20-1 Magnets and magnetic Fields 20
... 1. Students will explain the basic concepts of a magnet and its field. 2. Students will relate electric currents to magnetic fields. 3. Students will relate magnetic force to electric current. 4. Students will explain the importance of the right hand rules. 5. Students will explain how a magnetic fi ...
... 1. Students will explain the basic concepts of a magnet and its field. 2. Students will relate electric currents to magnetic fields. 3. Students will relate magnetic force to electric current. 4. Students will explain the importance of the right hand rules. 5. Students will explain how a magnetic fi ...
Exam 2 Review
... Exam 2 Review General Comments There are many analogies between chapters 15 & 16 and 19 & 20 (i.e charge is like current, Ampere’s Law is like the Biot-Savart Law, etc..), so if you understand these analogies they will help you (but if you don’t understand them, then don’t try to). You should re ...
... Exam 2 Review General Comments There are many analogies between chapters 15 & 16 and 19 & 20 (i.e charge is like current, Ampere’s Law is like the Biot-Savart Law, etc..), so if you understand these analogies they will help you (but if you don’t understand them, then don’t try to). You should re ...
Electric Field Lines - a “map” of the strength of the
... Electric field lines always begin on a positive charge and end on a negative charge and do not start or stop in midspace. Also, the number of lines leaving a positive charge or entering a negative charge is proportional to the magnitude of the charge. ...
... Electric field lines always begin on a positive charge and end on a negative charge and do not start or stop in midspace. Also, the number of lines leaving a positive charge or entering a negative charge is proportional to the magnitude of the charge. ...
Electric Field Lines: Rules
... -a tool used to visualize the electric field in a region of space ...
... -a tool used to visualize the electric field in a region of space ...
Chapter 28
... that the total electric flux is related to the total enclosed charge. • However, there are no magnetic monopoles, always dipoles. Like in electric dipole case, total flux through a closed surface for a dipole is 0! • For any closed surface you can draw, every magnetic field line which enters the sur ...
... that the total electric flux is related to the total enclosed charge. • However, there are no magnetic monopoles, always dipoles. Like in electric dipole case, total flux through a closed surface for a dipole is 0! • For any closed surface you can draw, every magnetic field line which enters the sur ...