混合动力复合材料气缸静液压力优化设计

IF 2.3 4区 材料科学 Q3 MATERIALS SCIENCE, COMPOSITES
Akongnwi Nfor Ngwa, Birendra Chaudhary, Helio Matos, Arun Shukla
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引用次数: 0

摘要

本研究探索了在静压载荷条件下,实现玻璃-碳混合复合材料汽缸最高崩溃压力的优化系统。本文通过混合复合材料壳体的实验结果,评估和验证了先前建立的圆柱形复合材料结构在静水压力下的复合屈曲解。它利用经过验证的解析解,通过改变铺层结构、最佳铺层角度、材料含量和每层厚度来优化屈曲压力。对非对称和对称铺层情况进行了优化,以评估混合铺层结构对结构屈曲性能的影响。结果表明,在所有优化情况下,内层采用较厚的玻璃纤维层,最外层采用较硬的碳纤维层,可以获得最大的屈曲崩溃压力,因为这种配置具有较好的抗弯刚度。对于具有非对称结构的杂化复合材料结构,如果玻璃层厚度至少是碳层的两倍,那么当大多数层由玻璃纤维制成时,其坍塌压力可能更高。同样,对于对称和非对称混合结构,轴向抗荷层(0°)应位于层合板的几何中心周围,环向抗荷层(90°)位于最外层或最外层附近,抗剪层(45°)位于这些层之间。此外,直径较小(L/D > 10)的长管由于端部边界条件的影响较小,有利于层合板中所有层的弯曲刚度(90°)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Design Optimization for Hydrostatic Pressure in Hybrid Composite Cylinders

This study explores an optimization system to achieve the highest collapse pressure on glass-carbon hybrid composite cylinders under hydrostatic loading conditions. This work evaluates and validates previously established composite buckling solutions for cylindrical composite structures under hydrostatic pressure with experimental results of hybrid composite shells. It utilizes the validated analytical solution to optimize the buckling pressure by varying layup configuration, optimum layup angle, material content, and thickness of each lamina. The optimization is performed on asymmetric and symmetric layup cases to evaluate the influence of the hybrid layup construction on the buckling performance of the structure. Results show that the thicker glass fiber plies are preferred for inner layers and the stiffer carbon fiber plies for the outermost layers to achieve maximum buckling collapse pressure for all the optimization cases, as this configuration provides superior flexural rigidity. For hybrid composite structures with asymmetric configurations, the collapse pressure can be higher when most layers are made of glass fiber if the glass layers are at least twice as thick as the carbon layers. Similarly, axial-load-resistant layers (0°) should be located around the geometric center of the laminate with the hoop-load-resistant layers (90°) on or near the outermost layers and shear-resistant layers (45°) between these layers for both symmetric and asymmetric hybrid structures. Moreover, long tubes with small diameters (L/D > 10) favor hoop bending stiffnesses (90°) for all layers in the laminate due to less influence of boundary conditions at endcap locations.

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来源期刊
Applied Composite Materials
Applied Composite Materials 工程技术-材料科学:复合
CiteScore
4.20
自引率
4.30%
发文量
81
审稿时长
1.6 months
期刊介绍: Applied Composite Materials is an international journal dedicated to the publication of original full-length papers, review articles and short communications of the highest quality that advance the development and application of engineering composite materials. Its articles identify problems that limit the performance and reliability of the composite material and composite part; and propose solutions that lead to innovation in design and the successful exploitation and commercialization of composite materials across the widest spectrum of engineering uses. The main focus is on the quantitative descriptions of material systems and processing routes. Coverage includes management of time-dependent changes in microscopic and macroscopic structure and its exploitation from the material''s conception through to its eventual obsolescence.
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