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Incorporation Of Tic Particulates On Aisi 4340 Low Alloy Steel Surfaces Via Tungsten Inert Gas Arc Melting

机译:通过钨惰性气体熔融掺入AISI 4340低合金钢表面的TiC颗粒

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Surface cladding utilizes a high energy input to deposit a layer on substrate surfaces providing protection against wear and corrosion. In this work, TiC particulates were incorporated by melting single tracks in powder preplaced onto AISI 4340 low alloy steel surfaces using a Tungsten Inert Gas (TIG) torch with a range of processing conditions. The effects of energy input and powder content on the melt geometry, microstructure and hardness were investigated. The highest energy input (1680 J/mm) under the TIG torch produced deeper (1.0 mm) and wider melt pools, associated with increased dilution, compared to that processed at the lowest energy (1008 J/mm). The melt microstructure contained partially melted TiC particulates associated with dendritic, cubic and globular type carbides precipitated upon solidification of TiC dissolved in the me TiC accumulated more near to the melt-matrix interface and at the track edges. Addition of 0.4, 0.5 and 1.0 mg/mm~2 TiC gave hardness values in the resolidified melt pools between 750 to over 1100Hv, against a base hardness of 300 Hv; hardness values are higher in tracks processed with a greater TiC addition and reduced energy input.
机译:表面包层利用高能量输入来沉积在基板表面上的一层,提供防止磨损和腐蚀。在这项工作中,通过使用一系列加工条件的钨惰性气体(TIG)焊炬在粉末中熔化到AISI 4340低合金钢表面上的粉末中的单轨来掺入Tic颗粒。研究了能量输入和粉末含量对熔融几何,微观结构和硬度的影响。与在最低能量(1008J / mm)的加工相比,TIG炬下的最高能量输入(1680 j / mm)产生更深(1.0 mm)和更宽的熔池,与增加的稀释池相比(1008 j / mm)。熔体微观结构含有与树突状,立方和球状碳化物相关的部分熔化的TIC颗粒,在熔化中溶解在熔体中的TIC的凝固后沉淀出来; TIC累计更多近熔体矩阵界面和轨道边缘。加入0.4,0.5和1.0mg / mm〜2 TIC在750至超过1100hv之间的固化熔体池中产生硬度值,抵抗300 hV的基础硬度;用更大的TIC加法和降低的能量输入处理硬度值较高。

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