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Optimisation of a Stochastic Rock Fracture M odel Using Markov Chain Monte Carlo Simulation

机译:利用马尔可夫链蒙特卡罗模拟优化随机岩骨折M机器

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The characterisation of rock fracture networks is an important component of rock engineering applications involving stability assessment or fl uid fl ow analysis. However, the derivation of a reliable rock fracture model remains a very challenging problem in practice. This paper describes a Bayesian framework, in the form of Markov Chain Monte Carlo (MCMC) simulation, for the construction of such a model. Model conditioning using different data sources is discussed including seismic events recorded during hydraulic fracture stimulation, rock face fracture mapping data and downhole geophysical survey data. The freeware FracSim3D is used for the simulations.
机译:岩石骨折网络的表征是涉及稳定性评估或流体流动分析的岩石工程应用的重要组成部分。然而,可靠的岩石骨折模型的推导在实践中仍然是一个非常具有挑战性的问题。本文描述了贝叶斯框架,以马尔可夫链蒙特卡罗(MCMC)仿真形式,用于建造这种模型。讨论使用不同数据源的模型调理,包括在液压断裂刺激期间记录的地震事件,岩面断裂映射数据和井下地球物理调查数据。 Freeware FRACSIM3D用于模拟。

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