Respuesta :
Answer:
(a) Energy stored is 2.63×10^-5 J
(b) Energy stored is 6.56×10^-6 J
(c) Work required is 8.75×10^-6 J
Explanation:
(a) C = AEo/d
A is area of plates = 451 cm^2 = 451/10000 = 0.0451 m^2
Eo is permutivity constant = 8.84×10^-12 F/m
d is separation between the plates = 2.51 mm = 2.51/1000 = 2.51×10^-3 m
C = 0.0451 × 8.84×10^-12/2.51×10^-3 = 1.59×10^-10 F
E = 1/2CV^2 = 1/2 × 1.59×10^-10 × 575^2 = 2.63×10^-5 J
(b) d = 10.04 mm = 10.04/1000 = 0.01004 m
C = 0.0451 × 8.84×10^-12/0.01004 = 3.97×10^-11 F
E = 1/2CV^2 = 1/2 × 3.97×10^-11 × 575^2 = 6.56×10^-6 J
(c) d = 10.04 mm - 2.51 mm = 7.53 mm = 7.53/1000 = 7.53×10^-3 m
C = 0.0451 × 8.84×10^-12/7.53×10^-3 = 5.29×10^-11 F
W = 1/2CV^2 = 1/2 × 5.29×10^-11 × 575^2 = 8.75×10^-6 J
Answer:
A. E = 2.63×10^-5 J.
B. E = 6.56×10^-6 J.
C. W = 8.75×10^-6 J.
Explanation:
A.
C = A * Eo/d
Where,
Eo = free space permutivity
= 8.84×10^-12 F/m
d = distance between the plates
A = area of plates
= 451 cm^2.
Converting from cm to m,
100 cm = 1 m
= 451 * 1/(100)^2 cm
= 0.0451 m^2
d = 2.51 mm
Converting from mm to m,
1000 mm to m
= 2.51 mm * 1 m/1000 mm
= 2.51 × 10^-3 m
Therefore,
C = 0.0451 × (8.84 × 10^-12/2.51 × 10^-3)
= 1.59 × 10^-10 F
E = 1/2 * C * V^2
= 1/2 × 1.59 × 10^-10 × (575^2)
= 2.63 × 10^-5 J.
B.
d = 10.04 mm
Converting from mm to m,
1000 mm = 1 m
= 10.04 * 1 m/1000 mm
= 0.01004 m.
C = 0.0451 × (8.84 × 10^-12/0.01004)
= 3.97 × 10^-11 F
E = 1/2CV^2
= 1/2 × 3.97 × 10^-11 × (575^2)
= 6.56 × 10^-6 J
C.
d = 10.04 mm - 2.51 mm
= 7.53 mm
Converting from mm to m,
1000 mm = 1 m
= 7.53 * 1 m/1000 mm
= 7.53 × 10^-3 m
C = 0.0451 × (8.84 × 10^-12/7.53×10^-3)
= 5.29 × 10^-11 F
W = 1/2 * C * V^2
= 1/2 × (5.29 × 10^-11 × (575^2))
= 8.75 × 10^-6 J
