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首页> 外文期刊>Journal of Structural Engineering >Nonlinear Analysis of Shear-Deficient Beams Strengthened Using UHPFRC under Combined Impact and Blast Loads
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Nonlinear Analysis of Shear-Deficient Beams Strengthened Using UHPFRC under Combined Impact and Blast Loads

机译:UHPFRC在冲击荷载和爆炸荷载作用下加固的抗剪梁的非线性分析

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The dynamic response of shear deficient (SD) beams constructed with ultrahigh performance fiber reinforced concrete (UHPFRC) is evaluated in this study. Additionally, a comparison is made with adequately reinforced (AR) beams when subjected to sole impact and blast loads and their combinations using finite-element (FE) simulations in LS-DYNA software. To explore more efficient and optimal strengthening designs using UHPFRC under extreme loads, the influences of the thickness of a UHPFRC cover (t(U)) and different strengthening schemes of a UHPFRC cover are investigated through a parametric study. Also, a new approach is proposed for calculating the damage index, based on the residual shear capacities of the beams, by performing a multiphase loading procedure to describe the damage states of the UHPFRC-constructed beams quantitatively. From the FE simulations, it is found that the use of UHPFRC in the whole cross-section of the beam has more positive effects on the strength enhancements of the SD beams compared to the AR beam, especially when the beams are exposed to combined actions of impact and blast loads. Furthermore, the t(U) of 10 and 30 mm are recognized as the optimal UHPFRC thicknesses in strengthening the SD beam under the sole impact and combined impact-blast loads, respectively. However, t(U) = 20 mm is accepted as an optimal thickness for the AR beams under sole and combined loads. Also, the applications of UHPFRC on the two sides of the SD beam and as a U-shaped cover represent more efficient designs in the strengthening trend of the SD beams when subjected to the sole impact and combined impact-blast loads, respectively. (C) 2022 American Society of Civil Engineers.
机译:本研究评估了超高性能纤维增强混凝土(UHPFRC)构造的抗剪不足(SD)梁的动力响应。此外,在LS-DYNA软件中使用有限元(FE)模拟,对充分加固(AR)梁在承受鞋底冲击和爆炸荷载及其组合时进行了比较。为了探索在极端荷载下使用UHPFRC进行更有效和最优化的加固设计,通过参数研究研究了UHPFRC覆盖层厚度(t(U))和UHPFRC覆盖层不同加固方案的影响。此外,提出了一种基于梁的残余抗剪承载力计算损伤指数的新方法,通过执行多相加载程序来定量描述UHPFRC构造梁的损伤状态。从有限元模拟中发现,与AR梁相比,在梁的整个横截面中使用UHPFRC对SD梁的强度增强有更积极的影响,特别是当梁暴露在冲击和爆炸荷载的共同作用下时。此外,10 mm和30 mm的t(U)分别被认为是在单独冲击荷载和冲击-爆炸联合荷载作用下加强SD梁的最佳UHPFRC厚度。然而,t(U) = 20 mm 被认为是 AR 梁在鞋底荷载和组合荷载下的最佳厚度。此外,UHPFRC在SD梁两侧的应用和作为U形覆盖层的应用分别代表了SD梁在单独冲击和组合冲击-爆炸荷载下的强化趋势中更有效的设计。(C) 2022 年美国土木工程师协会。

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