D.3.5—Force on current conductor
- Syllabus
- First assessment 2025
- Objective
- —
- Level
- HL
Use the conductor equation
Here L is only the conductor length inside the uniform field and θ is the angle between conventional current and the field. Direction follows the force rule for conventional current.
F=BIL\sin\theta
Worked example — measuring a field
A perpendicular wire carries I=1.64A through L=8.13cm=0.0813m and experiences F=4.12×10−4N. Thus B=F/(IL)=(4.12×10−4)/(1.64×0.0813)=3.09×10−3T.
Read the angle limits
The force is zero when the wire is parallel to the field and maximum when it is perpendicular. Use conventional current direction for the force rule, not the electron drift direction.
Connect the models
The conductor formula is the combined magnetic force on moving charge carriers: I=q/t and L=vt lead from F=qvBsinθ to F=BILsinθ.
Common trap
Do not use electron motion as the current direction, and do not include wire length outside the region where the magnetic field exists.
Questions calculate current or field strength from conductor force, length and magnetic field.
Show that / What is
Use F=BIL sinθ with conventional current, field-region length and the angle between current and field.
Using electron direction instead of conventional current, or using the total wire length rather than the length in the field.
Representative question
A wire carrying a current I is at right angles to a uniform magnetic field of strength B.
A magnetic force F is exerted on the wire. Which force acts when the same wire is placed at right angles to a uniform magnetic field of strength 2 B when the current is 4I?
4F
2F
F
2 F
B