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Compressive behavior and strength of steel gusset plate connections.

机译:钢角撑板连接的抗压性能和强度。

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摘要

Gusset plate connections are commonly used in bridge trusses and braced steel frames to transfer forces from one structural member to another. Due to the complexity of these connections, it is extremely difficult to evaluate the strength of gusset plate connections. Hence, a research program was initiated to investigate the compressive behavior and ultimate strength of gusset plate connections by testing full-scale diagonal bracing connections. In total, twenty-one tests were conducted on nineteen specimens. The test parameters included gusset plate thickness, size, brace angle (30{dollar}spcirc{dollar} and 45{dollar}spcirc{dollar}) and out-of-plane restraint boundary conditions. In addition, the effects of frame action on the compressive behavior of gusset plate connections were investigated by applying beam and column moment to the specimens. Out-of-plane loading eccentricity, which happens frequently in tubular bracing members with a slotted-in splice plate, was also examined by testing three eccentrically connected specimens.; In general, the gusset plate specimens were failed by sway buckling of the connection. However, for the specimens tested with out-of-plane restraint, local buckling of the free edges was observed. The failure mode of the eccentrically loaded specimens was the yielding of the splice member at the conjunction of gusset-to-splice. In general, except for the eccentrically loaded specimens, the test results indicated that significant yielding of the gusset plate specimens prior to reaching the ultimate load was observed. However, only limited yielding was observed for the specimens with a plate thickness of 6.5 mm. The ultimate load of the specimens increased almost linearly proportional to the gusset plate thickness and decreased with increasing plate size. While the out-of-plane restraint boundary condition had negligible effects on the ultimate load of the compact specimens (500 x 400), the ultimate load of the slender specimens (850 x 700) increased when out-of-plane restraint was applied. A slight decrease in:he ultimate load of the specimens was observed when a 30{dollar}spcirc{dollar} brace was used instead of a 45{dollar}spcirc{dollar}. The beam and column moment had only negligible effects on the ultimate load of the specimens; however, yielding of the specimens was detected at a load level significantly lower than that predicted by the Whitmore method. The out-of-plane loading eccentricity significantly reduced the ultimate load of the specimen.; The finite element analyses of the plastic bifurcation buckling loads of the test specimens carried out using the program ANSYS were in reasonable agreement with the test results. The elastic stress predicted by ANSYS at the gusset plate area beneath the splicing member agreed well with the experimental stress evaluated from the rosette readings. For the eccentrically loaded specimens, the load deflection analysis done by ANSYS also compared well with the experimental ultimate loads. Based on the available test data and the finite element analysis, a modified Thornton method is proposed to estimate the inelastic buckling strength of the gusset plate specimens. The beam-column equation is also recommended for the design of eccentrically loaded specimens.
机译:角撑板连接件通常用于桥梁桁架和支撑钢框架中,以将力从一个结构构件传递到另一个结构构件。由于这些连接的复杂性,很难评估角撑板连接的强度。因此,启动了一项研究计划,以通过测试全尺寸对角撑杆连接来研究角撑板连接的抗压性能和极限强度。总共对19个样本进行了21个测试。测试参数包括角撑板的板厚,尺寸,支撑角度(30 spsp围{dol}和45 {sp围{dol})和平面外约束边界条件。此外,通过对梁施加梁和柱矩,研究了框架作用对扣板连接的压缩行为的影响。还通过测试三个偏心连接的试样检查了平面外偏心率,这种偏心率在带有开槽拼接板的管状支撑构件中经常发生。通常,角撑板试样由于连接的摇摆屈曲而失效。但是,对于使用面外约束进行测试的标本,观察到了自由边缘的局部弯曲。偏心加载试样的破坏模式是在角撑板到接头处的接头构件的屈服。通常,除了偏心加载的试样外,测试结果表明,在达到极限荷载之前,可观察到角撑板试样的明显屈服。但是,对于板厚为6.5 mm的样品,只能观察到有限的屈服。试样的极限载荷几乎与角撑板的板厚成线性比例,随板尺寸的增加而减小。虽然平面外约束边界条件对紧凑样本的极限载荷(500 x 400)的影响可以忽略不计,但当应用平面外约束时,细长样本的极限载荷(850 x 700)会增加。当使用30 {美元的支撑代替45sp美元的支撑时,观察到样品的最终载荷略有下降。梁和柱的弯矩对试样的极限载荷的影响可忽略不计。但是,在载荷水平明显低于Whitmore方法预测的载荷水平下检测到了试样的屈服。平面外的载荷偏心率显着降低了样品的极限载荷。使用ANSYS程序对试样的塑料分叉屈曲载荷进行的有限元分析与试验结果基本吻合。 ANSYS预测的在拼接构件下方的角撑板区域的弹性应力与从莲座丛读数评估的实验应力非常吻合。对于偏心试样,ANSYS进行的荷载挠度分析也与实验极限荷载进行了很好的比较。基于现有的测试数据和有限元分析,提出了一种改进的Thornton方法来估计角撑板试样的非弹性屈曲强度。还建议将梁柱方程式用于偏心试样的设计。

著录项

  • 作者

    Yam, Michael Chi-Ho.;

  • 作者单位

    University of Alberta (Canada).;

  • 授予单位 University of Alberta (Canada).;
  • 学科 Engineering Civil.
  • 学位 Ph.D.
  • 年度 1994
  • 页码 372 p.
  • 总页数 372
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 建筑科学;
  • 关键词

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