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Interface damage and arching mechanism of CRTS Ⅱ slab track under temperature load

机译:CRTSⅡ平板轨道在温度负荷下的界面损伤和拱起机制

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摘要

To study the interface damage and the arching deformation of China railway track system (CRTS) II slab track under high-temperature conditions, a three-dimensional (3D) finite element model of the CRTS II slab track was developed. A cohesive zone model (CZM) with a non-linear constitutive law was utilized to simulate the interface damage between the precast slab and the cement asphalt (CA) mortar layer. The model was verified by comparing the simulation results with the experimental results. The effects of the overall temperature rise and positive temperature gradient on the interface damage and deformation of the track structure under the different damage levels of the joint concrete were studied. The analysis indi-cates that when the joint concrete is intact, the interface between the precast and the CA mortar layer does not appear damage under the effect of the overall temperature rise or the positive temperature gra-dient. The damage of the joint concrete is an inducement for the interface damage and the arching of the slab track under the action of high temperature. The interface damage area and the height of the interface gap increase with the increase of the damage degree of the joint concrete. Especially under the action of the overall temperature rise, the interface gap can reach more than 30 mm. More attention needs to be paid to the construction quality and maintenance of joint concrete. (c) 2021 Elsevier Ltd. All rights reserved.
机译:为了研究高温条件下中国铁路轨道系统(CRTS)II板轨道的界面损坏和拱形变形,开发了CRTS II板轨道的三维(3D)有限元模型。利用具有非线性本构载体的粘性区域模型(CZM)来模拟预制板和水泥沥青(CA)砂浆层之间的界面损伤。通过将模拟结果与实验结果进行比较来验证该模型。研究了整体温升和正温梯度对关节混凝土不同损伤水平下轨道结构界面损坏和变形的影响。分析指示,当关节混凝土完整时,预制和Ca砂浆层之间的界面在整体温度升高或正温度Gra-Dient的效果下没有出现损伤。关节混凝土的损坏是在高温作用下界面损坏和板式轨道的拱形诱导。随着关节混凝土损坏程度的增加,界面损伤区域和界面间隙的高度增加。特别是在整体温度升高的作用下,界面间隙可达到30毫米以上。需要更多地关注联合混凝土的施工质量和维护。 (c)2021 elestvier有限公司保留所有权利。

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