આ MCQ મોડ્યુલ આના પર આધારિત છે: Parallel Plate Combinations Energy
Parallel Plate Combinations Energy
આ મૂલ્યાંકન આના પર આધારિત હશે: Parallel Plate Combinations Energy
મૂલ્યાંકન બનાવવામાં તેમની સામગ્રી સામેલ કરવા ચિત્રો, PDF અથવા Word દસ્તાવેજ અપલોડ કરો.
Parallel Plate Combinations Energy
2.11 The Parallel Plate Capacitor
The most widely used capacitor geometry consists of two flat conducting plates of area \(A\) separated by a distance \(d\) that is small compared with the plate dimensions. One plate carries \(+Q\), the other \(-Q\).
Derivation of C = ε₀A/d
For an infinite sheet of charge density \(\sigma = Q/A\), Gauss's law gives a uniform field \(E = \sigma/\varepsilon_0\) on each side. Between the plates the fields of the two sheets add, while outside they cancel:
The potential difference between the plates is \(V = E\,d\):
Capacitance is large when the plates are wide and close together — more area holds more charge; a small gap means a smaller voltage for the same charge.
2.12 Effect of a Dielectric
Slip a dielectric slab of constant K completely into the gap. The field inside drops by factor K, therefore so does \(V\), but \(Q\) (if isolated) does not change:
| Material | K (approx.) | Use |
|---|---|---|
| Vacuum / air | 1.000 / 1.0006 | Reference |
| Paper (waxed) | 3.5 | Power-factor correction caps |
| Mica | 6 | RF circuits, high-voltage |
| Glass | 5 – 10 | Prototyping, scientific |
| Ceramic (BaTiO₃) | 1200+ | High-density chip caps |
| Water | 80 | Biological capacitance |
2.13 Combination of Capacitors
(a) Series Combination
Capacitors are "in series" when they share the same charge \(Q\) but the voltages add:
The equivalent capacitance is smaller than the smallest in the chain.
(b) Parallel Combination
Capacitors are "in parallel" when they share the same voltage \(V\) but the charges add:
The equivalent capacitance is larger than any individual one.
2.14 Energy Stored in a Capacitor
Charging a capacitor means pushing charge from one plate to the other through an ever-rising potential difference. Suppose, at some instant, the charge is \(q\) and the voltage \(q/C\). Moving an additional \(dq\) requires work \(dW = (q/C)\,dq\). Integrating from 0 to \(Q\):
Using \(Q = CV\), the same energy has three equivalent forms:
Energy Density of the Electric Field
For a parallel-plate capacitor, substitute \(C = \varepsilon_0 A/d\) and \(V = Ed\):
Since \(Ad\) is the volume of the gap, the energy per unit volume is:
This is a completely general result: electric fields carry energy, at a density proportional to \(E^2\), regardless of how they were produced.
Worked Examples — Plate Capacitor, Combinations, Energy
Example 2.14: NCERT plate capacitor
Plates of area \(6\times 10^{-3}\) m² are separated by a 3 mm air gap. Find its capacitance.
Example 2.15: Three capacitors in series
\(C_1=2\) pF, \(C_2=3\) pF, \(C_3=4\) pF are connected in series across 100 V. Find \(C_{\text{eq}}\), the charge, and the voltage across each.
Example 2.16: Three capacitors in parallel
The same three capacitors (2, 3, 4 pF) are now connected in parallel across 100 V. Find \(C_{\text{eq}}\), total charge, and charge on each.
Example 2.17: Mixed (series-parallel) combination
Two \(4\,\mu\)F capacitors are first connected in parallel, and that combination is then put in series with a \(2\,\mu\)F capacitor across a 60 V supply. Find the equivalent capacitance and the voltage across the \(2\,\mu\)F capacitor.
Example 2.18: Energy stored
A 100 μF capacitor is charged to 50 V. How much energy is stored?
Example 2.19: Energy loss when two capacitors are connected
A \(C_1=4\,\mu\)F capacitor is charged to 200 V. It is then connected in parallel to an uncharged \(C_2=4\,\mu\)F capacitor. Find the common voltage, the energy before and after, and the energy lost.
Example 2.20: Slab partially filling the gap
A parallel-plate capacitor has plates of area A separated by d. A dielectric slab of thickness \(t < d\) and constant K is inserted parallel to the plates. Find the new capacitance.
Example 2.21: Energy density in field
A parallel-plate capacitor has a field of \(10^{6}\) V/m in its gap of volume \(10^{-4}\) m³. Find the energy stored.
- Cut two 10 × 10 cm squares of aluminium foil and one 12 × 12 cm square of waxed paper. Stack them: foil – paper – foil. Clip wires to the two foils.
- Read the capacitance on a digital multimeter set to nF.
- Build a second identical sandwich and clip it in parallel to the first; read again.
- Squeeze the first sandwich with a heavy book and repeat.
Explanation: \(C = K\varepsilon_0 A/d\). Parallel connection doubles the effective plate area. Pressing reduces \(d\), raising C inversely.
Interactive: Capacitor Combination Solver L3 Apply
Enter up to four capacitances (μF) and choose the connection. The tool returns the equivalent capacitance and total energy at the specified voltage.
Competency-Based Questions
Q1. L3 Apply Energy stored in a single 470 μF capacitor charged to 12 V is: (2 marks)
Q2. L3 Apply If the engineer connects four of them in parallel across 12 V, what is the total energy available? (2 marks)
Q3. L1 Remember In a series combination, the quantity that is the same across every capacitor is:
Q4. L4 Analyse A 5 μF capacitor charged to 200 V is connected in parallel to an uncharged 10 μF capacitor. Find the final voltage and energy lost. (3 marks)
Q5. L3 Apply A parallel-plate capacitor of area 100 cm² and gap 1 mm, air-filled, is charged to 200 V. Compute C, Q and U. (3 marks)
Assertion-Reason Questions
Assertion (A): When a dielectric is inserted in a charged isolated capacitor, the voltage across it drops.
Reason (R): Inserting the dielectric increases C, and with Q fixed, V = Q/C decreases.
Assertion (A): When two capacitors at different potentials are connected by a wire, some energy is always lost.
Reason (R): The transient current dissipates energy as heat and electromagnetic radiation in the connecting wires.
Assertion (A): The equivalent capacitance of capacitors in series is smaller than the smallest one.
Reason (R): In series, the effective plate separation adds up, reducing the overall capacitance.
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Physics — CBSE Class XII Sample Paper 1 (2025-26)
Section A · Section B · Section C · Section D · Section E