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首页> 外文期刊>Materials Science and Technology: MST: A publication of the Institute of Metals >Effects of processing parameters on direct laser sintering of multicomponent Cu based metal powder
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Effects of processing parameters on direct laser sintering of multicomponent Cu based metal powder

机译:工艺参数对多组分铜基金属粉末直接激光烧结的影响

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Direct laser sintering of a multicomponent Cu based metal powder was successfully processed through the mechanism of liquid phase sintering with partial melting of the powder. The effects of processing parameters such as laser power, scan speed, scan line spacing and layer thickness on the densification and microstructural evolution of the laser sintered powder were investigated. It was found that with increasing laser power or decreasing scan speed, the density of the sintered parts increased and the microstructures became denser. However, the combination of higher laser powers (>400 W) and higher scan speeds (>006 ms~(-1)) gave rise to 'balling' effect. A successive transition from discontinuous scan tracks to coherently joined ones occurs with decreasing scan line spacing. Lowering the thickness of the powder layer promises an improvement in bonding coherence between sintered layers. A single factor termed 'energy density by volume' is defined to evaluate the combined effect of various processing parameters on the density of laser sintered powder. With increasing the energy density by volume up to -0-16 kJ mm~(-3), the densification rate is relatively high. However, with intensifying the energy density over -0-23 kJ mm~(-3), the mechanism of particle bonding may change into full melting/ solidification, leading to a decrease in the sintered density.
机译:通过液相烧结和粉末部分熔化的机理,成功地进行了多组分铜基金属粉末的直接激光烧结。研究了激光功率,扫描速度,扫描线间距和层厚等加工参数对激光烧结粉末致密化和微观结构演变的影响。已经发现,随着激光功率的增加或扫描速度的降低,烧结部件的密度增加并且微观结构变得更致密。但是,更高的激光功率(> 400 W)和更高的扫描速度(> 006 ms〜(-1))共同产生了“聚球”效应。从不连续的扫描轨道到相干连接的轨道的连续过渡随着减小的扫描线间距而发生。降低粉末层的厚度有望改善烧结层之间的结合粘结性。定义了一个称为“体积能量密度”的单一因素,以评估各种加工参数对激光烧结粉末密度的综合影响。随着体积的能量密度增加至-0-16 kJ mm〜(-3),致密化速率相对较高。然而,随着能量密度在-0-23 kJ mm〜(-3)上的增强,颗粒键合的机理可能转变为完全熔化/凝固,从而导致烧结密度降低。

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