Abstract:Combined with modern digital technology, the students who major in electronic information are taught through the teaching method of problem based learning (PBL) for the more abstract electric and magnetic fields and the related physical phenomena in the course of “electromagnetic field and wave”. In this process, the C++ computer programming language is used to simulate the electromagnetic physical phenomena in order to help students understand and grasp the difficult electromagnetic concepts. Firstly, mathematical analysis and modeling are done on the basis of dynamic image lifelike simulation. The implementation of the innovation of the course aims to help students participate these processes including modeling process and realizing method of active discussion of electromagnetic phenomena. The aims are to inspire students’ learning interest, to improve student learning initiative, and to train students' creative thinking ability. Through the implementation of the innovative practice teaching method, the students can understand the concepts and fundamental principles of the electromagnetic field and wave, students are trained to use mathematical tools for analyzing and solving problems. Finally, students’ abilities of programming understanding, physical modeling and solving practical problems all can be improved.
安爱民, 张爱华, 黄玲, 马晶, 李建海. 可视化数字模拟创新教学在《电磁场与电磁波》中的探索与实践[J]. 电工技术学报, 2013, 28(2增): 204-208.
An Aimin, Zhang Aihua, Huang Ling, Ma Jing, Li Jianhai. Exploration and Implementation of Visible Simulation the Innovative Practice Teaching on Field and Wave of Electromagnetics. Transactions of China Electrotechnical Society, 2013, 28(2增): 204-208.
[1] 肖汉光.《电磁场与电磁波》的课程教学研究与探索[J]. 教育教学论坛, 2013, 13: 49-50. Xiao Hanguang. Teaching research and exploration of electromagnetic field and wave[J]. Education and Teaching Forum, 2013, 13: 49-50. [2] 张起晶, 孙桂芝, 边莉. 电磁场与电磁波课程教学改革研究[J]. 黑龙江教育: 高教研究与估, 2011, 10: 47-48. Zhang Qijing, Sun Guizhi, Bian Li. Teaching innovation research of electromagnetic field and wave[J]. HeiLongJiang Education (Higher Education Research & Appraisa1), 2011, 10: 47-48. [3] 陈帝伊, 刘淑琴, 等. 电磁场理论课程的教学改革探讨[J]. 电气电子教学学报, 2009, 31(4): 116-117. Chen Diyi, Liu Shuqin, et al. Exploration of reforms in teaching of the electromagnetic field course[J].Journal of Electrical & Electronic Education, 2009, 31(4): 116-117. [4] 王泽忠, 李世琼. 论电磁场媒质分界面衔接[J]. 电 工 技 术 学 报, 2013, 28(2): 60-66. Wang Zezhong, Li Shiqiong. Discussion of the electromagnetic interface conditions[J]. Transactions of China Electrotechnical Society, 2013, 28(2): 60-66. [5] 梁慧敏, 由佳欣, 等. 基于三维磁场仿真分析的含永磁继电器等效磁路模型的建立[J]. 电工技术学报, 2011, 26(1): 46-50. Liang Huimin, You Jiaxin, et al.Construction of equivalent magnetic circuit for permanent magnet relay based on 3-D magnetic field analysis[J]. Transactions of China Electrotechnical Society, 2011, 26(1): 46-50. [6] 姜宁. 在 “电磁场与电磁波” 教学中建立创新理念[J]. 电气电子教学学报, 2009, 31(1): 95-97. Jiang Ning. The building of innovation idea in electromagnetic field & wave courses system[J]. Journal of Electrical & Electronic Education, 2009, 31(1): 95-97. [7] 向洪岗, 陈德桂, 李兴文, 等. 基于磁场和等效磁路的磁通变换器特性仿真和优化设计[J]. 电工技术学报, 2009, 24(4): 85-91. Xiang Honggang, Chen Degui, Li Xingwen, et al. Characteristics emulation and optimization design of flux transfer trip based on magnetic field and equivalent reluctance[J]. Transactions of China Electrotechnical Society, 2009, 24(4): 85-91. [8] 李元杰, 陆果. 大学物理学 (第2版)[M], 北京: 高等教育出版社, 2008. [9] 谢处方, 饶克谨. 电磁场与电磁波[M]. 4版. 北京: 高等教育出版社, 2007.