The analysis of the destabilizing motion of a hyperbolic cooling tower during demolition blasting

IF 0.6 Q4 ENGINEERING, MECHANICAL
Haipeng Jia, Qianqian Song
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引用次数: 0

Abstract

The destabilizing motion characteristics of the hyperbolic cooling tower in demolition blasting are thoroughly investigated through the establishment of a numerical simulation calculation model, leading to the following conclusions regarding its destabilizing motion. The tensile-compression elastic-plastic model, which possesses the characteristics of parameter modification function and independence from unit size, can more effectively capture the mechanical properties of concrete materials and find better application in the simulation and calculation research of reinforced concrete structures. The self-oscillation frequency check and collapse morphological analysis are employed to validate the accuracy of the simulation calculation model for hyperbolic cooling towers, as well as to assess the rationality of parameters in the tensile-compression elastic-plastic model. The collapse of a cooling tower induces flexural deformation in the lateral wall, tensile disturbance in the upper and middle sections of the cylinder, and compressive disturbance in the vertical cross-section. The cylinder body has incurred damage as a result of the tower wall’s front end striking the ground at the directional window position on the front side of the throat, leading to a significant extrusion deformation issue. The buckling deformation in the central and lower sections of the rear wall propagated towards the back side of the tower wall upon reaching the ground, ultimately resulting in an “inverted V-shaped” damage along the buckling deformation line. The research findings hold significant relevance for future endeavors.
双曲型冷却塔拆除爆破失稳运动分析
通过建立数值模拟计算模型,对双曲型冷却塔在爆破拆除中的失稳运动特性进行了深入研究,得出了双曲型冷却塔失稳运动的以下结论:拉伸-压缩弹塑性模型具有参数修正函数和独立于单元尺寸的特点,能更有效地捕捉混凝土材料的力学性能,在钢筋混凝土结构的模拟与计算研究中有更好的应用。采用自振频率校核和倒塌形态分析验证了双曲型冷却塔仿真计算模型的准确性,并对拉压弹塑性模型中参数的合理性进行了评价。冷却塔的倒塌引起侧壁的弯曲变形,筒体上部和中部的拉伸扰动,以及垂直截面的压缩扰动。由于塔壁前端在喉部前侧的定向窗口位置撞击地面,导致筒体损坏,导致挤压变形问题严重。后壁中下段屈曲变形到达地面后向塔壁后侧扩散,最终沿屈曲变形线形成“倒v”型损伤。研究结果对未来的努力具有重要意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Measurements in Engineering
Journal of Measurements in Engineering ENGINEERING, MECHANICAL-
CiteScore
2.00
自引率
6.20%
发文量
16
审稿时长
16 weeks
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