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常化后冷卻工藝對1600MPa級超高強鋼組織性能的影響

Effect of cooling process after normalizing on the microstructure and properties of 1600 MPa ultra-high strength steel

  • 摘要: 為改善高強度鋼的塑性和韌性,對中碳低合金馬氏體高強度鋼分別采用常化后空冷+回火和常化后控冷+回火工藝,研究常化后冷卻工藝對鋼中殘余奧氏體及力學性能的影響.采用掃描電鏡獲得鋼的組織形態,利用X射線衍射和電子背散射衍射技術分析鋼中殘余奧氏體的體積分數、形貌和分布.發現兩種工藝下均得到板條馬氏體+殘余奧氏體組織,殘余奧氏體均勻分布在板條之間,隨工藝參數不同,其體積分數在3%~10%變化.常化后加速冷卻能顯著細化馬氏體板條,提高鋼的屈服強度和抗拉強度100 MPa以上,沖擊功下降4 J.殘余奧氏體的體積分數隨常化控冷終冷溫度的升高呈現先升高后降低的變化,常化后的控制冷卻也可以作為進一步改善馬氏體類型鋼組織和性能的方法

     

    Abstract: The effects of two different processes, normalizing with air cooling + tempering and normalizing with controlled cooling+ tempering, on the retained austenite and mechanical properties of medium-carbon low-alloy martensitic ultra-high strength steel were investigated to improve its plasticity and toughness. The microstructure of the steel was observed by scanning electron microscopy (SEM). The volume fraction, shape and distribution of retained austenite in the steel were measured by X-ray diffraction (XRD) and electron back-scattering diffraction (EBSD). The results show that lath martensite and retained austenite (M+RA) are obtained by the two processes and a uniform distribution of retained austenite is located between lath martensites. The volume fraction of retained austenite varies from 3% to 10% with treatment parameters. Normalizing with controlled cooling can significantly refine lath martensite while the yield strength and tensile strength increase more than 100 MPa and the impact energy decreases by 4 J. When the quenching temperature rises, the volume fraction of retained martensite increases firstly and then decreases. Normalizing with controlled cooling can also act as a method for improving the microstructure and properties of martensitic steel.

     

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