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Wear behavior of composite strengthened gray cast iron by austempering and laser hardening treatment

机译:奥斯德术和激光硬化处理复合加强灰铸铁的磨损行为

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The present study mainly investigated the phase transformation and wear performance of laser hardened austempered gray cast iron specimens. Ball-on-Plate reciprocating sliding wear tests with PAO4 base oil were carried out on untreated, quench-tempered, austempered, laser hardened austempered gray cast iron specimens. Micro hardness profiles and worn surfaces were analyzed for specific wear mechanisms. It was found that four different zones were formed beneath the laser hardened surface including laser hardened zone (Ledeburite, ≈67HRC), upper heat affected zone (Martensite, ≈69HRC), lower heat affected zone (Tempered Ausferrite, ≈36HRC) and substrate (Ausferrite, ≈39HRC). In the sliding wear tests, the laser hardened austempered gray cast iron specimens showed higher wear resistance than others, which could be associated with the benefits of ausferritic structure with high fracture toughness and laser hardened regions with high hardness. By observing the worn surface, grooves and micro-sized material removal occurred within the substrate. The surface of the substrate ploughed by the asperities of the ball and hard wear debris stopped on the edge of the laser hardened regions since ledeburite and martensite had high hardness and abrasive wear resistance. However, some micro-cracks and spalls were developed within the laser hardened zone. The results obtained from this study could be used as reference in future research and applications of laser hardened austempered gray cast iron.
机译:本研究主要研究了激光硬化型灰铸铁标本的相变和磨损性能。用Pao4基础油的球形往复滑动磨损试验在未处理,淬火的淬火,奥氏体,激光硬化的奥氏体灰铸铁标本上进行。针对特定磨损机构分析微硬度剖面和破旧的表面。结果发现,在激光硬化表面下形成四个不同的区域,包括激光硬化区(Ledeburite,≈67HRC),上热影响区(马氏体,≈69HRC),下热影响区(回火Ausferrite,≈36HRC)和基材( Ausferrite,≈39HRC)。在滑动磨损试验中,激光硬化的型灰色铸铁标本表现出比其他耐磨性更高,这可能与具有高硬度高的骨折韧性和激光硬化区域的Ausferritic结构的益处相关。通过观察磨损的表面,在基板内发生凹槽和微尺寸的材料去除。由于Ledeburite和马氏体具有高硬度和磨料耐磨性,由球和硬磨损碎片的衬底的表面犁过的球和硬磨损碎片。然而,在激光硬化区内开发了一些微裂纹和拼接。本研究中获得的结果可作为激光硬化奥氏体灰铸铁的未来研究和应用中的参考。

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