研究生: |
郭程輝 Erwin-Erwin Erwin |
---|---|
論文名稱: |
H-型鋼梁之挫屈行為研究 Experimental Study on Buckling Behavior of H-Shaped Steel Beam |
指導教授: |
陳正誠
Cheng-Cheng Chen |
口試委員: |
陳柏端
Bo-Duan Chen 陳瑞華 Rwey-Hua Cherng |
學位類別: |
碩士 Master |
系所名稱: |
工程學院 - 營建工程系 Department of Civil and Construction Engineering |
論文出版年: | 2011 |
畢業學年度: | 99 |
語文別: | 英文 |
論文頁數: | 98 |
中文關鍵詞: | lateral torsional buckling 、composite beam 、lateral instability 、continuous torsional support |
外文關鍵詞: | lateral torsional buckling, composite beam, lateral instability, continuous torsional support |
相關次數: | 點閱:448 下載:12 |
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In seismic design of steel beam for building, lateral brace is a common lateral support device used nowadays to prevent the lateral torsional buckling. Lateral brace will restraint the lateral displacement at the bottom flange of H shaped beam. The lateral displacement of the top flange will be restrained by floor slab. But, the floor slab seems not only can restrain the lateral displacement but also can provide lateral torsional stiffness to the beam. In this test, one beam with lateral brace and three beams without lateral brace were tested. All of the beams have slab casted on them. Two special detailing were used for the beam without lateral brace to prevent the bottom flange deformation besides of lateral brace.
The test results show that, the slab can increase the ductility of the steel beam compare to the beam without slab (ABRI report). The beam can exhibit a very good ductility although lateral brace is not provided when the slab is in presence. The local buckling and lateral torsional buckling are concentrated at the reduced section region when slab is in presence.
In seismic design of steel beam for building, lateral brace is a common lateral support device used nowadays to prevent the lateral torsional buckling. Lateral brace will restraint the lateral displacement at the bottom flange of H shaped beam. The lateral displacement of the top flange will be restrained by floor slab. But, the floor slab seems not only can restrain the lateral displacement but also can provide lateral torsional stiffness to the beam. In this test, one beam with lateral brace and three beams without lateral brace were tested. All of the beams have slab casted on them. Two special detailing were used for the beam without lateral brace to prevent the bottom flange deformation besides of lateral brace.
The test results show that, the slab can increase the ductility of the steel beam compare to the beam without slab (ABRI report). The beam can exhibit a very good ductility although lateral brace is not provided when the slab is in presence. The local buckling and lateral torsional buckling are concentrated at the reduced section region when slab is in presence.
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