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Arching mechanism of the slab joints in CRTSII slab track under high temperature conditions

机译:高温条件下CRTSII板轨道板接头的拱形机制

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摘要

China Railway Track System II slab track is widely applied to China high-speed railway. Under the high temperature conditions, it tends to produce different degrees of arch at the joints between prefabricated slabs, which will affect the track irregularity and safe operation of high-speed trains. In this paper, considering the buckling instability of track structure, the arching mechanism of the slab joints was investigated by establishing a 3D finite element model of the CRTSII slab track. Combined with the field investigation, the damage process of joint concrete and its effects on the arching instability were analyzed. The results show: 1) The construction of joint concrete is difficult to control on site, which leads to inferior quality compared to prefabricated slab. The worse quality of joint concrete corresponds to a smaller amplitude of temperature rise causing joints damage and a greater damage area. 2) When the amplitude of temperature rise of the slab is over 37 degrees C, various damage emerges in the narrow joint and the middle of wide joint, resulting in the eccentric compression. 3) The temperature gradient load will cause the propagation of interface gap between slab and CA mortar layer, which aggravates the arching instability of slab, especially when the height of gap exceeds 1.5 mm. This research is expected to provide guidance for the optimization design, maintenance and damage control of slab track.
机译:中国铁路轨道系统II板式轨道广泛应用于中国高速铁路。在高温条件下,它倾向于在预制板之间的接头处产生不同程度的拱,这将影响高速列车的轨道不规则性和安全操作。本文考虑到轨道结构的屈曲不稳定性,通过建立CRTSII板轨道的3D有限元模型来研究板关节的拱形机构。结合现场调查,分析了联合混凝土的损伤过程及其对拱形不稳定的影响。结果表明:1)与预制板相比,部位难以控制联合混凝土的结构,导致质量较差。较差的关节混凝土质量对应于较小的温度升高幅度,导致接头损坏和更大的损伤区域。 2)当板坯的温度升高超过37摄氏度时,在窄接头和宽关节中间出现各种损坏,导致偏心压缩。 3)温度梯度负荷将导致板坯和Ca砂浆层之间的界面间隙的传播,这加剧了板坯的拱形不稳定性,特别是当间隙高度超过1.5mm时。该研究有望为平板轨道的优化设计,维护和损伤控制提供指导。

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