Q.What is displacement current ? Explain briefly how this current is different from a conduction current.
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Start your 14-day free trial to unlock the full solution →Displacement current is a term added to Ampere’s law to account for changing electric fields in capacitors; it is fundamentally different from conduction current because it involves no actual movement of charge, only a time-varying electric flux.
The Concept and Intuition
The idea of displacement current was introduced by James Clerk Maxwell to resolve a glaring inconsistency in the original Ampere’s circuital law. That law states that the line integral of the magnetic field around a closed loop equals times the current passing through any surface bounded by that loop. But consider a capacitor being charged. If you take a loop around the wire leading to the capacitor, the current through a flat surface cutting the wire is clearly . However, if you instead take a bulging surface that passes between the capacitor plates (where no conduction current flows), the current through that surface is zero. This gives two different answers for the same loop — a contradiction.
Maxwell realised that the changing electric field between the plates must itself act as a source of magnetic field. He called this contribution the displacement current, and it completes Ampere’s law into a consistent, unified form.
Maxwell’s corrected Ampere’s law:
where is the conduction current and is the displacement current.
Step-by-Step Explanation
- What is displacement current? Displacement current is defined as the rate of change of electric flux through a surface, multiplied by :
Here is the electric flux. In a charging capacitor, the electric field between the plates increases with time, so , and a displacement current exists there even though no charges move across the gap.
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How does it resolve the capacitor paradox?
For the loop around the wire, the flat surface gives and (no field change there), so the right-hand side is . For the bulging surface between the plates, but equals exactly (because the field builds up at a rate proportional to the charging current). Hence the displacement current , and the total current is again . Both surfaces give the same result — consistency restored.
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Key differences from conduction current
Aspect Conduction current () Displacement current () Origin Actual flow of free charges (electrons/ions) Time-varying electric field Medium Requires a conductor Exists even in vacuum or dielectric Heat Produces Joule heating () No heat generation Magnetic effect Produces magnetic field Also produces magnetic field (same way) Direction Direction of positive charge flow Direction of increasing electric field
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