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Effect of induction post-heating temperature on the morphology, microstructure and mechanical performance of the heat affected zone in laser-induction hybrid cladding of full-scale rail

机译:诱导后加热温度对全尺寸轨道激光诱导混合砌体中热影响区的形态,微观结构和力学性能的影响

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In the present work, the laser-induction hybrid cladding technology with induction post-heating (post-LIHC) was utilized to deposit coatings on the full-scale rail surface, and the effects of different induction post-heating temperature on the morphology, microstructure and mechanical performance of the heat affected zone (HAZ) were first in-depth analyzed. Results indicate that with the increase of the average induction post-heating temperature (Ta) in post-LIHC, the microstructure of the HAZ first transforms from the fine acicular martensite structure to the composite structure of martensite and pearlite, then changes to the pure pearlite structure, and finally retransforms to the coarse martensite structure. Especially, the morphology of the “Martensite Zone” (MZ) in HAZ undergoes three remarkable change with Ta increasing: “flat-U-shaped” → “flat-W-shaped” → “vanished” → “flat-V-shaped”. Under the induction post-heating window of Ta = 508 °C ~ 565 °C, not only the MZ in HAZ can be inhibited absolutely, but also fine pearlite with much lower interlamellar spacing, smaller grain size and higher grain misorientation forms instead, making the strength and toughness are both enhanced significantly than the other three type HAZs and the rail substrate. In addition, increasing the induction post-heating temperature within the window of Ta = 508 °C ~ 565 °C can increase the interlamellar spacing and reduce the ferrite grain misorientation of the pearlite structure in HAZ, but has no obvious effect on the grain size therein.
机译:在本作本作中,利用感应热再加热后加热后的激光感应杂交包层技术在全尺寸轨道表面上沉积涂层,以及不同诱导热温度对形态,微观结构的影响和热影响区(HAZ)的机械性能首先深入分析。结果表明,随着LIHC后的平均感应后加热温度(TA)的增加,HAZ的微观结构从精细针状马氏体结构转化为马氏体和珠光体的复合结构,然后变为纯珠光体结构,最后重新变形到粗马氏体结构。特别是,HAZ中“马氏体区”(MZ)的形态经历了三种显着的变化,随着TA增加而变化:“扁平U形”→“平-W形”→“消失”→“平面V形” 。在诱导后加热窗口的Ta = 508°C〜565°C,不仅可以绝对抑制Haz中的MZ,而且还可以抑制细珠宝,较低的室外间距,较小的粒度和更高的晶粒杂散形式,而是制作强度和韧性均比其他三种斑纹和轨道基板显着增强。此外,在Ta = 508°C〜565°C的窗口内增加感应后加热温度可以增加滑稽间隔,并降低HAZ中珠光体结构的铁氧体晶粒杂散,但对晶粒尺寸没有明显影响其中。

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