首页> 外文期刊>Journal of Materials Processing Technology >Analytical design model of coil parameters for the electro-magnetic forming technology - Case of the 1-turn coil dedicated to tubular parts forming and crimping with 1D approximation
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Analytical design model of coil parameters for the electro-magnetic forming technology - Case of the 1-turn coil dedicated to tubular parts forming and crimping with 1D approximation

机译:电磁成型技术线圈参数的分析设计模型 - 用1D近似形成和压接的1圈线圈的情况

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摘要

In this paper, we propose an analytical electromagnetic modelling and an electromechanical coupling of the 1-turn bulk coil with a cut, made of conducting steel or copper alloys, and used in the electro-magnetic forming technology. The electromagnetic part of the work is the one created beyond the state of the art. Such analytical models that can quickly solve for key process parameters are extremely desirable but must be completed with a mechanical model able to calculate in the end the deformation. An existing mechanical model to calculate the deformation is used and coupled to our electromagnetic model. First, the basic electromagnetic theory will be summarised and then the One-Dimensional (1-D) axi-symmetrical approximation discussed (part 2). The goal is to be able to determine the magnetic vector potential A diffusion, that will quickly lead to all the parameters needed to characterize, qualify, feed and optimize the use of the coil (ex.: magnetic flux density, equivalent inductance, force coefficients,...). Then the pseudo-harmonic solution of the 1D-problem is expanded with the help of Bessel basis functions, including some specific limit conditions and constraints (part 3). The results are compared to numerical 2-D and 3-D computations, performed, thanks to the Finite Element Method, onto some test cases without and with a tube to deform. The proposed model does not only give the numerical value of each parameter, but it provides analytical formulae, with explicit dependences upon some key geometrical and physical variables (ex.: changeable air-gap between the coil and the tube linked to the deformation). The use of a pseudo harmonic working condition will be justified by comparing it to the transient working condition for which the model is improved. Experimental measurements will be carried out with and without a tube but with no deformation (part 4). The results are close and coherent and useful when sizing the coil with respect to performance criteria and performing an equivalent electrical circuit and an electro-mechanical coupling solution, usable with deformation in the transient working conditions (part 5).
机译:在本文中,我们提出了一种分析电磁建模并用的切口,由导电钢或铜合金的1匝线圈本体的机电耦合,并在电磁成形技术使用。工作的电磁部分超出了现有技术的状态中创建的一个。这样的分析模型,可以快速解决关键工艺参数是非常可取的,但必须能够在最终计算出变形的力学模型来完成。现有的机械模型来计算所述变形被使用和耦合到我们的电磁模型。首先,基本的电磁理论将总结,然后将一维(1-d)为轴对称的近似讨论(部分2)。我们的目标是能够确定磁矢量势A扩散,这将很快导致所需的所有表征参数,出线,进料和优化利用所述线圈(例如:磁通密度,等效电感,力系数,...)。然后,1D-问题的伪谐波溶液与贝塞尔基函数的帮助下,包括一些特定的限制条件和约束(第3部分)膨胀。结果进行比较,以数值2-d和3-d的计算,不具有和具有一管变形进行,由于有限元方法,在一些测试用例。该模型不仅给每个参数的数值,但它提供的解析公式,以在一些关键几何和物理变量的显式依赖性(线圈和连接到变形管之间例:改变气隙)。使用的伪谐波的工作状态将通过比较为其模型进行改进瞬态工况是合理的。实验测量将有和没有管,但没有变形(部分4)中进行。相对于性能准则上浆线圈和执行的等效电路和电 - 机械耦合溶液中,可用与变形在瞬态工作条件(部分5),当结果接近和相干的和有用的。

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