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Effect of Titanium Addition on High Temperature Workability of High Manganese Austenitic Steel

机译:钛添加对高锰奥氏体钢高温加工性能的影响

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In the present study, the high temperature workability of high manganese austenitic steel has been examined to prevent the grain boundary embrittlement cracking problems in the continuous casting process. As-cast Fe-22Mn-0.4C steel exhibited poor hot ductility behaviors at 900°C tensile test. Phosphorus segregation and BN precipitation at grain boundaries were mainly responsible for this deterioration. In order to enhance the hot ductility, titanium was added to this steel, and high temperature workability was compared in view of reduction of area in tensile test at 900°C. BN precipitation at grain boundaries was effectively suppressed by the formation of interior Ti(C,N) precipitates. Furthermore, phosphorus atoms, a grain boundary embrittlement element, were observed to segregate at Ti(C,N) interfaces in Auger electron spectroscopy and atom probe tomography. These results show that titanium addition in Fe-22Mn-0.4C steel can effectively improve the high temperature workability by decreasing the segregation of phosphorus at grain boundary.
机译:在本研究中,已经研究了高锰奥氏体钢的高温加工性,以防止连续铸造过程中的晶界脆化开裂问题。铸态的Fe-22Mn-0.4C钢在900°C拉伸试验中表现出较差的热延性行为。磷的偏析和晶界处的BN沉淀是造成这种劣化的主要原因。为了提高热延展性,向该钢中添加了钛,并且鉴于在900℃下的拉伸试验中的面积减少,对高温加工性进行了比较。通过形成内部Ti(C,N)沉淀可有效抑制晶界处的BN沉淀。此外,在俄歇电子能谱和原子探针层析成像中,观察到磷原子(晶界脆化元素)在Ti(C,N)界面偏析。这些结果表明,在Fe-22Mn-0.4C钢中添加钛可通过减少晶界处磷的偏析而有效地改善高温加工性。

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