含氧化铝纳米复合材料零件搅拌摩擦焊的焊接性能

R. Hasanzadeh, T. Azdast, A. Doniavi, S. Babazadeh, R. Lee, M. Daryadel, S. M. Shishavan
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引用次数: 14

摘要

虽然近年来聚合物的焊接得到了发展,但聚碳酸酯的焊接仍然面临着提高焊接断面质量等严峻的挑战。研究了不同纳米氧化铝含量的聚碳酸酯搅拌摩擦焊接试样的力学性能。为此,首先用双螺杆挤出机将聚碳酸酯(作为基体)与纳米氧化铝以不同重量百分比(0、1、2和3%)熔融复合。然后,利用注塑机制备纳米复合材料样品,并在铣床上用专用工具进行搅拌摩擦焊接。采用L16正交田口法研究了纳米氧化铝质量分数、行程和转速(4个水平)对焊接纳米复合材料试样抗拉强度和硬度的影响。结果表明,纳米氧化铝的重量百分比是影响焊接纳米复合材料试样抗拉强度和硬度的最有效参数。将纳米氧化铝的掺量增加到1%,拉伸强度提高。然而,当纳米氧化铝增加超过1%时,由于高重量百分比的纳米氧化铝团聚,这种强度降低。结果还表明,工艺参数对焊接纳米复合材料的力学性能影响不大。
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Welding Properties of Polymeric Nanocomposite Parts Containing Alumina Nanoparticles in Friction Stir Welding Proces
Although in recent years, welding of polymers has been developed but welding of polycarbonates is still faced with serious challenges such as improving the quality of welded section. In the present study, mechanical properties of polycarbonate friction stir welded samples with different nano alumina content were investigated. For this purpose, firstly polycarbonate (as matrix) was melt compounded with nano alumina in variant weight percentages including 0, 1, 2 and 3% using a twin-screw extruder. Then, nanocomposite samples were produced using an injection molding machine and were friction stir welded with a special tool on a milling machine. The effects of weight percentage of nano alumina, travel and rotational speeds (all in four levels) were investigated on the tensile strength and hardness of the welded nanocomposite samples according to a L16 orthogonal array of Taguchi method. According to the obtained results, the weight percentage of nano alumina is the most effective parameter on the tensile strength and hardness of welded nanocomposite specimens. By increasing the percentage of nano alumina to 1%, tensile strength increased. However, by increasing the nano alumina more than 1%, this strength reduced due to agglomeration of nanoalumina in high weight percentages. Results also demonstrated that processing parameters do not affect the mechanical properties of welded nanocomposite samples significantly.
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