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Frontiers of Structural and Civil Engineering

ISSN 2095-2430

ISSN 2095-2449(Online)

CN 10-1023/X

邮发代号 80-968

2019 Impact Factor: 1.68

Frontiers of Structural and Civil Engineering  2023, Vol. 17 Issue (8): 1199-1210   https://doi.org/10.1007/s11709-023-0949-y
  本期目录
Development of combined transitional pavement structure for urban tram track-road grade crossings
Boshun GAO1, Xin XIAO1(), Jiayu WANG1, Ligao JIANG2, Qing YAO2
1. Key Laboratory of Road and Traffic Engineering of Ministry of Education, Tongji University, Shanghai 201804, China
2. Shanghai Urban Construction Municipal Engineering (Group) Co., Ltd., Shanghai 200065, China
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Abstract

The grade crossings and adjacent pavements of urban trams are generally subjected to complex load conditions and are susceptible to damage. Therefore, in this study, a novel pavement structure between tram tracks and roads constructed using polyurethane (PU) elastic concrete and ultra-high-performance concrete (UHPC), referred to as a track-road transitional pavement (TRTP), is proposed. Subsequently, its performance and feasibility are evaluated using experimental and numerical methods. First, the mechanical properties of the PU elastic concrete are evaluated. The performance of the proposed structure is investigated using a three-dimensional finite element model, where vehicle-induced dynamic and static loads are considered. The results show that PU elastic concrete and the proposed combined TRTP are applicable and functioned as intended. Additionally, the PU elastic concrete achieved sufficient performance. The recommended width of the TRTP is approximately 50 mm. Meanwhile, the application of UHPC under a PU elastic concrete layer significantly reduces vertical deformation. Results of numerical calculations confirmed the high structural performance and feasibility of the proposed TRTP. Finally, material performance standards are recommended to provide guidance for pavement design and the construction of tram-grade crossings in the future.

Key wordsurban tram track    grade crossing    combined track-road transitional pavement    polyurethane elastic concrete    finite element method
收稿日期: 2022-08-30      出版日期: 2023-11-16
Corresponding Author(s): Xin XIAO   
 引用本文:   
. [J]. Frontiers of Structural and Civil Engineering, 2023, 17(8): 1199-1210.
Boshun GAO, Xin XIAO, Jiayu WANG, Ligao JIANG, Qing YAO. Development of combined transitional pavement structure for urban tram track-road grade crossings. Front. Struct. Civ. Eng., 2023, 17(8): 1199-1210.
 链接本文:  
https://academic.hep.com.cn/fsce/CN/10.1007/s11709-023-0949-y
https://academic.hep.com.cn/fsce/CN/Y2023/V17/I8/1199
Fig.1  
propertytest methodunitvalue
tensile strengthASTM D638 [20]MPa6.87
elongation at breakASTM D638%540.2
hardnessGB/T 531.1-2008 [21]Shore D65
tearing strengthASTM D624 [22]N/mm15.1
rotary viscosityJTG E20-2011 [23]cP3650
surface drying timeGB/T 19250-2013 [24]min50
hard drying timeGB/T 19250-2013min110
tensile strength after agingASTM D638MPa7.13
elongation after agingASTM D638%471.6
Tab.1  
Fig.2  
Fig.3  
Fig.4  
materialselasticity (MPa)Poisson’s ratiodensity (kg·m?3)
rail2100000.37850
milling materials9.50.495900
rail top sealant1.150.351200
rail pads150.4585
PU elastomer34000.353000
UHPC480000.22700
AC-1314000.352450
AC-2012000.352450
concrete slab280000.22500
Tab.2  
Fig.5  
Fig.6  
Fig.7  
Fig.8  
Fig.9  
Fig.10  
analyse formstructure typewidth of pavement (m)loading conditionvehicle speed (km/h)total calculation times
static23424 times
dynamic23110–6036 times
Tab.3  
load formmaximum compressive stress (MPa)maximum tensile stress (MPa)maximum shearing stress (MPa)
static load5.350.701.06
dynamic load4.500.501.10
Tab.4  
materialpropertystandardrequirement
bindertensile strengthASTM D638≥ 6 MPa
elongation at breakASTM D638≥ 200%
hardnessGB/T 531.1-2008≥ 60
tearing strengthASTM D624≥ 14.3 N/mm
rotary viscosityJTG E20-2011≤ 4000 cP
surface drying timeGB/T 19250-201310–60 min
hard drying timeGB/T 19250-201330–120 min
tensile strength after agingASTM D638≥ 5.17 MPa
elongation after agingASTM D638≥ 150%
mixturecompressive strengthASTM D695≥ 6 MPa
tensile strengthASTM D638≥ 1 MPa
elastic recoveryASTM D638≥ 95%
impact resistanceASTM D5628no cracks
interface shear strength with concreteGB/T 16777-2008≥ 2 MPa
Tab.5  
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