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Integral Bridge for High-Speed Railway

机译:高速铁路整体桥

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摘要

The structural continuity of fully integral bridges entails many advantages and some drawbacks. Among the latter, the cyclic expansions and contractions of the deck caused by seasonal thermal variations impose alternating displacements at the piers and abutments, with effects that may be difficult to establish reliably. The advantages include easier construction and cheaper maintenance but, especially, horizontal loads can be transmitted to the ground in a much better way than in conventional bridges. This paper first presents a methodology for dealing with the problems that the cyclic displacements imposed raise at the abutments and at the bridge piers. At the former, large pressures may develop, possibly accompanied by undesirable surface settlements. At the latter, the degree of cracking and the ability to carry the specified loads may be in question. Having quantified the drawbacks, simplified but realistic analyses are conducted of the response of an integral bridge to braking and seismic loads. It is shown that integral bridges constitute an excellent alternative in the context of the requirements posed by new high-speed railway lines.
机译:完全一体式桥的结构连续性带来许多优点和一些缺点。在后者中,由季节性热变化引起的甲板的周期性膨胀和收缩在码头和桥墩处施加交替的位移,其效果可能难以可靠地确定。优点包括易于施工和维护便宜,但是,尤其是水平荷载可以比传统桥梁更好的方式传递到地面。本文首先提出了一种方法,用于解决桥台和桥墩处的周期性位移引起的问题。在前一种情况下,可能会产生很大的压力,并可能伴有不良的表面沉降。在后者的情况下,开裂的程度和承受指定载荷的能力可能是个问题。在量化了缺陷之后,对一体式桥梁对制动和地震载荷的响应进行了简化而现实的分析。结果表明,在新的高速铁路线提出的要求的背景下,整体式桥梁是极好的选择。

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