首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Modelling of induction heating of carbon steel tubes: Mathematical analysis, numerical simulation and validation
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Modelling of induction heating of carbon steel tubes: Mathematical analysis, numerical simulation and validation

机译:碳钢管子感应加热的建模:数学分析,数值模拟和验证

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The transient liquid phase bonding process is been performed to join carbon steel tubes. Fe_(96.2)B_(3.8) wt% amorphous ribbons of thickness a ≈20 μm have been employed as filler material. The tubes are aligned with their butted surfaces in contact with the amorphous layer. The joint is heated into a high frequency induction coil under Argon atmosphere. The temperature is raised at the highest possible rate to the process temperature (at about ≈1250 °C) and then held for a predetermined time.In this paper, the numerical simulations of the heating stage of the bonding process have been made using the finite element method. This method had shown of being able to deal with these kind of coupled problems: electromagnetic field generated by alternating currents, eddy currents generated on the steel tube, heating of the steel tube due to joule effect and heat transfer by conduction, convection and radiation.The experimental heating stage, for its further simulation, was done with carbon steel tubes.In particular, we are interested in the temperature evolution of the tube upon heating: time to reach the process temperature at the joint, temperature differences between the inner and outer surface of the tube and the extension of the heat affected zone, taking into account the ferromagnetic-paramagnetic transition.The numerical simulations are validated by comparison with infrared radiation thermometer measurements of the outer surface of the tube at remarkable positions (e.g.: the joint, the zone at the end of the joint, etc.).
机译:执行瞬态液相键合工艺以连接碳钢管。 Fe_(96.2)B_(3.8)wt%厚度约为20微米的非晶带已被用作填充材料。使管的对接表面与非晶层接触。在氩气气氛下,将接头加热到高频感应线圈中。将温度以尽可能高的速率升高到工艺温度(大约≈1250°C),然后保持预定的时间。本文使用有限元方法对粘合过程的加热阶段进行了数值模拟。元素方法。这种方法已显示出能够解决以下耦合问题:交流电产生的电磁场,钢管上产生的涡流,由于焦耳效应引起的钢管加热以及通过传导,对流和辐射进行的热传递。为了进一步模拟,实验加热阶段是使用碳钢管完成的,特别是我们对加热时管的温度变化感兴趣:到达接头处的过程温度所需的时间,内外温度差考虑到铁磁-顺磁转变,分析了管子表面和热影响区的延伸。通过与红外辐射温度计对显着位置(例如,接头,关节末端的区域等)。

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