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MIT讲义-电磁场、电磁力和电磁运动

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发表于 2008-4-23 10:40:30 | 显示全部楼层 |阅读模式
课件讲义
课件讲义名称: 电磁场、电磁力和电磁运动
内容简介: Course Highlights
This course features a complete set of downloadable problem sets and solutions in the assignments section. In addition the course features exams with solutions for multiple years in the exams section.
This course features an online textbook in the readings section, as well as video demonstrations related to electromagnetism concepts covered in the book.

Course Description
6.641 examines electric and magnetic quasistatic forms of Maxwell's equations applied to dielectric, conduction, and magnetization boundary value problems. Topics covered include: electromagnetic forces, force densities, and stress tensors, including magnetization and polarization; thermodynamics of electromagnetic fields, equations of motion, and energy conservation; applications to synchronous, induction, and commutator machines; sensors and transducers; microelectromechanical systems; propagation and stability of electromechanical waves; and charge transport phenomena.
媒体: 幻灯片
所属专业方向: 电磁学
制作者:
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Course Highlights
* o# d9 d2 l. M! `  Z( KThis course features a complete set of downloadable problem sets and solutions in the assignments section. In addition the course features exams with solutions for multiple years in the exams section.
2 J9 F4 T. ^$ UThis course features an online textbook in the readings section, as well as video demonstrations related to electromagnetism concepts covered in the book.
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Course Description3 w1 e1 {" |) D; v  s
6.641 examines electric and magnetic quasistatic forms of Maxwell's equations applied to dielectric, conduction, and magnetization boundary value problems. Topics covered include: electromagnetic forces, force densities, and stress tensors, including magnetization and polarization; thermodynamics of electromagnetic fields, equations of motion, and energy conservation; applications to synchronous, induction, and commutator machines; sensors and transducers; microelectromechanical systems; propagation and stability of electromechanical waves; and charge transport phenomena.

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