落石冲击砂土缓冲层-钢筋混凝土板复合结构的形状效应

IF 0.7 4区 材料科学 Q4 MATERIALS SCIENCE, MULTIDISCIPLINARY
Xuefeng Mei, Teng Wang, Tian Su, Jianli Wu, Dong ZHU, Bangxiang Li
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引用次数: 0

摘要

落石对砂加固混凝土板复合防护结构的影响涉及多个因素。其中,现有规范无法考虑落石形状和落石与物体的接触角对冲击力和穿透深度的影响。基于大量的现场调查,本文提出了将落石简化为椭圆形的形状系数,并通过三维轴长确定落石的形状和尺寸。此外,本文还建立了 SPH-FEM 耦合数值计算模型,并通过与落石冲击防护结构的大规模室外试验进行对比验证。最后,揭示了落石形状和冲击角度对冲击过程中冲击力、冲量和能量等符号参数的影响。研究结果表明,与模型试验相比,钢筋混凝土板底部中点的最大力和位移的相对误差在 5.0 % 以内,证实了本文所讨论模型的精确性。对于相同的落石,峰值力随冲击角的增大而减小;以相同体积的球形落石为参照物,在相同的落石形态下,峰值冲击力和冲量放大系数随接触姿态角的增大而减小。此外,当落石的形状系数越小,缩放效应越明显;在相同形状系数下,姿态角为 45°时,缓冲层的冲击深度最小,而当冲击角为 90°时,缓冲层的冲击深度最大;SPH-FEM 耦合算法能够合理地再现砂土的基坑形成过程,对模拟土体颗粒在冲击下的流动效应非常有效。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Shape Effect of Rockfall Impacting Sandy Soil Cushion Layer–Reinforced Concrete Slab Composite Structure
The impact effects of falling rocks on sand–reinforced concrete slab composite protective structures involve several factors. Among them, the existing codes are unable to consider the effect of rockfall shape and the angle of contact between the rockfall and the object on the impact force as well as the depth of penetration. Based on extensive field investigation, this paper proposes a shape factor to simplify the rockfall into an ellipsoid and determines the shape and dimensions of the rockfall by three-dimensional axis length. Besides, a coupled SPH-FEM numerical calculation model is established and validated through comparison with a large-scale outdoor test of a rockfall impact protection structure. Finally, the effects of rockfall shape and impact angle on the symbolic parameters including impact force, impulse and energy in the impact process are revealed. The findings indicate that the maximum force and displacement of the midpoint of the bottom of the reinforced concrete slab have relative errors within 5.0 % when compared to the model test, confirming the precision of the models discussed in this paper. For the same rockfall, the peak force decreases with the impact angle increasing; taking the same volume of spherical rockfall as the reference, under the same rockfall pattern, the peak impact force and impulse amplification factor decreases with the increase in contact attitude angle. Additionally, the scaling effect becomes more pronounced when the shape factor of the rockfall is smaller; under the same shape factor, the impact depth of the cushion layer is the smallest when the attitude angle is 45°, and the maximum when the impact angle is 90°; the SPH-FEM coupling algorithm could reasonably reproduce the pit-forming process of sand and soil, and it is very effective in simulating the flow effect of soil particles under impact.
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来源期刊
Materials Science
Materials Science 工程技术-材料科学:综合
CiteScore
1.60
自引率
44.40%
发文量
63
审稿时长
4-8 weeks
期刊介绍: Materials Science reports on current research into such problems as cracking, fatigue and fracture, especially in active environments as well as corrosion and anticorrosion protection of structural metallic and polymer materials, and the development of new materials.
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