双层复合材料层压板的低速冲击(LVI)和冲击后压缩(CAI)

IF 6.3 2区 材料科学 Q1 MATERIALS SCIENCE, COMPOSITES
Peyman Shabani , Lucy Li , Jeremy Laliberte
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引用次数: 0

摘要

与其他材料系统相比,可定制性是纤维增强复合材料的一个关键优势。虽然定制单个孤立的层压板相对简单,但在设计较大的集成组件时,要确保层压板之间的兼容性并避免局部刚度的急剧变化,就会面临挑战。创新的双层(Double-Double,DD)层压板设计方法通过整合由+ϕ、-ϕ、+ψ和-ψ层取向组成的 4 层构件,简化了层压板的优化和加工。作为一个相对较新的概念,DD 层压板设计需要经过仔细评估,以确保其性能与传统设计相当。本研究比较了在低速冲击(LVI)和冲击后压缩(CAI)载荷下,由 0°、90° 和 ±45° 层向组成的四轴(QUAD)层压板与等效 DD 层压板的冲击损伤容限。为此,我们使用了经过验证的三维高保真有限元模型,该模型能够捕捉纤维断裂、分裂、扭结以及基体开裂和分层。开发了一种计算机工具,用于识别等效的 DD 层压板,并找到实现层叠均匀化的最佳堆叠顺序。为 [0/45/90/-45]4s 选择了三种等效 DD 层压。第一种层压板具有相等的面内刚度[A]矩阵([67.5/-22.5/22.5/-67.5]8T),第二种层压板具有相等的抗弯刚度[D]矩阵([64.5/-17/17/-64.5]8T),第三种层压板([65.5/-18.5/18.5/-65.5]8T)具有相似的[D]矩阵,同时将[A]矩阵各元素之间的差异保持在 10% 以下。结果表明,可以用等效的 DD 板材替代 QUAD 板材,而不会影响冲击损伤耐受性,同时还能受益于 DD 板材配置在设计和制造方面的改进。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Low-velocity impact (LVI) and compression after impact (CAI) of Double-Double composite laminates
Tailorability is a key advantage of fiber-reinforced composites over other material systems. While tailoring a single isolated laminate is relatively simple, challenges arise when designing larger integrated components while ensuring compatibility between laminates and avoiding sharp changes in local stiffness. The innovative Double-Double (DD) laminate design method simplifies the optimization and processing of laminates by incorporating 4-ply building blocks consisting of +ϕ, −ϕ, +ψ, and −ψ ply orientations. As a relatively new concept, DD laminate design requires careful assessment to ensure its performance is equivalent to that of conventional designs. The current study compares impact damage tolerance of quadriaxial (QUAD) laminates consisting of 0°, 90°, and ±45° ply orientations with equivalent DD laminates under Low-Velocity Impact (LVI) and Compression After Impact (CAI) loadings. To this end, a validated three-dimensional high-fidelity finite element model capable of capturing fiber breakage, splitting, kinking, as well as matrix cracking and delamination, was used. A computer tool was developed to identify equivalent DD laminates and to find the best stacking sequence for achieving layup homogenization. Three equivalent DD laminates were selected for the [0/45/90/−45]4s. The first laminate had an equal in-plane stiffness [A] matrix ([67.5/–22.5/22.5/−67.5]8T), the second laminate had an equal flexural stiffness [D] matrix ([64.5/−17/17/−64.5]8T), and the third laminate ([65.5/−18.5/18.5/−65.5]8T) had a similar [D] matrix while keeping the difference between each element of [A] matrices below 10 %. The results indicate that the QUAD laminates can be replaced by equivalent DD without compromising impact damage tolerance while benefiting from the improved design and manufacturing ease of the DD laminate configuration.
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来源期刊
Composite Structures
Composite Structures 工程技术-材料科学:复合
CiteScore
12.00
自引率
12.70%
发文量
1246
审稿时长
78 days
期刊介绍: The past few decades have seen outstanding advances in the use of composite materials in structural applications. There can be little doubt that, within engineering circles, composites have revolutionised traditional design concepts and made possible an unparalleled range of new and exciting possibilities as viable materials for construction. Composite Structures, an International Journal, disseminates knowledge between users, manufacturers, designers and researchers involved in structures or structural components manufactured using composite materials. The journal publishes papers which contribute to knowledge in the use of composite materials in engineering structures. Papers deal with design, research and development studies, experimental investigations, theoretical analysis and fabrication techniques relevant to the application of composites in load-bearing components for assemblies, ranging from individual components such as plates and shells to complete composite structures.
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