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Thermal Interaction of a Geosynthetic Reinforced Soil Integrated Bridge System in St. Lawrence County, NY

机译:纽约州圣劳伦斯县土工合成材料加筋土集成桥梁系统的热相互作用

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The geosynthetic reinforced soil integrated bridge system (GRS-IBS) can be used to support a variety of superstructures for single span bridges. The technology appears to demonstrate compatibility between the substructure and the superstructure, requiring no special design details to maintain serviceability of the approach due to lateral movement induced by thermal expansion and contraction of the bridge. This paper presents the behavior of the lateral abutment face movement in combination with the corresponding back wall pressures at the interface between the bridge and the approach of a GRS-IBS built along CR47 in St. Lawrence County, NY in 2013. The 32 m long, single span GRS-IBS, with a 3.7% superelevation and 30 degree skew, was instrumented to monitor the thermally induced movement of the abutment wall face in combination with lateral backwall pressures to evaluate the response of this particular superstructure geometry for the IBS. During the initial eight month monitoring period, the data shows both the GRS abutment and superstructure moved in unison with the seasonal change in temperature. In addition, the passive pressures induced from the thermal expansion of the superstructure are minor, and similar to those seen in an IBS with no skew.
机译:土工合成材料加筋土集成桥梁系统(GRS-IBS)可用于支撑单跨桥梁的各种上部结构。该技术似乎证明了下部结构和上部结构之间的兼容性,由于桥梁的热膨胀和收缩引起的横向运动,不需要特殊的设计细节即可保持该方法的可维修性。本文介绍了横向基台面运动的行为,并结合了桥梁与2013年在纽约圣劳伦斯县沿CR47建造的GRS-IBS进近之间的界面处相应的后壁压力。长32 m单翼跨距GRS-IBS(具有3.7%的超高度和30度的偏斜)用于监测桥基壁面的热诱导运动,并结合横向后壁压力,以评估这种特殊的上部结构几何形状对IBS的响应。在最初的八个月监测期内,数据显示GRS基台和上部结构均随温度的季节性变化而一致地移动。此外,由上部结构的热膨胀引起的被动压力很小,与无偏斜的IBS中所见的相似。

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