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An analytical study of new material test method for tension under bending and compression in double side incremental forming

机译:双面增量成形中弯曲和压缩拉伸新材料试验方法的分析研究

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摘要

Incremental sheet forming (ISF) has attracted considerable research interests owing to its unique advantages. Double side incremental forming (DSIF) was proposed to further improve the forming accuracy and material formability. Compared with conventional sheet forming technologies, ISF provides greater process flexibility and achieves an enhanced formability. At the same time, however, ISF has exhibited a far more complicated material deformation behavior for formability enhancement. It is now widely acknowledged that the material deformation during ISF consists of stretching, bending, and shearing with cyclic effects. Continuous bending under tension (CBT) testing method was proposed by Emmens et al. [1], which proved the cyclic stretch-bending effect for formability enhancement in single point incremental forming (SPIF). However, limited research had been reported to investigate the material deformation mechanism leading to the formability improvement in DSIF.ududAn analytical model of a new material test method, Tension Under Bending and Compression (TUBC), is proposed in this study to investigate the material deformation leading to the formability enhancement in DSIF. Under TUBC condition, a specimen is stretched by the pulling force on both ends, while multiple rollers, in contact with the strip on both sides, move backward and forward continuously to create both cyclic bending and compression loading at a localized area. The analytical model is used to investigate the maximum stable elongations under TUBC condition. Key test variables, bending depth and compressive force, imposed by the rollers, are introduced to consider the effects of continuous bending, compression, and contact between rollers and workpiece. From the results obtained, it is clear that bending and compression have determinant effects on the formability enhancement of DSIF. However, the results show varied degrees of sensitivity of formability to different test variables. The findings correlate well with experimental observations and help to explain the formability enhancement of DSIF.
机译:增量片材成型(ISF)由于其独特的优势而吸引了相当多的研究兴趣。为了进一步提高成形精度和材料成形性,提出了双面增量成形(DSIF)。与传统的片材成型技术相比,ISF提供了更大的工艺灵活性并增强了可成型性。但是,与此同时,ISF表现出了更为复杂的材料变形行为,以增强可成型性。现在,人们普遍认为,ISF过程中的材料变形包括具有循环效应的拉伸,弯曲和剪切。 Emmens等人提出了在张力下连续弯曲(CBT)的测试方法。 [1],这证明了单点增量成形(SPIF)中循环成形的弯曲可提高成形性。但是,有关研究材料变形机制以提高DSIF的可成型性的研究报道很少。 ud ud提出了一种新的材料测试方法的分析模型,即弯曲和压缩拉伸(TUBC),以研究该模型。材料变形导致DSIF的可成型性增强。在TUBC条件下,试样的两端都受到拉力的拉伸,而多个滚轮与两侧的钢带接触,则连续地前后移动,从而在局部区域产生循环弯曲和压缩载荷。该分析模型用于研究TUBC条件下的最大稳定伸长率。引入了关键测试变量,弯曲深度和压辊施加的压力,以考虑连续弯曲,压缩以及辊与工件之间接触的影响。根据获得的结果,很明显弯曲和压缩对DSIF的可成形性增强具有决定性的影响。但是,结果表明,可成形性对不同测试变量的敏感性程度不同。这些发现与实验观察结果非常相关,有助于解释DSIF的可成型性增强。

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    Ai S.; Lu B.; Long H.;

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