As the 3D laser scanning technology capable of databaseing large sewage box culverts becomes possible, it is necessary to develop a standardization manual that can clearly distinguish the structural and operational defect types of box culver and analyze the defect data. In this study, we collected and analyzed defects in sewage box culverts of 14,827m in total by selecting three districts in Korea. The major defects were surface damages, and their defect densities were 2.17 m2/m, 0.27 m2/m and 0.10 m2/m for aggregate exposure, Steel reinforcement exposure, and Steel reinforcement projecting. In order to support the decision of the box culverment management, it was divided into five grades and each defect code and defect score were allocated. The results of this study are useful for the diagnosis of the sewage box culverts in Korea and it is expected to support a decision making for management.
PURPOSES : The purpose of this study is to investigate the optimal joint positions which can minimize distresses of concrete pavement containing box culvert with horizontally skewed angles. METHODS : The concrete pavement containing the box culvert with different skewed angles and soil cover depths was modeled by 3 dimensional finite element method. The contact boundary condition was used between concrete and soil structures in addition to the nonlinear material property of soil in the finite element model. A dynamic analysis was performed by applying the self weight of pavement, negative temperature gradient of slab, and moving vehicle load simultaneously. RESULTS : In case of zero skewed angle (0˚), the maximum tensile stress of slab was the lowest when the joint was positioned directly over side of box culvert. In case there was a skewed angle, the maximum tensile stress of slab was the lowest when the joint passed the intersection between side of the box culvert and longitudinal centerline of slab. The magnitude of the maximum tensile stress converged to a constant value regardless the joint position from 3m of soil cover depth at all of the horizontally skewed angles. CONCLUSIONS : More reasonable and accurate design of the concrete pavement containing the box culvert can be possible based on the research results.
PURPOSES : Hollows are easily made, and bearing capacity can be lowered near underground structures because sublayers of pavement settle for a long time due to difficult compaction at the position. If loadings are applied in this condition, distresses may occur in pavement and, as the result, its lifespan can decrease due to the stress larger than that expected in design phase. Although reinforced slab is installed on side of box culvert to minimize the distresses, length of the reinforced slab is fixed as 6m in Korea without any theoretical consideration. The purpose of this paper is investigating the behavior of concrete pavement according to the cover depth of the box culvert ad the length of the reinforced slab. METHODS : The distresses of concrete pavement slabs were investigated and cover depth was surveyed at position where the box culverts were located in expressways. The concrete pavements including the box culverts were modeled by finite element method and their behaviors according to the soil cover depth were analyzed. Wheel loading was applied after considering self weight of the pavement and temperature gradient of the concrete pavement slab at Yeojoo, Gyeonggi where a test road was located. After installing pavement joint at various positions, behavior of the pavement was analyzed by changing the soil cover depth and length of the reinforced slab. RESULTS : As the result, the tensile stress developed in the pavement slab according to the joint position, cover depth, and reinforced slab length was figured out. CONCLUSIONS : More reasonable and economic design of the concrete pavement including the box culvert is expected by the research results.
지중구조물 주위는 다짐이 잘 되지 않아 지반이 장기 침하하므로 콘크리트 포장 하부에 공동이 발생하기 쉬우며, 이로 인해 지지력이 저하되기 쉽다. 여기에 하중이 가해지면 설계 시 기대한 것보다 큰 응력이 도입되어 포장에 파손이 발생하고 수명이 감소하게 된다. 본 논문에서는 한국도로공사 시험도로의 박스형 암거 상부 콘크리트 포장 슬래브의 파손을 조사하였다. 토피고가 다른 상행선과 하행선의 암거 위치에 발생한 슬래브의 횡방향 균열을 비교하였다. 시험도로의 횡방향 균열을 검증하기 위해 토피고가 없는 박스형 암거와 콘크리트 포장을 유한요소 방법으로 모형화하고 해석하였다. 포장의 자중을 고려하고 시험도로가 위치한 경기도 여주 지역 콘크리트 슬래브의 온도구배를 적용한 후 윤하중을 재하하였다. 각 하중조합에 대해 최대인장 응력이 발생하는 위치와 이때의 윤하중 위치를 찾아냈다. 이를 통해 최대인장응력을 감소시킬 수 있는 줄눈 위치를 찾아내고 암거 크기 별로 상부에 위치하는 슬래브의 적정 길이를 제안하였다.
이 논문에서는 3축 가력상태에 놓인 박스형 암거의 극한파괴실험을 실시하고 박스형 암거의 파괴거동 특성을 파악하고 하중증가에 따른 균열폭의 변화를 측정하였다. 현실적인 외압상태를 모사하기 위해 상부 및 좌,우측부에서 동시에 가력할 수 있는 3축 가력시스템을 이용하여 하중을 재하 하였다. 하중 증가에 따른 상부슬래브 및 좌,우측 벽체에서의 균열양상을 관찰하였으며 상부슬래브에서의 균열폭 증가량을 정량적으로 측정하였다. 이를 통해 균열폭 증가에 따른 구조손상도를 실험적으로 정량화시켜 박스형 암거의 구조내력저하지수를 실험적으로 추정하였다.