论文标题

用支持材料的直接墨水写作的角度准确性

Corner accuracy in direct ink writing with support material

论文作者

Friedrich, Leanne, Begley, Matthew

论文摘要

能够控制嵌入颗粒的位置和方向的3D打印方法在细胞模式和复合支架中具有有希望的应用。基于挤出的添加剂制造技术(例如融合沉积建模和直接墨水写作)可以在角落经历粒子图案缺陷,这可能会阻碍拐角处的细胞存活并创建意外的属性梯度。在这里,我们提出了模型,以预测受毛细血管和粘性耗散影响的中等粘度油墨处的沉积线的行为。使用原始的墨水和基于Carbopol的支撑凝胶,我们用牙齿树脂基的复合油墨编写多边形,该材料在细丝的中心包含微粒的狭窄分布。拐角的内部和外表面之间的拉普拉斯压力差异驱动角平滑,其中拐角的内半径增加。双重沉积或两次在同一区域打印,驱动角肿胀,其中多余的墨水转移到角落的外边缘。快速转弯会产生铃声,其中舞台中的振动在打印路径中的振荡中表现出来。沉积后立即在角落的粒子分布中显而易见肿胀和振铃效应,而印刷结构有时间放松后的平滑效果显而易见。当喷嘴返回以编写相邻线时,它会通过擦除在放松期间出现的缺陷来施加剪切应力,从而减轻拐角处的微观结构。使用支撑浴而不是按层支持抑制微观结构的缺陷。

3D printing methods which enable control over the position and orientation of embedded particles have promising applications in cell patterning and composite scaffolds. Extrusion-based additive manufacturing techniques such as fused deposition modeling and direct ink writing can experience particle patterning defects at corners which could hinder cell survival at corners and create unintended property gradients. Here, we propose models which predict the behavior of deposited lines at corners for moderate viscosity inks which are impacted by both capillarity and viscous dissipation. Using direct ink writing with acoustophoresis and a Carbopol-based support gel, we write polygons out of dental resin-based composite inks containing a narrow distribution of microparticles at the center of the filament. A Laplace pressure differential between the inner and outer surfaces of the corner drives corner smoothing, wherein the inner radius of the corner increases. Double deposition, or printing on the same area twice, drives corner swelling, wherein excess ink is diverted to the outer edge of the corner. Fast turns at corners produce ringing, wherein vibrations in the stage manifest in oscillations in the print path. Swelling and ringing effects are apparent in the particle distributions at corners immediately after deposition, while smoothing effects are apparent after the printed structure has had time to relax. When the nozzle returns to write a neighboring line, it imposes shear stresses which mitigate inconsistencies in microstructure at corners by erasing defects which appeared during relaxation. Using a support bath instead of layer-by-layer support suppresses microstructural corner defects.

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