Mutual influence of currents in plane inductor system with solenoid between two massive conductors

IF 1.6 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC
Y. Batygin, S. Shinderuk, E. Chaplygin
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引用次数: 1

Abstract

Introduction. Inductor systems, as tools for metal processing, widely used in industrial  technologies  using the energy of powerful pulsed electromagnetic fields. Problem. A common disadvantage of the known works on the creation of tools for magnetic-pulse impact on conductive objects has the use of physical and mathematical models, in which the exciting currents do not depend on the ongoing electromagnetic processes. Such the assumption, have distorts the picture of the real energy in the working area of the inductor system. Goal. To obtain design ratios and numerical estimates of the mutual influence of exciting and induced currents of a flat inductor system with a circular solenoid located between massive well-conducting objects, moreover to carry out a theoretical analysis of electromagnetic processes in this system. Methodology. Have applied integrating Maxwell’s equations using the Laplace and Fourier-Bessel integral transformations in the approximation of the ideal conductivity of the metal objects to be processed. Results. The calculated relations for the theoretical analysis of electromagnetic processes have obtained in the high-frequency approximation. It shown that the inductance of the studied system decreases as the objects being processed approach the solenoid and increases as they move away from it. It found that for the invariability of the power indicators, of the proposed tool, a corresponding correction of the amplitude (on average up to 20 times) of the exciting current has necessary in the solenoid winding. Originality. For the first time, the tool design with a circular solenoid located between the massive metal objects has proposed for flat magnetic-pulse stamping. As a result of the theoretical analysis, the influence of electromagnetic processes on the currents flowing in the system has confirmed. Practical significance. The use of the results obtained will allow to increase the efficiency of the tool of magnetic-pulse technologies, and to reduce the energy costs for performing the specified production operations.
两大质量导体间螺线管平面电感系统中电流的相互影响
介绍。电感系统作为金属加工的工具,广泛应用于利用强大脉冲电磁场能量的工业技术中。问题。已知的关于创建磁脉冲冲击导电物体的工具的工作的一个共同缺点是使用物理和数学模型,其中激励电流不依赖于正在进行的电磁过程。这样的假设,扭曲了电感系统工作区域实际能量的图像。的目标。在大质量导电性良好的物体之间设置圆形螺线管的扁平电感系统中,获得了激励电流和感应电流相互影响的设计比和数值估计,并对该系统中的电磁过程进行了理论分析。方法。利用拉普拉斯和傅里叶-贝塞尔积分变换对麦克斯韦方程组进行积分,逼近待加工金属物体的理想电导率。结果。在高频近似下得到了电磁过程理论分析的计算关系式。结果表明,所研究系统的电感随着被处理物体接近螺线管而减小,随着被处理物体远离螺线管而增大。研究发现,为了使所提出的工具的功率指标保持不变,需要对螺线管绕组中励磁电流的幅度(平均高达20倍)进行相应的校正。创意。首次提出了将圆形螺线管置于大型金属物体之间用于平面磁脉冲冲压的刀具设计。通过理论分析,证实了电磁过程对系统中电流的影响。现实意义。所获得的结果的使用将允许提高磁脉冲技术工具的效率,并降低执行指定生产操作的能源成本。
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来源期刊
Electrical Engineering & Electromechanics
Electrical Engineering & Electromechanics ENGINEERING, ELECTRICAL & ELECTRONIC-
CiteScore
2.40
自引率
50.00%
发文量
53
审稿时长
10 weeks
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