Developments and Prospects of Long-Span High-Speed Railway Bridge Technologies in China

With the rapid developments of the high-speed railway in China, a great number of long-span bridges have been constructed in order to cross rivers and gorges. At present, the longest main span of a constructed high-speed railway bridge is only 630 m. The main span of Hutong Yangtze River Bridge and...

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Main Authors: Shunquan Qin, Zongyu Gao
Format: Article
Language:English
Published: Elsevier 2017-12-01
Series:Engineering
Online Access:http://www.sciencedirect.com/science/article/pii/S2095809917304496
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spelling doaj-d86af63b48af4d5a8bbd75026e123f422020-11-25T00:28:31ZengElsevierEngineering2095-80992017-12-0136787794Developments and Prospects of Long-Span High-Speed Railway Bridge Technologies in ChinaShunquan Qin0Zongyu Gao1Corresponding author.; China Railway Major Bridge Reconnaissance and Design Institute Co., Ltd., Wuhan 430050, ChinaChina Railway Major Bridge Reconnaissance and Design Institute Co., Ltd., Wuhan 430050, ChinaWith the rapid developments of the high-speed railway in China, a great number of long-span bridges have been constructed in order to cross rivers and gorges. At present, the longest main span of a constructed high-speed railway bridge is only 630 m. The main span of Hutong Yangtze River Bridge and of Wufengshan Yangtze River Bridge, which are under construction, will be much longer, at 1092 m each. In order to overcome the technical issues that originate from the extremely large dead loading and the relatively small structural stiffness of long-span high-speed railway bridges, many new technologies in bridge construction, design, materials, and so forth have been developed. This paper carefully reviews progress in the construction technologies of multi-function combined bridges in China, including combined highway and railway bridges and multi-track railway bridges. Innovations and practices regarding new types of bridge and composite bridge structures, such as bridges with three cable planes and three main trusses, inclined main trusses, slab-truss composite sections, and steel-concrete composite sections, are introduced. In addition, investigations into high-performance materials and integral fabrication and erection techniques for long-span railway bridges are summarized. At the end of the paper, prospects for the future development of long-span high-speed railway bridges are provided. Keywords: High-speed railway, Long-span bridges, Multi-function combined bridges, High-performance materials, Spatial structures with three cable planes, Integral fabricationhttp://www.sciencedirect.com/science/article/pii/S2095809917304496
collection DOAJ
language English
format Article
sources DOAJ
author Shunquan Qin
Zongyu Gao
spellingShingle Shunquan Qin
Zongyu Gao
Developments and Prospects of Long-Span High-Speed Railway Bridge Technologies in China
Engineering
author_facet Shunquan Qin
Zongyu Gao
author_sort Shunquan Qin
title Developments and Prospects of Long-Span High-Speed Railway Bridge Technologies in China
title_short Developments and Prospects of Long-Span High-Speed Railway Bridge Technologies in China
title_full Developments and Prospects of Long-Span High-Speed Railway Bridge Technologies in China
title_fullStr Developments and Prospects of Long-Span High-Speed Railway Bridge Technologies in China
title_full_unstemmed Developments and Prospects of Long-Span High-Speed Railway Bridge Technologies in China
title_sort developments and prospects of long-span high-speed railway bridge technologies in china
publisher Elsevier
series Engineering
issn 2095-8099
publishDate 2017-12-01
description With the rapid developments of the high-speed railway in China, a great number of long-span bridges have been constructed in order to cross rivers and gorges. At present, the longest main span of a constructed high-speed railway bridge is only 630 m. The main span of Hutong Yangtze River Bridge and of Wufengshan Yangtze River Bridge, which are under construction, will be much longer, at 1092 m each. In order to overcome the technical issues that originate from the extremely large dead loading and the relatively small structural stiffness of long-span high-speed railway bridges, many new technologies in bridge construction, design, materials, and so forth have been developed. This paper carefully reviews progress in the construction technologies of multi-function combined bridges in China, including combined highway and railway bridges and multi-track railway bridges. Innovations and practices regarding new types of bridge and composite bridge structures, such as bridges with three cable planes and three main trusses, inclined main trusses, slab-truss composite sections, and steel-concrete composite sections, are introduced. In addition, investigations into high-performance materials and integral fabrication and erection techniques for long-span railway bridges are summarized. At the end of the paper, prospects for the future development of long-span high-speed railway bridges are provided. Keywords: High-speed railway, Long-span bridges, Multi-function combined bridges, High-performance materials, Spatial structures with three cable planes, Integral fabrication
url http://www.sciencedirect.com/science/article/pii/S2095809917304496
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AT zongyugao developmentsandprospectsoflongspanhighspeedrailwaybridgetechnologiesinchina
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