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84 Pages

ch25

Course: PHYSIC 2, Spring 2008
School: Lehigh
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Word Count: 7718

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Charge 1. flows until the potential difference across the capacitor is the same as the potential difference across the battery. The charge on the capacitor is then q = CV, and this is the same as the total charge that has passed through the battery. Thus, q = (25 106 F)(120 V) = 3.0 103 C. 2. (a) The capacitance of the system is C= q 70 pC = = 35 pF. . V 20 V (b) The capacitance is independent of q; it is...

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Charge 1. flows until the potential difference across the capacitor is the same as the potential difference across the battery. The charge on the capacitor is then q = CV, and this is the same as the total charge that has passed through the battery. Thus, q = (25 106 F)(120 V) = 3.0 103 C. 2. (a) The capacitance of the system is C= q 70 pC = = 35 pF. . V 20 V (b) The capacitance is independent of q; it is still 3.5 pF. (c) The potential difference becomes V = q 200 pC = = 57 V. C 35 pF . 3. (a) The capacitance of a parallel-plate capacitor is given by C = 0A/d, where A is the area of each plate and d is the plate separation. Since the plates are circular, the plate area is A = R2, where R is the radius of a plate. Thus, C= 0 R 2 d (8.85 10 = -12 1.310 m F m ) ( 8.2 10-2 m ) -3 2 = 1.44 10-10 F = 144pF. (b) The charge on the positive plate is given by q = CV, where V is the potential difference across the plates. Thus, q = (1.44 1010 F)(120 V) = 1.73 108 C = 17.3 nC. 4. We use C = A0/d. (a) Thus, 100 m2 8.85 10-12 . A 0 d= = 100 F . C c hd C2 N m2 i = 8.85 10 -12 m. (b) Since d is much less than the size of an atom ( 1010 m), this capacitor cannot be constructed. 5. Assuming conservation of volume, we find the radius of the combined spheres, then use C = 40R to find the capacitance. When the drops combine, the volume is doubled. It is then V = 2(4/3)R3. The new radius R' is given by 4 4 3 ( R ) = 2 R 3 3 3 R = 21 3 R . The new capacitance is C = 4 0 R = 4 0 21 3 R = 5.04 0 R. With R = 2.00 mm, we obtain C = 5.04 ( 8.85 10-12 F m )( 2.00 10-3 m ) = 2.80 10-13 F . 6. (a) We use Eq. 25-17: C = 4 0 40.0 mm 38.0 mm ab = = 84.5 pF. 2 b-a 8.99 109 NCm 40.0 mm - 38.0 mm 2 b gb g d ib g (b) Let the area required be A. Then C = 0A/(b a), or A= C (b - a ) = 0 ( 84.5 pF )( 40.0 mm - 38.0 mm ) = 191cm 2 . (8.85 10 -12 C2 N m 2 ) 7. The equivalent capacitance is given by Ceq = q/V, where q is the total charge on all the capacitors and V is the potential difference across any one of them. For N identical capacitors in parallel, Ceq = NC, where C is the capacitance of one of them. Thus, NC = q / V and N= q 1.00C = = 9.09 103 . VC (110V ) (1.00 10-6 F ) 8. The equivalent capacitance is Ceq = C3 + 10.0 F 5.00 F C1C2 = 4.00F + = 7.33 F. C1 + C2 10.0 F + 5.00 F b gb g 9. The equivalent capacitance is Ceq = C1 + C2 + C3 ( C1 + C2 ) C3 = (10.0 F + 5.00 F )( 4.00 F ) = 3.16 F. 10.0 F + 5.00 F + 4.00 F 10. The charge that passes through meter A is q = CeqV = 3CV = 3 25.0 F 4200 V = 0.315 C. b gb g 11. (a) and (b) The original potential difference V1 across C1 is V1 = CeqV C1 + C2 = ( 3.16 F )(100.0 V ) = 21.1V. 10.0 F + 5.00 F Thus V1 = 100.0 V 21.1 V = 78.9 V and q1 = C1V1 = (10.0 F)(78.9 V) = 7.89 104 C. 12. (a) The potential difference across C1 is V1 = 10.0 V. Thus, q1 = C1V1 = (10.0 F)(10.0 V) = 1.00 104 C. (b) Let C = 10.0 F. We first consider the three-capacitor combination consisting of C2 and its two closest neighbors, each of capacitance C. The equivalent capacitance of this combination is Ceq = C + C2 C = 1.50 C. C + C2 Also, the voltage drop across this combination is V= CV1 CV1 = = 0.40V1 . C + Ceq C + 1.50 C Since this voltage difference is divided equally between C2 and the one connected in series with it, the voltage difference across C2 satisfies V2 = V/2 = V1/5. Thus q2 = C2V2 = (10.0 F ) 10.0V = 2.00 10-5 C. 5 13. The charge initially on the charged capacitor is given by q = C1V0, where C1 = 100 pF is the capacitance and V0 = 50 V is the initial potential difference. After the battery is disconnected and the second capacitor wired in parallel to the first, the charge on the first capacitor is q1 = C1V, where V = 35 V is the new potential difference. Since charge is conserved in the process, the charge on the second capacitor is q2 = q q1, where C2 is the capacitance of the second capacitor. Substituting C1V0 for q and C1V for q1, we obtain q2 = C1 (V0 V). The potential difference across the second capacitor is also V, so the capacitance is C2 = q2 V0 - V 50 V - 35 V = C1 = (100 pF ) = 43pF. V V 35 V 14. The two 6.0 F capacitors are in parallel and are consequently equivalent to Ceq = 12 F . Thus, the total charge stored (before the squeezing) is qtotal = CeqVbattery =120 C . (a) and (b) As a result of the squeezing, one of the capacitors is now 12 F (due to the inverse proportionality between C and d in Eq. 25-9) which represents an increase of 6.0 F and thus a charge increase of qtotal = CeqVbattery = (6.0 F)(10 V) = 60 C . 15. (a) First, the equivalent capacitance of the two 4.00 F capacitors connected in series is given by 4.00 F/2 = 2.00 F. This combination is then connected in parallel with two other 2.00-F capacitors (one on each side), resulting in an equivalent capacitance C = 3(2.00 F) = 6.00 F. This is now seen to be in series with another combination, which consists of the two 3.0-F capacitors connected in parallel (which are themselves equivalent to C' = 2(3.00 F) = 6.00 F). Thus, the equivalent capacitance of the circuit is Ceq = CC ( 6.00 F ) ( 6.00 F ) = = 3.00 F. C + C 6.00 F + 6.00 F (b) Let V = 20.0 V be the potential difference supplied by the battery. Then q = CeqV = (3.00 F)(20.0 V) = 6.00 105 C. (c) The potential difference across C1 is given by V1 = ( 6.00 F ) ( 20.0V ) = 10.0V . CV = C + C 6.00 F + 6.00 F (d) The charge carried by C1 is q1 = C1V1= (3.00 F)(10.0 V) = 3.00 105 C. (e) The potential difference across C2 is given by V2 = V V1 = 20.0 V 10.0 V = 10.0 V. (f) The charge carried by C2 is q2 = C2V2 = (2.00 F)(10.0 V) = 2.00 105 C. (g) Since this voltage difference V2 is divided equally between C3 and the other 4.00-F capacitors connected in series with it, the voltage difference across C3 is given by V3 = V2/2 = 10.0 V/2 = 5.00 V. (h) Thus, q3 = C3V3 = (4.00 F)(5.00 V) = 2.00 105 C. 16. We determine each capacitance from the slope of the appropriate line in the graph. Thus, C1 = (12 C)/(2.0 V) = 6.0 F. Similarly, C2 = 4.0 F and C3 = 2.0 F. The total equivalent capacitance is C123 = ((C1)-1 + (C3 + C2)-1)-1 = 3.0 F. This implies that the charge on capacitor 1 is (3.0 F)(6.0 V) = 18 C. The voltage across capacitor 1 is therefore (18 C)/( 6.0 F) = 3.0 V. From the discussion in section 25-4, we conclude that the voltage across capacitor 2 must be 6.0 V 3.0 V = 3.0 V. Consequently, the charge on capacitor 2 is (4.0 F)( 3.0 V) = 12 C. 17. (a) After the switches are closed, the potential differences across the capacitors are the same and the two capacitors are in parallel. The potential difference from a to b is given by Vab = Q/Ceq, where Q is the net charge on the combination and Ceq is the equivalent capacitance. The equivalent capacitance is Ceq = C1 + C2 = 4.0 106 F. The total charge on the combination is the net charge on either pair of connected plates. The charge on capacitor 1 is q1 = C1V = (1.0 10-6 F ) (100 V ) = 1.0 10-4 C and the charge on capacitor 2 is q2 = C2V = 3.0 10-6 F 100 V = 3.0 10-4 C , c hb g so the net charge on the combination is 3.0 104 C 1.0 104 C = 2.0 104 C. The potential difference is Vab = 2.0 10-4 C = 50 V. 4.0 10-6 F (b) The charge on capacitor 1 is now q1 = C1Vab = (1.0 106 F)(50 V) = 5.0 105 C. (c) The charge on capacitor 2 is now q2 = C2Vab = (3.0 106 F)(50 V) = 1.5 104 C. 18. Eq. 23-14 applies to each of these capacitors. Bearing in mind that = q/A, we find the total charge to be qtotal = q1 + q2 = 1 A1 + 2 A2 = o E1 A1 + o E2 A2 = 3.6 pC where we have been careful to convert cm2 to m2 by dividing by 104. 19. (a) and (b) We note that the charge on C3 is q3 = 12 C 8.0 C = 4.0 C. Since the charge on C4 is q4 = 8.0 C, then the voltage across it is q4/C4 = 2.0 V. Consequently, the voltage V3 across C3 is 2.0 V C3 = q3/V3 = 2.0 F. Now C3 and C4 are in parallel and are thus equivalent to 6 F capacitor which would then be in series with C2 ; thus, Eq 25-20 leads to an equivalence of 2.0 F which is to be thought of as being in series with the unknown C1 . We know that the total effective capacitance of the circuit (in the sense of what the battery "sees" when it is hooked up) is (12 C)/Vbattery = 4F/3. Using Eq 25-20 again, we find 1 3 1 + C = 4 F 2 F 1 C1 = 4.0 F . 20. We note that the total equivalent capacitance is C123 = [(C3)-1 + (C1 + C2)-1]-1 = 6 F. (a) Thus, the charge that passed point a is C123 Vbatt = (6 F)(12 V) = 72 C. Dividing this by the value e = 1.60 10-19 C gives the number of electrons: 4.5 1014, which travel to the left towards the positive terminal of the battery. (b) The equivalent capacitance of the parallel pair is C12 = C1 + C2 = 12 F. Thus, the voltage across the pair (which is the same as the voltage across C1 and C2 individually) is 72 C =6V. 12 F Thus, the charge on C1 is (4 F)(6 V) = 24 C, and dividing this by e gives the number of electrons (1.5 1014) which have passed (upward) though point b. (c) Similarly, the charge on C2 is (8 F)(6 V) = 48 C, and dividing this by e gives the number of electrons (3.0 1014) which have passed (upward) though point c. (d) Finally, since C3 is in series with the battery, its charge is the same that passed through the battery (the same as passed through the switch). Thus, 4.5 1014 electrons passed rightward though point d. By leaving the rightmost plate of C3, that plate is then the positive plate of the fully charged capacitor making its leftmost plate (the one closest to the negative terminal of the battery) the negative plate, as it should be. (e) As stated in (b), the electrons travel up through point b. (f) As stated in (c), the electrons travel up through point c. 21. The charges on capacitors 2 and 3 are the same, so these capacitors may be replaced by an equivalent capacitance determined from 1 1 1 C2 + C3 = + = . Ceq C2 C3 C2 C3 Thus, Ceq = C2C3/(C2 + C3). The charge on the equivalent capacitor is the same as the charge on either of the two capacitors in the combination and the potential difference across the equivalent capacitor is given by q2/Ceq. The potential difference across capacitor 1 is q1/C1, where q1 is the charge on this capacitor. The potential difference across the combination of capacitors 2 and 3 must be the same as the potential difference across capacitor 1, so q1/C1 = q2/Ceq. Now some of the charge originally on capacitor 1 flows to the combination of 2 and 3. If q0 is the original charge, conservation of charge yields q1 + q2 = q0 = C1 V0, where V0 is the original potential difference across capacitor 1. (a) Solving the two equations q1 q = 2 C1 Ceq for q1 and q2, we obtain q1 = C12 ( C2 + C3 ) V0 C12V0 C12V0 = = . C2C3 Ceq + C1 C1C2 + C1C3 + C2C3 + C1 C2 + C3 and q1 + q2 = C1V0 With V0 = 12.0 V, C1= 4.00 F, C2= 6.00 F and C3 =3.00 F, we find Ceq = 2.00 F and q1 = 32.0 C. (b) The charge on capacitors 2 is q2 = C1V0 - q1 = (4.00 F)(12.0V) - 32.0 F = 16.0 F (c) The charge on capacitor 3 is the same as that on capacitor 2: q3 = C1V0 - q1 = (4.00 F)(12.0V) - 32.0 F = 16.0 F 22. Initially the capacitors C1, C2, and C3 form a combination equivalent to a single capacitor which we denote C123. This obeys the equation 1 1 1 C1 + C2 + C3 = C123 . Hence, using q = C123V and the fact that q = q1 = C1 V1 , we arrive at C2 + C3 V1 = C + C + C V . 1 2 3 (a) As C3 this expression becomes V1 = V. Since the problem states that V1 approaches 10 volts in this limit, so we conclude V = 10 V. (b) and (c) At C3 = 0, the graph indicates V1 = 2.0 V. The above expression consequently implies C1 = 4C2 . Next we note that the graph shows that, at C3 = 6.0 F, the voltage across C1 is exactly half of the battery voltage. Thus, C2 + 6.0 F 1 = 2 C1 + C2 + 6.0 F = C2 + 6.0 F 4C2 + C2 + 6.0 F which leads to C2 = 2.0 F. We conclude, too, that C1 = 8.0 F. 23. (a) In this situation, capacitors 1 and 3 are in series, which means their charges are necessarily the same: q1 = q3 = C1C3V (1.00 F ) ( 3.00 F ) (12.0V ) = = 9.00 C. C1 + C3 1.00 F+3.00 F (b) Capacitors 2 and 4 are also in series: q2 = q4 = (c) q3 = q1 = 9.00 C. (d) q4 = q2 = 16.0 C. (e) With switch 2 also closed, the potential difference V1 across C1 must equal the potential difference across C2 and is V1 = C2C4V ( 2.00 F ) ( 4.00 F ) (12.0V ) = = 16.0 C. C2 + C4 2.00 F + 4.00 F ( 3.00 F + 4.00 F )(12.0V ) C3 + C4 V= = 8.40V. C1 + C2 + C3 + C4 1.00 F + 2.00 F + 3.00 F + 4.00 F Thus, q1 = C1V1 = (1.00 F)(8.40 V) = 8.40 C. (f) Similarly, q2 = C2V1 = (2.00 F)(8.40 V) = 16.8 C. (g) q3 = C3(V V1) = (3.00 F)(12.0 V 8.40 V) = 10.8 C. (h) q4 = C4(V V1) = (4.00 F)(12.0 V 8.40 V) = 14.4 C. 24. Let = 1.00 m3. Using Eq. 25-25, the energy stored is 1 1 C2 2 -12 2 U = uv = 0 E v = 8.85 10 150 V m ) (1.00 m3 ) = 9.96 10-8 J. 2 ( 2 2 Nm 1 25. The energy stored by a capacitor is given by U = 2 CV 2 , where V is the potential difference across its plates. We convert the given value of the energy to Joules. Since a Joule is a wattsecond, we multiply by (103 W/kW) (3600 s/h) to obtain 10 kW h = 3.6 107 J . Thus, C= 7 2U 2 3.6 10 J = = 72 F. 2 V2 1000 V c b h g 26. (a) The capacitance is C= 0A d d8.85 10 = -12 C2 N m 2 ic40 10 -3 -4 m2 . 10 10 m h = 35 10 . -11 F = 35pF . (b) q = CV = (35 pF)(600 V) = 2.1 108 C = 21 nC. 1 (c) U = 2 CV 2 = 1 2 b35 pFgb21 nCg 2 = 6.3 10-6 J = 6.3 J. (d) E = V/d = 600 V/1.0 103 m = 6.0 105 V/m. (e) The energy density (energy per unit volume) is u= U 6.3 10-6 J = = 1.6 J m3 . Ad ( 40 10-4 m 2 )(1.0 10-3 m ) 27. The total energy is the sum of the energies stored in the individual capacitors. Since they are connected in parallel, the potential difference V across the capacitors is the same and the total energy is U= 1 1 2 ( C1 + C2 )V 2 = ( 2.0 10-6 F + 4.0 10-6 F ) ( 300 V ) = 0.27 J. 2 2 28. (a) The potential difference across C1 (the same as across C2) is given by V1 = V2 = (15.0 F )(100V ) = 50.0V. C3V = C1 + C2 + C3 10.0 F+5.00 F+15.0 F Also, V3 = V V1 = V V2 = 100 V 50.0 V = 50.0 V. Thus, q1 = C1V1 = (10.0 F )( 50.0V ) = 5.00 10-4 C q2 = C2V2 = ( 5.00 F )( 50.0V ) = 2.50 10-4 C q3 = q1 + q2 = 5.00 10-4 C + 2.50 10-4 C=7.50 10-4 C. (b) The potential difference V3 was found in the course of solving for the charges in part (a). Its value is V3 = 50.0 V. (c) The energy stored in C3 is 1 1 2 U 3 = C3V32 = (15.0 F )( 50.0V ) = 1.88 10-2 J. 2 2 (d) From part (a), we have q1 = 5.00 10-4 C , and (e) V1 = 50.0 V. (f) The energy stored in C1 is 1 1 2 U1 = C1V12 = (10.0 F )( 50.0V ) = 1.25 10-2 J. 2 2 (g) Again, from part (a), q2 = 2.50 10-4 C , and (h) V2 = 50.0 V. (i) The energy stored in C2 is 1 1 2 U 2 = C2V22 = ( 5.00 F )( 50.0V ) = 6.25 10-3 J. 2 2 29. The energy per unit volume is 1 1 e u = 0E 2 = 0 2 2 4 0 r 2 FG H IJ K 2 = e2 . 32 2 0r 4 (a) At r = 1.00 10-3 m , with e = 1.60 10-19 C and 0 = 8.85 10-12 C2 /N m 2 , we have u = 9.16 10-18 J/m3 . (b) Similarly, at r = 1.00 10-6 m , u = 9.16 10-6 J/m3 , (c) at r = 1.00 10-9 m , u = 9.16 106 J/m3 , and (d) at r = 1.00 10-12 m , u = 9.16 1018 J/m3 . (e) From the expression above u r4. Thus, for r 0, the energy density u . 30. (a) The charge q3 in the Figure is q3 = C3V = (4.00 F)(100 V) = 4.00 10-4 C . (b) V3 = V = 100 V. 1 (c) Using U i = 2 CVi 2 , we have U 3 = 1 C3V32 = 2.00 10-2 J . i 2 (d) From the Figure, q1 = q2 = C1C2V (10.0 F)(5.00 F)(100 V) = = 3.33 10-4 C. C1 + C2 10.0 F + 5.00 F (e) V1 = q1/C1 = 3.33 104 C/10.0 F = 33.3 V. (f) U1 = 1 C1V12 = 5.55 10-3 J . 2 (g) From part (d), we have q2 = q1 = 3.33 10-4 C. (h) V2 = V V1 = 100 V 33.3 V = 66.7 V. (i) U 2 = 1 C2V22 = 1.1110-2 J . 2 31. (a) Let q be the charge on the positive plate. Since the capacitance of a parallel-plate capacitor is given by 0 A d i , the charge is q = CV = 0 AVi d i . After the plates are pulled apart, their separation is d f and the potential difference is Vf. Then q = 0 AV f 2d f and Vf = df q= d f 0 A d Vi = f Vi . 0 A di di 0 A With di = 3.00 10-3 m , Vi = 6.00 V and d f = 8.00 10-3 m , we have V f = 16.0 V . (b) The initial energy stored in the capacitor is (in SI units) AV 2 (8.85 10-12 )(8.50 10-4 )(6.00) 2 1 = 4.5110-11 J. U i = CVi 2 = 0 i = -3 2 2d i 2(3.00 10 ) (c) The final energy stored is 1 A 1 A df U f = 0 V f2 = 0 Vi 2 df 2 d f di 2 = d f 0 AVi 2 df = Ui . di di di With d f / di = 8.00 / 3.00 , we have U f = 1.20 10-10 J. (d) The work done to pull the plates apart is the difference in the energy: W = Uf Ui = 7.52 10-11 J. 32. We use E = q / 4 0 R 2 = V / R . Thus 1 1 V u = 0E2 = 0 2 2 R 2 1 C2 = 8.85 10-12 2 N m2 8000 V 0.050 m 2 = 0.11 J/m3 . 33. (a) They each store the same charge, so the maximum voltage is across the smallest capacitor. With 100 V across 10 F, then the voltage across the 20 F capacitor is 50 V and the voltage across the 25 F capacitor is 40 V. Therefore, the voltage across the arrangement is 190 V. (b) Using Eq. 25-21 or Eq. 25-22, we sum the energies on the capacitors and obtain Utotal = 0.095 J. 34. If the original capacitance is given by C = 0A/d, then the new capacitance is C ' = 0 A / 2d . Thus C'/C = /2 or = 2C'/C = 2(2.6 pF/1.3 pF) = 4.0. 35. The capacitance with the dielectric in place is given by C = C0, where C0 is the capacitance before the dielectric is inserted. The energy stored is given by 1 1 U = 2 CV 2 = 2 C0V 2 , so = 2U 2(7.4 10-6 J) = = 4.7. C0V 2 (7.4 10-12 F)(652V) 2 According to Table 25-1, you should use Pyrex. 36. (a) We use C = 0A/d to solve for d: d= 0 A C (8.85 10 = -12 50 10 C2 N m 2 -12 ) (0.35 m ) = 6.2 10 2 -2 F m. (b) We use C . The new capacitance is C' = C(/air) = (50 pf)(5.6/1.0) = 2.8102 pF. 37. The capacitance of a cylindrical capacitor is given by C = C0 = 2 0 L , ln(b / a ) where C0 is the capacitance without the dielectric, is the dielectric constant, L is the length, a is the inner radius, and b is the outer radius. The capacitance per unit length of the cable is 2 0 C 2(2.6)(8.8510-12 F/m) = = = 8.110-11 F/m = 81 pF/m. L ln(b / a ) ln[(0.60 mm)/(0.10 mm)] 38. Each capacitor has 12.0 V across it, so Eq. 25-1 yields the charge values once we know C1 and C2. From Eq. 25-9, C2 = and from Eq. 25-27, C1 = 0 A -11 d = 6.64 10 F . 0 A -11 d = 2.21 10 F , This leads to q1 = C1V1 = 8.00 10-10 C and q2 = C2V2 = 2.66 10-10 C. The addition of these gives the desired result: qtot = 1.06 10-9 C. Alternatively, the circuit could be reduced to find the qtot. 39. The capacitance is given by C = C0 = 0A/d, where C0 is the capacitance without the dielectric, is the dielectric constant, A is the plate area, and d is the plate separation. The electric field between the plates is given by E = V/d, where V is the potential difference between the plates. Thus, d = V/E and C = 0AE/V. Thus, A= CV . 0 E For the area to be a minimum, the electric field must be the greatest it can be without breakdown occurring. That is, A= (7.0 10-8 F)(4.0 103 V) = 0.63 m2 . 2.8(8.85 10-12 F / m)(18 106 V / m) 40. (a) We use Eq. 25-14: C = 2 0 L (4.7)(0.15 m) = = 0.73 nF. ln(b / a ) 2 8.99 109 Nm2 ln(3.8 cm/3.6 cm) 2 C ( ) (b) The breakdown potential is (14 kV/mm) (3.8 cm 3.6 cm) = 28 kV. 41. Using Eq. 25-29, with = q/A, we have E = q 0 A = 200 103 N C which yields q = 3.3 107 C. Eq. 25-21 and Eq. 25-27 therefore lead to U= q2 q 2d = = 6.6 10-5 J . 2C 2 0 A 42. The capacitor can be viewed as two capacitors C1 and C2 in parallel, each with surface area A/2 and plate separation d, filled with dielectric materials with dielectric constants 1 and 2, respectively. Thus, (in SI units), C = C1 + C2 = = 0 ( A / 2) 1 d -12 + 0 ( A / 2) 2 d = 0 A 1 + 2 d 2 (8.85 10 )(5.56 10 ) 7.00 + 12.00 = 8.4110-12 F. -3 5.56 10 2 -4 43. We assume there is charge q on one plate and charge q on the other. The electric field in the lower half of the region between the plates is E1 = q , 1 0 A where A is the plate area. The electric field in the upper half is E2 = q . 2 0 A Let d/2 be the thickness of each dielectric. Since the field is uniform in each region, the potential difference between the plates is V= so C= q 2 0 A 1 2 = . V d 1 + 2 1 1 E1d E2 d qd qd 1 + 2 = , + = + 2 2 2 0 A 1 2 2 0 A 1 2 LM N OP Q This expression is exactly the same as that for Ceq of two capacitors in series, one with dielectric constant 1 and the other with dielectric constant 2. Each has plate area A and plate separation d/2. Also we note that if 1 = 2, the expression reduces to C = 10A/d, the correct result for a parallel-plate capacitor with plate area A, plate separation d, and dielectric constant 1. With A = 7.89 10-4 m 2 , d = 4.62 10-3 m , 1 = 11.0 and 2 = 12.0 , the capacitance is, (in SI units) C= 2(8.85 10-12 )(7.89 10-4 ) (11.0)(12.0) = 1.73 10-11 F. 4.62 10-3 11.0 + 12.0 44. Let C1 = 0(A/2)1/2d = 0A1/4d, C2 = 0(A/2)2/d = 0A2/2d, and C3 = 0A3/2d. Note that C2 and C3 are effectively connected in series, while C1 is effectively connected in parallel with the C2-C3 combination. Thus, C = C1 + C2C3 2 A ( A d ) ( 2 2 ) ( 3 2 ) 0 A 1 + 2 3 . = 0 1+ 0 = C2 + C3 4d 4d 2 2 +3 2 2 +3 With A = 1.05 10-3 m 2 , d = 3.56 10-3 m , 1 = 21.0 , 2 = 42.0 and 3 = 58.0 , the capacitance is, (in SI units) C= (8.85 10-12 )(1.05 10-3 ) 2(42.0)(58.0) = 4.55 10-11 F. 21.0 + -3 4(3.56) 10 42.0 + 58.0 45. (a) The electric field in the region between the plates is given by E = V/d, where V is the potential difference between the plates and d is the plate separation. The capacitance is given by C = 0A/d, where A is the plate area and is the dielectric constant, so d = 0 A / C and 50 V 100 10-12 F VC E= = = 10 104 V m . . 0 A 5.4 8.85 10-12 F m 100 10-4 m2 b gc h c hc h (b) The free charge on the plates is qf = CV = (100 1012 F)(50 V) = 5.0 109 C. (c) The electric field is produced by both the free and induced charge. Since the field of a large uniform layer of charge is q/20A, the field between the plates is E= qf 2 0 A + qf 2 0 A - qi 2 0 A - qi 2 0 A , where the first term is due to the positive free charge on one plate, the second is due to the negative free charge on the other plate, the third is due to the positive induced charge on one dielectric surface, and the fourth is due to the negative induced charge on the other dielectric surface. Note that the field due to the induced charge is opposite the field due to the free charge, they so tend to cancel. The induced charge is therefore qi = q f - 0 AE = 5.0 10-9 C - ( 8.85 10-12 F m )(100 10-4 m 2 )(1.0 104 V m ) = 4.110-9 C = 4.1nC. 46. (a) The electric field E1 in the free space between the two plates is E1 = q/0A while that inside the slab is E2 = E1/ = q/0A. Thus, V0 = E1 d - b + E2b = and the capacitance is 8.85 10-12 NCm2 (115 10-4 m 2 ) ( 2.61) 0 A q C= = = = 13.4pF. V0 ( d - b ) + b ( 2.61)( 0.0124m - 0.00780m ) + ( 0.00780m ) 2 b g ( FG q IJ FG d - b + b IJ , H AK H K 0 ) (b) q = CV = (13.4 1012 F)(85.5 V) = 1.15 nC. (c) The magnitude of the electric field in the gap is E1 = q 115 10-9 C . = = 113 104 N C . . -12 C 2 0 A 8.85 10 Nm2 115 10-4 m2 d ic h (d) Using Eq. 25-34, we obtain E2 = E1 = 113 104 N C . = 4.33 103 N C . 2.61 47. (a) According to Eq. 25-17 the capacitance of an air-filled spherical capacitor is given by C0 = 4 0 ab . b-a When the dielectric is inserted between the plates the capacitance is greater by a factor of the dielectric constant . Consequently, the new capacitance is C = 4 0 23.5 (0.0120)(0.0170) ab = = 0.107 nF. b - a 8.99 109 0.0170 - 0.0120 (b) The charge on the positive plate is q = CV = (0.107 nF)(73.0 V) = 7.79 nC. (c) Let the charge on the inner conductor be q. Immediately adjacent to it is the induced charge q'. Since the electric field is less by a factor 1/ than the field when no dielectric is present, then q + q' = q/. Thus, q = = -1 ab q = 4 ( -1) 0 V b-a 23.5 - 1.00 (7.79 nC) = 7.45 nC. 23.5 48. (a) We apply Gauss's law with dielectric: q/0 = EA, and solve for : = q = 0 EA 8.85 10-12 d C2 N m2 ic 8.9 10-7 C = 7.2. 14 10-6 V m 100 10-4 m2 . hc h (b) The charge induced is q = q 1- FG H IJ = c8.9 10 Ch FG1 - 1 IJ = 7.7 10 H 7.2 K K 1 -7 -7 C. 49. (a) Initially, the capacitance is C0 = 0A d d8.85 10 = (8.85 10 -12 12 10 . C2 N m2 -2 . i (012 m ) = 89 pF. 2 m (b) Working through Sample Problem 25-7 algebraically, we find: C= 0 A ( d - b) + b -12 = (4.8)(1.2 - 0.40)(10 m) + (4.0 10-3 m) C2 N m 2 -2 ) (0.12m )(4.8) 2 = 1.2 102 pF. (c) Before the insertion, q = C0V (89 pF)(120 V) = 11 nC. (d) Since the battery is disconnected, q will remain the same after the insertion of the slab, with q = 11 nC. (e) E = q / 0 A = 11 10-9 C / (8.85 10-12 (f) E' = E/ = (10 kV/m)/4.8 = 2.1 kV/m. (g) V = E(d b) + E'b = (10 kV/m)(0.012 m 0.0040 m) + (2.1 kV/m)(0.40 103 m) = 88 V. (h) The work done is Wext = U = q2 2 1 1 (1110-9 C) 2 - = C C0 2 1 1 - = -1.7 10-7 J. -12 89 10 F 120 10-12 F C2 N m 2 ) (012 m2 ) = 10 kV / m. . 50. (a) Eq. 25-22 yields U= 1 1 CV 2 = 200 10-12 F 7.0 103 V 2 2 c hc h 2 = 4.9 10-3 J . (b) Our result from part (a) is much less than the required 150 mJ, so such a spark should not have set off an explosion. 51.One way to approach this is to note that since they are identical the voltage is evenly divided between them. That is, the voltage across each capacitor is V = (10/n) volt. With C = 2.0 10-6 F, the electric energy stored by each capacitor is 1 CV2. The total 2 energy stored by the capacitors is n times that value, and the problem requires the total be equal to 25 10-6 J. Thus, n 2 (2.0 10 10 ) n -6 2 = 25 10-6 leads to n = 4. 52. Initially the capacitors C1, C2, and C3 form a series combination equivalent to a single capacitor which we denote C123. Solving the equation 1 1 1 C1 + C 2 + C3 = 1 C123 , we obtain C123 = 2.40 F. With V = 12.0 V, we then obtain q = C123V = 28.8 C. In the final situation, C2 and C4 are in parallel and are thus effectively equivalent to C24 = 12.0 F . Similar to the previous computation, we use 1 1 1 + C + C = C1 24 3 1 C1234 and find C1234 = 3.00 F. Therefore, the final charge is q = C1234V = 36.0 C. (a) This represents a change (relative to the initial charge) of q = 7.20 C. (b) The capacitor C24 which we imagined to replace the parallel pair C2 and C4 is in series with C1 and C3 and thus also has the final charge q =36.0 C found above. The voltage across C24 would be V24 = q/C24 = 36.0/12.0 = 3.00 V. This is the same voltage across each of the parallel pair. In particular, V4 = 3.00 V implies that q4 = C4 V4 = 18.0 C. (c) The battery supplies charges only to the plates where it is connected. The charges on the rest of the plates are due to electron transfers between them, in accord with the new distribution of voltages across the capacitors. So, the battery does not directly supply the charge on capacitor 4. 53. In series, their equivalent capacitance (and thus their total energy stored) is smaller than either one individually (by Eq. 25-20). In parallel, their equivalent capacitance (and thus their total energy stored) is larger than either one individually (by Eq. 25-19). Thus, the middle two values quoted in the problem must correspond to the individual capacitors. We use Eq. 25-22 and find (a) 100 J = 1 C1 (10 V)2 2 (b) 300 J = 1 C2 (10 V)2 2 C1 = 2.0 F C2 = 6.0 F . 54. We note that the voltage across C3 is V3 = (12 V 2 V 5 V ) = 5 V. Thus, its charge is q3 = C3 V3 = 4 C. (a) Therefore, since C1, C2 and C3 are in series (so they have the same charge), then 4 C C1 = 2 V = 2.0 F . (b) Similarly, C2 = 4/5 = 0.80 F. 55. (a) The number of (conduction) electrons per cubic meter is n = 8.49 1028 m3. The volume in question is the face area multiplied by the depth: Ad. The total number of electrons which have moved to the face is -3.0 x 10-6 C 1.9 1013 . -19 -1.6 x 10 C N= Using the relation N = nAd, we obtain d = 1.1 10-12 m, a remarkably small distance! 56. Initially, the total equivalent capacitance is C12 = [(C1)-1 + (C2) -1]-1 = 3.0 F, and the charge on the positive plate of each one is (3.0 F)(10 V) = 30 C. Next, the capacitor (call is C1) is squeezed as described in the problem, with the effect that the new value of C1 is 12 F (see Eq. 25-9). The new total equivalent capacitance then becomes C12 = [(C1) -1 + (C2) -1]-1 = 4.0 F, and the new charge on the positive plate of each one is (4.0 F)(10 V) = 40 C. (a) Thus we see that the charge transferred from the battery as a result of the squeezing is 40 C - 30 C = 10 C. (b) The total increase in positive charge (on the respective positive plates) stored on the capacitors is twice the value found in part (a) (since we are dealing with two capacitors in series): 20 C. 57. (a) Put five such capacitors in series. Then, the equivalent capacitance is 2.0 F/5 = 0.40 F. With each capacitor taking a 200-V potential difference, the equivalent capacitor can withstand 1000 V. (b) As one possibility, you can take three identical arrays of capacitors, each array being a five-capacitor combination described in part (a) above, and hook up the arrays in parallel. The equivalent capacitance is now Ceq = 3(0.40 F) = 1.2 F. With each capacitor taking a 200-V potential difference the equivalent capacitor can withstand 1000 V. 58. Equation 25-14 leads to C1 = 2.53 pF and C1 = 2.17 pF. Initially, the total equivalent capacitance is C12 = [(C1)-1 + (C2)-1]-1 = 1.488 pF, and the charge on the positive plate of each one is (1.488 pF )(10 V) = 14.88 pC. Next, capacitor 2 is modified as described in the problem, with the effect that the new value of C2 is 2.17 pF (again using Eq. 25-14). The new total equivalent capacitance is C12 = [(C1)-1 + (C2)-1]-1 = 1.170 pF, and the new charge on the positive plate of each one is (1.170 pF)(10 V) = 11.70 pC. Thus we see that the charge transferred from the battery (considered in absolute value) as a result of the modification is 14.88 pC 11.70 pC = 3.18 pC. (a) This charge, divided by e gives the number of electrons that pass point P. Thus, 3.18 10-12 = 2.0 107 . 1.6 10-19 (b) These electrons move rightwards in the figure (that is, away from the battery) since the positive plates (the ones closest to point P) of the capacitors have suffered a decease in their positive charges. The usual reason for a metal plate to be positive is that it has more protons than electrons. Thus, in this problem some electrons have "returned" to the positive plates (making them less positive). 59. (a) We do not employ energy conservation since, in reaching equilibrium, some energy is dissipated either as heat or radio waves. Charge is conserved; therefore, if Q = C1Vbat = 40 C, and q1 and q2 are the charges on C1 and C2 after the switch is thrown to the right and equilibrium is reached, then Q = q1 + q2 . Reducing the right portion of the circuit (the C3, C4 parallel pair which are in series with C2) we have an equivalent capacitance of C' = 8.0 F which has charge q' = q2 and potential difference equal to that of C1. Thus, V1 = V ' , or q1 q2 = C1 C ' which yields 4q1 = q2. Therefore, Q = q1 + 4q1 . This leads to q1 = 8.0 C and consequently to q2 = 32 C. (b) From Eq. 25-1, we have V2 = (32 C)(16 F) = 2.0 V. 60. (a) We calculate the charged surface area of the cylindrical volume as follows: A = 2 rh + r 2 = 2 (0.20 m)(0.10 m) + (0.20 m) 2 = 0.25 m2 where we note from the figure that although the bottom is charged, the top is not. Therefore, the charge is q = A = 0.50 C on the exterior surface, and consequently (according to the assumptions in the problem) that same charge q is induced in the interior of the fluid. (b) By Eq. 25-21, the energy stored is U= q2 (5.0 10-7 C) 2 = = 3.6 10-3 J. 2C 2(35 10-12 F) (c) Our result is within a factor of three of that needed to cause a spark. Our conclusion is that it will probably not cause a spark; however, there is not enough of a safety factor to be sure. 61. (a) In the top right portion of the circuit is a pair of 4.00 F which we reduce to a single 8.00 F capacitor (which is then in series with the bottom capacitor that the problem is asking about). The further reduction with the bottom 4.00 F capacitor results 8 in an equivalence of 3 F, which clearly has the battery voltage across it -- and therefore 8 has charge ( 3 F)(9.00 V) = 24.0 C. This is seen to be the same as the charge on the bottom capacitor. (b) The voltage across the bottom capacitor is q 24.0 C V=C = = 6.00 V . 4.00 F 62. We do not employ energy conservation since, in reaching equilibrium, some energy is dissipated either as heat or radio waves. Charge is conserved; therefore, if Q = C1Vbat = 100 C, and q1, q2 and q3 are the charges on C1, C2 and C3 after the switch is thrown to the right and equilibrium is reached, then Q = q1 + q2 + q3 . Since the parallel pair C2 and C3 are identical, it is clear that q2 = q3. They are in parallel with C1 so that V1=V3, or q1 q3 C1 = C3 which leads to q1 = q3/2. Therefore, 1 Q = 2 q3 + q3 +q3 which yields q3 = 40 C and consequently q1 = 20 C. 63. The pair C3 and C4 are in parallel and consequently equivalent to 30 F. Since this numerical value is identical to that of the others (with which it is in series, with the battery), we observe that each has one-third the battery voltage across it. Hence, 3.0 V is across C4, producing a charge q4 = C4V4 = (15 F)(3.0 V) = 45 C . 64. (a) We reduce the parallel group C2, C3 and C4, and the parallel pair C5 and C6, obtaining equivalent values C' = 12 F and C'' = 12 F, respectively. We then reduce the series group C1, C' and C'' to obtain an equivalent capacitance of Ceq = 3 F hooked to the battery. Thus, the charge stored in the system is qsys = CeqVbat = 36 C . (b) Since qsys = q1 then the voltage across C1 is q1 36 C V1 = C = = 6.0 V . 6.0 F 1 The voltage across the series-pair C' and C'' is consequently Vbat - V1 = 6.0 V. Since C' = C'', we infer V' = V'' = 6.0/2 = 3.0 V, which, in turn, is equal to V4, the potential across C4. Therefore, q4 = C4V4 = (4.0 F)(3.0 V) = 12 C . 65. (a) The potential across C1 is 10 V, so the charge on it is q1 = C1V1 = (10.0 F)(10.0 V) = 100 C. (b) Reducing the right portion of the circuit produces an equivalence equal to 6.00 F, with 10.0 V across it. Thus, a charge of 60.0 C is on it -- and consequently also on the bottom right capacitor. The bottom right capacitor has, as a result, a potential across it equal to q 60 C V =C= = 6.00 V 10 F which leaves 10.0 V - 6.00 V = 4.00 V across the group of capacitors in the upper right portion of the circuit. Inspection of the arrangement (and capacitance values) of that group reveals that this 4.00 V must be equally divided by C2 and the capacitor directly below it (in series with it). Therefore, with 2.00 V across C2 we find q2 = C2V2 = (10.0 F)(2.00 V) = 20.0 C . 66. The pair C1 and C2 are in parallel, as are the pair C3 and C4; they reduce to equivalent values 6.0 F and 3.0 F, respectively. These are now in series and reduce to 2.0 F, across which we have the battery voltage. Consequently, the charge on the 2.0 F equivalence is (2.0 F)(12 V) = 24 C. This charge on the 3.0 F equivalence (of C3 and C4) has a voltage of q 24 C V=C= = 8.0 V . 3 F Finally, this voltage on capacitor C4 produces a charge (2.0 F)(8.0 V) = 16 C. 67. For maximum capacitance the two groups of plates must face each other with maximum area. In this case the whole capacitor consists of (n 1) identical single capacitors connected in parallel. Each capacitor has surface area A and plate separation d so its capacitance is given by C0 = 0A/d. Thus, the total capacitance of the combination is (in SI units) C = ( n -1) C0 ( n -1) 0 A = (8 -1)(8.85 10-12 )(1.25 10-4 ) = 2.28 10-12 F. = d 3.40 10-3 68. (a) Here D is not attached to anything, so that the 6C and 4C capacitors are in series (equivalent to 2.4C). This is then in parallel with the 2C capacitor, which produces an equivalence of 4.4C. Finally the 4.4C is in series with C and we obtain Ceq = bCgb4.4 Cg = 0.82 C = 41 F C + 4.4 C where we have used the fact that C = 50 F. (b) Now, B is the point which is not attached to anything, so that the 6C and 2C capacitors are now in series (equivalent to 1.5C), which is then in parallel with the 4C capacitor (and thus equivalent to 5.5C). The 5.5C is then in series with the C capacitor; consequently, Ceq = . bCgb55 Cg = 0.85C = 42 F . . C + 55 C 69. (a) In the first case the two capacitors are effectively connected in series, so the output potential difference is Vout = CVin/2C = Vin/2 = 50.0 V. (b) In the second case the lower diode acts as a wire so Vout = 0. 70. The voltage across capacitor 1 is V1 = q1 30 C = = 3.0 V . C1 10 F Since V1 = V2, the total charge on capacitor 2 is q2 = C2V2 = 20 F 2 V = 60 C , b gb g which means a total of 90 C of charge is on the pair of capacitors C1 and C2. This implies there is a total of 90 C of charge also on the C3 and C4 pair. Since C3 = C4, the charge divides equally between them, so q3 = q4 = 45 C. Thus, the voltage across capacitor 3 is V3 = q3 45 C = = 2.3 V . C3 20 F Therefore, |VA VB| = V1 + V3 = 5.3 V. 71. (a) The equivalent capacitance is Ceq = 6.00 F 4.00F C1C2 = = 2.40 F . C1 + C2 6.00 F + 4.00 F b gb g (b) q1 = CeqV = (2.40 F)(200 V) = 4.80 10-4 C. (c) V1 = q1/C1 = 4.80 10-4 C/6.00 F = 80.0 V. (d) q2 = q1 = 4.80 10-4 C. (e) V2 = V V1 = 200 V 80.0 V = 120 V. 72. (a) Now Ceq = C1 + C2 = 6.00 F + 4.00 F = 10.0 F. (b) q1 = C1V = (6.00 F)(200 V) = 1.20 103 C. (c) V1=200 V. (d) q2 = C2V = (4.00 F)(200 V) = 8.00 104 C. (e) V2 = V1 = 200 V. 73. We cannot expect simple energy conservation to hold since energy is presumably dissipated either as heat in the hookup wires or as radio waves while the charge oscillates in the course of the system "settling down" to its final state (of having 40 V across the parallel pair of capacitors C and 60 F). We do expect charge to be conserved. Thus, if Q is the charge originally stored on C and q1, q2 are the charges on the parallel pair after "settling down," then Q = q1 + q2 C 100 V = C 40 V + 60 F 40 V b g b g b gb g which leads to the solution C = 40 F. 74. We first need to find an expression for the energy stored in a cylinder of radius R and length L, whose surface lies between the inner and outer cylinders of the capacitor (a < R 1 < b). The energy density at any point is given by u = 2 0 E 2 , where E is the magnitude of the electric field at that point. If q is the charge on the surface of the inner cylinder, then the magnitude of the electric field at a point a distance r from the cylinder axis is given by E= q 2 0 Lr (see Eq. 25-12), and the energy density at that point is given by u= q2 1 0E 2 = 2 2 2 . 2 8 0 L r The energy in the cylinder is the volume integral U R = udv. Now, dv = 2rLdr , so UR = z R a q2 q2 2rLdr = 8 2 0 L2 r 2 4 0 L z R a dr q2 R = ln . r 4 0 L a To find an expression for the total energy stored in the capacitor, we replace R with b: q2 b Ub = ln . 4 0 L a We want the ratio UR/Ub to be 1/2, so ln R 1 b = ln a 2 a or, since R = ab . 1 2 ln b / a = ln b / a , ln R / a = ln b / a . This means R / a = b / a or b g d i b g d i 75. (a) Since the field is constant and the capacitors are in parallel (each with 600 V across them) with identical distances (d = 0.00300 m) between the plates, then the field in A is equal to the field in B: E = V = 2.00 105 V m . d (b) | E |= 2.00 105 V m . See the note in part (a). (c) For the air-filled capacitor, Eq. 25-4 leads to = q = 0 E = 177 10-6 C m2 . . A (d) For the dielectric-filled capacitor, we use Eq. 25-29: = 0 E = 4.60 10-6 C m2 . (e) Although the discussion in the textbook (25-8) is in terms of the charge being held fixed (while a dielectric is inserted), it is readily adapted to this situation (where comparison is made of two capacitors which have the same voltage and are identical except for the fact that one has a dielectric). The fact that capacitor B has a relatively large charge but only produces the field that A produces (with its smaller charge) is in line with the point being made (in the text) with Eq. 25-34 and in the material that follows. Adapting Eq. 25-35 to this problem, we see that the difference in charge densities between parts (c) and (d) is due, in part, to the (negative) layer of charge at the top surface of the dielectric; consequently, = 177 10-6 - 4.60 10-6 = -2.83 10-6 C m2 . . c h c h 76. (a) The equivalent capacitance is Ceq = C1C2/(C1 + C2). Thus the charge q on each capacitor is q = q1 = q2 = CeqV = C1C2V (2.00 F)(8.00 F)(300V) = = 4.80 10-4 C. C1 + C2 2.00 F + 8.00 F (b) The potential difference is V1 = q/C1 = 4.80 104 C/2.0 F = 240 V. (c) As noted in part (a), q2 = q1 = 4.80 10-4 C. (d) V2 = V V1 = 300 V 240 V = 60.0 V. Now we have q'1/C1 = q'2/C2 = V' (V' being the new potential difference across each capacitor) and q'1 + q'2 = 2q. We solve for q'1, q'2 and V: (e) q '1 = 2C1q 2(2.00 F)(4.80 10-4C ) = = 1.92 10-4 C. C1 + C2 2.00 F + 8.00 F (f) V1 = q1 1.92 10-4 C = = 96.0 V. C1 2.00 F (g) q '2 = 2q - q1 = 7.68 10-4 C. (h) V2 = V1 = 96.0 V. (i) In this circumstance, the capacitors will simply discharge themselves, leaving q1 =0, (j) V1=0, (k) q2 = 0, (l) and V2 = V1 = 0. 1 77. We use U = 2 CV 2 . As V is increased by V, the energy stored in the capacitor 1 increases correspondingly from U to U + U: U + U = 2 C (V + V ) 2 . Thus, (1 + V/V)2 = 1 + U/U, or V U = 1+ - 1 = 1 + 10% - 1 = 4.9% . V U 78. (a) The voltage across C1 is 12 V, so the charge is q1 = C1V1 = 24 C . (b) We reduce the circuit, starting with C4 and C3 (in parallel) which are equivalent to 4 F . This is then in series with C2, resulting in an equivalence equal to 4 F which 3 4 would have 12 V across it. The charge on this 3 F capacitor (and therefore on C2) is ( 4 F)(12 V) = 16 C. Consequently, the voltage across C2 is 3 V2 = q2 16 C = = 8 V. C2 2 F This leaves 12 8 = 4 V across C4 (similarly for C3). 79. We reduce the circuit, starting with C1 and C2 (in series) which are equivalent to 4 F. This is then parallel to C3 and results in a total of 8 F, which is now in series with C4 and can be further reduced. However, the final step in the reduction is not necessary, as we observe that the 8 F equivalence from the top 3 capacitors has the same capacitance as C4 and therefore the same voltage; since they are in series, that voltage is then 12/2 = 6.0 V. 80. We use C = 0A/d /d. To maximize C we need to choose the material with the greatest value of /d. It follows that the mica sheet should be chosen. 81. We may think of this as two capacitors in series C1 and C2, the former with the 1 = 3.00 material and the latter with the 2 = 4.00 material. Upon using Eq. 25-9, Eq. 25-27 and then reducing C1 and C2 to an equivalent capacitance (connected directly to the battery) with Eq. 25-20, we obtain Ceq = 1 2 0 A = 1.52 10-10 F . 1 + 2 d Therefore, q = CeqV = 1.06 10-9 C. 82. (a) The length d is effectively shortened by b so C' = 0A/(d b) = 0.708 pF. (b) The energy before, divided by the energy after inserting the slab is U q 2 / 2C C 0 A /(d - b) d 5.00 = 2 = = = = = 1.67. U q / 2C C 0 A / d d - b 5.00 - 2.00 (c) The work done is W = U = U - U = q2 2 1 1 q2 q 2b - = = -5.44 J. (d - b - d ) = - C C 2 0 A 2 0 A (d) Since W < 0 the slab is sucked in. 83. (a) C' = 0A/(d b) = 0.708 pF, the same as part (a) in problem 82. (b) Now, 2 1 0 A / d U C d - b 5.00 - 2.00 2 CV =1 = = = = = 0.600. 2 U 2 C V C 0 A /(d - b) d 5.00 (c) The work done is W = U = U '- U = A AbV 2 1 1 1 - V2 = 0 = 1.02 10-9 J. (C - C )V 2 = 0 2 2 d -b d 2d ( d - b) (d) In Problem 82 where the capacitor is disconnected from the battery and the slab is sucked in, F is certainly given by -dU/dx. However, that relation does not hold when the battery is left attached because the force on the slab is not conservative. The charge distribution in the slab causes the slab to be sucked into the gap by the charge distribution on the plates. This action causes an increase in the potential energy stored by the battery in the capacitor. 84. We do not employ energy conservation since, in reaching equilibrium, some energy is dissipated either as heat or radio waves. Charge is conserved; therefore, if Q = 48 C, and q1 and q3 are the charges on C1 and C3 after the switch is thrown to the right (and equilibrium is reached), then Q = q1 + q3 . 1 We note that V1 and 2 = V3 because of the parallel arrangement, and V1 = 2 V1 and 2 since they are identical capacitors. This leads to 2V1 = V3 2 q1 q3 = C1 C3 2q1 = q3 where the last step follows from multiplying both sides by 2.00 F. Therefore, Q = q1 + (2q1 ) which yields q1 = 16.0 C and q3 = 32.0 C.
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Lehigh - PHYSIC - 2
1. (a) For a given value of the principal quantum number n, the orbital quantum number ranges from 0 to n 1. For n = 3, there are three possible values: 0, 1, and 2. (b) For a given value of , the magnetic quantum number m ranges from - to + . For =
Lehigh - PHYSIC - 2
1. With speed v = 11200 m/s, we findK= 1 2 1 mv = (2.9 105 ) (11200) 2 = 18 1013 J. . 2 22. (a) The change in kinetic energy for the meteorite would be1 1 K = K f - K i = - K i = - mi vi2 = - 4 106 kg 15 103 m/s 2 2()()2= -5 1014 J
Lehigh - PHYSIC - 2
Instructor's Manual forFUNDAMENTALS OF PHYSICSSeventh Edition by David Halliday, Robert Resnick, and Jearl WalkerPrepared byJ. Richard ChristmanProfessor Emeritus United States Coast Guard Academywith the assistance of Stanley A. Williams I
Lehigh - PHYSIC - 2
1. (a) The motion from maximum displacement to zero is one-fourth of a cycle so 0.170 s is one-fourth of a period. The period is T = 4(0.170 s) = 0.680 s. (b) The frequency is the reciprocal of the period:f = 1 1 = = 1.47 Hz. T 0.680 s(c) A sinuso
Lehigh - PHY - 2
1. (a) The magnitude of the magnetic field due to the current in the wire, at a point a distance r from the wire, is given byB= 0i2r.With r = 20 ft = 6.10 m, we havec4 10 B=hb 2 b6.10 mg-7T m A 100 Ag = 3.3 10-6T = 3.3 T.(b
Lehigh - PHYSIC - 2
Chapter 1:MEASUREMENT1. The SI standard of time is based on: A. the daily rotation of the earth B. the frequency of light emitted by Kr86 C. the yearly revolution of the earth about the sun D. a precision pendulum clock E. none of these Ans: E 2.
Lehigh - PHYSIC - 2
1. The image is 10 cm behind the mirror and you are 30 cm in front of the mirror. You must focus your eyes for a distance of 10 cm + 30 cm = 40 cm.2. The bird is a distance d2 in front of the mirror; the plane of its image is that same distance d2
Lehigh - PHYSIC - 2
1. The magnitude of the force of one particle on the other is given by F = Gm1m2/r2, where m1 and m2 are the masses, r is their separation, and G is the universal gravitational constant. We solve for r:Gm1m2 = r= F( 6.67 10-11N m 2 / kg 2 ) (
Lehigh - PHYSIC - 2
1. (a) The charge that passes through any cross section is the product of the current and time. Since 4.0 min = (4.0 min)(60 s/min) = 240 s, q = it = (5.0 A)(240 s) = 1.2 103 C. (b) The number of electrons N is given by q = Ne, where e is the magnitu
Lehigh - IE - 111
Applied Statistics and Probability for EngineersThird EditionDouglas C. MontgomeryArizona State UniversityGeorge C. RungerArizona State UniversityJohn Wiley &amp; Sons, Inc.ACQUISITIONS EDITOR Wayne Anderson ASSISTANT EDITOR Jenny Welter MARKE
Cornell - HADM - 2225
HADM225 Practice FinalName:_1. A stock has an expected rate of return of 8.3 percent and a standard deviation of 6.4 percent. Which one of the following best describes the probability that this stock will lose 11 percent or more in any one given y
Cal Poly Pomona - HIST - 101
Seung Yeo Per:2 Chapter 3 VocabsExercise 1 1. C 2. C 3. A 4. D 5. B 6. D 7. B 8. C 9. B 10. D Exercise 2 1. Delightful 2. Arousing pity 3. Plight 4. Blandishment 5. Careworn 6. Self-denying 7. Perfect happiness 8. Weakened 9. Slavish Follower 10. Ho
USC - MUHL - 232
Ch. 59 Music and Ballet in 19th Cent. Russia No. 161 Modest Mussorgsky, &quot;with in four walls&quot; from Sunless 1874 Genre: Russian song cycle - 1st song of song cycle - chords hover over D major triad; D is constant - m2-4 contrast in textures between clo
USC - MUHL - 232
Terms Ballets Russes Russian Ballet; established by Sergei Diaghilev in 1909; toured in Europe and Americas. &quot;Beethoven's 10th&quot; Brahms 3rd symphony illustrates his modern extension of Beethoven symphonic style. Ex of this are non tradition tonal pl
USC - GEOG - 100gm
HOLY LAND (Pg. 61, # 116) I cannot tell you what I care for, I can only tell you what I fear to lose. This quote embodies what Lakewood is all about, and how the people there lived their lives, and why they would even want to go there in the first pl
Cal Poly Pomona - ENG - 1B
Seung Yeo Per:2 English IB Mr.Costa CeremonyThe struggles engulfed in Ceremony had plenty to do with before, during, and after the war. It not only captured the people who were physically involved in the war but also, among others around them. Even
USC - MUHL - 232
Modest Mussorsgsky Russia. The mighty handful: folksong were more imp than anything that they learned in school. was totally Russian Peter Ilyich Tchaikovsky Born in Russia. Western influenced. Did not exemplify Russian nationalism. Bedrich Smetana C
USC - MUHL - 232
Ch.55 German Opera of the 19th Century: Weber &amp; Wagner Singspiel play w/ singing; far more modest Carl Maria Von Weber 1786-1826 Friderich kind was librettist for Der Freischutz Romantic opera term used by Weber for certain of his operas and by W
Cal Poly Pomona - COM - 413
Man Kiu Chu COM 413 Mariusz Ozminkowski, Ph.D. 2:06 p.m. 3:40pm 10/10/07 &quot;Though Letter&quot;At each naturalization ceremony, every newly &quot;naturalized&quot; U.S. citizens have to declare if they are Democratic or Republican, etc. So it is very hard to be un
USC - POSC - 130g
Question 1: Is Galanter wrong? Galanter is right 1. same argument that Galanter made, RP's have relationships with judges, know the system, have more resources 2. you can't reform A-L, due to capture, the distrust of agencies, bargaining in the shado
Cal Poly Pomona - COM - 106
COM 106 Writing for Communication PractitionersEssay 1: Topic 50 pointsWe sometimes say or think: &quot;There needs to be a change.&quot; About the 2008 presidential elections, we think: there needs to be a change in the way people vote. There needs to be a
USC - POSC - 130g
Nation of strangers o ID: idea that America is diverse and not close-knit o SIG: need for more A-L in America since we sue others more (not neighborneighbor); comparison of American courts to other nations with smaller, more homogeneous populations w
USC - BUAD - 304
CHAPTER 14 POWER AND POLITICS Formal power based on indiv position in org 1. coercive power dependent on fear; one reacts out of fear of the negative results that might occur if one failed to comply 2. reward power opposite of coercive; people co
USC - BUAD - 304
Leader as Sense Maker Biographical Features Age: older turnover less than younger, older are absent less Gender: women don't turnover/perform/etc. less than men; women absent more than men Tenure: the greater the tenure the more productive, happier,
USC - POSC - 130g
Essay Questions 1. When are courts most likely to be constrained/dynamic? CCV: Definition: courts are limited in ability to make a difference and thus &quot;constrained&quot; When: Basically when all forms of constraints are strong: Strong doctrinal constraint
USC - POSC - 130g
Part I: Identify and give significance of 3 of 5 terms and concepts, which will be selected from the following list: The logic of the triad o ID: Triadic relationship between the Courts and Litigants 1 and 2, propped up by consent (agreement by sides
Cal Poly Pomona - COM - 413
Man Kiu Chu COM 413 Maurisz Ozminkowski, Ph.D. 2:06 p.m. 3:40 p.m. 10/07/07 Propaganda Example: MUFON (Mutual UFO Network) The propaganda example I am using is the Mutual UFO Network of United States. From reporting of the latest daily sightings to
Cal Poly Pomona - COM - 413
PUBLIC OPINION Definitional preliminaries Measurements Formation Ideological differences in the U.S.What constitutes a &quot;public&quot;? a group of people who are confronted by an issue who are divided in the ideas as how to meet the issue who
Cal Poly Pomona - COM - 260
Com260:Access to Places and InformationPower Point Presentations for Cal Poly Pomona COM 260 Based on J.D. Zelezny's &quot;Communications Law&quot; Copyright 2006 by Mariusz Ozminkowski For permission to use email mozminkowski@csupomona.eduThe First Amen
Binghamton - ENG - 117D
1The novel One flew Over The Cuckoo's Nest focuses on ideas of conformity and power distribution. The best and easiest way to achieve these two things in society is through Jeremy Bentham's idea and strategies involved with the Panopticon. Characte
Cal Poly Pomona - HIST - 370
In terms of their work force, American farmers and ranchers a. continued to use Indian laborers to work their lands b. hired Chinese immigrants d. relied on black workersThe Big Four included all of the following except a. Leland Stanford b. Collis
Binghamton - ENG - 117G
The Big Sleep's SignificanceThe Big Sleep by Raymond Chandler contains many symbols and themes that are socially, culturally, and historically significant in real life. Much of the novel is focused around the demand for money and the countless acti
Cal Poly Pomona - HIST - 370
What event greatly contributed to California's increasing importance in world trade? the opening of the Suez Canal the opening of the Panama Canal the international exposition held in Los Angeles in 1915 all of the above Which of the following statem
USC - ANTH - 200Lg
ANTH Exam 1 ReviewEvolution9/26/2007 8:56:00 PMGradual change over time Change in gene allele frequencies over generations Framework used to explain the origin of adaptations Mechanisms: o Mutation o Gene flow o Genetic drift o Natural selection
Cal Poly Pomona - HIST - 370
What has been the result of extensive water development in California? a. It has augmented the power of both state and local governments. b. It has tendedto favor large-scale commercial farming over small family farms. c. It has intensified political
Cal Poly Pomona - HIST - 370
The foreigners who arrived in California in the late 1840s could best be described as a. people who came mostly in families or as part of communities and, as aresult, were unwilling to assimilate into Californio society b. mainly single men who often
Binghamton - ENG - 117G
Real Life Significance of &quot;The Birds&quot; In the short story ,The Birds&quot; by Daphne du Maurier, there are many symbols and events which closely resemble society in Britain during this time period. Many aspects of the story are socially, politically, and t
Binghamton - ENG - 117D
Foucault begins his story by describing the seventeenth century plaque. He tells how houses were closed off, there was separation, inspection, and how things were quarantined. From this, concepts of power and discipline were created. Since that time,
USC - HIST - 200gm
American Midterm ReviewPart I Essay Question 1: Please characterize the changes in American politics and the American economy from the beginning of the 19th century through the 1828 election of Andrew Jackson. What were these changes, and how did t
USC - HIST - 200gm
History midterm PART I Essay #1 Major changes within political party system with both the rise of new parties and division amongst them. 1800 Thomas Jefferson elected president Jefferson and Burr tied in the electoral college so the vote went to the
USC - ECON - 205
REVIEW FOR MACRO MIDTERM #1 CH 1 Economics study of how people use their scarce resources to satisfy their unlimited wants Scarcity amount people desire exceeds amount available, not freely available Unlimited wants people can want virtually anyth
USC - BUAD - 310
Brandon Lang December 11, 2007 Mon/Wed 4-6 BUAD 310 Case Study 1. a. The histograms for the cost of an ad and the circulation are skewed to the right and unimodal. The histogram for median income appears to be fairly normal with no skewness. The hist
USC - ANTH - 200Lg
ANTH 200Lg: The Origins of Humanity Chapters 5-9, AE 10-13). http:/www.wwnorton.com/web/evolve/ Heterodontism -having different kinds of teeth for different functions -canines, incisors, premolars, molars Reasoning by analogy / homology -homology: lo
USC - ANTH - 200Lg
FINAL EXAM: Thursday, 13 Dec 2007, 2:00 4:00pmReview Questions for Exam #3 (the FINAL) The FINAL exam will be mixed format and non-cumulative. You are responsible for both lecture and material from the text (see below). Also take advantage of your
Binghamton - ENG - 117G
Rashomon / In a Grove Significance The story of Rashomon by Ryunosuke Akutagawa is very socially and culturally significant in both 1950's society and even today. Many themes and symbols in the short story are to be understood and seen in everyday li
USC - ECON - 205
Midterm #2 Review CH 6 Productivity ratio of total output to a specific measure of input Economy grows because of greater availability of resources, an improvement in the quality of resources, technological change that makes better use of resources,
USC - ECON - 205
FINAL REVIEW GUIDE CH 9 Investment spending on (1) new factories, office buildings, equipment, etc.; (2) new housing; and (3) net increases to inventories Investment and interest firm will invest in any project with a rate of return that exceeds th
USC - HIST - 200gm
History Final Exam Review Part 1 The Know Nothing Party The party was created out of a nativist movement in the 1850s as a result of fears that cities were becoming overwhelmed with Irish Catholics who took American jobs and threatened American value
Cal Poly Pomona - HIST - 370
The most popular demand of women's groups in California was the right to a. vote b. run for public office c. own property d. divorce The last decades of the 19th century are known as the gilded age because a. it was an era of technological advancemen
Cornell - ORIE - 350
Feb 27, 2008 4) Teledyne Dist. Sell 4 warehouses for $900,000 Lease them backWarehouse 950,000 950,000 0 Accum Dep 350,000 350,000 0Show Sale Account Dr Cr. Dec 31, 2004 Cash (A) 900,000 Accum Dep. (xA) 350,000 Warehouses 950,000 Deferred Gain 300
Cornell - S&TS - 2011
What do scientists do most in the lab? Observe? Experiment? Theorize? Read and write? (paper work?) Scientists are literary reasoners (Bruno Latour). They read and write lab notes, scientific papers, grant applications, data tables, and charts. They
Cornell - AEM - 2200
Lecture 1 (1.21.08) Social changes: 1750-1914 Increase in Population o Better nutrition o Medicine and hygiene o Potential mass markets Increase in knowledge o Scientific Revolution o Industrial Revolution o Global trade Political changes o Increase
Cornell - ORIE - 350
Feb 20, 2008 BOND EQUATION PV = A[(1-(1+i)^(-n) / i ] + FV/(1+i)^n Interest payments Face value payment PV equal to cash received N = number of 6 month periods FV = face value of bond i = 6 month interest rate And yield = 2; A = [face interest rate]
Cornell - S&TS - 2011
The Golem Ch 2: Theory of Relativity: mass and energy should be interchangeable. Time, mass, and length are not fixed but are relative to the speed at which things move. - Michelson-Morley ,aether-drift experiment of the 1880s o Showed that light tra
Cal Poly Pomona - BIO - 110
Evolution: Getting from There to HereThe word &quot;evolution&quot; refers to how an entity changes through time Darwin initially used the phrase &quot;descent with modification&quot; to explain the concept of evolution The concept of evolution helps explain the great
Penn State - PSYCH - 100
Chapter 1 The Earth -crust, mantle, core most of the earth is igneous molten material Crust - The continental crust Granite coarse, more siliet Andesite near volcanos in the Andes Mountains -Thicker crust, float (floats higher, is less dense and th
Cal Poly Pomona - BIO - 110
Prokaryotes Have a Simple Cell Cycle Cell division in prokaryotes takes place in two stages The DNA is replicated The cell elongates, then splits into two daughter cells The process is called binary fissionCell division in prokaryotesEukaryo
Cal Poly Pomona - BIO - 110
The Griffith Experiment What is a gene? The work of Sutton and Morgan established that genes reside on chromosomes But chromosomes contain proteins and DNA So which one is the hereditary material Several experiments ultimately revealed the natur
Penn State - ART - 111
Woman from Willendorf Austria, c. 30,000-25,000 BCE (Paleolithic)Woman from Brassempouy France, c. 22,000 BCE (Paleolithic)Lascaux Caves France, c. 16,000-14,000 BCE (Paleolithic) Top: Hall of Bulls; Bottom: Bird-Headed Man with BisonStonehenge
Cal Poly Pomona - CE - 325
CE 325: Geotechnical Engineering IProblem Set #3Complete the following problems1. A moist cube of soil weighs 1.5 kN and has a volume of 0.09 m3. Its moisture content is 29.0% and the specific gravity of solids is 2.65. Compute the void ratio, po
UCLA - LING - 1
Score: _ out of 9 (= 18 points 2)LINGUISTICS 1: ASSIGNMENT 1Name: KEY TA: Section:To do this assignment, you should have read Chapters 1-3 of The Language Instinct and seen the film &quot;Discovering the Human Language&quot;. Be concise in your answers.