Evaluation and optimization of wrinkle resistance in plastic forming of bimetal composite sheets under complex boundary conditions

IF 2.1 3区 工程技术 Q3 MECHANICS
Bing Du, Chaoyang Huang, Fenghua Liu, Hailong Cui, Jingyan Wang
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引用次数: 0

Abstract

Metal composite sheets are widely used in transportation and aerospace due to their comprehensive performance. However, given the property differences of heterogeneous metals, interlayer interactions, and complex forming boundary conditions, they are more prone to wrinkling than single-layer sheets, and their wrinkling mechanism is more complicated. To investigate this mechanism and propose an evaluation method for wrinkle resistance, this study conducts wrinkling tests on bimetal composite sheet wedges under complex boundary conditions. A simulation model for wedge wrinkling is developed using the Buckle-Dynamic algorithm with continuum shell elements in ABAQUS, and experimental results validate the model accuracy. The model is used to analyze the relationships between the stress–strain of each metal layer, the position of the stress-neutral layer, and the thickness direction displacement. Consequently, a method for judging the wrinkling of composite sheets is proposed, which takes the bifurcation time of the integral point strain path of the metal layer where the stress-neutral layer is located as the critical wrinkling time. Based on this, the critical wrinkling strain lines of the composite sheets are established, and their slopes are used to characterize and quantify the wrinkle resistance. Research shows that increasing the proportion of the material with lower hardness in the component layers of the composite sheet and the overall thickness of the sheet will both reduce the number of wrinkles, thereby enhancing wrinkle resistance. This study introduces a method for evaluating the wrinkle resistance of composite sheets under complex boundaries and guides the optimization of their performance in forming.

复杂边界条件下双金属复合材料薄板塑性成形抗皱性评价与优化
金属复合板材以其综合性能在交通运输和航空航天领域得到了广泛的应用。然而,由于非均质金属的性能差异、层间相互作用和复杂的成形边界条件,它们比单层板更容易起皱,起皱机制也更为复杂。为探究其机理并提出抗皱性评价方法,本研究对复杂边界条件下的双金属复合材料楔形板进行了起皱试验。利用ABAQUS中连续壳单元的屈曲动力学算法建立了楔形起皱的仿真模型,实验结果验证了模型的准确性。利用该模型分析了各金属层的应力应变、应力中性层的位置与厚度方向位移之间的关系。在此基础上,提出了一种以应力中性层所在金属层积分点应变路径分岔时间作为临界起皱时间的复合材料薄板起皱判断方法。在此基础上,建立了复合材料薄板的临界起皱应变线,并利用其斜率来表征和量化抗皱性能。研究表明,增加复合板材组成层中硬度较低的材料的比例,增加复合板材的整体厚度,都可以减少起皱的数量,从而增强抗皱性。介绍了复合材料薄板在复杂边界条件下的抗皱性能评估方法,指导了复合材料薄板在成形过程中的性能优化。
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
Meccanica
Meccanica 物理-力学
CiteScore
4.70
自引率
3.70%
发文量
151
审稿时长
7 months
期刊介绍: Meccanica focuses on the methodological framework shared by mechanical scientists when addressing theoretical or applied problems. Original papers address various aspects of mechanical and mathematical modeling, of solution, as well as of analysis of system behavior. The journal explores fundamental and applications issues in established areas of mechanics research as well as in emerging fields; contemporary research on general mechanics, solid and structural mechanics, fluid mechanics, and mechanics of machines; interdisciplinary fields between mechanics and other mathematical and engineering sciences; interaction of mechanics with dynamical systems, advanced materials, control and computation; electromechanics; biomechanics. Articles include full length papers; topical overviews; brief notes; discussions and comments on published papers; book reviews; and an international calendar of conferences. Meccanica, the official journal of the Italian Association of Theoretical and Applied Mechanics, was established in 1966.
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