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Effects of quench-tempering and laser hardening treatment on wear resistance of gray cast iron

机译:淬火回火和激光硬化处理对灰铸铁耐磨性的影响

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The present research studied the combined effects of quench-tempering and laser surface hardening treatments on wear behavior of gray cast iron, and compared results with conventional austempered gray cast iron. Four tempering temperatures of 316 °C (600 °F), 399 °C (750 °F), 482 °C (900 °F) or 552 °C (1025 °F) with a constant holding time of 60 min and four austempering temperatures of 232 °C (450 °F), 288 °C (550 °F), 343 °C (650 °F) or 399 °C (750 °F) with a constant holding time of 120 min were utilized in the heat treatment design. The wear tests were carried out on a universal mechanical tribometer with a reciprocating ball-on-plate sliding configuration. Also, the microstructure, micro-hardness profiles and worn tracks were examined. Through this work, it was found that three zones existed under the laser hardened surface. Zone 1 was the laser hardened zone containing ledeburite with hardness of approximately 68HRC. Zone 2 was the heat affected zone containing the martensite with hardness of approximately 66HRC. Zone 3 was the substrate with hardness ranging from 42.1 to 24.8HRC. In the sliding wear tests, the quench-tempering treatment only resulted in higher wear resistance of gray cast iron when compared with untreated specimens, but lower wear resistance than that of austempered gray cast iron under similar macro-hardness. The wear performance of the quench-tempered gray cast iron was enhanced after receiving the laser surface hardening treatment. Finally, the laser hardened and quench-tempered gray cast iron with tempering temperature of 552 °C showed similar mass loss due to wear as austempered gray cast iron with an austempering temperature of 232 °C. By observing the worn surfaces, the laser hardened regions could effectively inhibit the formation and propagation of cracks developed within the substrate regions. In addition, the substrate with low hardness in laser hardened and quench-tempered gray cast iron may provide enhanced ductility and toughness for gray cast iron engineering components. The results obtained in this research have significant value in selecting the optimum heat treatment process for laser hardened gray cast iron components.
机译:本研究研究了淬火回火和激光表面硬化处理对灰色铸铁磨损行为的综合影响,并用常规的古代灰铸铁比较了结果。四个温度温度为316°C(600°F),399°C(750°F),482°C(900°F)或552°C(1025°F),恒定保持时间为60分钟和四个奥斯特佩在热量中使用232℃(450°F),288℃(550°F),343℃(650°F)或390℃(750°F)的温度,在热量中使用恒定保持时间为120分钟治疗设计。磨损试验在通用机械摩擦计上进行,具有往复式的球形滑动配置。而且,检查了微观结构,微硬度剖面和磨损轨道。通过这项工作,发现在激光硬化表面下存在三个区域。区域1是含有大约68Hrc的硬度的LiCeBurite的激光硬化区。区域2是含有大约66Hrc硬度的马氏体的热影响区。区域3是具有42.1至24.8HRC的硬度的基材。在滑动磨损试验中,与未处理的样品相比,淬火式回火处理仅导致灰铸铁的耐磨性更高,但在类似的宏观硬度下耐磨性低于耐安全的灰铸铁。在接收激光表面硬化处理后,提高了淬火钢灰铸铁的磨损性能。最后,激光硬化和淬火的磨料灰色铸铁具有552°C的温度温度,由于磨损,由于佩戴温度为232°C的耐磨损而导致的质量损失相似。通过观察磨损的表面,激光硬化区域可以有效地抑制基板区域内显影的裂缝的形成和传播。另外,在激光硬化和淬火钢磨料的灰铸铁中具有低硬度的基材可以为灰铸铁工程部件提供增强的延展性和韧性。在该研究中获得的结果在选择激光硬化灰铸铁组分的最佳热处理过程方面具有显着的值。

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