首页> 外文会议>ASME international mechanical engineering congress and exposition >EXPERIMENTAL STUDY OF THE MAXIMUM RESOLUTION AND PACKING DENSITY ACHIEVABLE IN SINTERED AND NON-SINTERED BINDER-JET 3D PRINTED STEEL MICROCHANNELS
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EXPERIMENTAL STUDY OF THE MAXIMUM RESOLUTION AND PACKING DENSITY ACHIEVABLE IN SINTERED AND NON-SINTERED BINDER-JET 3D PRINTED STEEL MICROCHANNELS

机译:烧结和非烧结结合射流3D打印钢微通道可达到的最大分辨率和堆积密度的实验研究

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Developing high-resolution 3D printed metallic microchannels is a challenge especially when there is an essential need for high packing density of the primary metal. While high packing density could be achieved by heating the structure to the sintering temperature, some heat sensitive applications require other strategies to improve the packing density of primary metal. In this study the goal is to develop microchannels with high green (bound) or pack densities on the scale of 100-300 microns which have a robust mechanical structure. Binder-jet 3D printing is an additive manufacturing process in which droplets of binder are deposited via inkjet into a bed of powder. By repeatedly spreading thin layers of powder and depositing binder into the appropriate 2D profiles, complex 3D objects can be created one layer at time. Microchannels with features on the order of 500 microns were fabricated via binder jetting of steel powder and then sintered and/or infiltrated with a secondary material. The droplet volume of the inkjet-deposited binder was varied along with the print orientation. The resolution of the process, the subsequent features sizes of the microchannels, and the overall microchannel quality were studied as a function of droplet volume, orientation, and infiltration level.
机译:开发高分辨率的3D打印金属微通道是一项挑战,尤其是当对基本金属的高堆积密度的基本需求时。虽然可以通过将结构加热到烧结温度来实现高堆积密度,但某些热敏性应用还需要其他策略来提高原始金属的堆积密度。在这项研究中,目标是开发具有坚固的机械结构,具有100-300微米规模的高绿色(结合)或堆积密度的微通道。粘合剂喷射3D打印是一种增材制造过程,其中粘合剂的液滴通过喷墨沉积到粉末床中。通过重复地散布粉末的薄层并将粘合剂沉积到适当的2D轮廓中,可以一次在一层上创建复杂的3D对象。通过粘合剂喷射钢粉来制造具有约500微米数量级特征的微通道,然后用辅助材料进行烧结和/或渗透。喷墨沉积的粘合剂的液滴体积随印刷方向而变化。研究过程的分辨率,微通道的后续特征尺寸以及微通道的整体质量,这些功能是液滴体积,方向和渗透水平的函数。

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