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Damage constitutive models of concrete under the coupling action of freeze-thaw cycles and load based on Lemaitre assumption

机译:基于Lemaitre假设的冻融循环与荷载耦合作用下的混凝土损伤本构模型

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摘要

In cold environments, concrete structures are subjected to a combined action of load, freeze-thaw cycles, and salt attack. The performance degradation of some concrete structures in such areas is serious, thus shortening their service life. In this study, a macro-mesoscopic coupling damage model was established to determine the durability of concrete under the coupling action of freeze-thaw cycles and load based on the Lemaitre strain equivalent assumption. Meanwhile, the an indoor accelerated test was conducted to verify the rationality of the model. Results indicated that the damage in different kinds of concrete under freeze-thaw cycles and load can be predicted by the theoretical model. The structural coupling damage was determined by the meso-damage caused by the freeze-thaw cycles and the macro-damage caused by the applied load, which showed a nonlinear superposition relationship. The evolution laws of coupling damage were entirely different because of the freeze-thaw cycles and strain. The coupling damage and peak strain increased with the increase in number of freeze-thaw cycles but the variation range of damage and peak stress decreased. The peak strain can be the critical point of the coupling damage when the number of freeze-thaw cycles was constant. The growth of coupling damage was not significant before the peak strain. When the deformation approached the peak strain, the coupling damage increased considerably, and the concrete was destroyed rapidly. (C) 2018 Elsevier Ltd. All rights reserved.
机译:在寒冷的环境中,混凝土结构承受荷载,冻融循环和盐分侵蚀的综合作用。在这些区域中某些混凝土结构的性能严重下降,从而缩短了它们的使用寿命。在这项研究中,建立了宏观-微观耦合损伤模型,基于Lemaitre应变等效假设,确定了冻融循环与荷载耦合作用下混凝土的耐久性。同时,进行了室内加速试验以验证模型的合理性。结果表明,理论模型可以预测冻融循环和荷载作用下不同种类混凝土的损伤。结构耦合损伤由冻融循环引起的细观损伤和外加载荷引起的宏观损伤确定,它们表现出非线性的叠加关系。由于冻融循环和应变,耦合损伤的演化规律完全不同。随着冻融循环次数的增加,耦合损伤和峰值应变增加,但损伤和峰值应力的变化范围减小。当冻融循环次数恒定时,峰值应变可能是耦合破坏的临界点。在峰值应变之前,耦合损伤的增长并不明显。当变形接近峰值应变时,耦合损伤大大增加,混凝土被迅速破坏。 (C)2018 Elsevier Ltd.保留所有权利。

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