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Physical Simulation and Metallurgical Evaluation of Heat-Affected Zone during Laser Welding of ultrafine Grain Steel

机译:超细晶粒激光焊接期间热影响区的物理仿真与冶金评价

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Two major challenges in relation to laser welding are abrupt change in metallurgical aspects and actual assessment of the mechanical properties due partly to very narrow heat affected zone (HAZ) and partly to high mechanical properties gradient. The rapid thermal cycle of laser welding imposed on the HAZ was physically simulated using a Gleeble~(? )dynamic simulator equipped with a special isothermal quenching device (ISO-Q~(?)), and a relatively large volume of HAZ with a homogeneous microstracture was obtained. The thermal cycles were determined from actual laser welding followed by laser tempering. Estimations of microstructure and mechanical properties of the simulated HAZs of an ultrafine grain steel imposed by laser welding with or without post-weld laser tempering were performed. The results indicate that the simulated HAZs, depending on the thermal history, are composed of lathy martensite with different pocket size and dislocation density. The impact toughness of as-welded HAZ is improved in contrast to the base material, but is further degraded by a following laser tempering, which, however, alleviates the abrupt change in hardness of as-welded HAZ.
机译:与激光焊接有关的两个主要挑战是冶金方面的突然变化,并且由于部分地到非常窄的热影响区域(HAZ)和部分地对高机械性能梯度的实际评估。使用具有特殊等温淬火装置的GLEEBLE〜(α)动态模拟器(ISO-Q〜(α))和均匀的相对大量的HAZ,在物理上模拟了激光焊接的激光焊接的快速热循环。获得微络。从实际激光焊接中测定热循环,然后通过激光回火测定。通过激光焊接施加的超细晶粒的微观结构和机械性能的估计,具有或不具有焊接后激光回火。结果表明,根据热历史,模拟的危险由具有不同口袋尺寸和位错密度的物质马氏体组成。与基材相比,焊接HAZ的冲击韧性与基础材料相比,但是通过以下激光回火进一步降解,但是,除了焊接HAZ的硬度突然变化的情况下进一步降低。

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