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APPLYING FRACTIONAL CALCULUS METHOD TO EVALUATION OF DAMPING IN TESTING APPARATUS OF HARD DRIVE SYSTEMS

机译:分数阶计算法在硬驱系统测试装置阻尼评估中的应用

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Fractional Calculus Method is increasingly recognized as central to the interpretation and solution of nonlinear differential equation which is included time power domain [1]. Some of the authors have been engaging in the development of an nanometer positioning actuator (Hereinafter referred to as " Nano-Motion Actuator or N.M.A.".) which is used for a spin-stand. The spin-stand is a testing apparatus for the hard disk drive system in computer hardware [2]. The N.M.A. needs a large working displacement range over 10 micrometers and its primary resonance frequency should be kept at as high a frequency domain as possible. Moreover, positioning resolution of the N.M.A. is required to be less than 0.5 nanometers (10 meters). A new damping mechanism which consists of visco-elastic material has recently been developed for the N.M.A. to improve vibration response characteristics [3]. However, the damping mechanism causes a new vibration problem and the characteristic of the visco-elastic material needs to be clarified. A response spectrum of the N.M.A. is examined by applying a sinusoidal sweep test. Fractional Calculus Differential Equation is introduced for curve fitting of the response spectrum of the N.M.A. Finally, the calculated results are compared with the experimental results, and both agree.
机译:分数微积分法越来越被认为是包括时间功率域的非线性微分方程的解释和解的核心[1]。一些作者已经从事纳米定位致动器的开发(下文中称为“纳米运动致动器或N.m.a”。)用于旋转架。 Spin-Stand是计算机硬件中硬盘驱动系统的测试设备[2]。 n.m.a.需要在10微米上的大工作位移范围内,其初级谐振频率应尽可能高的频域保持。而且,定位n.m.a的分辨率。需要小于0.5纳米(10米)。最近开发了一种由粘弹性材料组成的新阻尼机构,用于n.m.a。提高振动响应特性[3]。然而,阻尼机构导致新的振动问题,需要澄清粘弹性材料的特性。 n.m.a的响应谱。通过应用正弦扫描测试来检查。为N.M.A的响应谱的曲线拟合引入了分数差分电方程。最后,将计算结果与实验结果进行比较,两者都同意。

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