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Influence of concrete shrinkage and creep on structural characteristics of precast and prestressed concrete shells

机译:混凝土的收缩和蠕变对预制和预应力混凝土壳结构特性的影响

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The actual concern for structural engineers is the failure of the structural material to meet the design safety and the safe service life of large span and wide floor space buildings. The main idea in this present report reflects the combination of the economical use of construction materials with the long and durable safe service life to cover large floor spaces, using precast and prestreseed concrete shell structural members. This paper describes the present ongoing numerical and experimental analysis model used to determine the structural long duration flexural and nonlinear deformation characteristics of reinforced precast elliptical paraboloid concrete shell elements, prestressed in both directions. Horizontal precast and prestressed edge beams supported on prestressed columns are provided to support the longitudinal edges of the shells. This present study has been based on nonlinear differential equations of the concrete matrix creep theory which reflects the correlation between the matrix stress and strain by its modulus of elasticity and on the well-known geometrical preconditions of the theory of elasticity concerning thin plates with small flexural deformations. For structural and crack predictions, the well-known virtual work principles have been used to estimate (a) transient bi-directional strains due to the matrix creep and shrinkage, (b) the resulting time-dependent bi-directional stress redistribution, as well as (c) bi-directional displacement variations in the structural shell elements and finally (d) bi-directional pre-stressing losses in the pre-stressed high yield tendons. The concrete shear stresses have been evaluated by the well-known principle of Juravskiy. A series of original test experiments with once evaluated strength parameters has been planned to be successfully used to provide encouraging support for the numerical evaluations.
机译:结构工程师真正关心的是结构材料不能满足大跨度和宽地面空间建筑物的设计安全性和安全使用寿命。本报告的主要思想反映了使用预制材料和预应力混凝土壳结构构件,经济地使用建筑材料与长久耐用的安全使用寿命相结合,可覆盖较大的地面空间。本文介绍了当前正在进行的数值和实验分析模型,用于确定双向预应力的钢筋混凝土预制椭圆抛物面混凝土壳单元的结构长期挠曲和非线性变形特性。提供支撑在预应力柱上的水平预制和预应力边缘梁,以支撑壳体的纵向边缘。本研究基于混凝土基体蠕变理论的非线性微分方程,该方程通过基体的弹性模量反映基体应力与应变之间的关系,并且基于小挠曲薄板的弹性理论的众所周知的几何前提变形。对于结构和裂纹的预测,众所周知的虚拟工作原理已用于估计(a)由于基体蠕变和收缩而引起的瞬时双向应变,(b)所产生的随时间变化的双向应力重新分布,以及(c)结构壳体单元中的双向位移变化,以及(d)预应力高屈服强度筋中的双向预应力损失。混凝土的剪应力已通过Juravskiy的众所周知的原理进行了评估。计划对具有一次评估的强度参数的一系列原始测试实验进行成功地使用,以为数值评估提供令人鼓舞的支持。

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