Two capacitors with capacitance values C1- 2000 -10 pF and C2 - 3000 - 15 pF are connected in series- The voltage applied across this combination is - - 5-00 - 0-02 volt- The percentage error in the calculation of the energy stored in this combination of capacitors is

Energy stored is given by, U=12C_1C_2C_1+C_2V^2 Let nbsp; C_eq=C_1C_2C_1+C_2 1C_eq±Δ C_eq=1C_1±Δ C_1 +1C_2±Δ C_2 ⇒ C_eq±Δ C_eq≃C_1C_2+C_1Δ C_2+C_2Δ C_1C_1+C_2 ...

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Byju's Answer

Standard XII

Physics

Potential and Potential Difference

Two capacitor...

Question

Two capacitors with capacitance values $C_{1} = 2000 \pm 10 pF$ and $C_{2} = 3000 \pm 15 pF$ are connected in series. The voltage applied across this combination is $V = 5.00 \pm 0.02 volt$ . The percentage error in the calculation of the energy stored in this combination of capacitors is

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Solution

Energy stored is given by,
$U = \frac{1}{2} \frac{C_{1} C_{2}}{C_{1} + C_{2}} V^{2}$
Let $C_{eq} = \frac{C_{1} C_{2}}{C_{1} + C_{2}}$
$\frac{1}{C_{e q} \pm Δ C_{e q}} = \frac{1}{C_{1} \pm Δ C_{1}} + \frac{1}{C_{2} \pm Δ C_{2}}$
$\Rightarrow C_{e q} \pm Δ C_{e q} ≃ \frac{C_{1} C_{2} + C_{1} Δ C_{2} + C_{2} Δ C_{1}}{C_{1} + C_{2} + Δ C_{1} + Δ C_{2}}$
$\Rightarrow C_{e q} \pm Δ C_{e q} = \frac{1200 (1 \pm \frac{12}{1200})}{(1 \pm \frac{25}{5000})}$

$C_{e q} \pm Δ C_{e q} = 1200 [1 \pm (\frac{1}{100} - \frac{1}{200})]$

$C_{e q} \pm Δ C_{e q} = 1200 \pm 6$ pF

$U = \frac{1}{2} Δ C_{e q} V^{2}$

$\frac{Δ U}{U} \times 100 = \frac{Δ C_{e q}}{C_{e q}} \times 100 + \frac{2 Δ V}{V} \times 100$

$\Rightarrow \frac{Δ U}{U} \times 100 = \frac{1}{200} \times 100 + 2 \times \frac{0.02}{5} \times 100$

$\Rightarrow \frac{Δ U}{U} \times 100 = 1.3 %$

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Two capacitors with capacitance values C1=2000±10 pF and C2=3000±15 pF are connected in series. The voltage applied across this combination is V=5.00±0.02 volt. The percentage error in the calculation of the energy stored in this combination of capacitors is

Two capacitors with capacitance values $C_{1} = 2000 \pm 10 pF$ and $C_{2} = 3000 \pm 15 pF$ are connected in series. The voltage applied across this combination is $V = 5.00 \pm 0.02 volt$ . The percentage error in the calculation of the energy stored in this combination of capacitors is