Study on the Effects of Influence Factors on the Stress and Deformation Characteristics of Ultra-High CFRDs

Q1 Mathematics
Hongmei Li, Jianxin Wang, Yanyuan Lv, Chengming Feng
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引用次数: 0

Abstract

A sensitivity analysis was conducted to evaluate several factors, including dam height, bank slope gradient, water storage times, and phased panel filling, on concrete-faced rockfill dams (CFRDs). The analysis identified the three most significant factors to examine their impacts on the stress-deformation characteristics of CFRDs. The results show that the order of influence on the dam body’s stress and deformation characteristics is as follows: dam height > bank slope gradient > water storage times > panel phased construction. From the perspective of stress-deformation of the face slab, water storage times predominantly affect tensile stress, while the bank slope gradient exerts the greatest influence on compressive stress. As the bank slope gradient decreases, the panel’s lateral restraint diminishes, leading to a decrease in the panel’s extrusion efficacy. Consequently, there are notable variations in the panel’s compressive stresses. An increase in dam height correlates with escalating stress and deformation in both the dam and face slab. As the bank slope gradient decreases, the deformation of the dam and face slab, as well as the range of tensile stress of the face slab, also increase. In contrast to a single water storage scenario, the face slab has experienced greater stress and deformation during the initial impoundment under multiple impoundment conditions. Therefore, multiple water storage schemes result in reduced deflection, axial horizontal displacement, and tensile stresses both along the slope and axial in the face slab. Furthermore, the tensile area at the bottom of the face slab transitions into a compressive area.
影响因素对超高 CFRD 的应力和变形特性的影响研究
对混凝土面板堆石坝(CFRD)的几个因素进行了敏感性分析,包括坝高、岸坡坡度、蓄水时间和分阶段面板填筑。分析确定了三个最重要的因素,以研究它们对 CFRD 应力-变形特性的影响。结果表明,对坝体应力和变形特性的影响顺序为:坝高 > 岸坡坡度 > 蓄水时间 > 面板分期施工。从面板应力变形的角度来看,蓄水时间主要影响拉应力,而岸坡坡度对压应力的影响最大。随着岸坡坡度的减小,面板的横向约束减弱,导致面板的挤压效果降低。因此,面板的压应力有明显的变化。坝高的增加与坝体和面板的应力和变形的增加有关。随着岸坡坡度的减小,坝体和面板的变形以及面板的拉应力范围也随之增大。与单一蓄水方案相比,在多重蓄水条件下,坝面板在初始蓄水期间经历了更大的应力和变形。因此,多蓄水方案会导致变形、轴向水平位移以及沿斜坡和沿面板轴向的拉应力减小。此外,面板底部的拉应力区域会转变为压应力区域。
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
Applied Sciences
Applied Sciences Mathematics-Applied Mathematics
CiteScore
6.40
自引率
0.00%
发文量
0
审稿时长
11 weeks
期刊介绍: APPS is an international journal. APPS covers a wide spectrum of pure and applied mathematics in science and technology, promoting especially papers presented at Carpato-Balkan meetings. The Editorial Board of APPS takes a very active role in selecting and refereeing papers, ensuring the best quality of contemporary mathematics and its applications. APPS is abstracted in Zentralblatt für Mathematik. The APPS journal uses Double blind peer review.
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