论文标题

循环载荷下的岩石接头的扩展Barton-Bandis模型:配方和隐式算法

Extended Barton-Bandis model for rock joints under cyclic loading: Formulation and implicit algorithm

论文作者

Fei, Fan, Choo, Jinhyun

论文摘要

在本文中,用于岩石接头的Barton-Bandis模型扩展到没有任何新材料参数的环状载荷条件。本文也开发的是一种用于扩展Barton-Bandis模型隐式数值解的算法,该算法也可用于原始的Barton-Bandis模型,该模型无法使用隐式算法。为此,我们首先将Barton-Bandis模型投入到一个增量的弹性塑料框架中,从而得出了与原始模型公式一致的弹性剪切刚度的表达式。然后,我们将模型公式扩展到环状载荷条件,并结合了剪切应力和扩张在关节位置和剪切方向上的依赖性。通过引入一些可以用现有材料参数计算的状态依赖变量来实现扩展。为了强且准确地利用模型,我们还基于返回映射开发了一种隐式算法,该算法无条件稳定,并保证对强度标准的满意度。我们验证提出的模型公式和算法在单调剪切条件下产生的结果与原始的Barton-Bandis模型相同。然后,我们验证了扩展的Barton-Bandis模型,以在循环载荷条件下对天然岩石接头的实验数据进行验证。因此,目前的工作使Barton-Bandis模型在研究和实践中非常受欢迎,适用于岩石力学和岩石工程的更广泛的问题。

In this paper, the Barton-Bandis model for rock joints is extended to cyclic loading conditions, without any new material parameter. Also developed herein is an algorithm for implicit numerical solution of the extended Barton-Bandis model, which can also be used for the original Barton-Bandis model for which an implicit algorithm has been unavailable. To this end, we first cast the Barton-Bandis model into an incremental elasto-plastic framework, deriving an expression for the elastic shear stiffness being consistent with the original model formulation. We then extend the model formulation to cyclic loading conditions, incorporating the dependence of shear stress and dilation on the joint position and the shearing direction. The extension is achieved by introducing a few state-dependent variables which can be calculated with the existing material parameters. For robust and accurate utilization of the model, we also develop an implicit algorithm based on return mapping, which is unconditionally stable and guarantees satisfaction of the strength criterion. We verify that the proposed model formulation and algorithm produces the same results as the original Barton-Bandis model under monotonic shearing conditions. We then validate the extended Barton-Bandis model against experimental data on natural rock joints under cycling loading conditions. The present work thus enables the Barton-Bandis model, which has been exceptionally popular in research and practice, to be applicable to a wider range of problems in rock mechanics and rock engineering.

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