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Experimental characterization and diagnostics of the early-age behavior of a semi-integral abutment FRP deck bridge

机译:半整体式基台玻璃钢甲板桥的早期行为的实验表征和诊断

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Purpose - The purpose of this paper is to further validate a wireless sensor system developed at Clarkson University for structural monitoring of highway bridges. The particular bridge monitored employs a fiber reinforced polymer (FRP) panel system which is fairly innovative in the field of civil engineering design. The superstructure was monitored on two separate occasions to determine a change in structural response and see how the structural system performs over time. Design/methodology/approach - A series of wireless sensor units was deployed at various locations of the steel superstructure, to measure both the modal response from acceleration measurements as well as quasi-static and dynamic strain response. Ambient and forced loading conditions were applied to measure the response. Data results were compared over two separate periods approximately nine months apart. Findings - The first eight mode shapes were produced from output-only system identification providing natural frequencies ranging from approximately 6 to 42 Hz. The strain response was monitored over two different testing periods to measure various performance characteristics. Neutral axis, distribution factor, impact factor and end fixity were determined. Results appeared to be different over the two testing periods. They indicate that the load rating of the superstructure decreased over the nine month period, possibly due to deterioration of the materials or composite action. Research limitations/implications - The results from the two testing periods indicate that further testing needs to be completed to validate the change in response. It is difficult to say with certainty that the significant change in response is due to bridge deterioration and not other factors such as temperature effects on load rating. The sensor system, however, proved to provide high quality data and responses indicating its successful deployment for load testing and monitoring of highway infrastructure. Originality/value - The paper provides a depiction of the change in structural behavior of a bridge superstructure using a wireless sensor system. The wireless system provided high-rate data transmission in real time. Load testing at two different points in time, eight months apart, showed a significant change in bridge behavior. The paper provides a practical and actual physical load test and rating during these two periods for quantifiable change in response. It is shown that the wireless system is capable of infrastructure monitoring and that possible deterioration is expected with this particular bridge design. Additionally, the load testing occurred during different seasons, which could create cause for temperature effects in load rating. This can provide a basis for future performance monitoring techniques and structural health monitoring.
机译:目的-本文的目的是进一步验证克拉克森大学开发的用于公路桥梁结构监测的无线传感器系统。所监视的特定桥梁采用纤维增强聚合物(FRP)面板系统,该系统在土木工程设计领域中是相当创新的。在两个不同的场合对上层建筑进行了监测,以确定结构响应的变化,并观察结构系统随时间的变化。设计/方法/方法-在钢上部结构的各个位置部署了一系列无线传感器单元,以测量来自加速度测量的模态响应以及准静态和动态应变响应。应用环境和强制加载条件来测量响应。在相隔约九个月的两个不同时期内比较了数据结果。研究结果-前八种模式形状是由仅输出的系统识别产生的,其固有频率范围约为6至42 Hz。在两个不同的测试期间内监测应变响应,以测量各种性能特征。确定了中性轴,分布因子,影响因子和末端固定性。在两个测试期间,结果似乎有所不同。他们表明,上层建筑的额定载荷在9个月内下降了,这可能是由于材料变质或复合作用引起的。研究的局限性/含义-两个测试阶段的结果表明,需要完成进一步的测试以验证响应的变化。很难确定地说,响应的显着变化是由于电桥恶化而不是其他因素引起的,例如温度对额定负载的影响。然而,事实证明,该传感器系统可提供高质量的数据和响应,表明其已成功用于负载测试和高速公路基础设施的监控。原创性/价值-本文描述了使用无线传感器系统的桥梁上部结构的结构行为变化。无线系统提供了实时的高速数据传输。在两个不同的时间点(相隔八个月)进行的负载测试显示了桥梁行为的重大变化。本文提供了这两个时期的实际和实际物理负载测试和额定值,以量化响应变化。结果表明,无线系统具有基础设施监控的能力,使用这种特殊的网桥设计,可能会导致性能下降。此外,负载测试是在不同季节进行的,这可能会导致温度对负载额定值的影响。这可以为将来的性能监视技术和结构健康监视提供基础。

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