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Dynamic optimization of compaction process for rockfill materials

机译:堆石料压实工艺的动态优化

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摘要

The automatic adjustment of compaction parameters during a compaction process for increased efficiency is an important part in intelligent compaction (IC). However, there is a lack of effective methods for optimizing compaction parameters. This study proposes a compaction process-dynamic optimization method (CPDOM) based on a genetic algorithm (GA). The purpose of the CPDOM is to determine the optimal compaction plan based on the current compaction state to complete compaction within the shortest time. Therefore, field compaction tests with rockfill materials were conducted with various roller speeds and frequencies. Further, a relative density incremental function (RDIF) was established via a nonlinear multiple regression method. Based on the RDIF and the concept of a multistage decision process, CPDOM optimizes the compaction process globally via a GA to minimize the remaining compaction time. The main advantage of CPDOM is that the compaction parameters are optimized considering the overall optimal solution. Moreover, contrast tests were conducted in the Qianping reservoir. According to the results, the compaction efficiency improved by 13.1% through CPDOM optimization. Thus, CPDOM can be employed for engineering applications.
机译:为了提高效率,在压实过程中自动调整压实参数是智能压实(IC)的重要组成部分。但是,缺乏有效的方法来优化压实参数。本研究提出了一种基于遗传算法(GA)的压实过程动态优化方法(CPDOM)。 CPDOM的目的是根据当前压缩状态确定最佳压缩计划,以在最短时间内完成压缩。因此,在各种压路机速度和频率下用堆石料进行现场压实测试。此外,通过非线性多元回归方法建立了相对密度增量函数(RDIF)。基于RDIF和多阶段决策过程的概念,CPDOM通过GA在全局范围内优化了压缩过程,以最大程度地减少了剩余的压缩时间。 CPDOM的主要优点是,考虑到整体最优解,可以优化压实参数。此外,在前坪水库进行了对比测试。根据结果​​,通过CPDOM优化,压实效率提高了13.1%。因此,CPDOM可用于工程应用。

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