Resilient slip-friction connection-enhanced self-centering column for the low-damage prefabricated underground structures

IF 6.7 1区 工程技术 Q1 CONSTRUCTION & BUILDING TECHNOLOGY
Zhipeng Zhao , Yuanchen Tang , Qingjun Chen , Minjun Wu , Yuan Jiang
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Abstract

The application of prefabricated assembly technology in underground structures has increasingly garnered attention due to its potential for urban low-carbon development. However, given the vulnerability of such structures subjected to unexpected seismic events, a resilient prefabricated underground structure is deemed preferable for mitigating seismic responses and facilitating rapid recovery. This study proposes a resilient slip-friction connection-enhanced self-centering column (RSFC-SCC) for prefabricated underground structures to promote the multi-level self-centering benefits against multi-intensity earthquakes. The RSFC-SCC is composed of an SCC with two sub-columns and a series of multi-arranged replaceable RSFCs, intended to substitute the fragile central column. The mechanical model and practical manufacturing approach are elucidated, emphasizing its potential multi-level self-centering benefits and working mechanism. Given the established simulation model of RSFC-SCC-equipped prefabricated underground structures, the seismic response characteristics and mitigation capacity are investigated for a typical underground structure, involving robustness against various earthquakes. A multi-level self-centering capacity-oriented design with suggested parameter selection criteria is proposed for the RSFC-SCC to ensure that prefabricated underground structures achieve the desired vibration mitigation performance. The results show that the SCC with multi-arranged replaceable RSFCs exhibits a significant vibration isolating effect and enhanced self-centering capacity for the entire prefabricated underground structure. Benefiting from the multi-level self-centering process, the RSFC-SCC illustrates a robust capacity that adapts to varying intensities of earthquakes. The multi-level self-centering capacity-oriented design effectively facilitates the target seismic response control for the prefabricated underground structures. The energy dissipation burden and residual deformation of primary structures are mitigated within the target performance framework. Given the replacement ease of RSFCs and SCC, a rapid recovery of the prefabricated underground structure after an earthquake is ensured.
低损伤装配式地下结构弹性滑摩连接增强自定心柱
预制装配式技术在地下结构中的应用因其在城市低碳发展中的潜力而越来越受到人们的关注。然而,考虑到这些结构在意外地震事件下的脆弱性,弹性预制地下结构被认为是减轻地震反应和促进快速恢复的首选。本研究提出了一种用于预制地下结构的弹性滑摩连接增强自定心柱(RSFC-SCC),以提高预制地下结构在多烈度地震中的多级自定心效果。RSFC-SCC由带有两个子柱的SCC和一系列多排可替换的rsfc组成,旨在替代脆弱的中心柱。阐述了其力学模型和实际制造方法,强调了其潜在的多层次自定心效益和工作机理。在建立了rsfc - scc预制地下结构仿真模型的基础上,研究了典型地下结构的地震响应特性和抗震能力,包括对各种地震的鲁棒性。为保证地下装配式结构达到预期的减振性能,提出了RSFC-SCC多级自定心设计方案,并提出了相应的参数选择准则。结果表明,采用多排可替换rsfc结构的装配式地下结构具有显著的隔振效果和自定心能力。得益于多层自定心过程,RSFC-SCC显示出适应不同强度地震的强大能力。多级自定心设计有效地方便了地下装配式结构的目标地震响应控制。在目标性能框架内减轻了初级结构的耗能负担和残余变形。考虑到rsfc和SCC的替换便利性,预制地下结构在地震后的快速恢复得到了保证。
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来源期刊
Tunnelling and Underground Space Technology
Tunnelling and Underground Space Technology 工程技术-工程:土木
CiteScore
11.90
自引率
18.80%
发文量
454
审稿时长
10.8 months
期刊介绍: Tunnelling and Underground Space Technology is an international journal which publishes authoritative articles encompassing the development of innovative uses of underground space and the results of high quality research into improved, more cost-effective techniques for the planning, geo-investigation, design, construction, operation and maintenance of underground and earth-sheltered structures. The journal provides an effective vehicle for the improved worldwide exchange of information on developments in underground technology - and the experience gained from its use - and is strongly committed to publishing papers on the interdisciplinary aspects of creating, planning, and regulating underground space.
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