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Featured researches published by Tian Chao.


SCIENTIA SINICA Physica, Mechanica & Astronomica | 2018

Three-dimensional hydroelasticity theory of ships in waves and ocean-acoustic environment with applications

Wu Yousheng; Zou Mingsong; Ding Jun; Ni XinYun; Tian Chao; Sima Can; Liu Shuxiao

The three-dimensional (3D) hydroelasticity theory of floating structures established in 1984 embodies the predictions of seakeeping behaviors, structural loads, dynamic strength, fatigue, and vibration of a surface ship or an underwater vehicle travelling in the sea in a unified generalized fluid-structure interaction theory. After more than thirty years of development, this theory has been further extended to two main branches: the 3D hydroelasticity theories for examining the wave excited dynamic responses of ships, and the 3D hydroelasticity theories for investigating the machinery or propeller excited vibrations and underwater acoustic radiations of a ship. The latter is also called the 3D sono-elasticity theory of ships. Drawn by the momentum gained from the comprehensive demand of marine applications, China Ship Scientific Research Center (CSSRC) has been devoted to the systematic innovative research in creating the linear and non-linear 3D hydroelasticity theories of ships, the 3D hydroelasticity theory of floating structures deployed in complicated ocean geographical environment near islands and reefs, the 3D sono-elasticity theory of ships in ocean acoustic environment etc. together with developing the numerical methods and corresponding software. These have been extensively employed to solve the key technical problems, such as motion and structural response predictions, behavior and safety assessment, design check and optimization of surface ships, underwater vehicles and other marine structures, This paper is not to present the state of the art of the worldwide development of hydroelasticity theories, but to concisely described the concept and framework of the 3D hydroelasticity and sono-elasticity theories of ships which are mainly developed by the research group of CSSRC. Typical application examples of the hydroelastic analyses of a 500000 DWT ultra large ore carrier and an 8-module very large floating structure, as well as the sono-elastic analysis of a simplified submarine model are also briefly illustrated. Finally, simply mentioned are the important directions of future research in the field of hydroelasticity and sono-elasticity of ships.


Archive | 2013

Semi-submersible platform with horizontally downward floating body

Ma Yande; Wu Yousheng; Dai Ting; Gu Xuekang; Zhao Jie; Tian Chao; Liu Gang; Lu Ye; Wang Fei; Zhao Jing


Archive | 2013

Longitude and latitude type semi-submersible platform

Ye Yonglin; Yang Peng; Gu Xuekang; Tian Chao; Ding Jun; Lu Ye


Archive | 2016

Body connecting device on water

Miao Yuji; Chen Xujun; Tang Xuefeng; Wu Guanghuai; Gu Xuekang; Tian Chao; Cheng Xiaoming; Yu Wei; Wu Hailang


Archive | 2014

Transverse lower floating body semi-submersible platform having large warehousing capacity

Ma Yande; Wu Yousheng; Dai Ting; Gu Xuekang; Zhao Jie; Tian Chao; Liu Gang; Lu Ye; Wang Fei; Zhao Jing


Archive | 2013

Three-floating-body type semi-submersible platform

Gu Xuekang; Ye Yonglin; Tian Chao; Yang Peng; Ding Jun; Wu Yousheng; Cheng Xiaoming; Zhou Ye; Li Long; Lu Zhen; Yang Ji


Archive | 2013

Integral-floating-box-type semi-submersible platform

Ye Yonglin; Gu Xuekang; Tian Chao; Wu Yousheng; Yang Peng; Ding Jun; Cheng Xiaoming; Li Long; Zhou Ye; Lu Zhen; Yang Ji


Archive | 2014

Floating bulwark with flexible structure

Ji Chunyan; Chen Xiang; Gu Xuekang; Tian Chao; Liu Zhen; Lu Ye


Archive | 2014

Box-type lower floating body multi-stand-column-type semi-submersible platform

Lu Ye; Ye Yonglin; Gu Xuekang; Tian Chao


Archive | 2014

Floating breakwater in mesh cage structure

Ji Chunyan; Chen Xiang; Ma Xiaojian; Gu Xuekang; Liu Zhen; Ni Xinyun; Lu Ye; Tian Chao; Yang Peng; Wang Yue

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Chen Xujun

University of Science and Technology

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