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Study on the fatigue properties of plasma nitriding S45C with a pre-ultrasonic nanocrystal surface modification process

机译:超声前纳米晶表面改性工艺对等离子渗氮S45C疲劳性能的研究

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Graded microstructures with different grain sizes and depths were produced on the surface layer of S45C steel by ultrasonic nanocrystal surface modification (UNSM). Plasma nitriding at 500°C for 8h and 48h was employed to process the UNSMed sample surface and investigate the surface properties. Compared with the un-UNSMed samples, the enhancement of the surface hardness, the effective nitrogen diffusivity, and the fatigue strength were obtained after UNSM treatment. For the UNSM68000 (68,000mm~(-2)) sample, a nitrogen enrichment region of approximately 30μm (for nitriding 8h) and 80μm (for nitriding 48h) was observed in the surface zone. Little effect on the internal nitriding is found because the quick nitriding reaction of nitrogen with the nano-grain sized ferrite and the nitrides weaken the effective nitrogen diffusion within the sample materials. The fatigue limit of the UNSMed sample with nitriding for 8h improved approximately 78MPa (for 34,000mm~(-2)) and 125MPa (for 68,000mm~(-2)) compared with the un-UNSMed sample for the enhancement of nitrogen diffusion. However, a decrease of the fatigue limit of the UNSMed sample with nitriding for 48h was induced by the surface defects (small voids) that were produced by the prolonged nitriding. A prolonged nitriding phenomenon was observed for the nitriding of nano-grain sized surface structures, and this phenomenon promoted the formation of a thicker compound layer and induced nitrogen gas to form voids in the sample surface region.
机译:通过超声纳米晶表面改性(UNSM),在S45C钢的表面层上产生了具有不同晶粒尺寸和深度的梯度组织。在500°C下进行8h和48h等离子渗氮处理以处理UNSMed样品表面并研究其表面性能。与未UNSMed样品相比,经过UNSM处理后,表面硬度,有效氮扩散率和疲劳强度均得到提高。对于UNSM68000(68,000mm〜(-2))样品,在表面区域观察到约30μm(渗氮8h)和80μm(渗氮48h)的氮富集区域。由于内部氮与纳米晶粒铁素体和氮化物的快速氮化反应会减弱样品材料中的有效氮扩散,因此对内部氮化几乎没有影响。与未经UNSMed的样品相比,经过氮化处理8h的UNSMed样品的疲劳极限提高了约78MPa(对于34,000mm〜(-2))和125MPa(对于68,000mm〜(-2)),从而提高了氮的扩散。然而,由于长时间渗氮产生的表面缺陷(小的空隙),导致渗氮48h的UNSMed样品的疲劳极限降低。观察到纳米颗粒表面结构氮化的长时间渗氮现象,这种现象促进了较厚的化合物层的形成,并导致氮气在样品表面区域形成空隙。

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