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Planning Tunnel Construction Using Markov Chain Monte Carlo (MCMC)

机译:使用Markov Chain Monte Carlo(MCMC)规划隧道施工

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摘要

Tunnels, drifts, drives, and other types of underground excavation are very common in mining as well as in the construction of roads, railways, dams, and other civil engineering projects. Planning is essential to the success of tunnel excavation, and construction time is one of the most important factors to be taken into account. This paper proposes a simulation algorithm based on a stochastic numerical method, the Markov chain Monte Carlo method, that can provide the best estimate of the opening excavation times for the classic method of drilling and blasting. Taking account of technical considerations that affect the tunnel excavation cycle, the simulation is developed through a computational algorithm. Using the Markov chain Monte Carlo method, the unit operations involved in the underground excavation cycle are identified and assigned probability distributions that, with random number input, make it possible to simulate the total excavation time. The results obtained with this method are compared with a real case of tunneling excavation. By incorporating variability in the planning, it is possible to determine with greater certainty the ranges over which the execution times of the unit operations fluctuate. In addition, the financial risks associated with planning errors can be reduced and the exploitation of resources maximized.
机译:在采矿以及道路,铁路,水坝和其他土木工程项目的建设中,隧道,水渠,驱动器和其他类型的地下挖掘非常普遍。规划是隧道开挖成功的关键,而施工时间是要考虑的最重要因素之一。本文提出了一种基于随机数值方法的马尔可夫链蒙特卡罗模拟算法,可以为经典的爆破方法提供最佳的开挖时间估计。考虑到影响隧道开挖周期的技术因素,通过计算算法进行了仿真。使用马尔可夫链蒙特卡罗方法,识别地下挖掘循环中涉及的单元操作并分配概率分布,利用随机数输入,可以模拟总挖掘时间。用这种方法获得的结果与隧道开挖的实际情况进行了比较。通过将可变性纳入计划中,可以更加确定地确定单元操作的执行时间波动的范围。此外,可以减少与计划错误相关的财务风险,并最大限度地利用资源。

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