Pull-out resistance study of mechanical joints on sandwich materials: a review

IF 2.1 4区 材料科学 Q3 MATERIALS SCIENCE, COMPOSITES
Daniel, Syahwira Taqwa Triadi, R. Wirawan, Ekavianty Prajetelistia, H. Judawisastra
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引用次数: 0

Abstract

ABSTRACT In applications such light train application, sandwich materials require mechanical joints. One major load produced at the mechanical joining is the pull-out load. The scope of this literature review includes pull-out test results, failure mode during the pull-out test, failure load parameters, and an analytical method to determine the maximum pull-out load. The pull-out resistance of the mechanical joint on sandwich material is determined by the failure load and the maximum load. The failure modes on sandwich material include core buckling, shear cracking, tensile rupture and delamination. The failure load of mechanical joints on the sandwich material will increase as insert depth, insert diameter, core thickness and core density increase. Meanwhile, two analytical methods (Aerospace Engineering and Zenkert Methods) are studied, and it is found that the Aerospace Engineering is more accurate. The multiplier for the maximum load value has been found to determine the failure load.
夹芯材料机械接头的拉出阻力研究综述
在轻轨等应用中,夹层材料需要机械连接。在机械连接处产生的一个主要载荷是拉出载荷。本文献综述的范围包括拔出试验结果、拔出试验期间的失效模式、失效载荷参数以及确定最大拔出载荷的分析方法。夹芯材料上机械接头的拔出阻力由失效载荷和最大载荷决定。夹层材料的破坏模式包括芯部屈曲、剪切开裂、拉伸破裂和分层。机械接头对夹芯材料的破坏载荷随嵌套深度、嵌套直径、芯层厚度和芯层密度的增大而增大。同时,对两种分析方法(Aerospace Engineering法和Zenkert法)进行了研究,发现Aerospace Engineering法更准确。找到了最大负载值的乘数来确定故障负载。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Plastics, Rubber and Composites
Plastics, Rubber and Composites 工程技术-材料科学:复合
CiteScore
4.10
自引率
0.00%
发文量
24
审稿时长
4 months
期刊介绍: Plastics, Rubber and Composites: Macromolecular Engineering provides an international forum for the publication of original, peer-reviewed research on the macromolecular engineering of polymeric and related materials and polymer matrix composites. Modern polymer processing is increasingly focused on macromolecular engineering: the manipulation of structure at the molecular scale to control properties and fitness for purpose of the final component. Intimately linked to this are the objectives of predicting properties in the context of an optimised design and of establishing robust processing routes and process control systems allowing the desired properties to be achieved reliably.
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