Gurkalo Filip, He Chaofan, Poutos Konstantinos, He Na
School of Civil Engineering, Henan Polytechnic University, Jiaozuo, Henan, China.
Faculty of Engineering, Computing and the Environment, Kingston University, London, UK.
Sci Rep. 2024 Mar 13;14(1):6113. doi: 10.1038/s41598-024-56851-3.
Elevated water tanks are considered crucial infrastructure due to their significant role in supporting essential services. A strong ground motion may result in a failure or significant damage to a reinforced concrete shaft of an elevated water tank because hysteric energy dissipation is limited to the formation of plastic hinges at the base of the shaft, while the nonlinear properties of the rest of the shaft remain underutilised. The innovative system of assembling RC shafts for elevated water tanks using a slit wall technique was developed to enhance energy dissipation along with the shaft height by introducing slit zones. The comparative nonlinear dynamic analysis between three-dimensional models of elevated water tanks with different shaft diameters and heights was conducted using SAP2000 software. The results of elevated water tanks with slit and solid reinforced concrete shafts were compared. The research findings showed that during a seismic event, the slit zones increased the ductility of the shaft, reduced stress concentration in the lower part of the shaft, and provided uniform stress distribution throughout the shaft's height. The effect of the innovative system is especially noticeable in the elevated water tanks with tall and slender shafts.
由于高位水箱在支持基本服务方面发挥着重要作用,因此被视为关键基础设施。强烈的地面运动可能会导致高位水箱的钢筋混凝土竖井出现故障或严重损坏,因为滞回能量耗散仅限于竖井底部塑性铰的形成,而竖井其余部分的非线性特性仍未得到充分利用。为了通过引入狭缝区域来增强沿竖井高度的能量耗散,开发了一种使用狭缝墙技术组装高位水箱钢筋混凝土竖井的创新系统。使用SAP2000软件对不同竖井直径和高度的高位水箱三维模型进行了对比非线性动力分析。比较了带有狭缝和实心钢筋混凝土竖井的高位水箱的结果。研究结果表明,在地震事件中,狭缝区域增加了竖井的延性,降低了竖井下部的应力集中,并在竖井整个高度上提供了均匀的应力分布。这种创新系统的效果在高细长竖井的高位水箱中尤为明显。