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1.
钢筋混凝土短肢剪力墙抗震性能试验研究   总被引:7,自引:0,他引:7  
通过6片1:2单层短肢墙试体的低周反复荷戴试验,研究了在低周反复荷载作用下钢筋混凝土短肢剪力墙的整体工作性能、破坏形态及滞回特性。结果表明:试件的最终破坏均是由连梁失效引起的,连梁是短肢剪力墙结构的薄弱环节,因此,连梁的混凝土强度不应低于墙肢的混凝土强度,以免连梁出现粘结破坏;有翼墙的短肢剪力墙试体其延性系数都达到了3.5以上.其耗能能力较无翼墙短肢墙好。  相似文献   

2.
进行了3个1∶4缩尺的四层双肢剪力墙模型抗震性能的对比试验,连梁跨高比为1.5。模型1为普通混凝土双肢剪力墙,模型2为全再生混凝土双肢剪力墙,模型3为底部两层普通混凝土、上部两层再生混凝土双肢剪力墙。分析了各双肢剪力墙的承载力、延性、刚度、滞回特性、耗能及破坏特征。结果表明:与普通混凝土双肢剪力墙相比,全再生混凝土双肢剪力墙的抗震性能略差,底部两层普通混凝土、上部两层再生混凝土的双肢剪力墙与普通混凝土双肢剪力墙抗震性能接近。建立了再生混凝土双肢剪力墙的承载力计算模型,计算结果与试验结果吻合较好。  相似文献   

3.
内藏分块钢板双肢剪力墙是由钢管混凝土边框、型钢混凝土叠合暗柱、墙肢内藏分块钢板、连梁内藏钢板、混凝土墙体、混凝土连梁等构件组成。对4个1∶5缩尺,剪跨比为1.68,轴压比为0.3的组合双肢剪力墙试件进行了低周反复荷载试验。研究不同内藏钢板布置形式、不同钢板用钢量对试件抗震性能的影响,考察了内藏分块钢板双肢剪力墙的破坏形态、滞回特性、刚度、变形及耗能能力,分析了剪力墙各部件在水平荷载作用下的合理屈服破坏顺序。试验结果表明:4个试件均发生弯剪型破坏,内藏分块钢板双肢剪力墙相比于钢管混凝土边框双肢剪力墙整体抗侧刚度大,具有较强的耗能能力、变形能力及延性,对抗震有利;分块钢板参数选择对双肢剪力墙抗震性能影响明显。  相似文献   

4.
混合暗支撑高阻尼混凝土联肢剪力墙是一种新型延性双肢剪力墙,它将暗支撑引入双肢墙的两个墙肢,将内置带剪力钉钢板连梁作为剪力墙洞口连梁,墙身由高阻尼混凝土浇筑而成.本文对这种新型联肢剪力墙结构进行了低周反复加载实验与数值模拟,较系统地分析了该新型剪力墙结构的承载力、延性、耗能、破坏机制、破坏特征以及刚度衰减过程等性能.结果表明:与现有暗支撑混凝土联肢剪力墙相比,混合暗支撑高阻尼混凝土联肢剪力墙开裂强度、极限承载力、耗能能力及变形能力均有一定程度的提高,显示了良好的抗震性能;当剪力墙连梁跨高比越小,混合暗支撑高阻尼混凝土剪力墙的抗震性能越好.  相似文献   

5.
通过4个型钢高强混凝土短肢剪力墙-连梁节点试件和1个高强混凝土短肢剪力墙-连梁节点试件的低周反复荷载试验,主要研究配钢形式、轴压比和连梁结构类型对节点的滞回特性、变形能力及耗能能力等性能的影响。结果表明:型钢高强混凝土短肢剪力墙-连梁节点的滞回曲线饱满,承载力、刚度以及抗震性能较高强混凝土短肢剪力墙节点均有所改善,所有试件的延性均小于3,极限层间位移角均小于1/100,等效黏滞阻尼系数在0.17~0.24之间,表现出其延性和抗倒塌能力较差,耗能能力较好。  相似文献   

6.
连梁是剪力墙结构中重要的耗能构件,小跨高比连梁通常具有延性差,耗能能力薄弱等缺陷,不能起到保护墙肢的作用。半通缝连梁可有效改善小跨高比连梁的延性[1]。为进一步探究带有半通缝连梁的剪力墙结构的抗震性能,包括:延性系数、耗能能力等抗震性能参数,以及验证半通缝连梁剪力墙结构的破坏机理。基于有限元软件ABAQUS建立3种不同连梁形式的单片双肢剪力墙结构数值模型,对结构的低周反复试验进行仿真,以分析3种截面形式连梁的单片双肢剪力墙结构在低周往复荷载作用下的承载能力、耗能能力和延性。研究表明:半通缝连梁剪力墙结构可以兼顾双连梁剪力墙结构的延性和深连梁剪力墙结构的开裂前刚度,耗能性能与双连梁剪力墙结构相近,承载力较双连梁剪力墙结构高,抗震性能良好。  相似文献   

7.
在大连国际会议中心核心筒墙体抗震设计中,采用了一种钢管混凝土叠合边框墙肢内藏钢板、连梁内藏钢桁架的组合双肢剪力墙。为研究其抗震性能,进行了1个1/7缩尺的这种新型组合双肢剪力墙模型的低周反复荷载试验,分析了其承载力、延性、刚度及其退化、滞回特性、耗能能力和破坏特征,重点研究了钢管混凝土叠合边框、墙肢内藏钢板、连梁内藏钢桁架之间的共同工作性能。研究表明:内藏钢板-钢桁架可显著提高钢管混凝土叠合边框双肢剪力墙的承载力和延性性能;钢管混凝土叠合边框可充分发挥其承载力高、不易开裂、延性好的优势。文中提出了该新型组合双肢剪力墙的承载力计算模型,计算结果与实测结果符合较好。  相似文献   

8.
不同连梁跨高比带暗支撑双肢剪力墙抗震性能试验研究   总被引:2,自引:0,他引:2  
为探讨不同连梁跨高比带暗支撑双肢剪力墙的抗震性能,进行了2组连梁跨高比分别为1.0和1.5的4个4层双肢剪力墙1/4缩尺模型的抗震性能试验研究。较系统地分析了结构的刚度及其退化过程以及承载力、延性、耗能、破坏机制和破坏特征等。结果表明,连梁跨高比相对小的带暗支撑双肢剪力墙抗震性能较好。承载力计算结果与实测值符合较好。  相似文献   

9.
为研究双钢板高强混凝土联肢剪力墙抗震性能,首先进行了1个试件的拟静力试验,试件的破坏形态为压弯破坏,破坏模式为连梁端部剪坏,端柱底部钢管和墙肢底部钢板屈曲后混凝土压溃。利用ABAQUS软件建立试件的有限元模型,计算结果与试验结果吻合良好。在此基础上,通过单调推覆分析研究了边缘约束构件形式、连梁形式及耦连比等因素对组合联肢剪力墙抗震性能的影响。提出组合联肢墙的抗弯承载力计算公式,计算值与试验值吻合较好。  相似文献   

10.
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   

11.
Short-leg shear wall structures are a new form of building structure that combine the merits of both frame and shear wall structures. Its architectural features, structure bearing and engineering cost are reasonable. To analyze the elastic-plastic response of a short-leg shear wall structure during an earthquake, this study modified the multiple-vertical-rod element model of the shear wall, considered the shear lag effect and proposed a multiple-vertical-rod element coupling beam model with a new local stiffness domain. Based on the principle of minimum potential energy and the variational principle, the stiffness matrixes of a short-leg shear wall and a coupling beam are derived in this study. Furthermore, the bending shear correlation for the analysis of different parameters to describe the structure, such as the beam height to span ratio, short-leg shear wall height to thickness ratio, and steel ratio are introduced. The results show that the height to span ratio directly affects the structural integrity; and the short-leg shear wall height to thickness ratio should be limited to a range of approximately 6.0 to 7.0. The design of short-leg shear walls should be in accordance with the "strong wall and weak beam" principle.  相似文献   

12.
L形短肢剪力墙由于其肢短的特点,已经广泛应用于民用建筑的外围结构。为研究使用高性能材料加强后的新型L形短肢剪力墙的抗震性能,本文基于不同轴压比、高宽比和配箍率,设计制作了六片短肢剪力墙试验模型,对其进行了低周往复荷载试验,根据试验结果,对试件的滞回性能、刚度退化、破坏形态、耗能能力等抗震性能指标进行分析与研究。结果表明:高强材料的使用提高了试件的整体承载能力;在满足最小配箍率的前提下适当增大配箍率有利于提高试件的承载力和延性;轴压比大小是影响试件破坏形态的主要因素,随着轴压比逐渐增大,试件趋于脆性破坏;高厚比大小是影响试件抗震性能的次要因素,其影响程度主要根据工程实际情况来确定,但可以肯定的是,较大高厚比有利于提升墙体的稳定性和承载能力。  相似文献   

13.
短肢剪力墙空间剪滞墙元模型   总被引:1,自引:0,他引:1  
通过对短肢剪力墙受力分析的研究,考虑了翼板的“剪力滞后”效应,构造了新的纵向位移函数,利用能量变分原理导出了考虑剪滞效应和剪切变形的控制方程和边界条件,并以控制方程的解析解为形函数,利用边界条件和刚度法建立了异形截面短肢剪力墙的统一单元刚度矩阵,并利用空间变换原理建立了空间分析刚度矩阵。通过算例并和其它分析模型比较,结果表明本方法能求得较满意的结果。  相似文献   

14.
T形短肢剪力墙弹塑性模型及地震反应分析   总被引:9,自引:3,他引:6  
根据短肢剪力墙结构的受力和变形特点,对多竖直杆模型进行了改进,建立了截面位移模型,摒弃了杆模型平截面假定的限制,有效地考虑了剪滞效应和翼缘的影响。利用变分原理导出了T形短肢剪力墙的空间单元刚度矩阵,研制了弹塑性时程分析程序,并输入三种不同的地震动进行了算例分析,计算结果表明,短肢剪力墙结构抗震性能较好,适合于在地震区推广使用。  相似文献   

15.
The replaceable coupling beam (RCB) is an innovative structural component developed to increase the seismic resilience of reinforced concrete (RC) shear wall structures. In this study, two 1/5‐scale 5‐story 3‐dimensional RC shear wall structures—one with conventional RC coupling beams and the other with RCBs—were designed, constructed, and tested on a shaking table. The failure pattern, dynamic properties, and structural responses, including the acceleration, displacement, story force, and strain responses, of the 2 structures are compared under earthquake excitations. The test results demonstrate that the seismic performance of the structure with RCBs was improved when RCBs were working compared with the structure with conventional RC coupling beams. In addition, the replaceable devices suffering the severe damage during an earthquake can be conveniently replaced after the earthquake. However, after the sudden failure of RCBs during the severe earthquakes, the inter‐story drift and floor acceleration of the structure with RCBs became larger. The design and manufacture quality of RCBs should be improved to avoid the sudden failure. Then, numerical models for the test structures were established using the commercial software PERFORM‐3D. Numerical simulations of the tests were conducted. The simulation results correspond well with the experimental results, thus verifying the accuracy of the numerical models. The RC shear wall structure installed with RCBs can be applied as a new type of earthquake‐resilient structure in engineering practice.  相似文献   

16.
In this paper, a steel-concrete multi-energy dissipation composite shear wall, comprised of steel-reinforced concrete(SRC) columns, steel plate(SP) deep beams, a concrete wall and energy dissipation strips, is proposed. In order to study the multi-energy dissipation behavior and restorability after an earthquake, two stages of low cyclic loading tests were carried out on ten test specimens. In the first stage, test on five specimens with different number of SP deep beams was carried out, and the test lasted until the displacement drift reached 2%. In the second stage, thin SPs were welded to both sides of the five specimens tested in the first stage, and the same test was carried out on the repaired specimens(designated as new specimens). The load-bearing capacity, stiffness, ductility, hysteretic behavior and failure characteristics were analyzed for both stages and the results are discussed herein. Extrapolating from these results, strength calculation models and formulas are proposed herein and simulations using ABAQUS carried out; they show good agreement with the test results. The study demonstrates that SRC columns, SP deep beams, concrete wall and energy dissipation strips cooperate well and play an important role in energy dissipation. In addition, this study shows that the shear wall has good recoverability after an earthquake, and that the welding of thin SP’s to repair a deformed wall is a practicable technique.  相似文献   

17.
轴向压力对配筋砌体短肢剪力墙抗剪性能的影响   总被引:1,自引:0,他引:1  
通过对6片足尺290mm厚全灌芯配筋砌块砌体短肢剪力墙拟静力试验结果的分析,利用非线性有限元方法,模拟了此种墙体在压弯剪共同作用下的抗剪特性,研究了轴向压力对配筋砌块砌体短肢剪力墙抗剪性能的影响。研究表明,在不同高宽比的墙体中,轴向压力均对墙体的抗剪能力有较大影响,随着轴向压力增大,墙体抗剪能力先增大后减小(轴压比n从0.1增长到0.4时,墙体抗剪能力逐渐增大,而n从0.4增长到0.6时,墙体抗剪能力却逐渐减小);随着轴向压力的增大,墙体延性在逐渐减小。提出当轴压比等于0.3时,墙体抗剪能力和延性均较好,建议在建筑抗震设计规范中采用此值。  相似文献   

18.
带耗能腋撑竖向不规则短肢剪力墙结构减震性能分析   总被引:2,自引:0,他引:2  
在不影响建筑使用空间前提下,提出在抗侧构件不连续处设置耗能腋撑以改善竖向不规则结构抗震性能。以底部大空间短肢剪力墙结构为研究对象,利用大型通用有限元程序ETABS研究耗能器类型与场地土对耗能腋撑工作性能和竖向不规则结构受力性能的影响。研究表明,黏滞型耗能腋撑对文中分析模型各楼层地震反应有较好的控制效果,对转换层处层间位移角与层剪力最大值减幅最大,分别为40.14%和15.66%,对顶层加速度与基底剪力峰值的最大减幅分别为16.06%和23.57%,黏滞型耗能腋撑最大能耗散输入结构能量的42%,而黏弹型耗能腋撑对结构的控制效果不理想;当地震震级较大、震中距较小时,耗能腋撑对坚硬与软弱场地土的模型结构控制作用相差不大,减震位移比在转换层处达到最小值0.76;随着震级减小或震中距增大,耗能腋撑对该模型结构的控制作用随场地土变硬而逐渐增强,其减震位移比介于0.68~0.74之间。  相似文献   

19.
The finite strip method is used to determine the natural frequencies of shear wall frame buildings. The structure can be modelled in two different ways. In the first approach both the shear walls and the frames are idealized simply as an assemblage of finite strips of varying thicknesses with given or computed properties, while in the second approach the shear walls are still idealized as a series of finite strips, but the frames are regarded as a number of long columns which are interconnected with each other or with finite strips through the horizontal beams. Numerical results obtained from both models indicate good agreement with finite element solutions. The proposed models can be applied to a wide range of shear wall frame assemblies and are therefore more versatile than most existing models.  相似文献   

20.
为研究方钢管混凝土柱-H型不等高钢梁框架节点的抗剪承载力,分析其破坏机理,建立适用于不等高钢梁节点的抗剪计算模型,提出了节点的抗剪承载力计算公式,比较了基于不同抗剪模型建立的抗剪承载力计算值与试验值的差异性。结果表明:节点域的破坏模式主要为上核心区的剪切斜压破坏;节点域抗剪承载力主要由钢管腹板、核心区混凝土主斜压杆及约束斜压杆共同承担。对比分析表明:提出的节点屈服抗剪承载力和极限抗剪承载力理论公式计算值更为接近试验值,验证了方钢管混凝土柱-不等高钢梁框架节点传力机理和承载力计算公式的正确性。  相似文献   

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