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FINITE ELEMENT TRANSIENT DYNAMIC ANALYSIS OF DELAMINATED COMPOSITE CONICAL SHELLS SUBJECT TO LOW VELOCITY IMPACT

机译:受分层复合锥形壳体受低速冲击的有限元瞬态动力学分析

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This paper investigates on the transient dynamic response of delaminated composite pretwisted shallow conical shells subjected to low velocity normal impact. Turbomachinery blades with low aspect ratio could be idealized as twisted rotating cantilever composite conical shells. To derive the dynamic equilibrium equation, Lagrange's equation of motion is used for moderate rotational speeds neglecting the Coriolis effect. An eight noded isoparametric plate bending element is employed in the finite element formulation incorporating rotary inertia and effects of transverse shear deformation based on Mindlin's theory. To satisfy the compatibility of deformation and equilibrium of resultant forces and moments at the delamination crack front a multipoint constraint algorithm is incorporated which leads to unsymmetric stiffness matrices. The modified Hertzian contact law which accounts for permanent indentation is utilized to compute the contact force, and the time dependent equations are solved by Newmark's time integration algorithm. Parametric studies are conducted in respect of triggering parameters like location of delamination, angle of twist and velocity of impactor for the centrally impacted graphite-epoxy torsion stiff composite conical shells.
机译:本文研究了较低速度正常冲击的分层复合预料浅锥形壳的瞬态动力响应。具有低纵横比的涡轮机械叶片可以理想化为扭曲的旋转悬臂复合锥形壳。为了导出动态平衡方程,拉格朗日的运动方程用于忽视科里奥利效应的中等转速。一种八个点开的等托盘弯曲元件采用旋转惯性的有限元制剂和横向剪切变形的旋转惯性型基于思维林理论的影响。为了满足所得力的变形和平衡的兼容性和分层裂缝前的矩的恰当,并入了多点约束算法,其导致非对称刚度矩阵。用于将永久性压痕的修改的赫斯琴联系法用于计算接触力,并通过纽马克的时间集成算法来解决时间依赖方程。参数研究是关于触发参数的参数,如分层的位置,抗冲击器的扭曲角度,用于中央撞击的石墨 - 环氧扭转僵硬复合锥形壳。

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