5.1 Name the TWO factors that influence the reactance of a capacitor - NSC Electrical Technology Electronics - Question 5 - 2016 - Paper 1
Question 5
5.1 Name the TWO factors that influence the reactance of a capacitor.
5.2 Distinguish between the two concepts reactance and impedance.
5.3 Draw the typical freque... show full transcript
Worked Solution & Example Answer:5.1 Name the TWO factors that influence the reactance of a capacitor - NSC Electrical Technology Electronics - Question 5 - 2016 - Paper 1
Step 1
5.1 Name the TWO factors that influence the reactance of a capacitor.
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Answer
The two factors that influence the reactance of a capacitor are:
The frequency of the applied voltage: As frequency increases, the reactance decreases.
The capacitance value: A higher capacitance leads to lower reactance.
Step 2
5.2 Distinguish between the two concepts reactance and impedance.
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Answer
Reactance is the opposition to the change in current caused by inductors and capacitors, while impedance is the total opposition a circuit presents to alternating current, including both resistive and reactive components. Reactance is measured in ohms and can be either capacitive (
Xc) or inductive (
Xl), while impedance is the vector sum of resistance (R) and reactance (X).
Step 3
5.3 Draw the typical frequency/impedance characteristic curve of a series RLC circuit.
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Answer
The frequency/impedance characteristic curve of a series RLC circuit is typically a U-shaped graph where:
The vertical axis represents impedance (Z) in ohms.
The horizontal axis represents frequency (f) in Hz.
At resonance (f_r), the impedance is at its minimum and equals the resistance (R). At lower frequencies, the circuit behaves inductively (Xl > Xc), and at higher frequencies, it behaves capacitively (Xc > Xl).
Step 4
5.4 Calculate the Q-factor of a series RLC circuit that resonates at 6 kHz.
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Answer
To calculate the Q-factor (Q) of the circuit, use the formula:
Q=ZXl
where:
At resonance, Xl=Xc=4kΩ,
The total impedance Z=R=50Ω. Thus,
Q=504000=80.
Step 5
5.5.1 Inductive reactance of the coil.
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The inductive reactance (Xl) can be calculated using the formula:
Xl=2πfL
Substituting the given values:
Xl=2π(50)(400×10−3)=125.66Ω.
Step 6
5.5.2 Capacitive reactance of the capacitor.
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The capacitive reactance (Xc) can be calculated using the formula:
Xc=2πfC1
Substituting the given values:
X_c = \frac{1}{2\pi (50)(47 \times 10^{-6}) = 67.73 \Omega.
Step 7
5.5.3 Frequency at which the circuit will resonate.
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The resonant frequency (fr) can be calculated using the formula:
fr=2πLC1
Substituting the given values:
fr=2π(400×10−3)(47×10−6)1=36.71Hz.