Definitions [5]
Define the magnetic effect of electric current.
A current-carrying conductor is always associated with a magnetic field around it is called the magnetic effect of current. It was first discovered by Hans Christian Oersted in 1820.
Define magnetic shielding.
The process of stopping the magnetic field from entering a region is called magnetic shielding.
Define magnetic flux density.
The number of magnetic field lines crossing unit area kept normal to the direction of field lines is called magnetic flux density. Its unit is Wb/m2
Define ampere.
Current passed through each of the two infinitely long parallel straight conductors kept at a distance of one meter apart in vacuum causes each conductor to experience a force of 2 × 10-7 newton per meter length of the conductor.
Define the term ‘current sensitivity’ of a moving coil galvanometer.
The current sensitivity of a galvanometer is defined as the deflection produced in the galvanometer when a unit current flows through it.
Mathematically, it can be given by:
IS = `(NBA)/k`
Where k is the couple per unit twist.
Current sensitivity is defined as the deflection e per unit current.
Formulae [3]
\[\vec{E}=\frac{1}{4\pi\varepsilon_0}\frac{Q}{r^2}\hat{r}\]
\[\vec{B}=\frac{\mu_0IR^2}{2(x^2+R^2)^{3/2}}\hat{i}\]
Where:
- I = current
- R = radius of loop
- x = distance from centre along axis
- μ0 = permeability of free space
\[\vec{m}=I\vec{A}\]
For N turns:
\[\vec{m}=NI\vec{A}\]
Theorems and Laws [1]
Obtain an expression for magnetic induction of a toroid of ‘N’ turns about an axis passing through its centre and perpendicular to its plane.
The toroid is a solenoid bent into the shape of a hollow doughnut.
According to Ampere's circuital law.
`phivecB.vec(dL) = mu_0I`
Here current 'I' flow through the ring as many times as there are the N no. of turns.
∴ `phivecB.vec(dL) = mu_0NI` ......(1)
Now, B and dL are in the same direction.
∴ `phivecB.vec(dL) = BphidL`
∴ `phivecB.vec(dL) = B.(2pir)` .....(2)
From (1) and (2),
`mu_0NI = B.(2pir)`
∴ B = `(mu_0NI)/(2pir)`
Key Points
- Electric current creates a magnetic field, shown by compass needle deflection.
- Oersted discovered the link between electricity and magnetism in 1820.
- Reversing current changes the direction of the magnetic field.
- Iron filings form circular patterns, showing magnetic field lines around the wire.
- Magnetic field strength increases with current and decreases with distance.
Concepts [19]
- Oersted's Experiment
- Magnetic force
- Magnetic Effect of Electric Current
- Magnetic Induction
- Magnetic Field
- Direction of Magnetic Field
- Magnetic Flux
- Motion in a Magnetic Field
- Motion in Combined Electric and Magnetic Fields
- Cyclotron
- Force on a Current - Carrying Conductor in a Uniform Magnetic Field
- Biot-Savart Law
- Magnetic Field on the Axis of a Circular Current Loop
- Ampere’s Circuital Law
- Applications of Ampere’s Circuital Law > Magnetic Field of a Toroidal Solenoid
- Force Between Two Parallel Currents, the Ampere
- Torque on a Current-Loop in a Uniform Magnetic Field
- Galvanometer
- Moving Coil Galvanometer
