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A parallel plate capacitor has a capacitance of 6 x 10⁻¹² F and a charge of 0,3 x 10⁶ C on each one of the identical metal plates - NSC Technical Sciences - Question 8 - 2023 - Paper 1

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A parallel plate capacitor has a capacitance of 6 x 10⁻¹² F and a charge of 0,3 x 10⁶ C on each one of the identical metal plates. The metal plates are 5 cm apart. T... show full transcript

Worked Solution & Example Answer:A parallel plate capacitor has a capacitance of 6 x 10⁻¹² F and a charge of 0,3 x 10⁶ C on each one of the identical metal plates - NSC Technical Sciences - Question 8 - 2023 - Paper 1

Step 1

Define a capacitor.

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Answer

A capacitor is a device that stores electrical charge. It consists of two conductive plates separated by an insulating material (dielectric) which allows it to accumulate voltage across its plates.

Step 2

State the relationship between the capacitance of a capacitor and the charge.

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Answer

The capacitance is directly proportional to the charge on the plates. This can be expressed mathematically as:

CQC \propto Q

where CC is the capacitance and QQ is the charge.

Step 3

Calculate the: 8.3.1 Potential difference between the metal plates.

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Answer

Using the formula for capacitance:

C=QVC = \frac{Q}{V}

we can rearrange to find the potential difference VV:

V=QCV = \frac{Q}{C}

Substituting the values:

V=0,3×106C6×1012F=50,000V=50kVV = \frac{0,3 \times 10^{-6} C}{6 \times 10^{-12} F} = 50,000 V = 50 kV

Step 4

8.3.2 Area of each metal plate.

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Using the formula for capacitance in terms of area and distance:

C=ε0AdC = \varepsilon_0 \frac{A}{d}

Where:

  • CC is the capacitance
  • ε0\varepsilon_0 (permittivity of free space) = 8.85×1012 F/m8.85 \times 10^{-12} \text{ F/m}
  • AA is the area of one plate
  • dd is the separation between the plates (5 cm = 0.05 m)

Rearranging for AA gives:

A=Cdε0A = C \cdot \frac{d}{\varepsilon_0}

Substituting the known values:

A=6×1012F0.05m8.85×1012F/m3.39×102m2A = 6 \times 10^{-12} F \cdot \frac{0.05 m}{8.85 \times 10^{-12} F/m} \approx 3.39 \times 10^{-2} m^2

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