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Debinding Rate Enhancement of 17-4 Precipitation Hardening Stainless Steel Solvent Debinding on Metal Injection Molding Process as the Material for Orthodontic Bracket

机译:正畸支架材料金属注射成型工艺中17-4沉淀硬化不锈钢溶剂脱脂率的提高

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摘要

Brackets fabrication should be done by a suitable process to produce great result. Processes commonly used are investment casting, machining, and metal injection molding. Investment Casting has a drawback in which the surface roughness is quite high for the standard of brackets and require further processing. Machining is done by removing unwanted part to get desire shape, whereas bracket shape requires a high accuracy and is quite complicated. In Metal Injection Molding, feedstock is injected into a mold where complicated shapes can be achieved with a better surface roughness. The weakness is the stages within the process are quite long. One of the problem is the efficiency of debinding stage. We conducted an experiment to enhance binder removal rate through solvent debinding with stirring and under vacuum condition. Sample use for this experiment is a cubic shape of 0.5 x 0.5 x 0.5 cmsup3/sup. Experiment is done on magnetic stirrer and in vacuum furnace. The temperature is hold at 50°C. Drying process afterward is done in the vacuum furnace for 1 hour with temperature around 50°C. Amount of binder left is confirmed by STA and the particle morphology is seen by SEM. Results showed that stirring treatment enhances binder removal rate due to stirring mechanism that causes possibility of collisions between particles increases. Binder removal rate on the vacuum treatment has a mechanism similar to stirring, but with the addition of the solvent to be done on a regular basis due to decrease of solvent boiling point under vacuum. There were no cracks found on the surface with an increased rate of debinding. Stirring is use for experiment with sample of actual bracketorthodontic form. Debinding rate of the bracket sample is faster than the cubic sample. This result is affected by the dissimilarity on the volume to surface area.
机译:支架的制造应采用适当的方法以产生良好的效果。常用的工艺有熔模铸造,机械加工和金属注射成型。精密铸造的缺点在于,对于托架的标准而言,其表面粗糙度非常高,并且需要进一步加工。加工是通过去除不需要的零件以获得所需的形状来完成的,而托架的形状则需要很高的精度并且非常复杂。在金属注射成型中,将原料注入模具中,在模具中可以实现复杂的形状并具有更好的表面粗糙度。弱点是过程中的阶段相当长。问题之一是脱脂阶段的效率。我们进行了一项实验,通过在搅拌和真空条件下使溶剂脱脂来提高粘合剂去除率。此实验使用的样品为0.5 x 0.5 x 0.5 cm 3 的立方体形状。实验是在磁力搅拌器和真空炉中进行的。温度保持在50℃。之后,在真空炉中于50℃左右的温度下干燥1小时。通过STA确认残留的粘合剂的量,并且通过SEM观察颗粒形态。结果表明,搅拌处理由于引起颗粒之间碰撞的可能性增加的搅拌机理而提高了粘合剂去除速率。真空处理中的粘合剂去除率具有与搅拌相似的机理,但是由于真空下溶剂沸点的降低,需要定期添加溶剂。随着脱脂率的提高,在表面上未发现裂纹。搅拌用于实际正畸形式样品的实验。托槽样品的脱脂速度比立方样品快。该结果受体积与表面积差异的影响。

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