20. Magnetic fields
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20.1 Concept of a magnetic field
20.1.1A magnetic field is an example of a field of force produced either by moving
• understand that a magnetic field is an example of a field of force produced either by moving charges or by permanent magnets
20.1.2A magnetic field by field lines
• represent a magnetic field by field lines
20.2 Force on a current-carrying conductor
20.2.1A force might act on a current-carrying conductor placed in a magnetic field
• understand that a force might act on a current-carrying conductor placed in a magnetic field
20.2.2The equation F = BIL sin θ, with directions as interpreted by Fleming’s
• recall and use the equation F = BIL sin θ, with directions as interpreted by Fleming’s left-hand rule
20.2.3Magnetic flux density as the force acting per unit current per unit length
• define magnetic flux density as the force acting per unit current per unit length on a wire placed at right-angles to the magnetic field
20.3 Force on a moving charge
20.3.1The direction of the force on a charge moving in a magnetic field
• determine the direction of the force on a charge moving in a magnetic field
20.3.2F = BQv sin θ
• recall and use F = BQv sin θ
20.3.3The origin of the Hall voltage and derive and use the expression V H = BI /
• understand the origin of the Hall voltage and derive and use the expression V H = BI / (ntq), where t = thickness
20.3.4The use of a Hall probe to measure magnetic flux density
• understand the use of a Hall probe to measure magnetic flux density
20.3.5The motion of a charged particle moving in a uniform magnetic field
• describe the motion of a charged particle moving in a uniform magnetic field perpendicular to the direction of motion of the particle
20.3.6How electric and magnetic fields can be used in velocity selection
• explain how electric and magnetic fields can be used in velocity selection
20.4 Magnetic fields due to currents
20.4.1Magnetic field patterns due to the currents in a long straight wire, a flat
• sketch magnetic field patterns due to the currents in a long straight wire, a flat circular coil and a long solenoid
20.4.2The magnetic field due to the current in a solenoid is increased by a
• understand that the magnetic field due to the current in a solenoid is increased by a ferrous core
20.4.3The origin of the forces between current-carrying conductors and determine
• explain the origin of the forces between current-carrying conductors and determine the direction of the forces
20.5 Electromagnetic induction
20.5.1Magnetic flux as the product of the magnetic flux density and the
• define magnetic flux as the product of the magnetic flux density and the cross-sectional area perpendicular to the direction of the magnetic flux density
20.5.2Φ = BA
• recall and use Φ = BA
20.5.3The concept of magnetic flux linkage
• understand and use the concept of magnetic flux linkage
20.5.4Experiments that demonstrate: • that a changing magnetic flux can induce an
• understand and explain experiments that demonstrate: • that a changing magnetic flux can induce an e.m.f. in a circuit • that the induced e.m.f. is in such a direction • As to oppose the change producing it • the factors affecting the magnitude of the induced e.m.f.
20.5.5Faraday’s and Lenz’s laws of electromagnetic induction
• recall and use Faraday’s and Lenz’s laws of electromagnetic induction