Rosnitschek Tobias, Seefeldt Andressa, Alber-Laukant Bettina, Neumeyer Thomas, Altstädt Volker, Tremmel Stephan
Engineering Design and CAD, University of Bayreuth, Universitaetsstr. 30, 95447 Bayreuth, Germany.
Neue Materialien Bayreuth GmbH, Gottlieb-Keim-Str. 60, 95448 Bayreuth, Germany.
Materials (Basel). 2021 Sep 9;14(18):5173. doi: 10.3390/ma14185173.
This study focuses on the effect of part geometry and infill degrees on effective mechanical properties of extrusion additively manufactured stainless steel 316L parts produced with BASF's Ultrafuse 316LX filament. Knowledge about correlations between infill degrees, mechanical properties and dimensional deviations are essential to enhance the part performance and further establish efficient methods for the product development for lightweight metal engineering applications. To investigate the effective Young's modulus, yield strength and bending stress, standard testing methods for tensile testing and bending testing were used. For evaluating the dimensional accuracy, the tensile and bending specimens were measured before and after sintering to analyze anisotropic shrinkage effects and dimensional deviations linked to the infill structure. The results showed that dimensions larger than 10 mm have minor geometrical deviations and that the effective Young's modulus varied in the range of 176%. These findings provide a more profound understanding of the process and its capabilities and enhance the product development process for metal extrusion-based additive manufacturing.
本研究聚焦于零件几何形状和填充率对采用巴斯夫Ultrafuse 316LX长丝通过挤出增材制造的316L不锈钢零件有效力学性能的影响。了解填充率、力学性能和尺寸偏差之间的相关性对于提高零件性能以及进一步建立用于轻质金属工程应用产品开发的有效方法至关重要。为了研究有效杨氏模量、屈服强度和弯曲应力,采用了拉伸试验和弯曲试验的标准测试方法。为了评估尺寸精度,在烧结前后对拉伸和弯曲试样进行测量,以分析各向异性收缩效应以及与填充结构相关的尺寸偏差。结果表明,尺寸大于10毫米的零件具有较小的几何偏差,有效杨氏模量在176%的范围内变化。这些发现为该工艺及其能力提供了更深入的理解,并改进了基于金属挤出的增材制造的产品开发过程。