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Multiscale Coupled-Hygromechanistic Approach to the Life-Cycle Performance Assessment of Structural Concrete

机译:多尺度耦合湿力学方法评估结构混凝土的生命周期性能

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Moisture and cracks are scourges of structural concrete, and understanding the multiscale interactions between the two is key to determining long-term durability performance. This paper uses three-dimensional integrated micromaterial structural modeling to address moisture migration/balance and associated volume changes of concrete with creep in prestressed concrete bridge viaducts that are experiencing excessive deflections. It is found that moisture migration-related deflections driven by the capillary surface tension and disjoining pressures in cement micropores account for 25 to 45% of the macroscopic deflections. These apparent kinematics can be approximated by adding the moisture-related time-dependent deflections to the mechanistic-induced creep by external loads. This paper also addresses water-crack interaction in cracked RC bridge decks under moving loads in view of the coupled hygromechanics. It is found that the water presence on the upper deck parts, when subjected to high-speed traffic, can shorten the fatigue life of the deck by one-and-a-half order of life span. This reduction in life is discussed in terms of high-water pressure developing over large numbers of wheel passages, in addition to the reduced shear transfer along crack planes.
机译:水分和裂缝是结构混凝土的祸害,了解两者之间的多尺度相互作用是确定长期耐久性能的关键。本文使用三维集成微材料结构模型来解决水分的迁移/平衡以及伴随蠕变的预应力混凝土桥梁高架桥中混凝土的蠕变问题。发现由水泥微孔中的毛细管表面张力和解体压力驱动的与水分迁移相关的挠曲占宏观挠曲的25%至45%。这些明显的运动学可以通过将与湿气有关的随时间变化的挠度加到由外部载荷引起的机械蠕变中来估算。本文还考虑了耦合湿力学,研究了在移动荷载作用下开裂的RC桥面板中的水裂缝相互作用。已经发现,当进行高速运输时,上甲板部件上的水会缩短甲板的疲劳寿命一半半。除了减少沿裂纹平面的剪切传递外,还根据大量车轮通道上产生的高水压来讨论这种寿命的减少。

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