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DETERMINATION OF SUPERPLASTIC MATERIAL PROPERTIES FOR PARENT MATERIAL AND FRICTION STIR WELDED JOINT OF AL-ALLOY AA6061-T6

机译:铝合金AA6061-T6的母材和摩擦搅拌焊接接头的超塑性材料性能测定

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Superplastic forming (SPF) takes the advantage of the metallurgical phenomenon of superplasticity (SP) to form complex and highly intricate bulk and sheet metal parts. SP refers to the extraordinary formability of certain metals and alloys, ceramics, composites (both metallic- and ceramic-based), dispersion strengthened materials, nanostructured materials and bulk metallic glasses, which allows them to suffer elongations of several hundred percent under the action of tensile forces. The superplastic forming characteristics of materials like aluminium, titanium and magnesium alloys have been clearly identified in order to produce complicated near-net shapes. These materials are used in the aeronautical manufacturing industry and automotive manufacturing industries due to the significant weight (by ~ 30%) and cost (by ~ 50%) saving that is possible. Some research work has proved superplastic forming of friction stir welded (FSW) joints also. The FSW joint efficiencies have been characterized by mechanical and metallurgical examination. Studies are also available on the behavior of FSW joints of similar and dissimilar metals. Information on the performance of friction stir welded joints during superplastic forming is rather limited, but it is important to achieve excellent properties in the friction stir welded joints also during superplastic forming. FSP (friction stir processing) - SPF (superplastic forming) is presently being promoted as a very viable near-net shape technology for making very large and complicated sheet metal products. To achieve this superplastic material parameters are much required in industry to develop new shapes. One has to understand the flow rule relationship and mechanics involved during sheet metal forming at high temperature to select the material and forming tool with selected process parameters. This paper deals with the determination of superplastic material properties of non-superplastic aluminum alloy AA6061-T6. The superplastic material properties like strain rate sensitivity index, flow stress and strain rate were determined for both the selected material and friction stir welded sheets at various tool rotation speeds. The superplastic free blow forming experiments were performed for various constant temperatures and pressure for the parent material. Similarly the superplastic free blow forming experiments were performed for the friction stir welded joint for various tool rotation speed at constant temperature. The methods were used to determine the material properties are straight line fit method and polynomial regression method. The superplastic forming height is significantly high in case of the FSW specimens at 2000 rpm, the initial forming rate is faster and the strain rate sensitivity index obtained is also higher when compared to the parent material properties. The strain rate sensitivity index obtained for friction stir welded specimen during superplastic forming was foundto have improved when compared to the parent material.
机译:超塑性成形(SPF)利用超塑性(SP)的冶金现象来形成复杂且高度复杂的块状和钣金零件。 SP是指某些金属和合金,陶瓷,复合材料(金属和陶瓷基),弥散强化材料,纳米结构材料和大块金属玻璃的非凡成形性,它们在下列作用下承受数百%的伸长率拉力。铝,钛和镁合金等材料的超塑性成形特性已得到明确识别,以产生复杂的近净形状。这些材料可用于航空制造业和汽车制造业,因为它们可显着减轻重量(约30%)和节省成本(约50%)。一些研究工作也证明了搅拌摩擦焊接(FSW)接头的超塑性成形。 FSW联合效率已通过机械和冶金检查得到了表征。还可以研究相似和不相似金属的FSW接头的行为。关于超塑性成形期间的搅拌摩擦焊接接头的性能的信息相当有限,但是重要的是在超塑性成形期间也要在搅拌摩擦焊接接头中获得优异的性能。 FSP(摩擦搅拌处理)-SPF(超塑性成形)目前正在推广,是一种非常可行的近净成形技术,用于制造非常大型和复杂的钣金产品。为了实现这种超塑性材料,工业上迫切需要开发新形状的参数。必须了解高温钣金成形过程中涉及的流规则关系和力学,以选择具有选定工艺参数的材料和成形工具。本文探讨了非超塑性铝合金AA6061-T6的超塑性材料性能的测定。在不同的工具转速下,为选定的材料和搅拌摩擦焊接的板材确定了超塑性材料的特性,如应变率敏感性指数,流动应力和应变率。在母体材料的各种恒定温度和压力下进行了超塑自由吹塑实验。类似地,在恒定温度下针对各种工具转速的摩擦搅拌焊接接头进行了超塑性自由吹塑成型实验。用于确定材料性能的方法有直线拟合法和多项式回归法。与母材性能相比,FSW试样在2000 rpm下的超塑性成形高度显着高,初始成形速度更快,应变速率敏感性指数也更高。与母材相比,发现在超塑性成形过程中摩擦搅拌焊接试样获得的应变率敏感性指数有所提高。

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