横向基宽约束对大体积混凝土开裂性能的影响

A. Ali, O. F. Al-Damluji, A. H. Al-Zuhairi
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摘要

本文研究了大体积混凝土构件中考虑三维因素对其开裂行为的影响。调查包括大体积混凝土结构的热分析和结构分析。从热分析中,得到了整个大体积混凝土体的实际温度分布,这是由于水泥水化产生的热量以及周围环境的影响。这是通过用有限元法求解热传导和对流的微分方程来实现的。采用初始应变问题的概念对结构进行了有限元分析。使用ACI委员会209建议的程序计算干燥收缩体积变化,并将其转换为等效温差,以代数方式添加到热分析得出的温差中。采用五个强度参数的william - warnke模型对混凝土材料进行建模,该模型可以考虑混凝土的开裂和破碎行为。采用ANSYS程序进行了改进后的分析。以厚度为1.5m、长度为10m的厚混凝土板为例,分析其宽度为2、4、8、10m时的宽高比(B/L)分别为0.2、0.4、0.8、1.0。分析结果表明,受横向基础约束的影响,大体积混凝土构件的开裂倾向随着同一构件长径比的增大而增大。因此,在分析受温度和干缩体积变化影响的基础约束大体积混凝土结构时,这种影响是不可忽视的。
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Effect of Transverse Base Width Restraint on the Cracking Behavior of Massive Concrete
The effect of considering the third dimension in mass concrete members on its cracking behavior is investigated in this study. The investigation includes thermal and structural analyses of mass concrete structures. From thermal analysis, the actual temperature distribution throughout the mass concrete body was obtained due to the generation of heat as a result of cement hydration in addition to the ambient circumstances. This was performed via solving the differential equations of heat conduction and convection using the finite element method. The finite element method was also implemented in the structural analysis adopting the concept of initial strain problem. Drying shrinkage volume changes were calculated using the procedure suggested by ACI Committee 209 and inverted to equivalent temperature differences to be added algebraically to the temperature differences obtained from thermal analysis. Willam-Warnke model with five strength parameters is used in modeling of concrete material in which cracking and crushing behavior of concrete can be included. The ANSYS program was employed in a modified manner to perform the above analyses. A thick concrete slab of 1.5m in thickness and 10m in length was analyzed for different widths 2, 4, 8, and 10m to produce different aspect ratios (B/L) of 0.2, 0.4, 0.8, and 1.0 respectively. The results of the analyses show an increase in cracking tendency of mass concrete member as the aspect ratio of the same member is increased due to the effect of transverse base restraint. Accordingly, such effect cannot be ignored in the analysis of base restrained mass concrete structures subjected to temperature and drying shrinkage volume changes.
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