Upload
carlos-francisco-corado
View
1.845
Download
167
Tags:
Embed Size (px)
Citation preview
Chapter 26. Capacitance Physics, 6th Edition
Chapter 26. Capacitance
Capacitance
26-1. What is the maximum charge that can be placed on a metal sphere 30 mm in diameter and
surrounded by air?
2 6 26
2 9 2 2
(3 x 10 N/C)(0.015 m)3 x 10 N/C; (9 x 10 N m /C )
kQ ErE Qr k
; Q = 75.0 nC
26-2. How much charge can be placed on a metal sphere of radius 40 mm if it is immersed in
transformer oil whose dielectric strength is 16 MV/m?
2 6 26
2 9 2 2
(16 x 10 N/C)(0.040 m)16 x 10 N/C; (9 x 10 N m /C )
kQ ErE Qr k
; Q = 2.48 C
26-3. What would be the radius of a metal sphere in air such that it could theoretically hold a
charge of one coulomb?
9 2 2
2 6
(9 x 10 N m /C )(1 C); 3 x 10 N/C
kQE rr
; r = 54.8 m
26-4. A 28-F parallel-plate capacitor is connected to a 120-V source of potential difference.
How much charge will be stored on this capacitor?
Q = CV = (28 F)(120 V); Q = 3.36 mC
359
Chapter 26. Capacitance Physics, 6th Edition
26-5. A potential difference of 110 V is applied across the plates of a parallel-plate capacitor. If
the total charge on each plate is 1200 C, what is the capacitance?
1200 C110 V
QCV
; C = 10.9 F
26-6. Find the capacitance of a parallel-plate capacitor is 1600 C of charge is on each plate
when the potential difference is 80 V.
1600 C80 V
QCV
; C = 20.0 F
26-7. What potential difference is required to store a charge of 800 C on a 40-F capacitor?
800 C40 F
QVC
; V = 20.0 V
26-8. Write an equation for the potential at the surface of a sphere of radius r in terms of the
permittivity of the surrounding medium. Show that the capacitance of such a sphere is
given by C = 4r.
0
; Q = CV;4
kQ QVr r
04
CVVr
; C = 4r
360
Chapter 26. Capacitance Physics, 6th Edition
*26-9. A spherical capacitor has a radius of 50 mm and is surrounded by a medium whose
permittivity is 3 x 10-11 C2/N m2. How much charge can be transferred to this sphere by a
potential difference of 400 V?
We must replace with for permittivity of surrounding medium, then
; ;4
kQ QV Q CVr r
4
CVVr
; C = 4r
44 ; C rC r QV V
-11 2 24 (3 x 10 C /N m )(0.05 m)400 V
Q
; Q = 4.71 x 10-14 C
Calculating Capacitance
26-10. A 5-F capacitor has a plate separation of 0.3 mm of air. What will be the charge on
each plate for a potential difference of 400 V? What is the area of each plate?
(5 F)(400 V);Q CV Q = 2000 C
26-11. The plates of a certain capacitor are 3 mm apart and have an area of 0.04 m2. What is the
capacitance if air is the dielectric?
-12 2 2 2
0(8.85 x 10 C /N m )(0.04 m )
0.003 mECA
; C = 118 pF
361
Chapter 26. Capacitance Physics, 6th Edition
26-12. A capacitor has plates of area 0.034 m2 and a separation of 2 mm in air. The potential
difference between the plates is 200 V. What is the capacitance, and what is the electric
field intensity between the plates? How much charge is on each plate?
-12 2 2 2
0(8.85 x 10 C /N m )(0.034 m )
0.002 mECA
; C = 150 pF
400 V0.002 m
VEd
; E = 2.00 x 105 N/C
Q = CV = (150 pF)(400 V); Q = 30.1 C
26-13. A capacitor of plate area 0.06 m2 and plate separation 4 mm has a potential difference of
300 V when air is the dielectric. What is the capacitance for dielectrics of air (K = 1)
and mica (K = 5)?
-12 2 2 2
0(1)(8.85 x 10 C /N m )(0.06 m )
0.004 mEC KA
; C = 133 pF
-12 2 2 2
0(5)(8.85 x 10 C /N m )(0.06 m )
0.004 mEC KA
; C = 664 pF
26-14. What is the electric field intensity for mica and for air in Problem 26-13?
00
VEd
00
300 V0.004 m
VEd
; E0 = 7.50 x 104 V/m
362
Chapter 26. Capacitance Physics, 6th Edition
40 0 7.50 x 10;
5E EK EE K
; E = 1.50 x 104 V/m
26-15. Find the capacitance of a parallel-plate capacitor if the area of each plate is 0.08 m2, the
separation of the plates is 4 mm, and the dielectric is (a) air, (b) paraffined paper (K = 2)?
-12 2 2 2
0(1)(8.85 x 10 C /N m )(0.08 m )
0.004 mEC KA
; C = 177 pF
-12 2 2 2
0(2)(8.85 x 10 C /N m )(0.08 m )
0.004 mEC KA
; C = 354 pF
26-16. Two parallel plates of a capacitor are 4.0 mm apart and the plate area is 0.03 m2. Glass
(K = 7.5) is the dielectric, and the plate voltage is 800 V. What is the charge on each
plate, and what is the electric field intensity between the plates?
-12 2 2 2
0(7.5)(8.85 x 10 C /N m )(0.03 m )
0.004 mEC KA
; C = 498 pF
Q = CV = (498 x 10-12 F)(800 V); Q = 398 nC
*26-17. A parallel-plate capacitor with a capacitance of 2.0 nF is to be constructed with mica
(K = 5) as the dielectric, and it must be able to withstand a maximum potential
difference of 3000 V. The dielectric strength of mica is 200 MV/m. What is the
minimum area the plates of the capacitor can have?
363
Chapter 26. Capacitance Physics, 6th Edition
-9(2 x 10 F)(3000 V); 6 CQ CV Q ; 6
3000 V200 x 10 V/m
VdE
*16-17. (Cont.) d = 1.50 x 10-5 m; C = 2 nF; K = 5
-9 -5
0 -12 2 20
(2 x 10 F)(1.5 x 10 m); 5(8.85 x 10 C /N m )
A CdC K Ad K
; A = 6.78 x 10-4 m2
Capacitors in Series and in Parallel
26-18. Find the equivalent capacitance of a 6-F capacitor and a 12-F capacitor connected (a)
in series, (b) in parallel.
Capacitors in series:
1 2
1 2
(6 F)(12 F) ;6 F + 12 Fe
C CCC C
Ce = 4.00 F
Capacitors in parallel: Ce = C1 + C2 = 6 F + 12 F; Ce = 18 F
26-19. Find the effective capacitance of a 6-F capacitor and a 15-F capacitor connected (a)
in series, (b) in parallel?
Capacitors in series:
1 2
1 2
(6 F)(15 F) ;6 F + 15 Fe
C CCC C
Ce = 4.29 F
Capacitors in parallel: Ce = C1 + C2 = 6 F + 12 F; Ce = 21.0 F
364
Chapter 26. Capacitance Physics, 6th Edition
26-20. What is the equivalent capacitance for capacitors of 4, 7, and 12 F connected (a) in
series, (b) in parallel?
Series: 1 2 3
1 1 1 1 1 1 14 F 7 F 12 FeC C C C
; Ce = 2.10 F
Parallel: Ce = Ci = 4 F + 7 C + 12 C; Ce = 23.0 C
26-21. Find the equivalent capacitance for capacitors of 2, 6, and 8 F connected (a) in series,
(b) in parallel?
Series: 1 2 3
1 1 1 1 1 1 12 F 6 F 8 FeC C C C
; Ce = 1.26 F
Parallel: Ce = Ci = 2 F + 6 C + 8 C; Ce = 16.0 C
26-22. A 20-F and a 60-F capacitor are connected in parallel. Then the pair are connected
in series with a 40-F capacitor. What is the equivalent capacitance?
C’ = 20 F + 60 F = 80 F;
40
40
' (80 F)(40 F)' (80 F + 40 Fe
C CCC C
; Ce = 26.7 F
365
60 F
40 F20 F
Chapter 26. Capacitance Physics, 6th Edition
*26-23. If a potential difference of 80 V is placed across the group of capacitors in Problem 26-
22, what is the charge on the 40-F capacitor? What is the charge on the 20-F
capacitor? ( First find total charge, then find charge and voltage on each capacitor.)
T(26.7 F)(80 V); Q 2133 CT eQ C V ; Q40 = 2133 C
Note: 2133 C are on each of the combination C’ and the 40-F capacitor. To find the
charge across the 20 F, we need to know the voltage across C’:
'2133 C 26.7 V;
80 FCV
This is V across each of 20 and 60-F capacitors
Thus, charge on 20-F capacitor is: Q20 = (20 F)(26.7 V); Q20 = 533 C
Note that V40 = 2133 C/26.7 C or 53.3 V. Also 53.3 V + 26.7 V = 80 V !
Also, the charge on the 60-C capacitor is 1600 C and 1600 C + 533 C = QT
*26-24. Find the equivalent capacitance of a circuit in which a 6-F capacitor is connected in
series with two parallel capacitors whose capacitances are 5 and 4 F.
C’ = 5 F + 4 F = 9 F;
40
40
' (9 F)(6 F)' 9 F + 6 Fe
C CCC C
; Ce = 3.60 F
*26-25. What is the equivalent capacitance for the circuit drawn in Fig. 26-15?
366
4 F
6 F5 F
Chapter 26. Capacitance Physics, 6th Edition
6 3
6 3
(6 F)(3 F)'6 F + 3 F
C CCC C
; C’ = 2.40 F
Ce = 2 F + 4 F; Ce = 6.00 F
*26-26. What is the charge on the 4-F capacitor in Fig. 26-15? What is the voltage across the
6-F capacitor?
Total charge QT = CeV = (6.00 F)(200 V); QT = 1200 C
4 4 4 (4 C)(200 V);Q C V Q4 = 800 C
The rest of the charge is across EACH of other capacitors:
Q3 = Q6 = 1200 C – 800 C; Q6 = 400 C
66
6
400 C6 F
QVC
; V6 = 66.7 V
You should show that V3 = 133.3 V, so that V3 + V6 = 200 V.
*26-27. A 6-F and a 3-F capacitor are connected in series with a 24-V battery. If they are
connected in series, what are the charge and voltage across each capacitor?
6 3
6 3
(6 F)(3 F)6 F + 3 F
C CCC C
; Ce = 2.00 F
367
200 V 3 F4 F
6 F
24 V 3 F
6 F
Chapter 26. Capacitance Physics, 6th Edition
QT = CeV = (2 F)(24 V) = 48 F; Q3 =Q6 = QT = 48 C
33
3
48 C3 F
QVC
; V3 = 16.0 V, Q3 = 48.0 C
66
6
48 C6 F
QVC
; V6 = 8.00 V, Q6 = 48.0 C
*26-28. If the 6 and 3-F capacitors of Problem 26-27 are reconnected in parallel with a 24-V
battery, what are the charge and voltage across each capacitor?
Ce = 3 F + 6 F; Ce = 9 F
QT = (9 F)(24 V) = 216 C; V3 = V6 = 24 V
Q3 = (3 F)(24 V); Q6 = (6 F)(24 V); Q3 = 72 C; Q6 = 144 C
*26-29. Compute the equivalent capacitance for the entire circuit shown in Fig. 26-16. What is
the total charge on the equivalent capacitance?
C2,3 = 2 F + 3 F = 5 F
1 1 1 1 ;4 F 5 F 8 FeC
Ce = 1.74 F
QT = CeV = 20.9 C
Also: Q4 = Q5 = Q8 = 20.9 C
368
24 V3 F 6 F
8 F4 F 5 F
4 F
2 F8 F
12 V
3 F
12 V
1.74 F
12 V
Chapter 26. Capacitance Physics, 6th Edition
*26-30. What are the charge and voltage across each capacitor of Fig. 26-16? (See Prob. 26-29.)
Q4 = Q5 = Q8 = 20.9 C;
844 8
4 8
20.9 C 20.9 C5.22 V; 2.61 V 4 F 8 F
QQV VC C
55 3 2
5
20.9 C 4.17 V5 F
QV V VC
; Q3 = C3V3 = (3 F)(4.17 V) = 12.5 C
Q2 = (2 F)(4.17 V) = 8.35 C; Note that Q2 + Q3 = Q5 = QT = 20.9 C
Answer summary: Q2 = 8.35 C; Q3 = 12.5 C, Q4 = Q8 = 20.9 C
V2 = V3 = 4.17 V; V4 = 5.22 V; V8 = 2.61 V
The Energy of a Charged Capacitor
26-31. What is the potential energy stored in the electric field of a 200-F capacitor when it is
charged to a voltage of 2400 V?
2 -6 2. . ½ ½(200 x 10 F)(2400 V)P E CV ; P.E. = 576 J
26-32. What is the energy stored on a 25-F capacitor when the charge on each plate is 2400
F? What is the voltage across the capacitor?
2 -6 2
-6
(2400 x 10 C). .2 2(25 x 10 F)QP EC
; P.E. = 115 mJ
2400 C 25 F
QVC
; V = 96.0 V
369
Chapter 26. Capacitance Physics, 6th Edition
26-33 How much work is required to charge a capacitor to a potential difference of 30 kV if
800 C are on each plate?
Work = P.E. = ½QV; Work = ½(800 x 10-6 C)(30 x 103 V)
Work = 12.0 J
*26-34. A parallel plate capacitor has a plate area of 4 cm2 and a separation of 2 mm. A
dielectric of constant K = 4.3 is placed between the plates, and the capacitor is
connected to a 100-V battery. How much energy is stored in the capacitor?
-12 2 2 -4 2
0(4.3)(8.85 x 10 C /N m )(4 x 10 m )
0.002 mAC Kd
; C = 7.61 pF
P.E. = ½CV2 = ½(7.61 x 10-12 F)(100 V)2; P.E. = 3.81 x 10-8 J
Challenge Problems
26-35. What is the break-down voltage for a capacitor with a dielectric of glass (K = 7.5) if the
plate separation is 4 mm? The average dielectric strength is 118 MV/m.
V = Emd = (118 x 106 V)(0.004 m); V = 472 kV
26-36. A capacitor has a potential difference of 240 V, a plate area of 5 cm2 and a plate
separation of 3 mm. What is the capacitance and the electric field between the plates?
What is the charge on each plate?
-12 2 2 -4 2
0(8.85 x 10 C /N m )(5 x 10 m )
0.003 mACd
; C = 1.48 pF
370
Chapter 26. Capacitance Physics, 6th Edition
240 V0.003 m
E ; E = 8.00 x 104 V/m Q = (1.48 x 10-12 F)(240 V); Q = 0.355 nC
26-37. Suppose the capacitor of Problem 26-34 is disconnected from the 240-V battery and then
mica (K = 5) is inserted between the plates? What are the new voltage and electric
field? If the 240-battery is reconnected, what charge will be on the plates?
0 0 240 V; 5
V EK VV E
= 48.0 V ;
E 80,000 V/m
5E
= 1.60 x 104 V/m
C = KCo= 5(1.48 pF) = 7.40 pF; Q = CV = (7.40 pF)(240 V) = 1.78 nC
26-38. A 6-F capacitor is charged with a 24-V battery and then disconnected. When a
dielectric is inserted, the voltage drops to 6 V. What is the total charge on the capacitor
after the battery has been reconnected?
24 V 4; K 4(6 F) 24 F;6 V
oo
VK C CV
Q = CV = (24 F)(24 V); Q = 576 C
26-39. A capacitor is formed from 30 parallel plates 20 x 20 cm. If each plate is separated by 2
mm of dry air, what is the total capacitance?
Thirty stacked plates means that there are 29 spaces, which make for 29 capacitors:
-12 2 2 2
0(29)(8.85 x 10 C /N m )(0.2 m)29
0.002 mACd
; C = 5.13 nF
371
Chapter 26. Capacitance Physics, 6th Edition
*26-40. Four capacitors A, B, C, and D have capacitances of 12, 16, 20, and 26 F, respectively.
Capacitors A and B are connected in parallel. The combination is then connected in
series with C and D. What is the effective capacitance?
C1 = 12 F + 16 F = 26 F; C2 = 28 F + 26 F = 46 F
1 2
1 2
(28 F)(46 F) ;28 F + 46 Fe
C CCC C
Ce = 17.4 F
*26-41. Consider the circuit drawn in Fig. 32-17. What is the equivalent capacitance of the
circuit? What are the charge and voltage across the 2-F capacitor? (Redraw Fig.)
6,2
1 1 1 ;2 F 6 FC
C6,2 = 1.50 F
C6,2 = 1.5 F + 4.5 F = 6 F Ce 6 F
*26-41. (Cont.)
QT = (6 F)(12 V) = 72 C; Q1.5 = Q2 = Q3 = (1.5 F)(12 V) = 18 C
22
2
18 C 9.00 V;2 F
QVC
Ce = 6.00 F, V2 = 9.00 V; Q2 = 18 C
372
12 V4.5 F
2 F
6F
12 V12 V
12 V4.5 F2 F
6F
6 F1.5 F 4.5 F
46 F28 F
16 F 26 F
20 F12 F
Chapter 26. Capacitance Physics, 6th Edition
*26-42. Two identical 20-F capacitors A and B are connected in parallel with a 12-V battery.
What is the charge on each capacitor if a sheet of porcelain (K = 6) is inserted between
the plates of capacitor B and the battery remains connected?
20 F; 6(20 F) = 120 FA BC C
Ce = 120 F + 20 F; Ce = 140 F
QB = (120 F)(12 V) = 1440 C; QA = (20 F)(12 V) = 240 C
Show that BEFORE insertion of dielectric, the charge on EACH was 240 C!
*26-43. Three capacitors A, B, and C have respective capacitances of 2, 4, and 6 F. Compute
the equivalent capacitance if they are connected in series with an 800-V source. What
are the charge and voltage across the 4-F capacitor?
1 1 1 1 ;2 F 4 F 6 FeC
Ce = 1.09 F
QT = CeV = (1.09 F)(800 V); QT = 873 C; Q2 = Q4 = Q6 = 873 C
Also:; 4
873 C 218 V;4 F
V
Q4 = 873 C; V4 = 218 V
*26-44. Suppose the capacitors of Problem 26-41 are reconnected in parallel with the 800-V
source. What is the equivalent capacitance? What are the charge and voltage across the
4-F capacitor?
373
12 V12 V
140 F20 F 120 F
CBA
6 F2 F 4 F800 V
12 V12 V
12 F4 F 6 F2 F
Chapter 26. Capacitance Physics, 6th Edition
Ce = 2 F + 4 F + 6 F; Ce = 12 F
QT = CeV = (12 F)(12 V) = 144 C
VT = V2 = V3 = V4 = 12 V; Q4 = C4V4 = (4 F)(12 V); Q4 = 48 C; V4 = 12 V
*26-45. Show that the total capacitance of a multiple-plate capacitor containing N plates
separated by air is given by:
C N Ad0
01
( )
where A is the area of each plate and d is the separation of each plate.
For a multiplate capacitor, if there are a total of N plates, we have the equivalent of
(N – 1) capacitors each of area A and separation d. Hence, the above equation.
*26-46. The energy density, u, of a capacitor is defined as the energy (P.E.) per unit volume (Ad)
of the space between the plates. Using this definition and several formulas from this
chapter, derive the following relationship for finding the energy density, u:
u E12 0
2
where E is the electric field intensity between the plates?
20
. .. . ½ ; ; ; A P EP E CV V Ed C ud Ad
374
Chapter 26. Capacitance Physics, 6th Edition
2 202 ½
½ ;
A E dCV duAd Ad
u = ½E2
*26-47. A capacitor with a plate separation of 3.4 mm is connected to a 500-V battery. Use the
relation derived in Problem 26-44 to calculated the energy density between the plates?
5500 V 1.47 x 10 V/m0.0034 m
VEd
; u = ½E2
-12 2 2 4 2½(8.85 x 10 C /N m )(1.47 x 10 V/m)u ; u = 95.7 mJ/m3
Critical Thinking Problems
26-48. A certain capacitor has a capacitance of 12 F when its plates are separated by 0.3 mm
of vacant space. A 400-V battery charges the plates and is then disconnected from the
capacitor. (a) What is the potential difference across the plates if a sheet of Bakelite
(K = 7) is inserted between the plates? (b) What is the total charge on the plates?
(c) What is the capacitance with the dielectric inserted? (d) What is the permittivity of
Bakelite? (d) How much additional charge can be placed on the capacitor if the 400-V
battery is reconnected?
600 0
400 V ; 1.33 x 10 V/m0.0003 m
VE Ed
C = KC0 = (7)(12 F) = 84 F
375
400 V 400 V
Chapter 26. Capacitance Physics, 6th Edition
(a) 0 400 V; ;
7VK VV
V = 57.1 V
(b) Q0 = C0V0 = (12 F)(400 V); Q0 = 4800 C (disconnected) (c) 48 F
(d) = (7)(8.85 x 10-12 N m2/C2); = 6.20 x 10-11 N m2/C2
(e) Q = CV = (84 F)(400 V); Q = 33.6 mC (400-V Battery reconnected)
The added charge is: Q – Q0 = 33.6 mC - 4.8 mC; Q = 28.8 mC
*26-49. A medical defibrillator uses a capacitor to revive heart attack victims. Assume that a
65-F capacitor in such a device is charged to 5000 V. What is the total energy stored?
If 25 percent of this energy passes through a victim in 3 ms, what power is delivered?
P.E. = ½CV2 = ½(65 x 10-6 F)(5000 V); P.E. = 162 mJ
0.25(0.162 J) 13.5 W0.003 s
Power ; Power = 13.5 W
*26-50. Consider three capacitors of 10, 20, and 30 F. Show how these might be connected to
produce the maximum and minimum equivalent capacitances and list the values. Draw
a diagram of a connection that would result in an equivalent capacitance of 27.5 F.
Show a connection that will result in a combined capacitance of 22.0 F.
The maximum is for a parallel connection: C = 10 F + 20 F + 30 F; Cmax = 60 F
Minimum is for series:
1 1 1 1 ;20 F 20 F 30 FeC
Cmin = 5.45 F
376
Chapter 26. Capacitance Physics, 6th Edition
Case 1: 1
1 1 1 ;10 F 30 FC
C1 = 7.5 F
Ce = C1 + 20 F = 12 F + 20F; Ce = 22.0 F
Case 2: 2
1 1 1 ;20 F 30 FC
C1 = 12 F
Ce = C1 + 20 F = 12 F + 20F; Ce = 22.0 F
*26-51. A 4-F air capacitor is connected to a 500-V source of potential difference. The
capacitor is then disconnected from the source and a sheet of mica (K = 5) is inserted
between the plates? What is the new voltage on the capacitor? Now reconnect the
500-V battery and calculate the final charge on the capacitor? By what percentage did
the total energy on the capacitor increase due to the dielectric?
(a) 0 500 V; ;
5VK VV
V = 100 V
(b) Q0 = C0V0 = (4 F)(500 V); Q0 = 2000 C
(c) (P.E.)0 = ½C0V2 = ½(4 x 10-6 F)(500 V)2; (P.E.)0 = 0.500 J; C = 5(4 F) = 20 F
(P.E.) = ½CV2 = ½(20 x 10-6 F)(500 V)2; (P.E.)0 = 2.50 J
377
500 V
30 F
10 F20 F
30 F
20 F10 F
500 V
Chapter 26. Capacitance Physics, 6th Edition
2.50 J - 0.50 J 0.500 J
Percent increase ; Percent increase = 400%
*26-52. A 3-F capacitor and a 6-F capacitor are connected in series with a 12-V battery. What
is the total stored energy of the system? What is the total energy if they are connected in
parallel? What is the total energy for each of these connections if mica (K = 5) is used
as a dielectric for each capacitor?
Series:
(3 F)(6 F) 2.00 F3 F 6 FeC
P.E. = ½(2 x 10-6 F)(12 V)2 = 0.144 mJ
Parallel: Ce = 3 F + 6 F = 9 F
P.E. = ½(9 x 10-6 F)(12 V)2 = 0.648 mJ C3 = 5(3 F) = 15 F; C6 = 5(6 F) = 30 F
Series:
(15 F)(30 F) 10.00 F15 F 30 FeC
; Parallel: C = 15 F + 30 F = 45 F
P.E. = ½(10 x 10-6 F)(12 V)2 = 0.720 mJ; P.E. = ½(45 x 10-6 F)(12 V)2 = 3.24 mJ
378
12 V
3 F 6 F
3 F 6 F12 V
12 V
3 F 6 F
3 F 6 F12 V