Chen Xiaocui, Mi Yuan, Shuai Xinru, Zheng Yuan, Zhao Wenhu
School of Electrical and Power Engineering, Hohai University, Nanjing 210098, China.
School of Infrastructure Engineering, Nanchang University, Nanchang 330031, China.
Sensors (Basel). 2024 Dec 3;24(23):7738. doi: 10.3390/s24237738.
The application of blasting in modern engineering construction is prized for its speed, efficiency, and cost-effectiveness. However, the resultant vibrations can have significant adverse effects on surrounding buildings and residents. The challenge of optimizing blasting procedures to satisfy excavation needs while minimizing vibration impacts is a critical concern in blasting excavation. This research addresses this challenge through the development of a 3D simulation and analysis model for an underground pumped storage power plant in East China, utilizing the LS-DYNA finite element analysis software. To explore the influence of charging structures on rock fragmentation and vibration propagation, three distinct blasting programs were formulated, each featuring varied configurations within the machinery room. The analysis revealed that the adoption of an optimized charging structure can significantly decrease damage to the protective layer by approximately 40%, while also reducing the impact on the upstream and downstream side walls by 27.25% and 12.03%, respectively, without compromising the efficacy of the main blast zone. Moreover, the vibration velocities at the remote measurement point were found to be reduced across multiple directions, indicating effective control of the vibration effects. The post-implementation of the optimized blasting strategy at the site, the assessment of the retained surrounding rock integrity, and the impact on protected structures demonstrated that the proposed solution met satisfactory outcomes. This study underscores the potential of simulation-based optimization in managing vibration risks during blasting operations, offering a valuable tool for engineers and practitioners in the field of underground construction.
爆破在现代工程建设中的应用因其速度、效率和成本效益而备受青睐。然而,爆破产生的振动会对周围建筑物和居民产生重大不利影响。在爆破开挖中,优化爆破程序以满足开挖需求同时将振动影响降至最低,这一挑战是一个关键问题。本研究通过利用LS-DYNA有限元分析软件,为中国东部某地下抽水蓄能电站开发三维模拟与分析模型,来应对这一挑战。为探究装药结构对岩石破碎和振动传播的影响,制定了三种不同的爆破方案,每种方案在机房内具有不同的配置。分析表明,采用优化的装药结构可使对保护层的损伤显著降低约40%,同时分别将对上游和下游侧壁的影响降低27.25%和12.03%,而不影响主爆破区的效果。此外,在多个方向上,远程测量点的振动速度均有所降低,表明振动效应得到了有效控制。在现场实施优化爆破策略后,对保留的围岩完整性以及对受保护结构的影响进行评估,结果表明所提出的解决方案取得了令人满意的成果。本研究强调了基于模拟的优化在爆破作业中管理振动风险方面的潜力,为地下工程领域的工程师和从业者提供了一个有价值的工具。