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Topology optimization and seismic collapse assessment of shape memory alloy(SMA)-braced frames:Effectiveness of Fe-based SMAs
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作者 Aydin HASSANZADEH Saber MORADI 《Frontiers of Structural and Civil Engineering》 SCIE EI CSCD 2022年第3期281-301,共21页
This paper presents a seismic topology optimization study of steel braced frames with shape memory alloy(SMA)braces.Optimal SMA-braced frames(SMA-BFs)with either Fe-based SMA or NiTi braces are determined in a perform... This paper presents a seismic topology optimization study of steel braced frames with shape memory alloy(SMA)braces.Optimal SMA-braced frames(SMA-BFs)with either Fe-based SMA or NiTi braces are determined in a performance-based seismic design context.The topology optimization is performed on 5-and 10-story SMA-BFs considering the placement,length,and cross-sectional area of SMA bracing members.Geometric,strength,and performance-based design constraints are considered in the optimization.The seismic response and collapse safety of topologically optimal SMA-BFs are assessed according to the FEMA P695 methodology.A comparative study on the optimal SMA-BFs is also presented in terms of total relative cost,collapse capacity,and peak and residual story drift.The results demonstrate that Fe-based SMA-BFs exhibit higher collapse capacity and more uniform distribution of lateral displacement over the frame height while being more cost-effective than NiTi braced frames.In addition to a lower unit price compared to NiTi,Fe-based SMAs reduce SMA material usage.In frames with Fe-based SMA braces,the SMA usage is reduced by up to 80%.The results highlight the need for using SMAs with larger recoverable strains. 展开更多
关键词 topology optimization shape memory alloy fe-based SMA steel braced frames performance-based seismic design collapse assessment
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ECAP工艺细化铁基形状记忆合金研究 被引量:4
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作者 张伟 李宁 +3 位作者 黄姝珂 文玉华 胥永刚 王杉华 《四川大学学报(工程科学版)》 EI CAS CSCD 北大核心 2005年第5期107-111,共5页
研究等通道转角挤压(equal channel angular pressing,简称ECAP)技术细化Fe基形状记忆合金。研究结果发现,300℃下Fe-17.8Mn-4.73Si-7.80Cr-4.12Ni(wt%)第一道次挤压力为78 kN,与理论计算值70.6 kN接近;第二道次挤压力上升明显,达到240... 研究等通道转角挤压(equal channel angular pressing,简称ECAP)技术细化Fe基形状记忆合金。研究结果发现,300℃下Fe-17.8Mn-4.73Si-7.80Cr-4.12Ni(wt%)第一道次挤压力为78 kN,与理论计算值70.6 kN接近;第二道次挤压力上升明显,达到240 kN。金相观察显示挤压后的合金晶粒沿剪切方向拉长,TEM分析显示700℃退火30 min后再结晶形成0.3μm左右细小晶粒,与未挤压试样相比晶粒明显细化。ECAP挤压极大的提高了材料的力学性能,屈服强度由未挤压时220 MPa提高到挤压后的890 MPa;挤压后退火的合金恢复率略有提高,在预变形ε=6.5%时,获得η=74%的形状恢复率。 展开更多
关键词 等通道转角挤压 ECAP 铁基形状记忆合金 细化
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