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Experimental Testing of a Low-Damage Post-Tensioned C-Shaped CLT Core-Wall

机译:低损伤后张紧的C形CLT芯壁的实验测试

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摘要

The development of strong and stiff lateral load-resisting systems (LLRS) is essential for mid-rise and high-rise timber buildings. On the other hand, within a seismic design philosophy, strength/stiffness and ductility/drift capacity typically appear as opposite target parameters, depending on the acceptable level of damage. For improved stiffness and strength, core-wall tubular structural forms commonly are used for taller reinforced concrete (RC) buildings. This paper presents an experimental study of a new type of LLRS in cross-laminated timber (CLT). A post-tensioned C-shaped CLT core-wall mainly using screwed connections was designed and tested under unidirectional and bidirectional cyclic loading. It was found that the mixed-angle screwed connection solution was the most effective. The highest partial composite action of 60%-70% was reached and the core-wall system stiffness at serviceability limit state increased more than four times compared with a decoupled test with only friction between the CLT panels. The (unbonded) post-tensioning technology provided strong and stiff core-wall base connections with recentering capability and small residual displacements. The experimental test results confirmed that significant system strength/stiffness and ductility/drift capacity can be achieved in a post-tensioned C-shaped CLT core-wall system with minimal damage through careful connection detailing. (C) 2020 American Society of Civil Engineers.
机译:强大且抗横向载荷系统(LLR)的开发对于中升和高层木材建筑是必不可少的。另一方面,在地震设计哲学中,强度/刚度和延展性/漂移容量通常如同靶参数出现,这取决于可接受的损坏水平。为了提高刚度和强度,通常用于芯壁管状结构形式用于较高的钢筋混凝土(RC)建筑物。本文介绍了交叉层压木材(CLT)中新型LLR的实验研究。在单向和双向循环载荷下设计和测试主要使用螺纹连接的后张紧的C形CLT芯壁。发现混合角螺纹连接溶液是最有效的。达到了60%-70%的最高部分复合作用,与仅在CLT板之间的摩擦的去耦测试相比,可维护性极限状态下的核心壁系统刚度增加了四倍以上。 (未粘合的)后张紧技术提供强大而坚硬的岩心壁基连接,其具有清晰的能力和小的残余位移。实验测试结果证实,通过仔细连接细节,可以在张紧的C形CLT芯系统中实现显着的系统强度/刚度和延展性/漂移能力,通过仔细的连接细节造成最小损坏。 (c)2020年美国土木工程师协会。

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  • 来源
    《Journal of structural engineering》 |2021年第3期|04020357.1-04020357.16|共16页
  • 作者单位

    Univ Canterbury Dept Civil & Nat Resources Engn Private Bag 8400 Christchurch 8140 New Zealand;

    Univ Canterbury Dept Civil & Nat Resources Engn Private Bag 8400 Christchurch 8140 New Zealand;

    Univ Canterbury Dept Civil & Nat Resources Engn Private Bag 8400 Christchurch 8140 New Zealand;

    Sapienza Univ Rome Dept Struct & Geotech Engn Via Eudossiana 18 I-00184 Rome Italy;

    PresStressed Timber Ltd PTL Struct Consultants 10-357 Madras St Christchurch 8013 New Zealand;

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