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1.
通过进行9根配置600 MPa级钢筋的无粘结部分预应力混凝土梁的试验研究,研究预应力度、非预应力纵向受拉钢筋强度等级及配筋率、混凝土强度等级对无粘结部分预应力混凝土梁受弯承载力、应力增量及刚度的影响。研究结果表明:增加预应力度和非预应力筋配筋率能够显著提高配置600 MPa级钢筋的无粘结部分预应力混凝土梁的受弯承载力,减缓试验梁的刚度退化。随着预应力度或非预应力筋配筋率的增加,配置600 MPa级钢筋的无粘结部分预应力混凝土梁的预应力筋应力增量减小。提高非预应力钢筋强度等级,能够使预应力筋的极限应力增量和结构的极限承载能力得到提高。  相似文献   

2.
本文通过两榀框架梁按不同预应力度配置无粘结预应力盘和非预应力筋的“强柱弱梁”型无粘结部分预应力混凝土框架在水平低周反复荷载作用下的试验研究,探讨其包括裂缝分布、破坏形态。极限承载力、无粘结筋应力变化、位移延性、耗能能力、恢复力特性等工作性能,并进一步分析了影响此类结构抗震性能的主要因素,为无粘结部分预应力混凝土框架在地震设防区域的应用提供参考。  相似文献   

3.
针对足尺有粘结预应力混凝土梁板高温后的抗弯承栽力开展了非线性计算分析。结果表明,综合配筋指标、有效预应力对高温后极限弯矩与常温下极限弯矩比值M_u~A/M_u的影响不大,预应力度和预应力筋的保护层厚度对M_u~A/M_u影响显著。高宽比近似相同的有粘结预应力混凝土梁,当第一排钢筋的保护层厚度相同时,受火时间为3 h,高度为700 mm的梁高温后截面承栽力下降幅度最大约为30%,高度为4500 mm的梁高温后截面承栽力下降幅度不到10%,高温后大尺度梁的力学性能优于小尺度梁。给出了考虑预应力筋保护层厚度和预应力度影响的有粘结预应力混凝土板M_u~A/M_u的计算公式,以及综合考虑预应力筋、非预应力筋合力点到梁底距离和预应力筋梁侧保护层厚度影响的有粘结预应力混凝土梁M_u~A/M_u的计算公式。  相似文献   

4.
为研究Park-Ang模型在预应力混凝土结构构件中的适用性,针对预应力混凝土构件,依据等效荷载法原理将构所受到的有效预压力作为轴向压力,并以此来计算预应力构件的轴压比;考虑有、无粘结预应力筋两种情况,基于预应力混凝土梁和普通钢筋混凝土梁的拟静力试验,利用1st Opt软件对Park-Ang模型参数β进行非线性拟合;最后,根据有、无粘结预应力混凝土框架结构的拟静力试验,利用本文修正的有、无粘结预应力混凝土构件的Park-Ang模型参数β计算其损伤,将计算结果与试验结果对比吻合良好,验证其适用性。  相似文献   

5.
寒冷地区无粘结预应力混凝土梁的抗弯与疲劳强度研究   总被引:2,自引:0,他引:2  
针对我国行业标准《无粘结预应力混凝土结构技术规程》(以下简称《规程》)中,对无粘结预应力筋的极限应力设计取值规定的不足,根据大量的试验数据,推导出了适用于桥梁工程的无粘结预应力混凝土上部结构多种截面形式的无粘结筋极限应力增量实用简化计算方法。同时根据试验结果得出无粘结预应力混凝土受弯构件在反复荷载作用下的性能是可靠的结论。  相似文献   

6.
为进一步研究梁端局部无粘结钢筋混凝土悬臂梁的抗弯承载力,在理论分析的基础上,使用ABAQUS有限元软件对局部无粘结梁与完好梁的承载力进行了仿真对比分析。结果表明,当局部无粘结梁与完好梁的配筋方式及材料力学性能一致、受拉纵筋锚固良好且可进入屈服阶段时,局部无粘结梁与完好梁的应变分布和应力历程有着明显的差异;局部无粘结梁的极限承载力高于完好梁;随着荷载的增加,无粘结梁的承载机理呈现出明显的“拱效应”。通过梁与拱的共同作用,建立了梁端局部无粘结钢筋混凝土梁抗弯承载力计算公式。  相似文献   

7.
横向预应力混凝土梁的抗剪性能试验研究   总被引:1,自引:0,他引:1  
通过4根加配横向预应力筋的钢筋混凝土梁和1根普通钢筋混凝土梁的对比试验,初步考察了横向预应力筋对提高钢筋混凝土梁抗剪性能的良好效果。研究结果表明:(1)加配横向预应力筋并施加适当预应力之后,钢筋混凝土梁的抗剪承载力提高70%以上,即使在不施加预应力的情况下,梁的抗剪承载力也约有40%的增长;(2)在横向预应力筋的总截面面积一定的情况下,采用直径较小的横向预应力筋和较小的间距,更有助于改善钢筋混凝土梁的破坏形态。  相似文献   

8.
预应力混凝土板因具备自重轻、跨度大等特点,广泛应用于建筑结构和桥梁结构中。但是,当这种结构受到火灾荷载作用时,其承栽能力就会大幅下降。在高温下,混凝土和预应力筋的力学性能都会劣化,进而造成板的大挠度变形甚至破坏。本文对后张无粘结简支预应力板建立了数值分析模型,其中混凝土和预应力筋采用实体单元模拟,受力筋和分布钢筋采用桁架单元模拟。模型中材料的力学特性和热工特性参数取自文献[15]。采用文献中的试验结果验证了该数值模型的可靠性,并进一步研究了混凝土受热膨胀系数、板的不同区域受火和不同的火灾场景等因素对火灾荷载作用下后张无粘结预应力混凝土简支板的挠度以及预应力的影响,得出了初步结论。  相似文献   

9.
铝合金筋与混凝土的粘结性能是影响铝合金配筋新型混凝土梁承载力的重要因素。对9根铝合金配筋混凝土梁和2根钢筋混凝土对比梁进行了静载试验,分析混凝土梁在加载过程中的裂缝发展情况,基于缝宽-滑移理论研究试验梁的粘结性能。研究结果表明:同级荷载作用下,钢筋混凝土梁的裂缝宽度小于铝合金配筋混凝土梁,钢筋与混凝土的粘结性能优于铝合金与混凝土的粘结性能;混凝土梁中纵筋所受拉力,实质上是混凝土开裂后,单元体内部粘结力的合力;纵筋与混凝土的粘结滑移量与粘结力直接相关,可通过代数和微积分计算得到二者的对应关系。  相似文献   

10.
通过5根高强钢筋(500 MPa)高强混凝土(C60)预应力框架梁与1根非预应力框架梁的低周反复加载试验,研究了换算配筋率、预应力强度比、箍筋强度等参数对预应力框架梁抗震性能的影响。试验结果表明:随着换算配筋率的增加,预应力框架梁滞回曲线逐渐捏拢,承载力下降段变陡,延性性能和耗能能力降低;当换算配筋率为2.6%~3.1%时,位移延性系数均大于3.0;当换算配筋率为3.6%时,位移延性系数为2.82,延性稍差。但若采用高强箍筋替代普通箍筋,将改善预应力框架梁的延性性能和耗能能力,此时位移延性系数为3.36;在换算配筋率等其他因素相同的情况下,预应力强度比的提高并没有明显改变梁的抗震性能;非预应力梁的延性性能及耗能能力等抗震性能均要优于预应力梁。  相似文献   

11.
Three 1/3-scale precast segmental bridge columns, manufactured with ultrahigh-performance fiber-reinforced concrete (UHPFRC) incorporating river sand and coarse aggregate, were tested under cyclic loading. Energy dissipation (ED) bars, embedded in ultrahigh-performance concrete (UHPC) grout, maintained continuous across segment joints and unbonded at the bottom joint. Self-centering prestressing force was provided by unbonded posttensioning (PT) tendons. The research parameters included PT force level and the amount of ED bars. Test results showed that all the specimens exhibited no less than 8% drift capacities, which were remarked with the first fracture of ED bars. No obvious cracking and limited UHPFRC spalling were observed. Both PT force level and the amount of ED bars have notable effects on stiffness, lateral strength, and ductility. Increased PT force may improve ductility with the total axial loading ratio less than 0.08. All PT tendons were elastic and no yield or rupturing was found, but the stress loss was significant. The equivalent unbonded length can be evaluated with 0.007dbfy for ED bars embedded in UHPC grout. The rotation of the bottom joint dominated lateral deformation and the contribution of joint sliding can be neglected. The contribution λED of ED bars to lateral strength should be no more than 25% to maintain self-centering capacity.  相似文献   

12.
部分无黏结预制预应力混凝土框架及其节点抗震能力研究   总被引:2,自引:0,他引:2  
首先介绍了采用后张预应力筋将预制梁和柱构件拼装在一起组成的框架结构的基本形式及特点,接下来对两榀预制框架中节点进行了低周反复加载试验研究,并对一榀三层两跨框架结构进行了弹塑性静力分析,试验和理论分析结果表明经过合理设计的部分无黏结预制预应力混凝土框架结构能够满足抗震设防的要求,且卸载后残余变形较小,具有较强的恢复性能。  相似文献   

13.
钢筋混凝土扁梁柱节点抗震设计方法   总被引:1,自引:0,他引:1  
为考虑扁梁柱节点内、外核心区的相互作用,对扁梁柱节点的内、外核心区进行了重新划分,认为内、外核心区有一个重叠的区域,给出了地震作用在扁梁柱节点内外核心区的分配方法,采用压杆模型和软化桁架模型,提出扁梁柱节点的设计方法。该方法可以考虑节点核心区钢纤维和扁梁中无粘结预应力对扁梁柱节点抗剪极限承载力的作用。该设计方法的可靠性得到四个钢筋混凝土扁梁柱节点试验数据的验证。  相似文献   

14.
Reversed cyclic loading behavior of jointed precast prestressed concrete beam‐to‐column connections are computationally modeled and validated against full‐scale experimental results. Response simulations are performed with and without supplemental high force‐to‐volume (HF2V) energy dissipation devices. The experimental specimen is a three‐dimensional corner connection of a jointed precast concrete frame structure, utilizing unbonded post‐tensioned tendons consisting of high‐alloy, high‐strength thread‐bars. The joint region is armored, to avoid damage, by providing steel plates at the beam–column (rocking) contact points. The analytical model of the connection is developed to include modifications for the effects of changing connection behavior. These effects are friction within the prestressing system, yielding of the prestressing tendons, reduction or elimination of prestress attributable to prior tendon yield, and directional dependence caused by an asymmetrical prestress system. Particular attention is given to developing a robust model that can accommodate small reversals in the displacement loading. The model is extended to incorporate the effects of the HF2V energy dissipation devices and the associated flexibility from the elements that connect the devices to the structure. Although the model is applied to the use of HF2V (lead extrusion) energy dissipation devices, it is general and can accommodate any non‐linear rate‐dependent damper. The computational model is based almost entirely on rational mechanics and shows good agreement with the full‐scale experimental observations. Copyright © 2012 John Wiley & Sons, Ltd.  相似文献   

15.
The seismic performance of a self-centering precast reinforced concrete (RC) frame with shear walls was investigated in this paper. The lateral force resistance was provided by self-centering precast RC shear walls (SPCW), which utilize a combination of unbonded prestressed post-tensioned (PT) tendons and mild steel reinforcing bars for flexural resistance across base joints. The structures concentrated deformations at the bottom joints and the unbonded PT tendons provided the self-centering restoring force. A 1/3-scale model of a five-story self-centering RC frame with shear walls was designed and tested on a shake-table under a series of bi-directional earthquake excitations with increasing intensity. The acceleration response, roof displacement, inter-story drifts, residual drifts, shear force ratios, hysteresis curves, and local behaviour of the test specimen were analysed and evaluated. The results demonstrated that seismic performance of the test specimen was satisfactory in the plane of the shear wall; however, the structure sustained inter-story drift levels up to 2.45%. Negligible residual drifts were recorded after all applied earthquake excitations. Based on the shake-table test results, it is feasible to apply and popularize a self-centering precast RC frame with shear walls as a structural system in seismic regions.  相似文献   

16.
针对铁路少筋混凝土重力式桥墩的延性不足和抗震耗能能力较差的问题,本文提出了一种兼顾改善桥墩延性与强度的抗震措施,即在墩身底部设置局部纵向无粘结钢筋,其余墩身部分的纵向钢筋保持不变。共设计了4个桥墩模型,通过拟静力试验研究了配筋率和粘结方式对少筋混凝土重力式桥墩抗震性能的影响。结果表明:无粘结模型桥墩的破坏形式为弯曲破坏。与完全粘结的模型桥墩相比,未粘结模型桥墩的滞回曲线更加饱满,桥墩的延性性能和耗能能力均得到了显著提高,且采用无粘结方式对于低配筋率模型桥墩的延性及累积耗能的提高更加明显。配筋率对模型桥墩的刚度退化速率影响较大,且高配筋率的无粘结模型桥墩的刚度退化比低配筋率明显。  相似文献   

17.
The self‐centering prestressed concrete (SCPC) moment resisting frame (MRF) with web friction devices (WFDs) is a new type of structure that integrates advantages of post‐tensioned precast concrete MRFs and self‐centering steel MRFs. In this paper, the configuration of the connection and design guidelines are presented. To further reduce damage to the connection under cyclic loading and facilitate implementation in practice, several significant improvements are proposed and experimentally validated in this study, including the following: (i) the welded connection is replaced by the bolted connection; (ii) aluminum plates are used for friction instead of brass plates to reduce the material costs without decreasing the energy dissipation capacity; and (iii) post‐tensioned tendons at the corners of the beam are replaced by a bundle of tendons at the beam centroid in order to facilitate the field assembly. The resulting improvements of seismic performances are experimentally demonstrated by 10 cyclic tests of two full‐scale SCPC beam–column connections. Numerical simulation of the proposed connection is conducted using the Open System for Earthquake Engineering Simulation (OpenSees) to replicate the experimental results. Seismic behaviors are taken into account, such as the gap opening/closing at the beam–column interface, the self‐centering capacity, and the friction energy dissipation. Good agreement is observed between the numerical simulation and the test results. The proposed SCPC connection with bolted WFDs is demonstrated to have good performance when subjected to cyclic loading. Copyright © 2013 John Wiley & Sons, Ltd.  相似文献   

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