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Silicide phase formation and its influence on liquid phase sintering in 316L stainless steel with elemental silicon additions

机译:添加元素硅的316L不锈钢中硅化物相的形成及其对液相烧结的影响

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Elemental additions of silicon to sintered 316L stainless steels were found to cause the formation of liquid phases at three temperatures. The first two of these, at 1060 and 1155℃, were owing to heat generated by an exothermic reaction betweenthe steel and its silicon addition leading to the formation of a complex mixture of silicide phases involving iron, chromium, and nickel. Alloying between the silicon and 316L stainless steel then lowered the solidus temperature of the steel and a further liquid phase was formed when sintering temperatures exceeded the new solidus of 1190℃. Full sintered densities were not achieved despite the presence of liquid phase and the use of relatively high sintering temperatures. This was because of the largepores that remained at the sites where the exothermic reaction between the silicon and the stainless steel had resulted in the formation of liquid phase which subsequently migrated away into the surrounding steel by capillary flow. These large pores werenot eliminated by the supersolidus liquid phase sintering that developed at temperatures above 1200℃. Low levels of bulk interconnected porosity, produced by sintering within the 1250-1300℃ temperature range, combined with the presence of silicon,suggested that good corrosion resistance might be expected from these materials.
机译:发现在烧结的316L不锈钢中添加硅元素会导致在三个温度下形成液相。其中的前两个温度分别为1060和1155℃,这是由于钢与其硅添加物之间发生放热反应而产生的热量,从而导致形成包含铁,铬和镍的硅化物相的复杂混合物。硅和316L不锈钢之间的合金化随后降低了钢的固相线温度,当烧结温度超过1190℃的新固相线时,又形成了液相。尽管存在液相并且使用相对较高的烧结温度,但仍未达到完全烧结的密度。这是因为在硅和不锈钢之间的放热反应导致液相形成的位置上保留了大孔,随后液相通过毛细管流移入周围的钢中。在1200℃以上的温度下进行的超固相液相烧结并没有消除这些大孔。在1250-1300℃的温度范围内烧结产生的低水平的整体互连孔隙率,再加上硅的存在,表明这些材料可能具有良好的耐腐蚀性。

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