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1.
锈蚀钢筋混凝土的疲劳破坏是在钢筋锈蚀和疲劳荷载共同作用下造成的结构破坏,其危害巨大。准确获得锈蚀钢筋混凝土构件在经历若干次疲劳荷载作用后的实际承载能力更是具有重要的现实意义。本文在理论上对疲劳荷载作用后锈蚀钢筋混凝土梁承载力进行分析。首先,考虑锈蚀因素对钢筋混凝土梁承载力的影响;其次,考虑疲劳荷载作用对钢筋混凝土梁承载力的影响;最后,考虑上述两种因素的影响,修改现行规范的未锈蚀钢筋混凝土梁抗弯承载力公式中的钢筋屈服强度及截面面积,获得若干次疲劳荷载作用后锈蚀钢筋混凝土梁抗弯承载力的理论计算公式。  相似文献   

2.
基于不同荷载模式下锈蚀钢筋力学性能试验,分析了单调拉伸荷载、重复荷载及疲劳荷载作用下锈蚀钢筋的力学性能,对锈蚀钢筋力学性能在不同荷载模式下退化程度进行了对比研究,并给出了锈蚀钢筋力学性能退化计算式。试验表明,随着锈蚀率的增大,疲劳荷载及重复荷载下锈蚀钢筋力学性能退化比单调荷载下更为明显,伸长率及弹性模量退化相对严重,疲劳及重复荷载下锈蚀钢筋由软钢逐渐向硬钢转变,而坑蚀是导致这一现象的主要原因之一。坑蚀是应力集中源,同时也是锈蚀钢筋混凝土结构损伤累积源,建议对锈损结构疲劳及抗震性能评估应考虑这一因素的影响。  相似文献   

3.
钢筋锈蚀深度预测是评估在役RC结构服役性能的基础。为建立一般大气环境RC构件中钢筋锈蚀深度预测模型,通过收集实测数据,分析影响钢筋锈蚀深度的主要参数及其影响规律,继而基于实测数据建立数值模型和RBF神经网络预测模型,并进行参数敏感性分析。研究结果表明:与数值模型相比,RBF神经网络对钢筋锈蚀深度预测效率与精度更高,能够有效映射各影响参数与钢筋锈蚀深度之间复杂的非线性关系。参数敏感性分析结果显示,钢筋混凝土表面锈胀裂缝宽度对钢筋锈蚀深度影响最大,钢筋直径、保护层厚度与钢筋直径之比和混凝土抗压强度等其他因素影响次之。所得模型可用于工程检测中钢筋锈蚀程度预测与RC构筑物剩余服役寿命评估。  相似文献   

4.
随着服役时间的增长,侵蚀环境下钢筋混凝土框架节点因钢筋发生不同程度的锈蚀而造成承载性能下降,严重影响建筑结构的安全使用。本文在已有钢筋混凝土框架节点抗剪强度理论模型的基础上,考虑钢筋锈蚀对框架节点受力性能的影响,建立锈蚀钢筋混凝土框架中节点受剪承载力计算公式。通过11组锈蚀钢筋混凝土节点试验数据,对建议理论模型进行验证。研究结果表明,锈蚀钢筋混凝土节点受剪承载力试验值与理论计算值之比的平均值为0.951,方差为0.075,二者吻合较好,本文建议的计算方法可用于锈蚀钢筋混凝土框架中节点承载力分析。  相似文献   

5.
建筑结构基于性能的抗震评估的等ζy延性谱法   总被引:1,自引:0,他引:1  
利用水平地震作用下单自由度体系的运动方程,以屈服承载力系数ζy为参量,推导出适时延性系数动力方程,从而建立了基于屈服承载力系数的延性需求谱。结合结构的非线性静力pushover分析,提出了基于性能的抗震评估方法——等ζy延性谱法。用等yζ延性谱法对一个6层钢筋混凝土框架结构进行了抗震评估,并与非线性时程分析进行了比较。结果表明,用等yζ延性谱法对结构进行抗震性能评估是可行的,并且具有较高的精度。  相似文献   

6.
增大柱端抗弯承载力是抗震"能力设计"措施中引导钢筋混凝土框架结构形成梁铰型有利耗能机构的关键措施。本文以6层确定性钢筋混凝土框架结构为分析对象,通过结构易损性分析评估了不同强柱系数取值对钢筋混凝土框架结构抗震性能的影响。结构易损性分析表明增大柱端抗弯承载力是改善结构抗震性能的有效措施,增大强柱系数提高了结构的变形能力,使不同破坏极限状态之间形成较大的"梯度",对防止强烈地震作用下结构的突然倒塌提供了预示。结构易损性曲线对评估结构抗震性能、选用合适的目标强柱系数提供了量化标准。  相似文献   

7.
梁岩  罗小勇  刘攀 《地震学刊》2014,(4):472-478
为研究地震作用下钢筋锈蚀对试件性能退化影响的规律,对6个锈蚀钢筋混凝土受弯构件进行低周反复荷载试验,得到不同锈蚀程度试件的滞回曲线及骨架曲线,分析了钢筋锈蚀对试件强度和刚度的影响。试验发现,随着钢筋锈蚀程度的增大,各试件强度退化基本呈增大趋势;低锈蚀率试件由于锈胀内力的存在,强度退化相对比未锈蚀试件和高锈蚀试件大;随着锈蚀率的增大,试件加载和卸载刚度总体上逐渐减小,且随着位移的增大而持续减小。此外,还分析了锈蚀钢筋混凝土结构刚度退化机理。成果可供锈蚀钢筋混凝土结构抗震性能研究参考。  相似文献   

8.
以某钢筋混凝土框架柱为例,采用非线性有限元分析软件ABAQUS研究了框架柱在4种不同锈蚀程度(未锈蚀、轻微锈蚀、中等锈蚀和严重锈蚀)下的滞回性能,并与文献中描述的试验结果和框架柱的实际震害进行了对比。研究表明:钢筋锈蚀将导致框架柱的滞回承载力大幅度降低,而且随着锈蚀率的增大,这种承载力降低效应逐渐增强,其中锈蚀引起的钢筋与混凝土之间的粘结性能退化在这种滞回承载力削弱过程中起着重要的作用。就滞回曲线的特点来看,随着钢筋锈蚀程度的增大,框架柱滞回环的饱满程度降低、内缩增加,滞回曲线由弓形逐渐变成反S形,滞回环的包络面积变小,说明框架柱抗震耗能能力降低。  相似文献   

9.
夏玉超  李振 《地震工程学报》2020,42(5):1310-1316
针对考虑动水压力作用下桥墩内部钢筋锈蚀后抗震力学性能变化规律的问题,通过力学推导和abaqus有限元模拟研究了桥墩的力学性能,首先依托塑性铰区域高度计算公式,构建桥墩动水压力计算简化模型,通过改进有限元计算模型,提出了优化后的考虑钢筋锈蚀的桥墩计算公式。计算结果表明:动水压力作用下桥墩底部钢筋锈蚀与混凝土损伤对桥墩主压应力影响最大,其他区域钢筋锈蚀影响较小,并对桥梁承载力计算公式进行修正,为后期同类工程计算提供了理论依据。  相似文献   

10.
为探究局部锈蚀矩形截面钢筋混凝土(RC)桥墩重度震损加固后的抗震性能,本文对拟静力破坏后的6个矩形截面RC桥墩试件进行扩大截面加固。通过加载试验,对加固桥墩试件从破坏形态、滞回特性、水平承载力、位移延性、侧向刚度以及耗能等方面进行了系统分析。结果表明:相比于普通箍筋,横向施加预应力的改进扩大截面加固方式对破坏后桥墩试件的抗震性能修复成效更佳;在同等位移幅值下,锈蚀率不断增大,桥墩试件抗震性能呈现逐渐降低的趋势;钢筋锈蚀位置上移,加固后桥墩试件的抗震性能提升;轴压比加大,加固后桥墩试件承载力和侧向刚度增大,但延性降低。  相似文献   

11.
地震作用下钢筋混凝土(RC)桥墩容易损坏。为完善RC桥墩的抗震设计及验算方法,对比最新中国和欧洲规范中关于RC桥墩的延性抗震设计及验算方法的不同之处。基于Midas/Civil软件所建立的常规连续梁桥有限元模型,对比分析采用中欧规范开展的RC桥墩延性抗震设计及验算结果。结果表明:中欧规范中关于RC桥墩的延性抗震设计理念、抗剪和变形验算方法及延性构造细节均有区别。基于中欧规范设计的RC桥墩配筋情况存在差异。与中国规范相比,欧洲规范关于RC桥墩的横向钢筋配筋率和纵筋最小配筋率要求较高,有利于保证结构的抗剪强度和延性;箍筋最大间距要求较低,不利于防止纵筋压曲。  相似文献   

12.
综述了用于提高填充墙钢筋混凝土(RC)框架结构抗震性能和改善结构损伤模式的几类加固措施,从工艺、加固效果和破坏形式3个角度进行了分析。在建筑结构设计过程中,填充墙通常被视为一种典型的脆性非均质非结构构件,忽视了填充墙与RC框架之间的相互作用。地震调查报告表明,在结构遭受地震作用时,填充墙通常先于钢筋混凝土框架发生破坏,未经合理设计的填充墙RC框架结构将在地震作用下产生严重不良后果。试验结果和数值模拟分析结果证明,砌块的强度越低、砂浆的强度越高,结构的承载能力和刚度退化越慢、耗能能力越好。文中根据目前已有的建筑材料改性试验结果,从改性机理出发,分析了一系列有利于提高结构抗震性能的新型材料,并对结构的设计方案进行了探讨。  相似文献   

13.
总结采用梁有效翼缘来考虑楼板及配筋对“强柱弱梁”机制形成的影响的实验和数值仿真研究。基于SAP2000采用三种侧向加载模式对RC框架结构不带楼板、不带楼板考虑梁刚度放大、带楼板的三个模型进行pushover分析,对力与位移的关系曲线、塑性铰的出铰顺序以及顶点位移与层间位移等方面进行探讨。结果表明:三个模型的“强柱弱梁”现象不带楼板的纯框架结构最明显,考虑梁刚度放大的模型次之,带楼板结构最不明显,证明负弯矩承载力和刚度等反映“强柱弱梁”的参数及塑性铰的出现顺序与楼板、板内配筋存在明显的对应关系;楼板及配筋影响框架结构的整体变形性能和塑性耗能能力,是抗震延性机制实现的重要影响因素。在后续的结构设计中,建议考虑实际楼板和钢筋建模进行计算分析。  相似文献   

14.
Reinforced concrete (RC) structures in low to moderate seismic regions and many older RC structures in high seismic regions include columns with steel reinforcement details not meeting the requirements of modern seismic design codes. These columns typically fail in shear or in a brittle manner and their behavior must be accurately captured when RC structures are modeled and analyzed. The total lateral displacement of a low ductility or shear critical RC column can be represented as the sum of three displacement components: (1) flexural displacement, (2) displacement due to slippage of the reinforcing bars at column ends, and (3) shear displacement. In this study, these three displacement components are separately modeled and then combined together following a proposed procedure based on the expected overall behavior of the column and its failure mechanism. A simplified slip model is proposed. The main objective of this research is to develop an easy-to-apply method to model and capture the cyclic behavior of RC columns considering the shear failure mechanism. The proposed model is validated using the available data from RC column and frame experiments.  相似文献   

15.
考虑到结构抵抗地震作用的机制为结构和地震动的不确定性与非线性相互耦合的过程,采用增量动力分析(IDA)考虑地震动的不确定性,选取16条地震动记录,基于OpenSEES的有限元建模理论对13榀平面RC框架结构进行基于IDA方法的地震易损性分析,分别讨论轴压比、高宽比、混凝土强度以及纵筋强度等结构参数对RC框架结构抗震性能的影响。结果表明:柱轴压比对结构抗震性能的影响显著,而高宽比对结构抗震性能的影响不明显;在保证柱轴压比相近的前提下,提高柱混凝土强度能够提升结构的抗震性能;相同地震作用下梁柱配置纵筋强度较高的框架结构达到立即使用(IO)状态和生命安全(LS)状态的概率较配置纵筋强度较低的大,配置纵筋强度较高的框架结构较配置纵筋强度较低的表现出更好的抗倒塌能力。  相似文献   

16.
Over the last two decades, the probabilistic assessment of reinforced concrete (RC) structures under seismic hazard has been developed rapidly. However, little attention has been devoted to the assessment of the seismic reliability of corroded structures. For the life‐cycle assessment of RC structures in a marine environment and earthquake‐prone regions, the effect of corrosion due to airborne chlorides on the seismic capacity needs to be taken into consideration. Also, the effect of the type of corrosive environment on the seismic capacity of RC structures has to be quantified. In this paper, the evaluation of the displacement ductility capacity based on the buckling model of longitudinal rebars in corroded RC bridge piers is established, and a novel computational procedure to integrate the probabilistic hazard associated with airborne chlorides into life‐cycle seismic reliability assessment of these piers is proposed. The seismic demand depends on the results of seismic hazard assessment, whereas the deterioration of seismic capacity depends on the hazard associated with airborne chlorides. In an illustrative example, an RC bridge pier was modeled as single degree of freedom (SDOF). The longitudinal rebars buckling of this pier was considered as the sole limit state when estimating its failure probability. The findings show that the life‐cycle reliability of RC bridge piers depends on both the seismic and airborne chloride hazards, and that the cumulative‐time failure probabilities of RC bridge piers located in seismic zones can be dramatically affected by the effect of airborne chlorides. Copyright © 2011 John Wiley & Sons, Ltd.  相似文献   

17.
Seismic design of concrete structures is currently based on time-invariant capacity design criteria which do not account for environmental hazards. The significant progressive decay of strength and ductility of concrete structures exposed to damage, in particular due to reinforcing steel corrosion, shows that this approach should be revised to consider the deterioration over time of the seismic performance. This is important also for precast systems, for which most of structural members are often directly exposed to the atmosphere and environmental aggressiveness. This paper presents a probabilistic approach for the lifetime assessment of seismic performance of concrete structures considering the interaction of seismic and environmental hazards. The effectiveness of the proposed approach is shown by its application to multistory precast buildings exposed to corrosion. The results show that structures designed for the same seismic action could have different lifetime seismic performance depending on the environmental exposure. These results emphasize the importance of a life-cycle approach to both seismic assessment of existing buildings and seismic design of new structures, and indicate that capacity design criteria need to be properly revised to consider the severity of the environmental exposure.  相似文献   

18.
Earthquake-induced building collapse and progressive collapse due to accidental local failure of vertical components are the two most common failure modes of reinforced concrete (RC) frame structures. Conventional design methods usually focus on the design requirements of a specific hazard but neglect the interactions between different designs. For example, the progressive collapse design of an RC frame often yields increased reinforcement and flexural strength of the beams. As a result, the seismic design principle of “strong-column-weak-beam” may be violated, which may lead to unfavorable failure modes and weaken the seismic performance. To avoid these adverse effects of the progressive collapse design on the seismic resistance of RC frames, a novel structural detailing is proposed in this study. The proposed detailing technique intends to concurrently improve the seismic and progressive collapse performances of an RC frame by changing the layout of the newly added longitudinal reinforcement against progressive collapse without introducing any additional reinforcement. A six-story RC frame is used as the prototype building for this investigation. Both cyclic and progressive collapse tests are conducted to validate the performance of the proposed structural detailing. Based on the experimental results, detailed finite element (FE) models of the RC frame with different reinforcement layouts are established. The seismic and progressive collapse resistances of different models are compared based on the incremental dynamic analysis (IDA) and nonlinear dynamic alternate path (AP) methods, respectively. The results indicate that the proposed structural detailing can effectively resolve the conflict between the seismic and progressive collapse designs.  相似文献   

19.
为了对混凝土框架结构的地震破坏机制和抗震性能进行控制,在框架柱中配置高强钢筋,并将纤维增强混凝土(FRC)用于框架结构的预期损伤部位。结构柱中的高强钢筋用来减小结构的残余变形,FRC材料用来增加结构的耗能能力和损伤容限。设计了三个框架,采用动力弹塑性时程分析方法进行分析。研究结果表明,采用高强钢筋提高了结构的整体承载能力,在层间侧移角达到3%之前避免了柱铰的出现(包括底层柱底),并且减小了结构的残余变形;预期损伤部位采用FRC材料能够提高结构的塑性耗能。  相似文献   

20.
为合理反映钢筋锈蚀后黏结滑移性能劣化对钢筋混凝土(RC)结构抗震性能的影响,在既有黏结应力分布模式的基础上,推导得到钢筋应力-滑移关系,进而通过分析锈蚀对混凝土与钢筋界面黏结滑移机理的影响,建立考虑钢筋锈蚀损伤的黏结滑移本构模型。基于已有拉拔试验结果,与仅考虑纵筋锈蚀率影响的Cheng模型进行对比,验证所建模型的合理性与准确性。基于OpenSees有限元平台,采用纤维梁柱单元和零长度截面单元串联的方式,将所建钢筋黏结滑移模型嵌套于零长度截面单元的钢筋本构中,建立可考虑黏黏结滑移的锈蚀损伤纤维梁柱模型,并通过6根锈蚀RC柱拟静力试验结果验证模型的准确性,结果发现所提考虑黏结滑移的锈蚀RC纤维梁柱模型计算所得滞回曲线与试验滞回曲线吻合良好,累计耗能最大误差不超过15%。此外,通过参数分析研究影响锈蚀钢筋滑移量的因素,结果表明屈服滑移量与极限滑移量随体积配箍率的增大而明显减小,随混凝土保护层与钢筋直径之比(c/d)增大而变化的幅度较小。  相似文献   

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