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首页> 外文期刊>Journal of Manufacturing Processes >Friction stir extrusion to recycle aluminum alloys scraps: Energy efficiency characterization
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Friction stir extrusion to recycle aluminum alloys scraps: Energy efficiency characterization

机译:搅拌摩擦挤压以回收铝合金废料:能效表征

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摘要

Solid state recycling refers to a group of processes allowing direct recycling of metals scraps into semi-finished product. Their main advantage lies in avoiding the molten state of the material which badly affects the environmental performance of the conventional (remelting based) recycling routes. It is expected that such process category would lower the environmental performance of metals recycling. In this paper, the friction stir extrusion process for aluminum alloy AA 2050 wire production is analyzed under the primary energy demand perspective. The process electrical energy demand is quantified with varying process parameters. An empirical modelling approach was applied and an analytical model able to expresses the specific energy consumption as a function of the extrusion rate was carried out. Finally, the primary energy demand of the whole recycling route was quantified and compared with both conventional and Equal Channel Angular Pressing (ECAP) based routes. Results revealed that Friction Stir Extrusion approach allows substantial primary energy savings for the case of wire production. To be more specific, FSE allows a reduction in energy demand up to 74% and 63% with respect the conventional and the ECAP routes, respectively. This is mainly due to avoided permanent material losses as well as to the absence of intermediated process steps (wire drawing).
机译:固态回收是指允许将金属废料直接回收为半成品的一组过程。它们的主要优点在于避免了材料的熔融状态,而熔融状态会严重影响常规(基于重熔)循环路线的环境性能。预计这种工艺类别将降低金属回收的环境绩效。本文从一次能源需求的角度分析了AA 2050铝合金线材的搅拌摩擦挤压工艺。通过变化的过程参数来量化过程电能需求。应用了经验建模方法,并建立了一个能够表达比能耗随挤压速率变化的分析模型。最后,对整个回收路线的一次能源需求进行了量化,并将其与传统路线和等通道角挤压(ECAP)路线进行了比较。结果表明,摩擦搅拌挤出方法可在生产线材时节省大量的一次能源。更具体地说,相对于传统路线和ECAP路线,FSE可使能源需求分别减少74%和63%。这主要是由于避免了永久性材料损失以及没有中间的工艺步骤(拉丝)。

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