移动荷载振动对流控岩土材料支撑路面损伤的影响

IF 2.8 3区 工程技术 Q2 MECHANICS
Yakshansh Kumar , Ashutosh Trivedi , Sanjay Kumar Shukla
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引用次数: 0

摘要

本文提出了一种新的塑性损伤模型来描述由移动荷载振动引起的路面-土壤系统弹性后流控损伤。最初,路面结构被建模为一个单层系统,建立在一个代表土壤质量的弹簧阻尼系统上。然后,采用多层模型分析了岩土材料塑性流控层的弹性后动力响应。提出了弹性可恢复区、过渡区和后弹性区三个机制区域来识别损伤。对于规范规定的一组选定的速度和载荷强度,已经观察到应力和等效塑性应变的非线性。颗粒基层的等效塑性应变变化范围为10-16 ~ 10-3%,路基土层的等效塑性应变变化范围为10-16 ~ 10-4%。研究结果表明,车辆荷载在不同速度下的运动振动所规定的塑性流动的等效塑性应变是造成永久变形的根本原因之一。路面最上层的动荷载振动在不同的子层内引起应力波的产生。因此,观察到的行为导致由应力传递(VMST)的振动机制规定的非线性应力波的产生。因此,评估由流控岩土材料支撑的路面结构引起的非线性损伤,有可能预测永久性变形及其对支撑交通网络的路面设计的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Impact of moving load vibrations on pavement damage supported by flow-controlled geomaterials
This work proposes a novel plastic damage model to capture the post elastic flow-controlled damages in pavement-soil systems prescribed by the vibrations of moving load. Initially, the pavement structure has been modelled as a single-layer system resting on a spring-dashpot system representing soil mass. Then, multilayer modelling was adopted to analyze the post-elastic dynamic response in supporting plastic flow-controlled layers of geomaterial. Three mechanistic zones namely, elastic recoverable, transition, and post elastic zone have been conceptualized to identify the damage. The nonlinearity in stress and equivalent plastic strain has been observed for the set of selected velocities and load intensities specified in codal provisions. The variation in equivalent plastic strain is observed in the range of 10-16 to 10-3% in the granular base layer and 10-16 to 10-4% in the subgrade soil layer. The findings show that the equivalent plastic strain due to plastic flow prescribed by the vibrations of moving action of vehicular load at varied velocities is one of the root causes of permanent deformations. The propagation of dynamic load vibrations from the uppermost layer of pavement induces the generation of stress waves within distinct sub-layers of geomaterial. Hence, the observed behaviour leads to the generation of nonlinear stress waves prescribed by a vibrational mechanism of stress transfer (VMST). Therefore, the evaluation of the nonlinearities causing damage in pavement structure supported by flow controlled geomaterials has the potential to predict permanent deformations and its implications in the design of pavements supporting the transportation network.
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来源期刊
CiteScore
5.50
自引率
9.40%
发文量
192
审稿时长
67 days
期刊介绍: The International Journal of Non-Linear Mechanics provides a specific medium for dissemination of high-quality research results in the various areas of theoretical, applied, and experimental mechanics of solids, fluids, structures, and systems where the phenomena are inherently non-linear. The journal brings together original results in non-linear problems in elasticity, plasticity, dynamics, vibrations, wave-propagation, rheology, fluid-structure interaction systems, stability, biomechanics, micro- and nano-structures, materials, metamaterials, and in other diverse areas. Papers may be analytical, computational or experimental in nature. Treatments of non-linear differential equations wherein solutions and properties of solutions are emphasized but physical aspects are not adequately relevant, will not be considered for possible publication. Both deterministic and stochastic approaches are fostered. Contributions pertaining to both established and emerging fields are encouraged.
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