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首页> 外文期刊>Surface & Coatings Technology >Effect of the amount of CH4 gas on the characteristics of surface layers of low temperature plasma nitrided martensitic precipitation-hardening stainless steel
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Effect of the amount of CH4 gas on the characteristics of surface layers of low temperature plasma nitrided martensitic precipitation-hardening stainless steel

机译:CH4气体量对低温等离子渗氮马氏体沉淀硬化不锈钢表层特性的影响

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摘要

Plasma nitriding was performed on AISI 630 martensitic precipitation hardening stainless steel samples at 400 V with a gas mixture of H-2 and N-2 for 19 h with changing N-2 percentage, temperature and adding various percentages of CH4. After treatment the behavior of the surface layer was investigated by optical microscopy, X-ray diffraction, GDOES analysis and micro-hardness testing. A potentiodynamic polarization test was also used to evaluate the corrosion resistance of the samples. With increasing N-2 percentage from 15% to 35% at 380 degrees C, the thickness of the expanded martensite (alpha'(N)) layer increases to about 20 mu m and surface hardness also increases to about 1280 HV0.05 but the corrosion behavior is worse than the untreated sample. When nitrided with 25% N-2, increasing nitriding temperature from 380 degrees C to 460 degrees C also increases the ot alpha'(N) layer thickness to around 38 mu m and surface hardness to around 1270 HV0.05 (at 460 degrees C), but decreases the corrosion resistance. Thus in order to improve the corrosion resistance, various amounts of CH4 (0% to 6%) were introduced in the nitriding atmosphere at 400 degrees C with 25% N-2 percentage. Increasing CH4 percentage slightly decreases the alpha'(N) layer thickness but greatly improves corrosion behavior. Moreover, with 4% CH4 percentage, the best corrosion behavior is obtained which also has around 11 pm at alpha'(N) layer thickness and about 1290 HV0.05 surface hardness. Therefore, the conclusion can be drawn that, the highly suitable condition for plasma nitriding for a thicker expanded martensite layer, higher surface hardness and good corrosion resistance is plasma nitriding at 400 degrees C with 25% N-2 and 4% CH4 for 19 h. (C) 2016 Elsevier B.V. All rights reserved.
机译:在AISI 630马氏体沉淀硬化不锈钢样品上,使用H-2和N-2的气体混合物,在改变N-2百分比,温度和添加不同百分比的CH4的条件下,进行等离子渗氮19 h。处理后,通过光学显微镜,X射线衍射,GDOES分析和显微硬度测试研究了表面层的行为。电位动力学极化试验也用于评估样品的耐腐蚀性。随着380摄氏度N-2百分比从15%增加到35%,膨胀马氏体(α'(N))层的厚度增加到大约20微米,表面硬度也增加到大约1280 HV0.05,但是腐蚀行为比未处理的样品差。当用25%N-2进行氮化时,将氮化温度从380摄氏度提高到460摄氏度,也会使ot alpha'(N)层的厚度增加到大约38微米,表面硬度增加到大约1270 HV0.05(在460摄氏度下) ),但会降低耐腐蚀性。因此,为了改善耐腐蚀性,在400℃,25%的N-2百分比下,在氮化气氛中引入各种量的CH 4(0%至6%)。 CH4百分比的增加会稍微降低alpha'(N)层的厚度,但会大大改善腐蚀行为。此外,以4%的CH4百分比可获得最佳的腐蚀行为,在α'(N)层厚度和1290 HV0.05表面硬度下,腐蚀行为也约为11 pm。因此,可以得出结论,对于较厚的膨胀马氏体层,较高的表面硬度和良好的耐蚀性,进行等离子渗氮的高度合适的条件是在25°C的N-2和4%的CH4下于400摄氏度进行等离子渗氮19 h。 。 (C)2016 Elsevier B.V.保留所有权利。

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