiation exchange analysis: standing and walking postures" SPRINGER 55 (55): 695-709, 2011

      36 Höppe, P. R., "Heat balance modeling" 49 : 741-746, 1993

      37 Brown, R. D., "Estimating outdoor thermal comfort using a cylindrical radiation thermometer and an energy budget model" 30 : 43-52, 1986

      38 Thorsson, S., "Different methods for estimating the mean radiant temperature in an outdoor urban setting" 27 : 1983-1993, 2007

      39 Bröde, P., "Deriving the operational procedure for the Universal Thermal Climate Index (UTCI)" 2011

      40 Ali-Toudert, F., "Dependence of Outdoor Thermal Comfort on Street Design in Hot and Dry Climate" (15) : 2005

      41 Yaglou, C. P., "Control of heat casualties at military training centres" 16 : 302-316, 1957

      42 박수국, "Comparison of human radiation exchange models in outdoor areas" SPRINGER WIEN 105 (105): 357-370, 2011

      43 Matzarakis, A., "Applications of a universal thermal index: physiological equivalent temperature" 43 : 76-84, 1999

      44 ASHRAE, "ASHRAE Handbook Fundamentals, Chapter 8: Thermal Comfort" American Society of Heating, Refrigerating and Air-Conditioning Engineers, Inc 1997

      45 Gagge, A. P., "A standard predictive index of human response to the thermal environment" 92 (92): 709-731, 1986

      46 Fountain, M., "A Thermal Sensation Model for Use by the Engineering Profession" Environmental Analytics 1995

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      학술지 이력

      학술지 이력
      연월일 이력구분 이력상세 등재구분
      2020 평가예정 계속평가 신청대상 (등재유지)
      2015-01-01 평가 우수등재학술지 선정 (계속평가)
      2011-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2009-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2007-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2005-05-20 학술지명변경 외국어명 : 미등록 -> Journal of the Korean Institute of Landscape Architecture KCI등재
      2005-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2002-07-01 평가 등재학술지 선정 (등재후보2차) KCI등재
      2000-01-01 평가 등재후보학술지 선정 (신규평가) KCI등재후보
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      학술지 인용정보

      학술지 인용정보
      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 0.74 0.74 0.78
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      0.76 0.74 1.022 0.14
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