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通过材料挤出法制备的复杂金属与陶瓷结构的放电等离子烧结

Spark Plasma Sintering of Complex Metal and Ceramic Structures Produced by Material Extrusion.

作者信息

Brucculeri Riccardo, Airoldi Lorenzo, Baldini Primo, Vigani Barbara, Rossi Silvia, Morganti Simone, Auricchio Ferdinando, Anselmi-Tamburini Umberto

机构信息

Department of Civil Engineering and Architecture, Computer, and Biomedical Engineering, University of Pavia, Pavia, Italy.

Department of Chemistry, Computer, and Biomedical Engineering, University of Pavia, Pavia, Italy.

出版信息

3D Print Addit Manuf. 2024 Jun 18;11(3):e1246-e1256. doi: 10.1089/3dp.2022.0279. eCollection 2024 Jun.

Abstract

Alternative approaches to laser fusion for the additive manufacturing (AM) of metals are often hampered by the need for long sintering cycles. Typical sintering cycles require heating at temperatures above 80% of the melting point for several hours. The process is time- and energy-consuming, particularly when high-melting materials are involved. Applying pressure can drastically reduce the time and temperature required for densification. Recently, a particular kind of pressure-assisted sintering process known as spark plasma sintering (SPS) or field-assisted sintering (FAST) received considerable attention in academia and industry due to its ability to enhance densification. However, conventional SPS/FAST techniques cannot be directly applied to the densification of objects presenting a complex geometry. This work shows how a modified SPS/FAST setup, operating in a pseudoisostatic mode, can be used for debinding and sinter objects produced by material extrusion. This approach can be applied to metals and metal-based and ceramic-based composites when their geometry does not include closed cavities. Depending on the characteristics of the pressure-transfer medium, some level of anisotropy in the volume reduction associated with the densification can be observed. Still, it can easily be corrected by appropriately compensating sintering deformation during printing. Using this approach, the time required for the debinding and sintering can be reduced considerably. It represents an alternative approach to the AM of a wide range of inorganic materials characterized by a relatively low-cost, high material flexibility, and low environmental impact.

摘要

用于金属增材制造(AM)的激光熔合替代方法通常因需要较长的烧结周期而受到阻碍。典型的烧结周期需要在高于熔点80%的温度下加热数小时。该过程既耗时又耗能,特别是当涉及高熔点材料时。施加压力可以大幅减少致密化所需的时间和温度。最近,一种特殊的压力辅助烧结工艺,即放电等离子烧结(SPS)或场辅助烧结(FAST),因其增强致密化的能力而在学术界和工业界受到了广泛关注。然而,传统的SPS/FAST技术不能直接应用于具有复杂几何形状物体的致密化。这项工作展示了一种在准等静压模式下运行的改进型SPS/FAST装置如何用于脱脂和烧结通过材料挤出生产的物体。当金属、金属基和陶瓷基复合材料的几何形状不包括封闭腔体时,这种方法可以应用于它们。根据压力传递介质的特性,在致密化过程中可能会观察到一定程度的体积减少各向异性。不过,通过在打印过程中适当补偿烧结变形,这种情况很容易得到纠正。使用这种方法,可以大幅减少脱脂和烧结所需的时间。它代表了一种用于增材制造多种无机材料的替代方法,具有成本相对较低、材料灵活性高和环境影响小的特点。

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