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Quasi-static test of assembled steel shear panel dampers with optimized shapes

机译:具有优化形状的组装钢剪板阻尼器的准静态测试

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A metallic shear panel damper with the shape optimized by stress contour lines is proposed in this study to mitigate stress concentration, reduce the effect of hot welds, and improve energy consumption efficiency. The stress contour line is defined according to the J2 plasticity theory, and the optimized shape is obtained by assuming that the points on the same contour line yield simultaneously. Different optimized shapes are developed considering various loading conditions. The design formulas for the stiffness and the strength are then derived, and further examined by nine dampers tested quasi-statically. Four are tested laterally under the vertical axial load to simulate real boundary conditions. All dampers can be easily installed or replaced because of the all-bolt connections. The test results demonstrate that the proposed metallic shear damper has a stable energy-dissipation capacity and a better low-cycle fatigue capability than traditional shear dampers without shape optimization. The stiffness and strength design values match the test values very well. The axial deformation in the specimen has been observed and identified due to the interaction among the cyclic axial-shear coupled plasticity, the geometric nonlinearity, and the higher lateral buckling modes. Compared with the non-optimized damper, the distribution of plastic deformation in the proposed dampers is more uniform, and the stress concentration is reduced significantly.
机译:本研究提出了一种通过应力轮廓线优化形状的金属剪力板阻尼器,以减轻应力集中,降低热焊效果并提高能耗效率。应力轮廓线是根据J2塑性理论定义的,并且通过假定同一轮廓线上的点同时屈服来获得最佳形状。考虑到各种加载条件,开发出不同的优化形状。然后得出刚度和强度的设计公式,并由九个经过准静态测试的阻尼器进一步检查。在垂直轴向载荷下横向测试了四个,以模拟实际边界条件。由于采用全螺栓连接,因此可以轻松安装或更换所有风门。测试结果表明,与不进行形状优化的传统剪力阻尼器相比,所提出的金属剪力阻尼器具有稳定的能量耗散能力和更好的低周疲劳能力。刚度和强度设计值与测试值非常匹配。由于循环轴向剪切耦合塑性,几何非线性和较高的横向屈曲模式之间的相互作用,已经观察到并确定了样品中的轴向变形。与非优化阻尼器相比,该阻尼器的塑性变形分布更加均匀,应力集中明显减小。

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