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Minimum dynamic response of cantilever beams supported by optimal elastic springs

机译:最佳弹性弹簧支撑的悬臂梁的最小动态响应

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摘要

In this study, optimal distribution of springs which supports a cantilever beam is investigated to minimize two objective functions defined. The optimal size and location of the springs are ascertained to minimize the tip deflection of the cantilever beam. Afterwards, the optimization problem of springs is set up to minimize the tip absolute acceleration of the beam. The Fourier Transform is applied on the equation of motion and the response of the structure is defined in terms of transfer functions. By using any structural mode, the proposed method is applied to find optimal stiffness and location of springs which supports a cantilever beam. The stiffness coefficients of springs are chosen as the design variables. There is an active constraint on the sum of the stiffness coefficients and there are passive constraints on the upper and lower bounds of the stiffness coefficients. Optimality criteria are derived by using the Lagrange Multipliers. Gradient information required for solution of the optimization problem is analytically derived. Optimal designs obtained are compared with the uniform design in terms of frequency responses and time response. Numerical results show that the proposed method is considerably effective to determine optimal stiffness coefficients and locations of the springs. stiffness
机译:在这项研究中,研究了支撑悬臂梁的弹簧的最佳分布,以最大程度地减少定义的两个目标函数。确定弹簧的最佳尺寸和位置,以最大程度地减小悬臂梁的尖端偏转。然后,设置弹簧的优化问题以最小化梁的尖端绝对加速度。将傅立叶变换应用于运动方程,并根据传递函数定义结构的响应。通过使用任何结构模式,所提出的方法可用于找到支撑悬臂梁的弹簧的最佳刚度和位置。选择弹簧的刚度系数作为设计变量。刚度系数的总和有一个主动约束,刚度系数的上下边界有一个被动约束。最佳准则是通过使用拉格朗日乘数得出的。解析得出优化问题所需的梯度信息。在频率响应和时间响应方面,将获得的最佳设计与统一设计进行比较。数值结果表明,所提出的方法对于确定最佳刚度系数和弹簧位置非常有效。刚性

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