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An investigation on multistage bending of blank sheet into cylindrical tube by experiment and numerical simulation

机译:通过实验和数值模拟研究坯料成圆柱管的多阶段弯曲

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In this paper, one pair of punch and die was employed to experimentally investigate the pure bending of blank sheet into cylindrical tube by multistage process. The investigated material was hot-rolled HSLA370 with the thickness of 2 mm. Numerical simulation was conducted on bending and springback with LS-DYNA solver. Results showed that multistage bending technique was an alternative way to produce cylindrical tubes. The sequence is described as textBlank textsheetxrightarrowtextMultistage textbendingtextC - tubexrightarrow[textWelding]textSqueezingtextO - tube {text{Blank}},{text{sheet}}xrightarrow{{{text{Multistage}},{text{bending}}}}{text{C - tube}}xrightarrow[{{text{Welding}}}]{{{text{Squeezing}}}}{text{O - tube}} . Gap width and roundness of C-tube (configuration like letter “C”) were two dominant parameters to evaluate the bending performance. The effects of blank positioning on both of them were investigated by means of numerical simulation. Laser-welded tubes meeting roundness and the tolerance limit of diameter were produced. Simulation revealed that effective plastic strain along circumferential direction was much low, mostly ranging between 0.03 and 0.05. Severe thinning and shape defects were not observed in the finished tubes. A numerical model was developed and its effectiveness was verified by a comparison between the predicted results and the corresponding experiments.
机译:本文采用一对冲头和冲模,通过多步工艺对坯料弯曲成圆柱管进行了实验研究。所研究的材料是厚度为2 mm的热轧HSLA370。使用LS-DYNA求解器对弯曲和回弹进行了数值模拟。结果表明,多级弯曲技术是生产圆柱管的另一种方法。序列描述为textBlank textsheetxrightarrowtextMultistage textbendingtextC-tubexrightarrow [textWelding] textSqueezingtextO-tube {text {Blank}},{text {sheet}} xrightarrow {{{text {Multistage}},{text {bending}}}} {text { C型管}} xrightarrow [{{text {Welding}}}} {{{text {Squeezing}}}}} {text {O-tube}}。 C型管的间隙宽度和圆度(字母“ C”之类的配置)是评估弯曲性能的两个主要参数。通过数值模拟研究了毛坯定位对两者的影响。生产出满足圆度和直径公差极限的激光焊接管。仿真表明,沿圆周方向的有效塑性应变非常低,大部分在0.03至0.05之间。在成品管中未观察到严重的变薄和形状缺陷。建立了一个数值模型,并通过比较预测结果和相应实验来验证其有效性。

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