Problems on Delamination of Fibrous Composites (to the 110TH Anniversary of the Birth of Yu. N. Rabotnov)

IF 1.5 4区 材料科学 Q4 MATERIALS SCIENCE, COMPOSITES Mechanics of Composite Materials Pub Date : 2024-06-28 DOI:10.1007/s11029-024-10208-z
A. N. Polilov
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Abstract

The main, well-known scientific results were obtained by outstanding scientist Yu. N. Rabotnov in the field of creep theory, hereditary elasticity, damage mechanics, technical theory of shells. However, in the last years of his life, the academician Yu. N. Rabotnov was keen on some problems in the field of mechanics of fiber-reinforced composite materials. He proposed new, original strength criteria, simplified methods for ply-by-ply calculation of composite laminates. One of Yu. N. Rabotnov’s scientific passions were connected with description of specific fracture modes of layered fibrous composites having the types of delamination and splitting. On the base of energy fracture criterion, it’s possible to estimate the scale effect of strength – the dependence of critical stresses on the absolute sizes of composite members. Such models of specific fracture modes make it possible to estimate the danger of such technological defects as thin polymeric film between composite layers.

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纤维复合材料的分层问题(纪念尤-尼-拉波特诺夫诞辰110周年)
杰出科学家尤-尼-拉博特诺夫在蠕变理论、遗传弹性、损伤力学、壳体技术理论等领域取得了著名的主要科学成果。拉博特诺夫在蠕变理论、遗传弹性、损伤力学、壳体技术理论等领域取得了著名的主要科研成果。然而,在生命的最后几年,于-尼-拉博特诺夫院士热衷于一些研究领域。拉博特诺夫院士热衷于纤维增强复合材料力学领域的一些问题。他提出了新的、独创的强度标准,以及逐层计算复合材料层压板的简化方法。Yu.N. 拉博特诺夫的科研爱好之一是描述具有分层和劈裂类型的层状纤维复合材料的特定断裂模式。在能量断裂准则的基础上,可以估算出强度的规模效应--临界应力与复合材料构件绝对尺寸的关系。这种特定断裂模式模型可以估算出复合材料层之间的聚合物薄膜等技术缺陷的危险性。
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来源期刊
Mechanics of Composite Materials
Mechanics of Composite Materials 工程技术-材料科学:复合
CiteScore
2.90
自引率
17.60%
发文量
73
审稿时长
12 months
期刊介绍: Mechanics of Composite Materials is a peer-reviewed international journal that encourages publication of original experimental and theoretical research on the mechanical properties of composite materials and their constituents including, but not limited to: damage, failure, fatigue, and long-term strength; methods of optimum design of materials and structures; prediction of long-term properties and aging problems; nondestructive testing; mechanical aspects of technology; mechanics of nanocomposites; mechanics of biocomposites; composites in aerospace and wind-power engineering; composites in civil engineering and infrastructure and other composites applications.
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