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Life-cycle performance model for FRP bridge deck panels

机译:FRP桥面板的生命周期性能模型

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摘要

Fiber-reinforced polymer (FRP) bridge deck panels have been used to replace deteriorated conventional bridge decks over the last few decades. However, there are still concerns on the overall long-term durability of FRP bridge deck panels under severe load and environmental conditions. In particular, FRP bridge deck panels are exposed to multiple environmental conditions (i.e. moisture, alkali environment, thermal, creep/relaxation, fatigue, ultraviolet exposure, and fire) during their service lifetime, which causes the synergistic degradation mechanism. Although some experimental research have been performed to determine the synergistic mechanism, none has considered the simultaneous impact of multiple load and environmental factors on the life cycle performance of an FRP bridge deck. Thus, it is important to model deterioration of FRP bridge deck panels to determine the synergistic mechanism and its impact on the service life. This article proposes the life-cycle performance model that is capable of predicting the structural deterioration of FRP bridge deck panels over time under the conditions discussed earlier. A complete description of the life-cycle performance model is presented along with a dataset obtained from experts in the field of FRP composite materials in order to illustrate the procedure and validate the logic of the theoretical model, as well as the feasibility of the results obtained.
机译:在过去的几十年中,纤维增强聚合物(FRP)桥面板已被用来替代性能下降的传统桥面板。然而,在严重的载荷和环境条件下,FRP桥面板的整体长期耐用性仍然令人担忧。特别地,FRP桥面板在其使用寿命期间暴露于多种环境条件(即,湿气,碱性环境,热,蠕变/松弛,疲劳,紫外线暴露和着火),这导致协同降解机制。尽管已经进行了一些实验研究来确定协同机制,但没有人考虑过多种载荷和环境因素对FRP桥面板的生命周期性能的同时影响。因此,重要的是对玻璃钢桥面面板的劣化进行建模,以确定协同机制及其对使用寿命的影响。本文提出了一种生命周期性能模型,该模型能够在前面讨论的条件下预测FRP桥面板的结构随时间的退化。给出了生命周期性能模型的完整说明以及从FRP复合材料领域的专家那里获得的数据集,以说明该过程并验证理论模型的逻辑以及所获得结果的可行性。

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