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首页> 外文期刊>Materials transactions >Effect of Heating Conditions on Surface Modification of Titanium with a Mixture of Iron, Graphite and Alumina Powders
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Effect of Heating Conditions on Surface Modification of Titanium with a Mixture of Iron, Graphite and Alumina Powders

机译:加热条件对铁,石墨和氧化铝粉末混合物的钛表面改性的影响

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We developed a new surface modification technique called iron-powder pack (IPP) treatment. A layer of titanium carbonitride, Ti(C, N), was formed on the surface of a titanium sample embedded in a mixture of iron, graphite, and alumina powders and held around 1273 K in a nitrogenfiow. In this work, IPP treatment using a 4: 6: 3 (volume ratio) mixture of iron, graphite, and alumina powders was applied to titanium plates, and the effects of the heating temperature and nitrogen gasfiow rate on the microstructures near the titanium surface were investigated. The Ti(C, N) layer was observed on the titanium plate heat-treated at 1173 K for 3.6 ks at a nitrogenfiow rate of 0.5 L/min. This layer became uniform and thick as the heating temperature increased. At 1373 K, a Ti(C, N) layer with a thickness of more than 30 mu m that increased the hardness of the titanium surface to an HV value of about 1500 was obtained. In addition, an increase in the nitrogenfiow rate increased the surface hardness further. Spherical titanium powder was treated at 1273 K to examine the growth of the Ti(C, N) layer. The layer thickness increased with the holding time. Because the average diameter of the spherical powder was unchanged after heating, the Ti(C, N) layer grew toward the inside of the titanium via the diffusion of carbon and nitrogen from the powder mixture and the atmosphere.
机译:我们开发了一种新的表面改性技术,称为铁粉包(IPP)处理。在嵌入铁,石墨和氧化铝粉末混合物的钛样品的表面上形成一层碳氮化物,Ti(C,N),并在氮气效率中保持约1273k。在这项工作中,使用4:6:3(体积比)铁,石墨和氧化铝粉末的IPP处理对钛板,以及加热温度和氮气液速率对钛表面附近的微观结构的影响被调查了。在1173k的钛板上以0.5L / min的氮气率热处理3.6ks的钛板上观察到Ti(C,N)层。随着加热温度的增加,该层变得均匀且厚。在1373K,获得厚度大于30μm的Ti(C,N)层,其增加钛表面的硬度至约1500的HV值。另外,氮源速率的增加进一步增加了表面硬度。在1273k处处理球形钛粉,以检查Ti(C,N)层的生长。层厚度随着保持时间而增加。因为在加热后球形粉末的平均直径不变,所以通过碳混合物和气氛的碳和氮的扩散,Ti(C,N)层朝向钛的内部增长。

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