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Updated: May 10, 2025

Cutting Procedures, Tensile Testing, and Ageing of Flexible Unidirectional Composite Laminates
Published on: April 27, 2019
Investigation of a New Stacking Pattern of Laminates with Approximately Constant Bending Stiffness
Qingnian Liu1,2,3, Yingfeng Shao1,3, Yong Cai4
1State Key Laboratory of Nonlinear Mechanics (LNM), Institute of Mechanics, Chinese Academy of Sciences, Beijing 100190, China.
Abstract:
To achieve laminates with constant bending stiffness to match the high precision requirement of optical systems made of carbon fiber reinforced plastic (CFRP), a new method, the normalized direction factor of bending stiffness (NDFBS), is proposed based on the normalized geometric factor of bending stiffness. Using NDFBS and its variance (VNDFBS), we investigate two common stacking patterns, I and II ([(θ1)/(θ2)/…/(θ)]S and [(θ1/θ2/…/θ)]S) and our proposed new stacking pattern, Pattern III ([(θ1/θ2/…/θ)S]) based on the initial quasi-isotropic laminates, [θ1/θ2/…/θ]. The bending stiffness of the stacking sequence [(45/-45/0/90)S]2 tends to be more uniform than that of [45/-45/0/90]2S, and the order of uniformity in bending stiffness of other stacking sequences is [(60/0/-60)S]4 > [60/0/-60]4S > [(60/0/-60)S]2 > [60/0/-60]2S. Both theoretical deviations and experimental observations confirm that as the cycle number m increased, the uniformity in bending stiffness is improved gradually, except for that of Pattern I. As the cycle number increased, the speed of Pattern III approaching the constant bending stiffness was faster than that of Patterns I and II. Notably, to achieve a nearly identical uniformity in bending stiffness, only the square root of the cycle number of Pattern II was enough for Pattern III. Based on the same initial laminate and cycle number, Pattern III exhibited more uniform bending stiffness and strength, which are appropriate for precision optical components that require dimensional stability, such as space mirrors.
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