花岗岩孔隙流体增强热裂的数值模拟

Q4 Engineering
T. Saksala
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引用次数: 0

摘要

本文从数值上考虑了孔隙流体对花岗质岩石热裂的影响。为此,提出了一种基于嵌套不连续岩体断裂有限元方法的数值模型,并提出了一种明确的方案来解决潜在的热力学问题。在本实现中,在违反朗肯准则的情况下,在线性三角形单元中嵌入垂直于第一主方向的位移不连续(裂缝)。在热-机械问题中,由于与外界热流相比,机械耗散引起的加热被忽略。这导致了一个不耦合的热-机械问题,其中从热部分到机械部分的唯一输入是热应变。该问题通过显式时间推进来解决,使用质量缩放来加快求解速度。最后,被困在微孔中的流体被建模为只能承受体积压应力的材料。对轴对称条件下岩石试样的热裂问题进行了数值模拟。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical modelling of pore-fluid-enhanced thermal spallation in granitic rock
This paper considers numerically the effect of pore-fluid on thermal spallation of granitic rock. For this end, a numerical model based on the embedded discontinuity finite element approach to rock fracture and an explicit scheme to solve the underlying thermo-mechanical problem is developed. In the present implementation, a displacement discontinuity (crack) is embedded perpendicular to the first principal direction in a linear triangle element upon violation of the Rankine criterion. In the thermo-mechanical problem, the heating due to mechanical dissipation is neglected as insignificant in comparison to the external heat flux. This leads to an uncoupled thermo-mechanical problem where the only input from the thermal part to the mechanical part is thermal strains. This problem is solved with explicit time marching using the mass scaling to speed up the solution. Finally, the fluid trapped into the micro-pores is modelled as a material that can bear only volumetric compressive stresses. A thermal spallation problem of a rock sample under axisymmetry is simulated as a numerical example.
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来源期刊
Rakenteiden Mekaniikka
Rakenteiden Mekaniikka Engineering-Mechanical Engineering
CiteScore
0.50
自引率
0.00%
发文量
2
审稿时长
16 weeks
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