New Design Concept for Bridge Restrainers with Rubber Cushion Considering Dynamic Action: A Preliminary Study
A bridge unseating prevention system is a safety system for bridge collapses caused by large earthquakes, beyond the assumption of aseismic design specifications. Presently, the system is generally adopted for newly constructed bridges and the seismic retrofitting of existing bridges. Cable type bri...
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doaj-bfce297f4f694646ba2681c9c53a7abe2020-11-25T03:28:26ZengMDPI AGApplied Sciences2076-34172020-09-01106847684710.3390/app10196847New Design Concept for Bridge Restrainers with Rubber Cushion Considering Dynamic Action: A Preliminary StudyHiroki Tamai0Chi Lu1Yoichi Yuki2Department of Civil Engineering, Kyushu University, Fukuoka 819-0395, JapanDepartment of Civil Engineering, Kyushu University, Fukuoka 819-0395, JapanResearch and Development Group, Yokogawa Bridge Holdings Corp., Chiba 261-0002, JapanA bridge unseating prevention system is a safety system for bridge collapses caused by large earthquakes, beyond the assumption of aseismic design specifications. Presently, the system is generally adopted for newly constructed bridges and the seismic retrofitting of existing bridges. Cable type bridge restrainers are included in the system, and they are expected to prevent superstructures from exceeding the seat length of substructures. Although the bridge restrainer works during an earthquake, it is designed to be static in the current design. In addition, although the constituent elements of bridge restrainers include a rubber cushion to absorb energy during an earthquake, the effect is not included in the design. Thus, the current design lacks the dynamic effects of earthquakes and the cushioning effect of the rubber. Furthermore, in the case of a multi-span bridge, there is no particular decision as to where the restrainers should be placed or what kind of specifications they should have. Therefore, in this paper, a new design concept that considers the dynamic action of the earthquake and the cushioning effect of the rubber is proposed by coupling dynamic response analysis using a frame finite element (FE) model and a simple genetic algorithm (SGA).https://www.mdpi.com/2076-3417/10/19/6847design conceptbridge restrainercushion effectdynamic finite element analysissimple genetic algorithmoptimization design |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Hiroki Tamai Chi Lu Yoichi Yuki |
spellingShingle |
Hiroki Tamai Chi Lu Yoichi Yuki New Design Concept for Bridge Restrainers with Rubber Cushion Considering Dynamic Action: A Preliminary Study Applied Sciences design concept bridge restrainer cushion effect dynamic finite element analysis simple genetic algorithm optimization design |
author_facet |
Hiroki Tamai Chi Lu Yoichi Yuki |
author_sort |
Hiroki Tamai |
title |
New Design Concept for Bridge Restrainers with Rubber Cushion Considering Dynamic Action: A Preliminary Study |
title_short |
New Design Concept for Bridge Restrainers with Rubber Cushion Considering Dynamic Action: A Preliminary Study |
title_full |
New Design Concept for Bridge Restrainers with Rubber Cushion Considering Dynamic Action: A Preliminary Study |
title_fullStr |
New Design Concept for Bridge Restrainers with Rubber Cushion Considering Dynamic Action: A Preliminary Study |
title_full_unstemmed |
New Design Concept for Bridge Restrainers with Rubber Cushion Considering Dynamic Action: A Preliminary Study |
title_sort |
new design concept for bridge restrainers with rubber cushion considering dynamic action: a preliminary study |
publisher |
MDPI AG |
series |
Applied Sciences |
issn |
2076-3417 |
publishDate |
2020-09-01 |
description |
A bridge unseating prevention system is a safety system for bridge collapses caused by large earthquakes, beyond the assumption of aseismic design specifications. Presently, the system is generally adopted for newly constructed bridges and the seismic retrofitting of existing bridges. Cable type bridge restrainers are included in the system, and they are expected to prevent superstructures from exceeding the seat length of substructures. Although the bridge restrainer works during an earthquake, it is designed to be static in the current design. In addition, although the constituent elements of bridge restrainers include a rubber cushion to absorb energy during an earthquake, the effect is not included in the design. Thus, the current design lacks the dynamic effects of earthquakes and the cushioning effect of the rubber. Furthermore, in the case of a multi-span bridge, there is no particular decision as to where the restrainers should be placed or what kind of specifications they should have. Therefore, in this paper, a new design concept that considers the dynamic action of the earthquake and the cushioning effect of the rubber is proposed by coupling dynamic response analysis using a frame finite element (FE) model and a simple genetic algorithm (SGA). |
topic |
design concept bridge restrainer cushion effect dynamic finite element analysis simple genetic algorithm optimization design |
url |
https://www.mdpi.com/2076-3417/10/19/6847 |
work_keys_str_mv |
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