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도로 주변부 기온에 영향을 미치는 요인에 관한 연구: 도로조건과 교통특성을 중심으로

A Study on the Factors Affecting Air Temperature on Roadside : Focusing on Road Conditions and Traffic Characteristics

  • 투고 : 2012.11.30
  • 심사 : 2013.04.25
  • 발행 : 2013.07.30

초록

지구 온난화와 도시 열섬 현상, 그리고 도시 및 교통 환경과 도시민의 건강은 상호 직 간접적인 관계로 이어져 있다. 특히 도시 폭염 및 폭우 등과 같은 이상 기온현상은 도시민의 삶의 질과 관련되어 부정적인 영향을 미치고 있어 그 현상을 파악하기 위한 연구가 최근 다양하게 수행되고 있다. 본 연구에서는 도시 피복율이 높은 도로의 기하구조 및 교통조건이 도로 주변부 기온에 미치는 영향을 파악하기 위하여 서울시 도로 5개의 서로 상이한 도로 기하구조를 가지고 있는 지점의 기온, 습도, 풍속, 교통량, 평균 통행속도, 중앙분리대 설치 여부, 가로 식재 설치 여부 등 도로의 환경(미기상적) 조건과 더불어 도로 및 교통 현황을 조사하였다. T-test 분석 결과 기온의 특성상 오전, 낮, 밤의 기온이 서로 상이하다고 밝혀졌기 때문에 도로 주변부 기온 분석 모형은 시간대별로 각각 구축되어 타당한 결과가 도출되었다. 도로 기하구조면에서는 시간대와 상관없이 식생 중앙분리대가 설치된 도로의 경우는 설치하지 않은 도로에 비해 $1.3{\sim}2.2^{\circ}C$정도의 기온 저감효과를 보이는 것으로 나타났다. 교통조건면에서는 평균통행속도가 낮아질수록, 차로당 교통량이 많을수록 도로 주변부 기온이 올라가는 것으로 밝혀졌다. 따라서 교통 운영면에서 소통을 원활하게 하는 정책을 수행한다면 도로 주변부 기온을 낮추는 효과도 가질 수 있다고 판단된다.

It turned out that there was a direct or an indirect relationship among global warming, urban heat island effects, urban and traffic environments, and public's health. In particular, unusual climate phenomena such as frequent heavy rainfall and scorching heat in a row that had rarely happened before have a negative effect on quality of life for people living in urban areas. This study focuses on the effects of roadway geometric design and traffic conditions on air temperature of roadside in Seoul Metropolitan Areas, controlling of roadway micro-climate environment. Five roadway segments containing different roadway and traffic conditions in terms of traffic median with trees, street trees, traffic volume and average travel speeds were surveyed. According to statistical results(t-test) from three roadway air temperature regression model estimations, air temperature is found to be different from one another in three periods-morning, afternoon and evening. Regarding roadway geometric design, air temperature of urban roads with vegetated median strips is lower about 1.3~2.2 degrees in celcius. Higher traffic volumes per lane and lower average travel speeds will tend to increase roadside air temperature, and efficient traffic operation policies can protect from increasing roadside air temperature in urban areas.

키워드

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