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Studies on the micro-laser spot welding of an NdFeB permanent magnet with a low carbon steel

机译:低碳钢钕铁硼永磁体的微激光点焊研究

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In search of high speed and miniaturization, the welding of NdFeB permanent magnet material is currently of increasing inter est. Previous studies have shown that dissimilar material joining between magnet and steel sheets can be realized by laser irradiation, but it is still not clear how the welding parameters affect the weld quality. In this paper, the results are reported of experiments studying effects of laser pulse power, pulse duration, and defocusing distance on joint dimensions and mechanical behavior in laser spot welding of an NdFeB magnet (N48) with a low carbon steel (AISI 1006). Both conduction mode and keyhole mode welding were performed in the present study. The welding modes can be altered by changing peak power or defocusing distance, but not by changing pulse duration. Three fracture modes were found in shear tests, i.e., 'nugget pullout', 'through nugget' and 'magnet crush', while in peel tests, only 'nugget pullout' fracture mode was observed. The different fracture modes under different loading conditions were attributed to the mechanical locking effects present under shear testing but not under peel testing. For 'nugget pullout' mode fracture, the metallurgical quality of joints is the controlling factor of fracture forces; for 'nugget through' and 'magnet crush' mode fractures, the controlling factors are the size and strength of the nugget and base magnet. Certain nugget penetration should be achieved to avoid 'nugget pullout' fracture, while excessive growth of nugget should be limited to avoid 'magnet crush' fracture by appropriately adjusting process parameters.
机译:为了追求高速和小型化,目前钕铁硼永磁材料的焊接越来越受到人们的关注,以前的研究表明,通过激光辐照可以实现磁体和钢板之间的异种材料接合,但目前尚不清楚焊接参数会影响焊接质量。在本文中,报告了研究激光脉冲功率,脉冲持续时间和散焦距离对低碳钢(AISI 1006)的NdFeB磁体(N48)激光点焊时接头尺寸和机械性能的影响的实验结果。在本研究中进行了传导模式和锁孔模式焊接。可以通过更改峰值功率或散焦距离来更改焊接模式,但不能更改脉冲持续时间。在剪切试验中发现了三种断裂模式,即“熔核拔出”,“通过熔核”和“磁铁压碎”,而在剥离试验中,仅观察到了“熔核拔出”断裂模式。在不同载荷条件下的不同断裂模式归因于在剪切试验下而不是在剥离试验下存在的机械锁定效应。对于“金块拔出”模式的断裂,接头的冶金质量是断裂力的控制因素。对于“熔核穿透”和“磁体挤压”模式的断裂,控制因素是熔核和基础磁体的尺寸和强度。应实现一定的熔核渗透,以避免“熔核拔出”破裂,而应限制熔核的过度生长,以通过适当调整工艺参数来避免“磁铁破碎”破裂。

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