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Development of superelastic SMA angles as seismic-resistant self-centering devices

机译:超弹性SMA角度的开发作为地震抗性自定心装置

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Given their inherent unique superelasticity, the use of shape memory alloys (SMAs) to build seismic-resistant self-centering devices has presented attractive prospects in the field of earthquake resilience. This work investigates the mechanical behavior of superelastic SMA angles subjected cyclic loading. The deformation mechanism in superelastic SMA angles is elaborated first. Subsequently, experimental investigations of SMA angles are conducted using different loading protocols. Various mechanical properties, such as strength, self-centering and energy dissipation capabilities, are evaluated under varying loading amplitudes. Testing results show SMA angles can exhibit satisfactory flag-shaped hysteresis loops under multiple loading cycles. Different measures, such as the training process or the inclusion of reversed compressive cycles, can stabilize the hysteresis loops effectively and minimize the strength degradation and residual deformation in the repeated cycles. The cyclic behavior of the SMA angles is also simulated by using the finite element method to complement the observation and understanding obtained from the experiments. The proposed SMA angles are expected to offer an effective self-centering function to engineering structures toward earthquake resilience.
机译:鉴于其固有的独特超弹性,使用形状记忆合金(SMA)以构建地震抗性的自定心设备在地震恢复力领域呈现出有吸引力的前景。这项工作研究了超弹性SMA角度受循环载荷的力学行为。首先阐述了超弹性SMA角度的变形机制。随后,使用不同的装载方案进行SMA角度的实验研究。在不同的装载幅度下评估各种机械性能,例如强度,自定心和能量耗散能力。测试结果显示SMA角度可以在多个装载周期下表现出令人满意的旗帜形磁滞环。不同的措施,例如训练过程或包含反转的压缩循环,可以有效地稳定滞后环,并最小化重复循环中的强度降解和残留变形。通过使用有限元方法来补充从实验中获得的观察和理解,还模拟SMA角度的循环行为。建议的SMA角度预计将提供有效的自定心功能,以便在地震恢复力方面进行工程结构。

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