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1.
应用ANSYS对夹层橡胶垫耗能低剪力墙结构的性能分析   总被引:5,自引:0,他引:5  
本文针对低剪力墙结构延性差、耗能能力差、结构抗震性能差等问题,提出一种新型耗能低剪力墙结构,并应用有限元分析软件ANSYS对同截面整体墙结构及耗能墙结构进行了数值模拟计算,并对其破坏形态、耗能能力、承载力情况、变形性能等进行了对比分析。结果表明,夹层橡胶垫耗能低剪力墙结构具有良好的延性和抗震性能。  相似文献   

2.
对1榀单跨2层的平齐端板连接的半刚性框架—十字加劲钢板剪力墙进行了低周反复荷载试验研究,从耗能能力、承载力、延性和刚度退化等方面分析该结构体系的抗震性能和耗能机理。结果表明,该体系既可以发挥钢板剪力墙的刚度,又充分利用了半刚性框架的延性,有较高的水平承载力和良好的耗能能力,钢框架与钢板墙的协同工作良好。  相似文献   

3.
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   

4.
内藏钢桁架混凝土组合低剪力墙抗震性能试验研究   总被引:3,自引:2,他引:3  
进行了3个1/3缩尺的低剪力墙的抗震性能试验研究,包括1个普通混凝土低剪力墙、1个内藏钢框架混凝土组合低剪力墙和1个内藏钢桁架混凝土组合低剪力墙。在试验研究基础上,对比分析了各剪力墙的刚度及其衰减过程、承载力、延性、滞回特性、钢筋应变、耗能能力及破坏特征。试验表明:内藏钢框架和内藏钢桁架混凝土组合低剪力墙的抗震性能比普通混凝土低剪力墙明显提高。  相似文献   

5.
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   

6.
双向单排配筋剪力墙节点抗震性能试验研究   总被引:3,自引:1,他引:2  
双向单排配筋剪力墙结构适用于多层住宅结构。为了研究不同构造及不同连梁剪跨比的节点抗震性能,进行了5个连梁与墙肢节点的低周反复荷载试验。较系统地分析了其承载力、刚度及其退化过程、延性、耗能、破坏机制和破坏特征等。试验表明,经过合理设计,这种双向单排配筋剪力墙节点可以满足抗震要求。  相似文献   

7.
通过对一榀密肋防屈曲钢板剪力墙在水平低周反复荷载作用下的试验,研究了该结构的初始刚度、滞回曲线、骨架曲线、延性和耗能性能。试验结果表明:内填板与两侧网格密肋通过螺栓连接,减缓了内填钢板的初始几何缺陷;与普通薄钢板剪力墙相比,降低了对边框柱抗弯刚度的要求;网格密肋的设置有效地避免了内填钢板的整体屈曲,减小了试验过程中的面外变形;提高了墙体的初始刚度和弹性屈曲荷载;改善了滞回曲线的"捏缩"现象。密肋防屈曲钢板剪力墙具有较大的抗侧刚度和稳定的耗能能力,是一种非常适用于高烈度抗震设防区的抗侧力构件。该研究为其理论分析和工程应用提供了依据。  相似文献   

8.
对6个1/2缩尺的一字形截面短肢剪力墙构件进行了低周反复荷载下的抗震性能试验研究,墙肢截面高厚比分别为5.O、6.5、8.O,按普通与墙板中加设暗支撑两种情况进行设计。研究了带暗支撑一字形截面短肢剪力墙的承载力、刚度、延性、耗能、滞回特性等,并提出了抗震设计建议。  相似文献   

9.
薄钢板剪力墙抗震性能试验研究   总被引:15,自引:6,他引:15  
通过4个薄钢板剪力墙和1个钢筋混凝土框架的试验,研究了薄钢板剪力墙在低周往复荷载作用下的刚度、承载力、延性和耗能性能。试验表明,利用薄钢板剪力墙在低周往复荷载作用下的刚度、承载力、延性和耗能性能。试验表明,利用薄钢板剪力墙作为抗侧力构件是可行的。在钢筋混凝土框架中设置薄钢板可有效地增加刚度,承载力和耗能性能。  相似文献   

10.
钢管混凝土边框钢板剪力墙是一种新型抗震剪力墙,为了比较不同构造措施对该新型剪力墙抗震性能的影响,进行了3个剪跨比为1.5的钢管混凝土边框钢板剪力墙低周反复荷载试验。其中,试验模型1为墙体钢板与边框柱钢管焊接,试验模型2为墙体钢板与边框柱钢管螺栓连接,试验模型3为墙体钢板开孔并与边框柱钢管焊接。通过试验研究,比较了各剪力墙的破坏特征、滞回特性、承载力、刚度、延性以及耗能能力。结果表明:在墙体钢板与边框柱钢管的连接方式中,采用焊接或栓接对剪力墙的整体性能影响不大;与普通钢管混凝土边框钢板剪力墙相比,钢板开孔钢管混凝土边框钢板剪力墙在开孔率不大的情况下,其承载力、延性、刚度和耗能能力没有明显变化。  相似文献   

11.
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   

12.
A new seismic energy dissipation shear wall structure is proposed in this paper. The new shear wall is one with purposely built‐in vertical slits within the wall panel, and rubber belts as seismic energy dissipation devices are installed in the vertical slits. In order to verify this concept, shaking table tests of a 10‐storey shear wall model with rubber belts filled in the vertical slits were carried out, and comparison of seismic behaviour was made between the new shear wall system and a shear wall with reinforced concrete connecting beams as energy dissipation. Furthermore, the seismic behaviour of this new shear wall is analysed by a finite element time history analysis method. The test and analysis show that the new shear wall system has a very good ability to dissipate seismic energy and is easy to use in engineering practice. Copyright © 2000 John Wiley & Sons, Ltd.  相似文献   

13.
再生混凝土低矮剪力墙抗震性能试验研究   总被引:5,自引:0,他引:5  
为了研究不同再生骨料取代率对剪力墙性能的影响,进行了4个剪跨比为1.0的低矮剪力墙的低周反复荷载试验研究,包括1个普通混凝土剪力墙和3个再生混凝土剪力墙.在试验的基础上,分析了各剪力墙的承载力、延性、刚度、滞回特征、耗能及破坏特征.研究表明:与普通混凝土剪力墙相比,再生混凝土低矮剪力墙的抗震性能略差,且随着再生骨料掺量的增加,再生混凝土剪力墙的性能呈下降趋势;暗支撑的设置能够明显改善再生混凝土低矮剪力墙的抗震性能;在一定的条件下,再生混凝土可用于一些剪力墙结构的抗震设计.  相似文献   

14.
普通钢筋混凝土低矮剪力墙抗震性能较差,其抗震性能的改善一直受到工程界的关注。总结了一些改善低矮剪力墙抗震性能的国内外研究成果,包括:开缝低矮剪力墙、带暗支撑低矮剪力墙、设耗能装置的低矮剪力墙和低矮组合剪力墙等。在此基础上,提出了一种新型耗能剪力墙,并进行了初步的试验研究。  相似文献   

15.
型钢混凝土低矮剪力墙抗震性能试验研究   总被引:4,自引:2,他引:2  
剪力墙构件是现代高层建筑结构中的主要抗侧向力构件.为了对比型钢桁架混凝土组合低矮剪力墙与型钢框架混凝土组合低矮剪力墙以及普通钢筋混凝土低矮剪力墙在地震作用下的抗震性能,本文进行了四榀1/4缩尺模型的低矮混凝土剪力墙在单调和低周反复荷载作用下的对比试验,其中单调加载试验包括一榀内置型钢桁架的型钢混凝土组合低矮剪力墙,反复加载试验包括一榀普通钢筋混凝土低矮剪力墙、一榀内置型钢框架的型钢混凝土低矮剪力墙和一榀内置型钢桁架的型钢混凝土低矮剪力墙,给出了各试件的刚度、承载力、变形、延性和破坏形态等试验结果,并对其进行分析.试验结果表明,在这三种墙体中,型钢桁架混凝土组合低矮剪力墙的承载力、变形能力、耗能能力较其他类型剪力墙好,并为型钢桁架混凝土组合低矮剪力墙在实际中的应用提供了试验依据.  相似文献   

16.
双向单排配筋混凝土低矮剪力墙抗震性能试验研究   总被引:6,自引:2,他引:4  
双向单排配筋混凝土低矮剪力墙适用于多层住宅结构。对4个原型的剪跨比为1.0配筋混凝土低矮剪力墙进行了低周反复荷载试验研究,包括1个双向双排配筋混凝土低矮剪力墙和3个双向单排配筋混凝土低矮剪力墙。其中1个双向单排配筋混凝土低矮剪力墙加设暗支撑,用以研究暗支撑对这种新型墙体的作用。在试验研究的基础上,对比分析了各剪力墙的刚度及其衰减过程、承载力、延性、滞回特征、耗能能力及破坏特征。试验表明,经过合理设计,这种双向单排配筋混凝土低矮剪力墙可以满足多层住宅结构抗震要求。  相似文献   

17.
为了研究低层装配式钢筋混凝土水平坐浆墙体的抗震性能,对3个不同剪跨比的低层装配式钢筋混凝土水平坐浆墙体进行了低周反复荷载试验。根据试验结果,分析了剪跨比对墙体的破坏形态、承载力、变形能力、刚度退化和耗能能力的影响。结果表明:随着剪跨比的减小,墙体的破坏形态由弯曲破坏转为剪切破坏;试件SW2和试件SW3的承载力相对于试件SW1分别提高68%和110%,延性分别降低21.8%和37.5%;试件SW1的耗能能力最好,刚度退化速度最缓慢;预制钢筋混凝土墙板与现浇边缘构件协同合作,连接处无竖向裂缝,墙体整体性较好,具有良好的抗震性能,可用于我国城镇建设中的低层住宅结构。  相似文献   

18.
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   

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