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Thermal cycling, microstructure and mechanical properties of 9Cr2WVTa steel welds

机译:9Cr2WVTa钢焊缝的热循环,显微组织和力学性能

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Samples of enlarged heat affected zones (HAZs) submitted to single and double welding thermal cycles were fabricated by a thermal-mechanical physical simulator (Gleeble 1500). Typical welding thermal cycle curves were extracted based on the measurement of the non-equilibrium phase transformation of 9Cr2WVTa steel, and the simulated and experimental thermal cycles were compared. Observation of the microstructure revealed that the blocky delta-ferrite that existed in the coarse grained heat affected zone (CGHAZ) was the main cause of the decrease in impact toughness. Each of the areas retained the delta-ferrite with different sizes and shapes after the CGHAZ underwent the second welding thermal cycle. Hardness tests, tensile tests, and instrumented impact tests were carried out to investigate the corresponding mechanical properties. When the peak temperature of the second welding thermal cycle was 1315 degrees C, grain and structure coarsening was the main causes of the decrease in impact toughness. When the peak temperature of the second welding thermal cycle was decreased to 1100 degrees C, the toughness increased the most due to the fine grains formed by phase transformation recrystallization. (C) 2015 Elsevier B.V. All rights reserved.
机译:通过热机械物理模拟器(Gleeble 1500)制作了经受单次和双次焊接热循环的扩大的热影响区(HAZ)的样品。根据9Cr2WVTa钢非平衡相变的测量结果,提取了典型的焊接热循环曲线,并对模拟和实验热循环进行了比较。显微组织的观察表明,存在于粗粒热影响区(CGHAZ)中的块状δ铁素体是冲击韧性降低的主要原因。在CGHAZ经过第二次焊接热循环后,每个区域都保留了具有不同尺寸和形状的δ铁素体。进行了硬度测试,拉伸测试和仪器冲击测试,以研究相应的机械性能。当第二焊接热循环的峰值温度为1315℃时,晶粒和组织粗化是冲击韧性降低的主要原因。当第二焊接热循环的峰值温度降低到1100℃时,由于相变再结晶形成的细晶粒,韧性增加最大。 (C)2015 Elsevier B.V.保留所有权利。

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