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首页> 外文期刊>International Journal of Material Forming: Official Journal of the European Scientific Association for Material Forming - ESAFORM >Experimental and numerical investigation of the generated heat in polypropylene sheet joints using friction stir welding (FSW)
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Experimental and numerical investigation of the generated heat in polypropylene sheet joints using friction stir welding (FSW)

机译:搅拌摩擦焊(FSW)对聚丙烯板接头产生的热量进行实验和数值研究

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摘要

In this paper, we aim to investigate the heat generated during friction stir lap welding in polypropylene sheets. In this method, the generated heat significantly depends on the tool's rotational and linear speed, geometry, and tilt angle. Heat analysis and measurement during welding are performed numerically to validate the experimental results. A 3-D symmetric Finite Element (FE) model was created to estimate the generated and distributed heat. As is shown, the heat is mainly generated around and underside the tool due to the high friction between the rotating tool and the workpiece. This paper provided a good intuition on the generated and distributed heat during the FSW process, which can be considered a reference to produce optimum and high-quality products with fewer tests. Therefore, in this paper, the effect of a number of parameters on the generated heat during the welding process is studied experimentally and statistically and simulated in three different levels. The obtained results demonstrated a significant relationship between the properties and process parameters using analysis of variance (ANOVA) and response surface method (RSM) (Box-Behnken). Moreover, the results revealed that the effect of parameter interactions could be evaluated using the proposed mathematical model by analyzing the presented plots. In addition, the results from the simulated model using finite element software and Altair's HyperWorks confirmed the mathematical model estimations and the experimental results. The created model can successfully predict 92 of the welding joint temperature using the conditions and materials proposed in this paper. The results of the simulation analysis were validated and compared with the experimental tests, indicating a temperature difference of approximately 6. The most effective parameter in heat generation is the rotational speed of the tool, which is responsible for up to 70 of the overall heat. Tool's geometry (15), traveling speed (11), and tilt angle (4) are the other parameters effective in generating heat in the process, in respective order.
机译:本文旨在研究聚丙烯板中搅拌摩擦焊接过程中产生的热量。在这种方法中,产生的热量很大程度上取决于工具的旋转和线速度、几何形状和倾斜角度。通过数值方式对焊接过程中的热分析和测量进行验证,验证了实验结果。创建了三维对称有限元 (FE) 模型来估计产生的和分布的热量。如图所示,由于旋转刀具与工件之间的高摩擦力,热量主要产生于刀具周围和下方。本文对摩擦焊过程中产生的热量和分布的热量提供了很好的直观认识,可以作为以较少的测试生产最佳和高质量产品的参考。因此,本文通过实验和统计学研究了多个参数对焊接过程中产生的热量的影响,并在三个不同的水平上进行了模拟。使用方差分析(ANOVA)和响应面法(RSM)(Box-Behnken)获得的结果表明,性能与工艺参数之间存在显着关系。此外,结果表明,通过分析所提出的图,可以使用所提出的数学模型来评估参数交互作用的影响。此外,使用有限元软件和Altair的HyperWorks的仿真模型的结果也证实了数学模型估计和实验结果。创建的模型可以使用本文提出的条件和材料成功预测 92% 的焊接接头温度。对模拟分析结果进行了验证,并与实验测试进行了比较,表明温差约为6%。发热最有效的参数是工具的转速,它负责高达总热量的 70%。刀具的几何形状 (15%)、行驶速度 (11%) 和倾斜角度 (4%) 是在此过程中有效产生热量的其他参数,按各自的顺序排列。

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