Abstract
케이블교량은 교량길이가 길고 규모가 크기 때문에 온도에 의한 이동량과 형상변화는 일반교량보다 훨씬 크다. 따라서 공용 중 온도영향을 분석, 평가하는 것이 중요하며, 온도영향은 온도변화에 따라 교량 상부구조계가 늘어나거나 줄어드는 온도신축거동을 평가하는 것이 가장 기본이다. 이에 공용 중인 사장교에서 장기간 계측된 온도와 이종 변위 데이터를 활용하여 실제적인 온도신축거동을 평가하고자 하였다. 변위 데이터는 기존 신축변위계와 함께 새롭게 도입된 GNSS(Global Navigation Satellite System) 수신기에서 계측된 데이터를 활용하였다. 먼저 외기온도, 개별온도, 평균온도, 유효온도의 다양한 온도 조합에 대한 신축거동의 상관성을 분석하여 부재의 평균온도나 유효온도를 사용하는 것이 합리적임을 확인하였다. 부재 유효온도와 신축량의 선형회귀분석으로부터 단위온도신축량을 산정하고, 추가적으로 신축길이와 계측 단위온도 신축량의 선형회귀분석으로부터 선팽창계수와 중립점의 위치를 산정할 수 있었다. 이를 이론과 해석 결과와 비교함으로써 케이블교량의 실제 온도신축거동의 건전성을 평가할 수 있는 방안을 제시하였다. Because cable-supported bridges have long spans and large members, their movements and geometrical changes by temperatures tend to be bigger than those of small or medium-sized bridges. Therefore, it is important for maintenance engineers to monitor and assess the effect of temperature on the cable-supported bridges. To evaluate how much the superstructure expands or contracts when subjected to changes in temperature is the first step for the maintenance. Thermal movements of a cable-stayed bridge in service are evaluated by using long-term temperatures and displacements data. Displacements data are obtained from extensometers and newly installed GNSS (Global Navigation Satellite System) receivers on the bridge. Based on the statistical data such as air temperatures, each sensor's temperatures, average temperatures and effective temperatures, correlation analysis between temperatures and displacements has been performed. Average temperatures or effective temperatures are most suitable for the evaluation of thermal movements. From linear regression analysis between effective temperatures and displacements, the variation rate's of displacement to temperature have been calculated. From additional regression analysis between expansion length's and variation rate's of displacement to temperature, the thermal expansion coefficient and neutral point have been estimated. Comparing these parameters with theoretical and analytical results, a practical procedure for evaluating the real thermal behaviors of the cable-supported bridges is proposed.
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