考虑绕制不对称性的螺线管线圈磁场计算方法OA
Method for Calculating Magnetic Field of Solenoid Coil Accounting for Winding Asymmetry
螺线管线圈由导线螺旋绕制而成,因其工艺简单而被广泛应用于电气设备中.在螺线管线圈的瞬态仿真中,为了降低建模复杂度和计算时长,将线圈等效为多个同轴圆环截面的 2D 轴对称模型,这对于绕制密集的多匝数线圈有较高的计算精度和极快的求解速度.但该模型未考虑绕制工艺的轴向不对称性,导致非密绕制线圈用于高强度场景时仿真误差较大.因此,该文提出一种考虑线圈绕制不对称性的改进电流丝法,引入非对称修正系数矩阵对电流丝进行优化,再将优化后的电流导入 2D 轴对称等效模型中计算磁场.这一方法将结构上的不对称性等效为对称结构下激励电流的不对称性,在提高求解精度的同时不增加过多的计算量.该文针对单层螺线管线圈进行了验证,结果表明该方法通过电流的高精度计算,获得了更贴近实际的线圈磁场分布,验证了所提方法在非密绕制的螺线管线圈磁场计算中的有效性和实用性.
Solenoid coils,made by spirally winding wires,are key components for converting electro-magnetic energy.Due to their advantages of stable structure,simple manufacturing process,and easy reinforcement,they are widely used in electrical equipment such as transformers and motors.In the transient simulation,to reduce modeling complexity and computational time,the coil is modeled as a 2D axisymmetric model with multiple coaxial circular cross-sections.This model achieves high computational accuracy and extremely fast solution times for multi-turn dense-wound coils,but it does not account for axial asymmetry introduced by the winding process.Thus,large simulation errors occur when solenoid coils with high magnetic field intensity,non-dense windings,and large-cross-section wires are used in high-intensity scenarios. Therefore,this paper proposes an improved current filament method that accounts for the winding asymmetry.A numerical solution model is established based on the current filament method and introduces an asymmetric correction coefficient matrix to optimize the current filaments.The optimized current is then imported into the model for magnetic field calculation.The structural asymmetry is equivalent to the excitation-current asymmetry in a symmetric structure,improving solution accuracy without incurring excessive computational load. Taking a single-layer solenoid coil as an example,this paper first subdivides the coil wire into several current filament units,calculates the electromagnetic characteristic parameters between each pair of units,and constructs a numerical solution model.Then,the asymmetry coefficient of the current filament is calculated,and the current is optimized using the asymmetric correction coefficient matrix.Finally,the optimized current is imported into the 2D axisymmetric equivalent model.The results show that the coil magnetic field distribution closely matches the actual situation,verifying the effectiveness and practicability of the proposed method. The conclusions are as follows.(1)This paper proposes an improved current filament method considering the winding asymmetry of the coil,which effectively equates the structural asymmetry of the coil to the asymmetry of the excitation current under a symmetric structure.(2)This method effectively improves the current calculation accuracy,achieving a magnetic field distribution closer to that of the 3D coil.Meanwhile,the calculation time is significantly shortened.The output current accuracy is less than 2%,and the error at the current peak is reduced from 3.814%to 0.132%.The magnetic flux density distribution of the coil is closer to the comparison reference value.(3)It has good effectiveness and stability for different solenoid coils.By studying the current calculation accuracy under different factors such as the number of turns,wire size,discharge capacitance,and coil pitch,it is found that the errors of this method are within 0%~1%.Moreover,for complex calculation models,the advantage in computational efficiency is pronounced.
熊奇;黎袁袁;程辉;王丽丽;阎诺
三峡大学电气与新能源学院 宜昌 443002||广东省极端条件重点实验室 东莞 523803三峡大学电气与新能源学院 宜昌 443002||智慧能源技术湖北省工程研究中心(三峡大学) 宜昌 443002广东省极端条件重点实验室 东莞 523803三峡大学电气与新能源学院 宜昌 443002||智慧能源技术湖北省工程研究中心(三峡大学) 宜昌 443002国网重庆市电力公司万州供电分公司 重庆 404100
信息技术与安全科学
螺线管线圈绕制不对称性电流丝法电磁计算改进电流丝法
Solenoid coilwinding asymmetrycurrent filament methodelectromagnetic calculationsimproved current filament method
《电工技术学报》 2026 (16)
5402-5413,12
广东省极端条件重点实验室项目资助(2023B1212010002).
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