模拟支持的3d打印可生物降解结构表征

Q1 Mathematics GAMM Mitteilungen Pub Date : 2021-11-15 DOI:10.1002/gamm.202100018
Richard Wolfgang Schirmer, Martin Abendroth, Stephan Roth, Lisa Kühnel, Henning Zeidler, Bjoern Kiefer
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引用次数: 4

摘要

在本文中,提出了一项概念验证研究,其中结合了通过数字图像相关,有限元分析和非线性优化技术进行现场全场变形测量,以表征通过粘合剂喷射3d打印的生物基材料的非均质结构行为。这种复合材料的特点是它的可生物降解性和使用传统3D打印机易于制造。粘合剂喷射工艺使创新应用成为可能,如增材制造、高度定制、可回收或可堆肥的包装解决方案。与其他3D打印技术相比,它相对快速且便宜,并且可以利用食品或其他行业的副产品原料粉末。作为获得对复杂工艺-结构-性能关系的模拟支持理解的第一步,在以下操作假设下对生物基粘合剂喷射材料的有效行为进行了第一次定量评估:(i)其机械响应可以通过非线性弹塑性本构律来描述,并通过在结构层面上捕获故障的内聚损伤模型来丰富;(ii)对3d打印部件进行的已建立的机械测试,包括标准化的样品几何形状和光学测量,应产生足够的信息,以便确定相应的材料参数。首先,详细介绍了不同加载轴向和打印方向的光学监测四点弯曲试验结果。然后,对所提出的参数识别策略进行了解释,并从基于实测结构响应数据的定量案例研究中,对其能力和局限性进行了深入讨论。
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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Simulation-supported characterization of 3D-printed biodegradable structures

In this article, a proof-of-concept study is presented, in which in-situ full-field deformation measurements via digital image correlation, finite element analysis, and nonlinear optimization techniques are combined to characterize the heterogeneous structural behavior of a bio-based material 3D-printed via binder jetting. The special features of this composite material are its biodegradability and its easy manufacturability using conventional 3D printers. The binder-jetting process enables innovative applications such as additively manufactured, highly customized, recyclable, or compostable packaging solutions. Compared to other 3D printing techniques, it is relatively fast and inexpensive and can make use of raw material powders that are by-products of the food or other industries. As an initial step towards gaining a simulation-supported understanding of the complex process-structure-property relations, a first quantitative assessment of the effective behavior of a bio-based binder-jetted material is conducted under the following operating assumptions: (i) Its mechanical response can be described by means of a nonlinear elasto-plastic constitutive law, enriched by a cohesive damage model capturing failure on the structural level, (ii) established mechanical tests on a 3D-printed component, involving standardized sample geometries, and optical measurements, should yield sufficient information to allow the identification of the corresponding material parameters. First, experimental results of optically monitored four-point bending tests, with varying alignments of loading axes and printing directions, are presented in detail. Then the proposed parameter identification strategy is explained and its capabilities and limitations, as made evident from quantitative case studies based on the measured structural response data, are thoroughly discussed.

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来源期刊
GAMM Mitteilungen
GAMM Mitteilungen Mathematics-Applied Mathematics
CiteScore
8.80
自引率
0.00%
发文量
23
期刊最新文献
Issue Information Regularizations of forward-backward parabolic PDEs Parallel two-scale finite element implementation of a system with varying microstructure Issue Information Low Mach number limit of a diffuse interface model for two-phase flows of compressible viscous fluids
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