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基于工艺和有限元模拟的PBAT聚合物拉胀结构变形行为研究

Investigation of Auxetic Structural Deformation Behavior of PBAT Polymers Using Process and Finite Element Simulation.

作者信息

Schneider Yanling, Guski Vinzenz, Sahin Ahmet O, Schmauder Siegfried, Kadkhodapour Javad, Hufert Jonas, Grebhardt Axel, Bonten Christian

机构信息

Institute for Materials Testing, Materials Science and Strength of Materials (IMWF), University of Stuttgart, Pfaffenwaldring 32, D-70569 Stuttgart, Germany.

Department of Mechanical Engineering, Shahid Rajaee Teacher Training University, Tehran P.O. Box 16785-163, Iran.

出版信息

Polymers (Basel). 2023 Jul 24;15(14):3142. doi: 10.3390/polym15143142.

Abstract

The current work investigates the auxetic tensile deformation behavior of the inversehoneycomb structure with 5 × 5 cells made of biodegradable poly(butylene adipate-coterephthalate) (PBAT). Fused deposition modeling, an additive manufacturing method, was used to produce such specimens. Residual stress (RS) and warpage, more or less, always exist in such specimens due to their layer-by-layer fabrication, i.e., repeated heating and cooling. The RS influences the auxetic deformation behavior, but its measurement is challenging due to its very fine structure. Instead, the finite-element (FE)-based process simulation realized using an ABAQUS plug-in numerically predicts the RS and warpage. The predicted warpage shows a negligibly slight deviation compared to the design topology. This process simulation also provides the temperature evolution of a small-volume material, revealing the effects of local cyclic heating and cooling. The achieved RS serves as the initial condition for the FE model used to investigate the auxetic tensile behavior. With the outcomes from FE calculation without consideration of the RS, the effect of the RS on the deformation behavior is discussed for the global force-displacement curve, the structural Poisson's ratio evolution, the deformed structural status, the stress distribution, and the evolution, where the first three and the warpage are also compared with the experimental results. Furthermore, the FE simulation can easily provide the global stress-strain flow curve with the total stress calculated from the elemental stresses.

摘要

当前的工作研究了由可生物降解的聚(己二酸丁二醇酯-对苯二甲酸丁二醇酯)(PBAT)制成的具有5×5个单元的反蜂巢结构的拉胀拉伸变形行为。采用熔融沉积建模这种增材制造方法来制备此类试样。由于这些试样是逐层制造的,即反复加热和冷却,或多或少总会存在残余应力(RS)和翘曲。残余应力会影响拉胀变形行为,但由于其结构非常精细,对其进行测量具有挑战性。相反,使用ABAQUS插件实现的基于有限元(FE)的过程模拟可以数值预测残余应力和翘曲。预测的翘曲与设计拓扑相比显示出可忽略不计的微小偏差。该过程模拟还提供了小体积材料温度的演变情况,揭示了局部循环加热和冷却带来的影响。所获得的残余应力作为用于研究拉胀拉伸行为有限元模型的初始条件。结合不考虑残余应力的有限元计算结果,针对整体力-位移曲线、结构泊松比演变、变形后的结构状态、应力分布及演变情况,讨论了残余应力对变形行为的影响,其中前三项以及翘曲情况也与实验结果进行了比较。此外,有限元模拟可以很容易地根据单元应力计算出总应力,并提供整体应力-应变流动曲线。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8835/10384392/6bdb8debb83e/polymers-15-03142-g001.jpg

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