Design of connecting mechanism and motion response analysis on nuclear power platform
<b>Objectives</b> To ensure marine nuclear reactor safety in deep-water ice regions, this paper proposes a design for an ice region nuclear power platform and spring damper connecting mechanism.<b>Methods</b> The platform and connecting mechanism simulation model is establish...
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Editorial Office of Chinese Journal of Ship Research
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doaj-72fc1c943aeb4138bdac83abf426da982020-11-25T02:49:02ZengEditorial Office of Chinese Journal of Ship ResearchZhongguo Jianchuan Yanjiu1673-31851673-31852020-02-0115115216110.19693/j.issn.1673-3185.017862020-1-152Design of connecting mechanism and motion response analysis on nuclear power platformLI Xiang0LI Hongxia1HUANG Yi2School of Naval Architecture Engineering, Dalian University of Technology, Dalian 116024, ChinaSchool of Naval Architecture Engineering, Dalian University of Technology, Dalian 116024, ChinaSchool of Naval Architecture Engineering, Dalian University of Technology, Dalian 116024, China<b>Objectives</b> To ensure marine nuclear reactor safety in deep-water ice regions, this paper proposes a design for an ice region nuclear power platform and spring damper connecting mechanism.<b>Methods</b> The platform and connecting mechanism simulation model is established using the three-dimensional potential theory and rigid-body dynamics. The spring and damper force is calculated, then connecting mechanism stiffness and damping coefficients are analyzed and the best scheme selected. The discrete element method is used to simulate ice load. The accuracy of the method is verified by calculating ice load on the experimental conical structure. Platform motion response is calculated under environmental loads of combined wave, wind and current, or ice, wind and current.<b>Results</b> The ice region load-bearing platform can resist ice load. The nuclear reactor supporting platform can resist a Fukushima nuclear accident maximum tsunami wave height and Level 17 super typhoon combination under the action of the connecting mechanism and mooring system. Under the 10 000-year return-time storm action in the North Sea, the ratio of horizontal displacement to water depth, heave and pitch response and vertical acceleration of the nuclear reactor supporting platform are all smaller than those of an Offshore Floating Nuclear Plant (OFNP).<b>Conclusions</b> This design for a nuclear power platform and connecting mechanism can ensure nuclear reactor safety and stability in deep-water ice regions.http://html.rhhz.net/ZGJCYJ/html/2020-1-152.htmnuclear power platformconnecting mechanismice loadvibration reductionmotion responsemooring |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
LI Xiang LI Hongxia HUANG Yi |
spellingShingle |
LI Xiang LI Hongxia HUANG Yi Design of connecting mechanism and motion response analysis on nuclear power platform Zhongguo Jianchuan Yanjiu nuclear power platform connecting mechanism ice load vibration reduction motion response mooring |
author_facet |
LI Xiang LI Hongxia HUANG Yi |
author_sort |
LI Xiang |
title |
Design of connecting mechanism and motion response analysis on nuclear power platform |
title_short |
Design of connecting mechanism and motion response analysis on nuclear power platform |
title_full |
Design of connecting mechanism and motion response analysis on nuclear power platform |
title_fullStr |
Design of connecting mechanism and motion response analysis on nuclear power platform |
title_full_unstemmed |
Design of connecting mechanism and motion response analysis on nuclear power platform |
title_sort |
design of connecting mechanism and motion response analysis on nuclear power platform |
publisher |
Editorial Office of Chinese Journal of Ship Research |
series |
Zhongguo Jianchuan Yanjiu |
issn |
1673-3185 1673-3185 |
publishDate |
2020-02-01 |
description |
<b>Objectives</b> To ensure marine nuclear reactor safety in deep-water ice regions, this paper proposes a design for an ice region nuclear power platform and spring damper connecting mechanism.<b>Methods</b> The platform and connecting mechanism simulation model is established using the three-dimensional potential theory and rigid-body dynamics. The spring and damper force is calculated, then connecting mechanism stiffness and damping coefficients are analyzed and the best scheme selected. The discrete element method is used to simulate ice load. The accuracy of the method is verified by calculating ice load on the experimental conical structure. Platform motion response is calculated under environmental loads of combined wave, wind and current, or ice, wind and current.<b>Results</b> The ice region load-bearing platform can resist ice load. The nuclear reactor supporting platform can resist a Fukushima nuclear accident maximum tsunami wave height and Level 17 super typhoon combination under the action of the connecting mechanism and mooring system. Under the 10 000-year return-time storm action in the North Sea, the ratio of horizontal displacement to water depth, heave and pitch response and vertical acceleration of the nuclear reactor supporting platform are all smaller than those of an Offshore Floating Nuclear Plant (OFNP).<b>Conclusions</b> This design for a nuclear power platform and connecting mechanism can ensure nuclear reactor safety and stability in deep-water ice regions. |
topic |
nuclear power platform connecting mechanism ice load vibration reduction motion response mooring |
url |
http://html.rhhz.net/ZGJCYJ/html/2020-1-152.htm |
work_keys_str_mv |
AT lixiang designofconnectingmechanismandmotionresponseanalysisonnuclearpowerplatform AT lihongxia designofconnectingmechanismandmotionresponseanalysisonnuclearpowerplatform AT huangyi designofconnectingmechanismandmotionresponseanalysisonnuclearpowerplatform |
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1724745122048901120 |