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Development of lightweight emergency bridge using GFRP-metal composite plate-truss girder

机译:使用GFRP - 金属复合板桁梁轻量级应急桥开发

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Design of a lightweight emergency vehicular bridge comprising a GFRP-metal composite plate-truss girder and measuring 24 m in span is reported. The said bridge was designed based on optimization of an original 12-m bridge specimen. The bridge, so developed, is intended to be lightweight, structurally sound with modular feasibility, and representative of a construction that is less time consuming overall and fully exploits advantages offered by the use of inherent and complementary pultruded GFRP materials. Conceptual design and considerations of the large-scale structure were first described in detail. Subsequently, full-scale nondestructive tests were performed under on- and off-axis static loadings to evaluate the actual linearly elastic mechanical behavior of the prototype. Experimental results demonstrated that the bridge satisfactorily met the requirements of strength, overall bending stiffness, and torsional rigidity with regards to emergency-bridge applications. Being recognized as the most critical loading case for emergency bridges with major influence on load distribution among truss girders, the lateral live-loading distribution was assigned great importance during design of the unique bridge. Extrusion-type unidirectional GFRP profiles with high-longitudinal but low shear strengths are predominantly suitable for structures subjected to large axial forces, and are, therefore, appropriate for application in the proposed hybrid structural system. Favorable testing results demonstrated that the proposed improved version of the original conceptual design can appropriately be used as a truss girder for a new lightweight emergency bridge with a longer measured span. It is suggested that such a hybrid bridge, which demonstrates reasonably good linearly elastic behavior under service live loads, must also be designed in accordance with a stiffness criterion. Corresponding finite element and analytical analyses were performed and compared against experimental results whilst demonstrating good agreement. The elicited comparisons indicated that the established simplified analytical models and the finite element model (FEM) were both equally applicable for use in preliminary structural calculations and design of the improved bridge under states within its serviceability limit. Results reported herein are expected to make a valuable initial contribution, which in turn, could further lead to development of similar lightweight structural systems.
机译:据报道了包括GFRP-金属复合板桁架梁和测量24米的轻质应急车桥的设计。基于原始12米桥标本的优化设计了所述桥梁。所开发的桥梁旨在重量轻,结构性地具有模块化可行性,并且代表整体消耗较少的结构,并充分利用使用固有和互补的被互补的针状GFRP材料提供的优势。首先详细描述了大规模结构的概念设计和考虑因素。随后,在轴上和轴外静态载荷下进行全尺寸无损检测,以评估原型的实际线性弹性力学行为。实验结果表明,在紧急桥应用方面,该桥令人满意地满足强度,总体弯曲刚度和扭转刚度的要求。被认可为紧急桥梁的最关键的装载案例,对桁架梁之间的负荷分布主要影响,在独特的桥梁设计期间,横向的活装配分配非常重视。具有高纵向但低剪切强度的挤出式单向GFRP曲线主要适用于经受大轴向力的结构,因此适用于所提出的混合结构系统。有利的测试结果表明,拟议的原始概念设计的改进版本可以适当地用作具有更长测量跨度的新型轻型应急桥的桁架梁。建议根据刚度标准设计这种混合桥,该桥证明在服务现场负载下的合理线性弹性行为。进行了相应的有限元和分析分析,并与实验结果进行比较,同时展示良好的一致性。引出的比较表明,已建立的简化分析模型和有限元模型(FEM)同样适用于初步结构计算和各种维修限制内的改进桥梁的设计。结果报告的结果预计将为有价值的初步贡献,这反过来可能进一步导致类似的轻质结构系统的发展。

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