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1.
为了抵抗粘贴碳纤维增强聚合物基复合材料(CFRP)加固钢筋混凝土结构中常见的剥离破坏,发明了将CFRP布端部以特定方式绕平行双杆实现自锁的方法。鉴于窄梁截面宽度有限,提出将CFRP布贴梁受拉底面布置后,用安装在梁侧面的双L形端锚装置固定双杆,形成侧锚底贴加固方案。完成了5根混凝土强度较低的矩形截面梁四点弯曲试验,其中4根采用上述锚固方式抗弯加固,检验了锚固效果,考察了CFRP布宽度及其沿全长与梁底面是否粘结对加固效果的影响。试验结果表明,采用本文方法进行加固后,端部剥离得以避免,中部剥离即使发生,或在无粘结加固梁受力后期,CFRP布仍能承担较大拉力,因此,极限荷载较对比梁有明显提高。比较而言,CFRP布与梁底有粘结时加固效果更好,CFRP布宽度加大也对提高承载力有益。  相似文献   

2.
碳纤维布加固RC梁中粘结性能的非线性有限元分析   总被引:18,自引:0,他引:18  
碳纤维布加固钢筋混凝土(RC)梁中,碳纤维布与梁底混凝土的剥离破坏使碳纤维布的强度不能得到充分发挥。分析碳纤维布与梁底混凝土的粘结应力,是研究碳纤维布加固剥离破坏承载力的基础问题。根据4根碳纤维布加固RC梁的试验研究结果,采用商业有限元程序MSC.Marc建立有限元模型,进行了非线性计算分析。通过分离总粘结应力中的局部粘结应力,得到粘结延伸长度范围内的锚固粘结应力分布,并结合试验数据对其分布规律进行了研究。根据分析和试验结果,引入了“有效锚固粘结长度”和“锚固粘结应力”的概念,给出了极限荷载下锚固粘结应力的计算建议。  相似文献   

3.
为了调查动荷载作用下碳纤维布与钢筋混凝土梁的粘贴性能及加固效果,进行了5根模拟交通荷载(等幅正弦波形动荷载)作用下粘贴碳纤维布加固钢筋混凝土梁和1根保持荷载下粘贴碳纤维布加固钢筋混凝土梁以及2根对比梁的试验研究。试验中考虑了混凝土等级、配筋率、有无锚固条、粘贴长度、荷载幅值5个变化参数。试验结果表明,在模拟交通荷载的作用下,碳纤维布加固的钢筋混凝土梁粘贴性能满足要求,粘贴效果良好。在模拟交通荷载后的静载作用下,试验梁的抗弯承载力提高较多,加固效果明显,进一步验证了粘贴效果。  相似文献   

4.
进行了6根碳纤维布加固已承受荷载的钢筋混凝土梁和2根对比混凝土梁的抗弯性能试验研究,分析了碳纤维布加固已承受荷载的钢筋混凝土梁的破坏机理,研究了荷载历史对加固梁极限荷载的影响。试验结果表明,粘贴碳纤维布可以有效地提高加固梁的抗弯承载能力。无论荷载历史如何,只要梁承受的初始荷载相同,梁破坏时的极限荷载基本相同。梁端锚固对加固梁的极限荷载影响不明显。根据不同的破坏模式,提出了碳纤维布加固已承受荷载的钢筋混凝土梁的承载力计算方法,给出了工程实用计算公式。  相似文献   

5.
CFRP布加固木梁界面粘结应力的试验研究和理论分析   总被引:1,自引:0,他引:1  
为了研究CFRP布加固木梁的界面粘结应力,对6根CFRP布加固的木梁进行了静力试验,得到了碳纤维布端部的应变分布。由相邻两测点的应变计算出了CFRP布与木材的平均界面粘结剪应力。忽略碳纤维布和木梁的剪切变形,推导了在任意荷载作用下两者之间的界面粘结剪应力和粘结正应力的计算公式,并根据边界条件给出了在两点对称集中荷载作用下公式中的系数,应用该公式计算了试验梁碳纤维布端部的界面粘结剪应力和正应力,结果表明粘结剪应力的计算值与试验值吻合较好,说明该公式是可行的。  相似文献   

6.
通过对4根矩形截面钢筋混凝土梁的静力加载试验,研究了碳纤维布对抗弯加固梁的破坏形态、刚度变化、极限承载力、变形能力和裂缝开展情况的影响,分析了碳纤维布粘贴层数和加固梁是否欲裂对碳纤维加固效果的影响.结果表明:碳纤维布可明显增强加固梁的极限承载力,改变加固梁的破坏形态,改善延性,延缓裂缝的发展,提高加固梁的整体刚度;同时碳纤维布粘贴层数越多,加固梁的极限承载力越大,但其提高程度并不与粘贴层数成正比;加固预裂梁后其极限承载力明显提高,但其延性降低.最后,针对现有的规范及理论研究结果,提出了抗弯加固梁的极限承载力计算公式,理论计算结果与试验值符合较好,满足工程实际要求.  相似文献   

7.
碳纤维布(CFRP)加固修补混凝土结构技术是一项新兴的结构加固技术,碳纤维布加固混凝土构件具有强度高、自重轻、不改变构件截面等优点。本文着重研究了碳纤维布加固混凝土构件的温度应力,并通过ANSYS对碳纤维加固混凝土构件温度应力进行了仿真分析。结果表明:在寒区及温差较大地区用碳纤维加固混凝土及钢筋混凝土构件时,应对温度应力予以重视。如果忽视温度应力的影响,在外荷载及温度次内力的共同作用下,会影响混凝土构件的安全性,甚至影响其使用寿命。  相似文献   

8.
内嵌碳纤维增强塑料板条抗弯加固混凝土梁试验研究   总被引:3,自引:0,他引:3  
按照正常配筋浇筑了15根钢筋混凝土梁,在部分混凝土梁受拉区保护层内按照不同尺寸沿梁轴向开槽,在槽内嵌入碳纤维增强塑料(Carbon Fiber Reinforced Plastic,简称CFRP)板条,用专用树脂对槽道进行充填,并对这些梁进行弯曲试验。研究了内嵌碳纤维增强塑料板条加固后混凝土梁的破坏形态、开裂弯矩、极限承载力情况,并与外贴等量碳纤维板条的混凝土梁进行了比较;分析了碳纤维板条加固量及开槽尺寸对承载力的影响及混凝土梁的变形和裂缝发展随加固量及开槽尺寸变化的情况。研究表明,与未加固梁相比,内嵌CFRP板条加固梁的极限承载力提高了11.2%―41.7%;与外贴CFRP板条加固梁相比,其极限承载力提高了15.5%―22.7%。  相似文献   

9.
碳纤维对工程结构加固的试验研究   总被引:1,自引:0,他引:1  
碳纤维及其复合材料是伴随着军工事业的发展而成长起来的新型材料,碳纤维布由于其高强、轻质、耐腐蚀等优点而广泛用于结构加固中,与其它加固方法相比,碳纤维布加固具有易于施工、工效高、造价低且耐腐蚀等优点.本文在总结前人工作基础上,研制了用于碳纤维布加固的GF结构胶,并测试了其物理力学性能;通过试验研究了碳纤维布加固梁在荷载作用下的挠度、强度、裂缝展开情况及破坏模式.试验结果表明,经过碳纤维布加固的梁,其承载能力和刚度均较未加固梁有较大幅度的增加,采用碳纤维布加固对裂缝的开展有明显的约束效果.  相似文献   

10.
碳纤维增强树脂(CFRP)复合材料是一种具有轻质、高强和抗腐蚀等优点的新型高性能材料,为了研究尺寸效应对CFRP复合材料布加固钢筋混凝土柱偏心受压性能的影响,本文进行了相关的试验研究。试验共制作了15根尺寸成比例的钢筋混凝土柱试件,试验考虑了构件尺寸、偏心距和CFRP复合材料布加固层数三种因素的影响。试验结果表明:CFRP复合材料布加固钢筋混凝土柱的破坏形态、相对挠度、CFRP复合材料布峰值应变、钢筋峰值应变都存在明显的尺寸效应; CFRP复合材料布加固钢筋混凝土柱的极限荷载随偏心距的增大而减少,尺寸越大,减小趋势越平缓;在相同偏心距下,随着CFRP复合材料布加固钢筋混凝土柱试件截面尺寸的增加,安全储备系数逐渐减小。   相似文献   

11.
为解决纯粘贴U形纤维增强聚合物基复合材料(FRP)加固钢筋混凝土梁中FRP端部容易发生剥离破坏等问题,自主研发了对纤维布条带端部进行自锁锚固的方法和锚板,提出了端锚与粘贴并用的混锚U形条带抗剪加固方法。通过2根未加固梁、1根纯粘贴和2根混锚U形碳纤维增强聚合物基复合材料(CFRP)带抗剪加固梁的对比试验,证实了混锚抗剪加固的有效性:混锚能够对纤维带端部进行可靠锚固,阻止端部剥离破坏的发生,实现纤维拉断破坏,大幅度提高材料强度利用率。混锚加固在抑制混凝土梁斜裂缝开展、延缓箍筋屈服、提高箍筋和CFRP的极限应变以及提高抗剪承载力等多个方面的表现均明显优于纯粘贴加固。  相似文献   

12.
金浏  夏海  蒋轩昂  杜修力 《工程力学》2021,38(3):50-59,85
剪跨比对FRP抗剪加固梁的裂缝开展和破坏模式有重要影响,但对FRP加固梁抗剪强度及尺寸效应的影响研究较少。采用三维细观数值模拟方法,考虑混凝土细观组成的非均质性及碳纤维布(CFRP)与混凝土之间的相互作用,建立了CFRP加固无腹筋钢筋混凝土梁剪切破坏力学分析模型。在验证细观模拟方法合理性的基础上,拓展模拟与分析了剪跨比对CFRP加固钢筋混凝土梁剪切破坏及尺寸效应的影响机制与规律。研究结果表明:剪跨比对CFRP抗剪加固梁剪切破坏模式影响较大,剪跨比越大,加固梁愈趋近于延性较好的斜拉破坏;剪跨比对CFRP加固梁抗剪承载力有较大影响,对抗剪强度尺寸效应影响较小;剪跨比对加固梁中的CFRP剪切贡献影响较大,剪跨比越大,CFRP对加固梁的抗剪效果越好,其中对中型剪跨比(λ=2.5)的梁加固效果最有效。  相似文献   

13.
Corrosion of reinforcement is a serious problem and is the main cause of concrete structures deterioration costing millions of dollars even though the majority of such structures are at the early age of their expected service life. This paper presents the experimental results of damaged/repaired reinforced concrete beams. The experimental program consisted of reinforced concrete rectangular beam specimens exposed to accelerated corrosion. The corrosion rate was varied between 5% and 15% which represents loss in cross-sectional area of the steel reinforcement in the tension side. Corroded beams were repaired by bonding carbon fiber reinforced polymer (CFRP) sheets to the tension side to restore the strength loss due to corrosion. Different strengthening schemes were used to repair the damaged beams. Test results showed detrimental effect of corrosion on strength as well as the bond between steel reinforcement and the surrounding concrete. Corroded beams showed lower stiffness and strength than control (uncorroded) beams. However, strength of damaged beams due to corrosion was restored to the undamaged state when strengthened with CFRP sheets. On the other hand, the ultimate deflection of strengthened beams was less than ultimate deflection of un-strengthened beams.  相似文献   

14.
Carbon fibre reinforced polymers (CFRP) has become a very popular method of improving the capacity of structural elements. Failure of CFRP strengthening systems when applied to concrete structures is usually typified by de-lamination of the CFRP from the concrete substrate. Research has shown that anchoring the ends of the CFRP plates or sheets can result in a significantly higher load/stress being reached before de-bonding occurs and that when sufficiently anchored, the CFRP material strain at failure can approach its ultimate strain at rupture. The following is continuation of experimental studies into CFRP anchorage systems used to retrofit concrete structures. It follows from previous investigations conducted by the authors into the bond behaviour of a new anchorage system utilising a mechanically strengthened substrate. The paper presents two alternative anchorages; both utilising uni-directional fabric wrap oriented horizontally across and parallel to the direction of the laminate. Both forms of anchorage are found to be effective in increasing the CFRP to concrete bond strength by distributing contact stresses over a greater area of concrete.  相似文献   

15.
A series of experimental tests were carried out to investigate the behavior and performance of reinforced concrete (RC) T-section deep beams strengthened in shear with CFRP sheets. Key variables evaluated in this study were strengthening length, fiber direction combination of CFRP sheets, and an anchorage using U-wrapped CFRP sheets. A total of 14 RC T-section deep beams were designed to be deficient in shear with a shear span-to-effective depth ratio (a/d) of 1.22. Crack patterns and behavior of the tested deep beams were observed during four-point loading tests. Except the CS-FL-HP specimen, almost all strengthened deep beams showed a shear–compression failure due to partial delamination of the CFRP sheets. From the load–displacement (pu) curves, the effects of key variables on the shear performance of the strengthened deep beams were addressed. It was concluded from the test results that the key variables of strengthening length, fiber direction combination, and anchorage have significant influence on the shear performance of strengthened deep beams. In addition, a series of comparative studies between the present experimental data and theoretical results in accordance with the commonly applied design codes were made to evaluate the shear strength of a control beam and deep beams strengthened with CFRP sheets.  相似文献   

16.
Carbon and glass fiber reinforced polymer (CFRP and GFRP) are two materials suitable for strengthening the reinforced concrete (RC) beams. Although many in situ RC beams are of continuous constructions, there has been very limited research on the behavior of such beams with externally applied FRP laminate. In addition, most design guidelines were developed for simply supported beams with external FRP laminates. This paper presents an experimental program conducted to study the flexural behavior and redistribution in moment of reinforced high strength concrete (RHSC) continuous beams strengthened with CFRP and GFRP sheets. Test results showed that with increasing the number of CFRP sheet layers, the ultimate strength increases, while the ductility, moment redistribution, and ultimate strain of CFRP sheet decrease. Also, by using the GFRP sheet in strengthening the continuous beam reduced loss in ductility and moment redistribution but it did not significantly increase ultimate strength of beam. The moment enhancement ratio of the strengthened continuous beams was significantly higher than the ultimate load enhancement ratio in the same beam. An analytical model for moment–curvature and load capacity are developed and used for the tested continuous beams in current and other similar studies. The stress–strain curves of concrete, steel and FRP were considered as integrity model. Stress–strain model of concrete is extended from Oztekin et al.’s model by modifying the ultimate strain. Also, new parameters of equivalent stress block are obtained for flexural calculation of RHSC beams. Good agreement between experiment and prediction values is achieved.  相似文献   

17.
Although many in-situ RC beams are of continuous constructions, there has been very little research on the behavior of such beams with external reinforcement. This article presents an experimental program conducted to study the flexural behavior and redistribution of moment of reinforced high strength concrete (RHSC) continuous beams strengthened with carbon and glass-fiber-reinforced polymer (CFRP and GFRP) sheets. The program consists of six RHSC continuous (two-span) beams with overall dimensions equal to 250 × 150 × 6000 mm. One beam was not strengthened and was tested as a control beam. Five beams were strengthened with CFRP and GFRP in flexure along their sagging and hogging regions. The main parameters including type of FRP (GFRP or CFRP), the different ratios of CFRP sheet and effectiveness of end anchorage. The test results showed that the use of GFRP sheet in strengthening of continuous beam reduced loss in ductility and moment redistribution but it did not significantly increase the ultimate strength of them. The use of end anchorage in strengthened continuous beams increased the ultimate strength and moment redistribution. The moment enhancement ratio of the strengthened continuous beams was significantly higher than the ultimate load enhancement ratio in the same beam. Also existing international codes and model such as ACI, fib, JSCE, Teng and Toutanji for prediction of IC debonding strain or stress of strengthened continuous beams are verified. Verifications were carried out based on the test results in this research and the published literature on RC continuous beams strengthened with FRP.  相似文献   

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