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首页> 外文期刊>KSCE journal of civil engineering >Simulation and Analysis of the Temperature Field and the Thermal Stress of an Inverted-Siphon Concrete Structure Based on the Contact Friction Element
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Simulation and Analysis of the Temperature Field and the Thermal Stress of an Inverted-Siphon Concrete Structure Based on the Contact Friction Element

机译:基于接触摩擦元件的倒虹吸混凝土结构温度场的仿真与分析

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摘要

Mass concrete structures are prone to suffer temperature destruction during construction and operation because of their own mechanical properties and the role of cement hydration; therefore, the law of temperature field and temperature stress changes is crucial. This paper is based on the heat conduction theory and contact friction element theory under general external load. The heat conduction matrix, node thermal load vector, equivalent stiffness-constraint matrix and equivalent load vector of the contact friction element are each added to the whole heat conduction matrix, thermal load vector and total stiffness matrix, and the total load vector according to the finite element integration rule to establish the thermal-stress calculation model of the contact friction element. Combined with the Qi River inverted siphon project, this paper analyzed the temperature field and temperature stress using the three-dimensional finite element method, considering the changes of concrete thermodynamic parameters with age and the outside air temperature and other conditions, and obtained the distribution and variation in temperature field and temperature stress during the construction of an inverted siphon. The research results are of great significance for temperature control and crack prevention of inverted siphon structures. The thermal-stress calculation model of the contact friction element overcomes the limitations that it is difficult to use the current contact surface model to perform the temperature field simulation and further improves the application of the contact friction element model in the simulation of the temperature field and the temperature stress of mass concrete.
机译:由于自己的机械性能和水泥水合的作用,大规模混凝土结构易于在施工和运行期间受到温度破坏;因此,温度场法和温度胁迫变化是至关重要的。本文基于一般外部负荷下的导热理论和接触摩擦元素理论。触点摩擦元件的热传导矩阵,节点热负荷载体,等效刚度约束矩阵和等效载荷载体各自加入到整个导热矩阵,热负荷矢量和总刚度矩阵,以及根据的总载荷矢量有限元集成规则建立接触摩擦元件的热应力计算模型。结合齐河倒立的虹吸项目,本文分析了使用三维有限元法的温度场和温度胁迫,考虑到年龄和外部空气温度和其他条件的混凝土热力学参数的变化,并获得分布和倒置虹吸管施工期间温度场和温度应力的变化。研究结果对于倒虹吸结构的温度控制和防爆性具有重要意义。接触摩擦元件的热应力计算模型克服了难以使用电流接触面模型来执行温度场模拟的限制,并进一步改善了接触摩擦元件模型在温度场的模拟中的应用质量混凝土的温度应力。

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