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A combined finite difference and finite element model for temperature and stress predictions of cast-in-place cap beam on precast columns

机译:组合差分和有限元模型用于预制柱上现浇盖梁的温度和应力预测

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In this study, a combined finite difference and finite element model was developed to predict the temperature development, thermally induced stresses and associated cracking risk in the concrete of a cast-in-place cap beam cast on precast columns of a bridge. The numerical model considers degree of hydration dependent heat rate, Young's modulus development, strength development and early age tensile and compressive creep behavior. The temperature and stress analyses were performed on two sections of a cast-in-place cap beam (with a cross section of 1.6 m x 2.1 m): one at mid-span of the cap beam and the other on top of the precast column. The results show that the section of the cap beam at the column had high tensile stresses at the mid-sides which exceeded the early age concrete tensile strength when not covered with insulation blankets during construction. Additionally, the use of insulation materials, reduction of initial concrete temperature and proper choice of casting time can significantly mitigate the thermal stress and cracking risk of the cap beam. The model can be conveniently programmed and be a useful tool to help engineers control concrete temperature and take measures to minimize the risk of early-age thermal cracking for cast-in-place pier caps and its connection to a precast column, or other similar concrete members/connections, thus accelerating construction schedules for bridge projects. (C) 2019 Elsevier Ltd. All rights reserved.
机译:在这项研究中,开发了一个组合的有限差分和有限元模型,以预测桥梁预制桩上现浇盖梁混凝土的温度变化,热应力和相关的开裂风险。数值模型考虑了水合度取决于热速率,杨氏模量发展,强度发展以及早期拉伸和压缩蠕变行为。对现浇顶盖梁的两个部分(横截面为1.6 m x 2.1 m)进行温度和应力分析:一个在顶梁的中跨处,另一个在预制柱的顶部。结果表明,在施工过程中,如果盖层梁的截面在中部具有较高的拉应力,而在施工过程中未覆盖隔热层时,则超过了早期混凝土的抗拉强度。另外,使用绝缘材料,降低初始混凝土温度和适当选择浇铸时间可以显着减轻热应力和顶梁开裂的风险。该模型可以方便地进行编程,并且可以作为有用的工具来帮助工程师控制混凝土温度,并采取措施以最大程度地降低现浇墩盖及其与预制柱或其他类似混凝土的连接的早期热裂风险。成员/连接,从而加快桥梁项目的施工进度。 (C)2019 Elsevier Ltd.保留所有权利。

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