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首页> 外文期刊>Journal of materials in civil engineering >Performance Evolution and Damage Constitutive Model of Thin Layer SCC under the Coupling Effect of Freeze-Thaw Cycles and Load
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Performance Evolution and Damage Constitutive Model of Thin Layer SCC under the Coupling Effect of Freeze-Thaw Cycles and Load

机译:冻融循环与载荷耦合作用下薄层SCC的性能演化与损伤本构模型

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摘要

Self-compacting concrete (SCC) is widely used in the China Rail Track System (CRTS) III slab ballastless track filling-layer structure for high-speed railways (HSRs). In cold regions, the thin filling-layer SCC is subjected to the coupling effects of freeze-thaw cycles and load, shortening the service life of the track structure. This study focused on the performance evolution and damage constitutive model of thin flat plate SCC under the coupling effects of freeze-thaw cycles and load using a self-designed preloading device. Results showed that the increase of freeze-thaw cycles reduced the performance of SCC gradually. When SCC was exposed to 300 freeze-thaw cycles, the mass loss rate was 2.41%, peak stress (σ_p) decreased by 23.1%, peak strain (ε_p) increased by 67.9%, and relative elastic modulus (E_i/E_0) decreased to 47.9%. However, when SCC was subjected to the coupled effect of 300 freeze-thaw cycles and 1/3 peak stress, the mass loss rate was 2.95%, σ_p decreased by 35.5%, ε_p increased by 79.9%, and E_i/E_0 decreased to 42.9%. Compared with freeze-thaw cycles alone, the coupled effect of freeze-thaw cycles and load accelerated deterioration of SCC. A damage constitutive model of SCC derived from the hypothesis of Lemaitre strain equivalent and Weibull statistical distribution could well describe the constitutive relation of SCC under the coupling of freeze-thaw cycles and load. As the number of freeze-thaw cycles increased, shape parameter m exponentially decreased and scale parameter a changed according to the cubic equation of one variable. Shape parameter m decreased with the increase of the number of freeze-thaw cycles, and scale parameter a in the Weibull statistical distribution was related to freeze-thaw cycles and load.
机译:自密实混凝土(SCC)广泛用于高速铁路(HSR)的中国铁路轨道系统(CRTS)III板式无ball轨道填充层结构。在寒冷地区,薄填充层SCC受到冻融循环和载荷的耦合作用,从而缩短了轨道结构的使用寿命。这项研究的重点是使用自行设计的预加载装置,在冻融循环与载荷耦合作用下,薄平板SCC的性能演变和损伤本构模型。结果表明,冻融循环次数的增加逐渐降低了SCC的性能。当SCC经受300次冻融循环时,质量损失率为2.41%,峰值应力(σ_p)下降23.1%,峰值应变(ε_p)上升67.9%,相对弹性模量(E_i / E_0)降低至47.9%。但是,当SCC经受300次冻融循环和1/3峰值应力的耦合作用时,质量损失率为2.95%,σ_p降低35.5%,ε_p升高79.9%,E_i / E_0降低至42.9 %。与单独的冻融循环相比,冻融循环与负荷的耦合作用加速了SCC的恶化。由Lemaitre应变当量和Weibull统计分布假设得出的SCC损伤本构模型可以很好地描述冻融循环与荷载耦合作用下SCC的本构关系。随着冻融循环次数的增加,形状参数m呈指数下降,比例参数a根据一个变量的三次方程式变化。形状参数m随着冻融循环次数的增加而减小,而Weibull统计分布中的比例参数a与冻融循环和载荷有关。

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