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Structural Evaluation of Torsional Rigidity of New FRP-Aluminum Space Truss Bridge with Rigid Transverse Braces

机译:刚性横撑新型FRP-铝合金空间桁架桥的抗扭刚度结构评估

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摘要

A unique fiber-reinforced polymer (FRP)-aluminum spatial truss structure with upper I-type, transverse beam braces was developed for deployable bridging, yielding the operational advantages of bestraddled erection bridges. Experimental testing and numerical simulation were performed to evaluate the torsional rigidity of a fabricated cantilever, full-scale experimental structure. The predictions obtained based on a computational finite element model were strongly consistent with the experimental results. Moreover, a numerical decomposition and reconstruction procedure was employed to understand the load-bearing mechanism of the structure. The results demonstrated that the improved transverse braces possessed adequate capacity for providing sufficient rigidity and lateral stability to the complete twin-treadway structure under torsion. The torsional center of the improved structure was located at the axis of symmetry of the twin-treadway bridge deck. The representative torsional rigidity of the twin-treadway module was approximately 87.5 kNm(2)/degree. Compared to the original construction, the improved structure exhibited only minor discrepancies regarding the torsional rigidity, and consistent characteristics in terms of the load-bearing mechanism. The torsional rigidity of the improved twin-treadway structure was primarily generated by the vertical bending rigidities of its two parallel single treadways through the rigid transverse braces. This significant finding specifically pertains to the unique twin-treadway hybrid bridge. The results presented in this work are expected to provide valuable insights, which could, in turn, lead to further the development of similar lightweight structural systems.
机译:具有上部I型横梁支撑的独特纤维增强聚合物(FRP)-铝空间桁架结构被开发用于可展开的桥接,从而产生了最佳架设式架桥的操作优势。进行了实验测试和数值模拟,以评估制造的悬臂,全尺寸实验结构的抗扭刚度。基于计算有限元模型获得的预测与实验结果高度一致。此外,采用数值分解和重建程序来了解结构的承载机理。结果表明,改进的横向支撑具有足够的能力,能够在扭转作用下为完整的双踩踏结构提供足够的刚度和横向稳定性。改进结构的扭转中心位于双行人桥桥面的对称轴上。双履带模块的代表性扭转刚度约为87.5 kNm(2)/度。与原始结构相比,改进后的结构在扭转刚度方面仅表现出很小的差异,并且在承重机制方面具有一致的特性。改进的双胎横行结构的扭转刚度主要由其两个平行的单步横过刚性横撑的垂直弯曲刚度产生。这一重大发现特别适用于独特的双行人桥混合桥​​。这项工作中提出的结果有望提供有价值的见解,而这些见识又可能导致进一步发展类似的轻型结构系统。

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