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High Density Powder Injection Molded Compacts Prepared from a Feedstock Containing Coarse Powders

机译:由包含粗粉的原料制备的高密度粉末注射成型压块

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Carbonyl iron powders are the most widely used raw powder in fabricating the powder injection molded (PIM) components owing to their high driving forces for sintering. However, the cost of this powder is relatively high. To improve the competitiveness of the PIM process, coarse iron powders, which are much more economical, were mixed with fine carbonyl iron powders in an optimum ratio of 6/4 in this study. This replacement of fine carbonyl iron powders did not change the kneading and molding behaviors significantly. The solvent and thermal debinding rates of the compacts that contain 100mass percent and 40mass percent fine powders also showed little difference. Such debinding results, which are contrary to the general belief, suggest that the particle size is not the critical factor in the debinding of PIM compacts. The debinding rate is more likely controlled by the diffusion of the soluble binder in the solvent (for solvent debinding) and the decomposition rate of the backbone binder (for thermal debinding). High sintered densities can still be attained in the compact with mixed powders after a phase stabilizers, such as P and Mo, are added. These additives prevent the alpha-gamma phase transformation and the accompanying exaggerated grain growth. When 0.7 mass percent P or 0.35 mass percent P+2.5 mass percent Mo is added into a mixed powder that contains 60 mass percent coarse iron powders, high densities more than 96 percent can be attained after the compact is sintered at 1593 K for 3.6 ks. The hardness, tensile strength, and elongation of the Fe-2.5 mass percent Mo-0.35 mass percent P were HRB68, 520 MPa, and 20 percent, respectively. The densities, mechanical properties, and comparable processing capability found in this study show that the more economical coarse iron powder can be used in the PIM process.
机译:羰基铁粉由于其高的烧结驱动力而成为制造粉末注射成型(PIM)组件时使用最广泛的原粉。但是,这种粉末的成本较高。为了提高PIM工艺的竞争力,在这项研究中,将更经济的粗铁粉与细羰基铁粉以最佳比例6/4混合。羰基铁细粉的这种替换不会显着改变捏合和成型行为。包含100%质量百分比和40%质量百分比细粉的压粉的溶剂和热脱脂率也几乎没有差异。这种脱脂结果与一般观点相反,表明粒径不是PIM压块脱脂的关键因素。脱脂率很可能由可溶性粘合剂在溶剂中的扩散(用于溶剂脱脂)和主链粘合剂的分解速率(用于热脱脂)控制。加入相稳定剂(如P和Mo)后,仍然可以在混合粉末的压坯中获得高烧结密度。这些添加剂可防止α-γ相转变以及随之而来的过度晶粒长大。当将0.7质量百分比的P或0.35质量百分比的P + 2.5质量百分比的Mo添加到包含60质量百分比的粗铁粉的混合粉末中时,在1593 K下烧结3.6 ks时,可以获得高于96%的高密度。 Fe-2.5质量%Mo-0.35质量%P的硬度,抗拉强度和伸长率分别为HRB68、520MPa和20%。在这项研究中发现的密度,机械性能和可比的加工能力表明,可以在PIM工艺中使用更经济的粗铁粉。

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