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1.
提出了一种安全性高、成本低的新型摩擦"塑性铰"构造的概念和几何设计,以实现精准耗能和大震可修的延性设计抗震目标。以钢结构梁柱延性节点的设计理论为基础,推导了该构造的力学性能理论和工作机制,并应用于钢框架结构进行了静力弹塑性分析。通过ABAQUS有限元软件建立了5个工况的数值分析模型,进行了有限元模型的循环往复位移荷载分析,探究了新型摩擦"塑性铰"构造的抗震性能。结果表明:该构造模型仅发生了抗剪螺栓的剪切破坏,可实现其精准耗能和结构的快速修复;具有较好的转动性能,满足层间位移角要求;摩擦耗能随着旋转加载螺栓预应力和摩擦系数的增大而增大,其滞回曲线较饱满,延性系数较大,具有较好的抗震性能;理论分析和有限元分析的承载力基本吻合,分别为15.92 kN、15.84 kN;抗剪螺栓的剪切和纯摩擦耗能两阶段的等效粘滞阻尼系数分别为0.318、0.671,纯摩擦耗能阶段的耗能能力较好。在钢框架中摩擦"塑性铰"的形成与发展符合抗震性能要求,Pushover分析可作为结构抗震性能评估的有效方式。  相似文献   

2.
为提高装配式钢筋混凝土(RC)框架结构的抗震性能,并针对震后梁、柱构件损伤严重等问题,提出一种基于人工塑性消能铰的装配式混凝土框架-摇摆墙结构.人工消能塑性铰即梁、柱构件在梁端采用机械铰及附加耗能钢板连接的构造,基于该构造的框架结合底部铰接的剪力墙,形成人工消能塑性铰框架-摇摆墙结构.使用OpenSEES软件建立了人工...  相似文献   

3.
根据两跨两层梁端楔形翼缘连接钢框架试件的低周反复加载试验,研究了梁端楔形翼缘连接钢框架结构在地震作用下的滞回性能、耗能机制、耗能能力和破坏形态。结果显示,试件破坏模式为延性,塑性铰出现在梁翼缘变化处,远离梁柱交界,梁端楔形翼缘连接钢框架具有良好的抗震性能。针对梁端楔形翼缘连接钢框架的特点,提出了强柱弱梁、强节点弱杆件和节点域抗震设计要求。  相似文献   

4.
为了增强传统钢框筒结构(Steel framed-tubed structures, SFT)的抗震性能和震后功能可恢复能力,提出了螺栓拼接连接可更换耗能梁段-钢框筒结构(Steel framed-tubed structures with bolt-splice-connected repairable link beams, SFT-RLB)。首先给出了SFT-RLB结构构件的设计方法;然后基于OpenSEES平台提出了整体结构的弹塑性数值模型建模方法,通过子结构试验结果验证了有限元模型的准确性;继而设计了SFT和SFT-RLB结构算例,对比了2种结构的弹性和弹塑性性能;最后采用IDA方法对结构算例的抗地震倒塌能力进行评估。分析结果表明,SFT-RLB结构主要通过耗能梁段发展塑性耗散地震能量代替裙梁端部形成塑性铰,其耗能能力和变形能力均明显优于SFT结构。大震作用下,裙梁中设置的耗能梁段充分进入塑性耗散地震能量,可以有效地减小结构的基底剪力和层间侧移角,从而降低结构的地震作用,减轻主体构件的损伤程度。SFT-RLB的残余层间侧移角小于试验测得的可允许更换残余侧移角,证明结构具有震后...  相似文献   

5.
针对传统结构震后修复能力不足,带可更换构件的混合框架结构体系在地震作用下,可更换耗能构件集中损伤和耗散地震能量,保护其他构件不损伤或轻微损伤,更换损伤的耗能构件,即可实现结构预定功能震后可恢复。通过3个可更换耗能梁试件,研究其抗震性能。在此基础上,通过SAP2000有限元建模,对带可更换构件的混合框架结构进行非线性分析,研究整体结构体系的屈服机制、承载力和可更换耗能构件的可更换性能。结果表明:试件均发生剪切屈服型破坏,破坏特征包括腹板-加劲肋焊缝撕裂、腹板屈曲和腹板撕裂。各试件的滞回曲线非常饱满,具有优异的承载能力、变形能力和耗能能力;在地震作用下,带可更换构件的混合框架结构体系中各构件能够实现良好的有序屈服机制,可更换耗能构件具有较好的可更换性。  相似文献   

6.
在试验研究的基础上,以框架结构延性设计为目的采用桁架+拱模型研究了框架柱塑性铰区域抗剪受力机理,分析了,位移延性系数、加载循环次数等因素对框架柱构件塑性铰区域剪切受力性能的影响,并结合试验结果提出了混凝土框架柱塑性铰区域剪切承载力抗震延性设计实用公式,可有效实现结构的延性破坏机制。主要为配合GBJ10-89的修订,该成果已被《混凝土结构设计规范》(GB50010—2003)吸收。  相似文献   

7.
通过一榀型钢混凝土梁连接的空腹式型钢高强混凝土短肢剪力墙模型的拟静力试验,考察该类双肢墙的抗震性能及破坏机制。试验结果表明:试件从型钢高强混凝土连梁屈服形成塑性铰,再到墙肢屈服发生破坏,呈现出强墙肢弱连梁的破坏机制,但破坏过程中仍具有较强的脆性特征;试件延性系数、耗能等效黏滞阻尼系数为4.15和0.170,表明该类结构具有较好的抗震变形及耗能能力;当水平位移比Δ/Δ_y=2时,试件剩余刚度只有初始刚度的23.6%,表明该类结构在连梁遭受地震损伤后的刚度退化严重,抗侧稳定性变差。  相似文献   

8.
宋丹  李林 《地震工程学报》2019,41(6):1671-1678
为避免震后建筑工程加固不合理导致再次受损,并为加固修复工程提供合理化建议,促进震后救灾工作顺利开展,提出震后建筑工程混凝土缺陷加固修复方法的研究。首先,对混凝土梁试件和混凝土柱试件进行设置,研究基于碳纤维布或外包钢套加固方法对混凝土梁和混凝土柱试件展开循环荷载试验;其次,通过混凝土梁试件滞回曲线、骨架曲线、延性及耗能情况,分析不同加固修复方法的混凝土梁试件抗震性能;最后,通过混凝土柱试件延性及耗能、刚度退化和承载力退化情况,分析采用不同加固方法修复的混凝土柱试件抗震性能。试验结果显示:高配筋率可提升混凝土梁试件滞回特性,外包钢套加固混凝土梁试件滞回饱满程度较高、耗能较少,碳纤维布加固梁试件可将加载位移由10 mm延缓至30 mm,提升延性;碳纤维布加固可提升混凝土柱延性,外包钢套加固重度缺陷混凝土柱可以良好抑制其刚度和承载力退化。试验结果验证了碳纤维加固可提升震后建筑工程混凝土结构延性,外包钢套加固可抑制混凝土结构刚度、承载力退化。  相似文献   

9.
预应力平板-异形柱结构抗震性能试验研究   总被引:1,自引:1,他引:0  
目前关于混凝土异形柱、短肢剪力墙及节点的抗震性能研究工作已开展得较为充分,但对它们与无黏结预应力平板所组成的整体结构的抗震性能还不甚清楚,为此采用拟静力试验方法对2个六柱一板单层整体结构模型在水平低周反复荷载作用下的开裂破坏全过程,以及各项抗震性能指标进行了试验研究。模型缩尺比例为1∶2.5,2个试件的板采用了不同的预应力筋布置方式,异形柱和短肢墙采用了不同的抗震等级、截面尺寸和配筋率。结果表明:2个试件的各构件开裂时间和裂缝程度有所不同,但各构件的屈服破坏顺序是一致的,都形成了梁端塑性铰-板屈服铰线屈服机构,最终为延性破坏。滞回环具有典型的梭形特征,后期抗力与刚度下降平缓,变形和耗能能力良好,梁柱节点构造措施可靠,一字形短肢墙的早期裂缝控制应进一步研究,建议对其采用较高的抗震等级设计。  相似文献   

10.
高强度钢材由于其强度大,变形能力差等原因,将其应用在传统焊接连接中节点虽有较大刚度,但转动能力不足,致使强震下材料的塑性变形很难开展,难以满足高烈度抗震设防区结构的延性需求。基于同步塑性设计理念,对梁翼缘采取"锥型削弱"的改进思路,能有效扩大塑性区屈服面积;结合"板式连接过渡",在提高节点变形和耗能能力的同时,保护柱面梁端焊缝不发生脆性断裂。文中对5个高强钢锥型削弱型节点形式进行了低周往复试验,讨论锥型削弱对节点性能的影响,对比分析了节点的承载力、刚度及延性等关键性能指标。研究结果表明:板式加强与锥型削弱组合节点的塑性变形主要集中在锥型削弱区域,锥型削弱降低了节点的承载力但明显提升了节点的延性,实现塑性铰外移。组合型节点的极限转角均超过0.034 rad,等效粘滞阻尼比大于0.36,分析关键位置处的应变发现,削弱段塑性铰发展不完全,节点的承载力、延性、耗能能力以及转动能力仍有较大的提升潜力。  相似文献   

11.
This paper presents a new concept for enhancing the seismic ductility and damping capacity of diagrid structural frames by using shear-link fuse devices and its seismic performance is assessed through nonlinear static and dynamic analysis.The architectural elegancy of the diagrid structure attributed to its triangular leaning member configuration and high structural redundancy make this system a desirable choice for tall building design.However,forming a stable energy dissipation mechanism in diagrid framing remains to be investigated to expand its use in regions with high seismicity.To address this issue,a diagrid framing design is proposed here which provides a competitive design option in highly seismic regions through its increased ductility and improved energy dissipation capacity provided by replaceable shear links interconnecting the diagonal members at their ends.The structural characteristics and seismic behavior(capacity,stiffness,energy dissipation,ductility) of the diagrid structural frame are demonstrated with a 21-story building diagrid frame subjected to nonlinear static and dynamic analysis.The findings from the nonlinear time history analysis verify that satisfactory seismic performance can be achieved by the proposed diagrid frame subjected to design basis earthquakes in California.In particular,one appealing feature of the proposed diagrid building is its reduced residual displacement after strong earthquakes.  相似文献   

12.
Recent major earthquakes around the world have evidenced that research in earthquake engineering must be directed to the vulnerability assessment of existing constructions lacking appropriate seismic resisting characteristics. Their retrofit or replacement should be made in order to reduce vulnerability, and consequent risk, to currently accepted levels. In this work, the efficiency of ductile steel eccentrically-braced systems in the seismic retrofitting of existing reinforced concrete (RC) buildings is studied. The retrofit technique studied consists in a bracing system with an energy dissipation device, designed to dissipate energy by shear deformation. The numerical model was calibrated with cyclic test results on a full-scale structure. The models used for the RC frame and masonry represent their real behavior and influence in the global structural response. The steel bracing system was modeled with strut rigid elements. The model for the energy dissipater device reproduces rigorously the behavior of the shear-link observed in the cyclic tests, namely in terms of shear, drift and energy dissipation. With the calibrated numerical model, a series of non-linear dynamic analyses were performed, for different earthquake input motions, intending to study: the influence of the retrofitting system in the response of bare and infilled structures; the influence of the location and strength of the retrofitting system.  相似文献   

13.
The linked column frame (LCF) system is proposed as a seismic load resisting system that uses conventional components to limit seismic damage to relatively easily replaced elements. The LCF features a primary lateral system, denoted the linked column, which is made up of dual columns connected with replaceable links, and a secondary flexible moment frame system with beams having fully restrained connections at one end and simple connections at the other. The linked columns are designed to limit seismic forces and provide energy dissipation via link yielding, while preventing damage to the moment frame under certain earthquake hazard levels. A design procedure is proposed that ensures plastic hinges develop in the links of the linked columns at a significantly lower story drift than when plastic hinges develop in the moment frame beams. The large drift difference helps enable design of this system for two distinct performance states: rapid return to occupancy, where only link damage occurs and relatively simple link replacement is possible, and collapse prevention, where both the links and the beams of the moment frame may be damaged. A series of 3‐story, 6‐story, and 9‐story prototype LCF buildings were designed using the proposed design approach. Nonlinear models were developed for the designs with the link models validated using recent experimental results. The seismic response of these systems was investigated for ground motions representing various seismic hazard levels. Results show that the LCF system not only provides collapse prevention, but also has the capability of limiting economic loss by reducing structural damage and allowing for rapid return to occupancy following earthquakes with shorter return periods. Copyright © 2012 John Wiley & Sons, Ltd.  相似文献   

14.
Previous research has demonstrated that uplifting-column or rocking building systems may exhibit improved seismic performance, including reductions in total base shear and decreased residual drift, when compared with systems rigidly connected to the foundation. These beneficial effects may be due to lengthened periods, activation of rocking modes, and energy dissipation of base fuse elements. In the current work, several configurations of a miniature steel building with different combinations of base connection and traditional superstructure fuse strength and stiffness were subjected to identical earthquake motions to evaluate differences in demands and performance. The uplifting base connections incorporate highly ductile concrete anchors with long stretch lengths, allowing robust connection performance and easy replacement of damaged connection elements following the seismic event, an advantage over previously tested systems. Testing and dynamic numerical analysis indicates that ductile anchor uplifting systems may reduce total base shear by over 20%, as well as reducing residual structural drift by more than 80%.  相似文献   

15.
Using a newly introduced ductile low-rise shear wall with vertical keyways, a seismic resistance design approach for a practical type of composite structure, which consists of a reinforced concrete frame in the bottom floors and masonry structures in the upper floors, has been presented. The purpose of the new design approach is to improve the earthquake resistance of the whole structure by increasing the energy dissipation capacity in the bottom part of the structure. Non-linear analysis shows that, by adopting the newly proposed ductile low-rise shear wall in the bottom of the structure, the lateral deflection of the structure is not much more than that of a structure using conventional solid low-rise shear walls under a small or moderate earthquake excitation, and that even under the attack of a severe earthquake, a stable structural response can be expected for the proposed structure. Thus it is easy for such a structure to achieve the design objective of ‘minor damage in a small earthquake and prevention of collapse in a severe earthquake’ and the design method is of practical value for similar types of composite structures.  相似文献   

16.
The collapse of the Olive View Hospital Psychiatric Day Clinic is studied using three biaxial force-deflection models to represent the columns of the building. These models are: shear collapse, elastic and inelastic. The biaxial models for shear and inelastic behaviour are new developments and are useful for non-linear structural dynamic studies. In the present study, the shear collapse model is intended to represent the actual prototype behaviour. The inelastic model, which is based on a hardening rule of plasticity, is used to study the performance of a hypothetical structure with the same storey shear capacity as the prototype but which exhibits ductile behaviour. The prototype structure had a base storey shear capacity of 25 per cent, and actually failed by shearing of all of the first floor columns. In the present study, the shear collapse model predicted this behaviour even with the El Centro accelerogram as input. This result may have far-reaching significance because many low-rise reinforced concrete buildings which were designed according to recent codes have similar storey shear capacity coefficients and column properties. According to this study, such buildings may collapse even in a moderate earthquake. In the inelastic representation, the structure was found to have a base storey shear capacity of 80 per cent when moment hinging was assumed to occur at the top and bottom of the columns. Even with this high strength capacity, the permanent offset computed from the inelastic model corresponded to a ductility factor of 5 when the Pacoima Dam accelerogram was used as input. On the basis of damage to other structures observed on the site, it seems likely that ground motion of about the Pacoima Dam intensity occurred at Olive View. From this it is concluded that a low-rise ductile frame concrete building, even with this high shear force capacity, may not prove satisfactory for hospital use when subjected to strong ground motion.  相似文献   

17.
The potential of post‐tensioned self‐centering moment‐resisting frames (SC‐MRFs) and viscous dampers to reduce the economic seismic losses in steel buildings is evaluated. The evaluation is based on a prototype steel building designed using four different seismic‐resistant frames: (i) conventional moment resisting frames (MRFs); (ii) MRFs with viscous dampers; (iii) SC‐MRFs; or (iv) SC‐MRFs with viscous dampers. All frames are designed according to Eurocode 8 and have the same column/beam cross sections and similar periods of vibration. Viscous dampers are designed to reduce the peak story drift under the design basis earthquake (DBE) from 1.8% to 1.2%. Losses are estimated by developing vulnerability functions according to the FEMA P‐58 methodology, which considers uncertainties in earthquake ground motion, structural response, and repair costs. Both the probability of collapse and the probability of demolition because of excessive residual story drifts are taken into account. Incremental dynamic analyses are conducted using models capable to simulate all limit states up to collapse. A parametric study on the effect of the residual story drift threshold beyond which is less expensive to rebuild a structure than to repair is also conducted. It is shown that viscous dampers are more effective than post‐tensioning for seismic intensities equal or lower than the maximum considered earthquake (MCE). Post‐tensioning is effective in reducing repair costs only for seismic intensities higher than the DBE. The paper also highlights the effectiveness of combining post‐tensioning and supplemental viscous damping by showing that the SC‐MRF with viscous dampers achieves significant repair cost reductions compared to the conventional MRF. Copyright © 2016 John Wiley & Sons, Ltd.  相似文献   

18.
This paper presents the development, experimental testing, and numerical modelling of a new hybrid timber‐steel moment‐resisting connection that is designed to improve the seismic performance of mid‐rise heavy timber moment‐resisting frames (MRF). The connection detail incorporates specially designed replaceable steel links fastened to timber beams and columns using self‐tapping screws. Performance of the connection is verified through experimental testing of four 2/3 scale beam‐column connections. All 4 connection specimens met the acceptance criteria specified in the AISC 341‐10 provisions for steel moment frames and exhibit high strength, ductility, and energy dissipation capacity up to storey drifts exceeding 4%. All of the timber members and self‐tapping screw connections achieved their design objective, remaining entirely elastic throughout all tests and avoiding brittle modes of failure. To assess the global seismic performance of the newly developed connection in a mid‐rise building, a hybrid timber‐steel building using the proposed moment‐resisting connection is designed and modelled in OpenSees. To compare the seismic performance of the hybrid MRF with a conventional steel MRF, a prototype steel‐only building is also designed and modelled in OpenSees. The building models are subject to a suite of ground motions at design basis earthquake and maximum credible earthquake hazard levels using non‐linear time history analysis. Analytical results show that drifts and accelerations of the hybrid building are similar to a conventional steel building while the foundation forces are significantly reduced for the hybrid structure because of its lower seismic weight. The results of the experimental program and numerical analysis demonstrate the seismic performance of the proposed connection and the ability of the hybrid building to achieve comparable seismic performance to a conventional steel MRF.  相似文献   

19.
The energy dissipation capacity of a structure is a very important index that indicates the structural performance in energy‐based seismic design. This index depends greatly on the structural components that form the whole system. Owing to the wide use of the strong‐column weak‐beam strength hierarchy where steel beams dissipate the majority of earthquake input energy to the structures, it is necessary to evaluate the energy dissipation capacity of the beams. Under cyclic loadings such as seismic effects, the damage of the beams accumulates. Therefore, loading history is known to be the most pivotal factor influencing the deformation capacity and energy dissipation capacity of the beams. Seismic loadings with significantly different characteristics are applied to structural beams during different types of earthquakes and there is no unique appropriate loading protocol that can represent all types of seismic loadings. This paper focuses on the effects of various loading histories on the deformation capacity and energy dissipation capacity of the beams. Cyclic loading tests of steel beams were performed. In addition, some experimental results from published tests were also collected to form a database. This database was used to evaluate the energy dissipation capacity of steel beams suffering from ductile fracture under various loading histories. Copyright © 2011 John Wiley & Sons, Ltd.  相似文献   

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