利用离心机建模研究整体式桥梁后方的土壤棘轮效应

Douglas Morley, Gopal S.P. Madabhushi, Dennis Sakufiwa, I. Thusyanthan
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引用次数: 0

摘要

英国的整体式桥梁通常根据 PD 6694-1 进行设计,回填应变棘轮的指导基于实验数据,但受到以下因素的限制:在小规模低应力状态下进行测试、缺乏桥墩地基和下面的土壤以及土壤-结构配置范围有限。随着整体桥梁使用的增加,有必要进一步了解应变棘轮机制,从而进行更智能的设计,最大限度地减少材料使用和终生维护。本研究介绍了现代离心机技术在热荷载设计寿命期间模拟整体桥墩后方土壤应变棘轮的适用性。研究人员开发了一种高精度驱动系统,并将其用于离心机测试,同时提供测试数据以证明其能力。随后对各种土壤-结构组合记录的表面沉降、桥面轴力和桥台弯矩分布进行了比较,突出了土壤棘轮的敏感性。论文的结论是,离心机建模可以成功模拟整体式桥墩后的回填土应变棘轮,适用于各种土壤-结构配置。此外,结果表明,整体旋转和基底滑动对整体响应非常重要,这说明了在适当的应力状态下对地基和下面的土壤进行建模的重要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Investigation into soil ratcheting behind integral bridges using centrifuge modelling
U.K. integral bridges are commonly designed according to PD 6694-1, with guidance on backfill ratcheting based on experimental data that is limited by: testing at a small-scale low stress state, a lack of abutment foundation and soil below, and a limited range of soil-structure configurations. As integral bridge use increases, there is a need for further understanding of the strain ratcheting mechanism which can lead to smarter designs that minimise material usage and lifetime maintenance. This research presents the suitability of modern centrifuge techniques to simulate ratcheting of the soil behind an integral bridge abutment over a design life of thermal loading. A high accuracy actuation system was developed and used in centrifuge testing, with test data provided to demonstrate its capabilities. This is followed by a comparison of surface settlements, deck axial forces and abutment bending moment distributions recorded for various soil-structure combinations, highlighting the sensitivity of soil ratcheting. The paper concludes that centrifuge modelling can successfully simulate backfill strain ratcheting behind integral abutments over a range of soil-structure configurations. Furthermore, results suggest that global rotations and base sliding are significant to the overall response, clarifying the importance of modelling at an appropriate stress state with a foundation and the soil below.
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