标题: 钢梁接SRC柱之梁柱接头力学行为之数值模拟分析
Numerical Simulation on Mechanical Behavior of Steel Beam to Steel Reinforced Concrete (SRC) Column Connections
作者: 林意晴
Lin, Yi-Ching
翁正强
Weng, Cheng-Chiang
土木工程学系
关键字: SRC;梁柱接头;SRC柱;钢梁;反复载重试验;接头区;剪力强度;耐震性能;韧性;数值模拟;ANSYS;SRC;Connections;SRC Column;Steel Beam;Numerical Simulation;Seismic Behavior;Panel Zone;Shear Strength;Ductility;ANSYS
公开日期: 2009
摘要: 近年来许多大尺寸之“钢梁接SRC柱”之梁柱接头(Steel Beam-to-Steel Reinforced Concrete Column Connections,简称“S-SRC接头”)的反复载重耐震试验结果显示,此种梁柱接头拥有良好的耐震能力。然而,由于进行大尺寸试验必须消耗相当的时间、人力与成本,因此以数值模拟分析之方式日渐成为瞭解梁柱接头力学行为的另一种选择。本研究采用ANSYS有限元素分析软体,针对五组实尺寸S-SRC梁柱接头之反复载重试验结果进行数值模拟分析。首先,依据试验之实尺寸试体建立其数值分析模型,其次将数值分析结果与试验结果进行比较与讨论。
  分析结果显示,由于钢梁插入SRC柱内的部份受到接头区混凝土的有效束制,使得钢梁可以于SRC柱混凝土面外发展出良好的塑性铰,且其发生位置远离梁柱接头内部之焊道,可有效避免焊道发生脆性破坏。研究结果显示,经过适当设计之S-SRC梁柱接头其钢梁端部不须经由补强或减弱(切削钢梁翼板断面)之方式,即能发挥预期之强度与韧性;同时亦因钢梁不须切削或补强,有助于节省梁柱接头区之钢梁制作成本。另一方面,ANSYS之分析亦证实在梁柱接头区之H型钢柱腹板加焊适当之叠合板,可有效提升梁柱接头区之剪力强度与抵抗剪力变形的能力,进一步减少梁柱接头区混凝土开裂的情形。本研究亦初步证实,于SRC梁柱接头区加焊足够厚度之叠合板以取代接头区之围束箍筋大致上是可行的,此种作法将有助于简化接头区箍筋施工之复杂性。整体而言,本研究经由ANSYS分析S-SRC梁柱接头力学行为之结果与前人之试验结果大致相近,显示本研究建立之数值分析模型可得到合理的模拟结果,并证明此种S-SRC梁柱接头在适当的设计下具备良好的耐震能力。
During the past decade, many test results of steel beam-to-steel reinforced concrete column (S-SRC) connections have shown satisfactory seismic performance. However, due to the fact that the cost of conducting full-scale experiment is expensive and time consuming, an alternative approach using the numerical simulation technique has become increasingly desirable. The objective of this research is to use the highly recognized finite element method (FEM) computer software ANSYS to numerically simulate the mechanical behavior of the S-SRC connections. In the first stage, a FEM model simulated the SRC test specimen were generated and analyzed. The numerical results were compared to the SRC test data to confirm the validity of the FEM model. In the second stage, the parameters related to the design of the S-SRC connections were investigated using the valid FEM model obtained from the previous stage.
The numerical results showed that the reinforced concrete in the connection zone provided “effective constraint” to the steel beam which was embedded in the SRC column. This constraint helped the steel beam to develop plastic hinge right out the SRC column face, and the welded joint can be protected from premature failure. In addition, the ANSYS analysis also confirmed that welding doubler plate on the web of the H-shaped steel can effectively promote the shear strength and reduce the concrete cracking in the connection zone. The aforementioned analysis suggested that it is feasible to substitute the doubler plate for the hoop reinforcements in the SRC connection zone. Finally, it is hoped that the results of this numerical investigation could provide further understanding on the mechanical behavior and the seismic performance of the S-SRC connections.
URI: http://140.113.39.130/cdrfb3/record/nctu/#GT079616501
http://hdl.handle.net/11536/42222
显示于类别:Thesis


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