H olt, Rinehart and Winston. All rights reserv ed. Holt Physics Solution Manual. I
Ch. 20–2. 1. ∆V = 9.0 V. R1 = 2.0 Ω. R2 = 4.0 Ω. R3 = 5.0 Ω. R4 = 7.0 Ω. I1 = . ∆.
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Chapter 20 I
Practice 20A, p. 739
Givens 1. R1 = 6.75 Ω R2 = 15.3 Ω R3 = 21.6 Ω ∆V = 12.0 V 2. R1 = 4.0 Ω R2 = 8.0 Ω R3 = 12.0 Ω ∆V = 24.0 V
Solutions a. Req = R1 + R2 + R3 Req = 6.75 Ω + 15.3 Ω + 21.6 Ω = 43.6 Ω ∆V 12.0 V b. I = = = 0.275 A Req 43.6 Ω a. Req = R1 + R2 + R3 = 4.0 Ω + 8.0 Ω + 12.0 Ω = 24.0 Ω ∆V 24.0 V b. I = = = 1.00 A Req 24.0 Ω c. I = 1.00 A
3. I = 0.50 A R1 = 2.0 Ω R2 = 4.0 Ω R3 = 5.0 Ω R4 = 7.0 Ω
Copyright © by Holt, Rinehart and Winston. All rights reserved.
4. ∆V = 9.00 V R1 = 7.25 Ω R2 = 4.03 Ω
∆V1 = IR1 = (0.50 A)(2.0 Ω) = 1.0 V ∆V2 = IR2 = (0.50 A)(4.0 Ω) = 2.0 V ∆V3 = IR3 = (0.50 A)(5.0 Ω) = 2.5 V ∆V4 = IR4 = (0.50 A)(7.0 Ω) = 3.5 V a. Req = R1 + R2 = 7.25 Ω + 4.03 Ω = 11.28 Ω ∆V 9.00 V I = = = 0.798 A Req 11.28 Ω b. ∆V1 = IR1 = (0.798 A)(7.25 Ω) = 5.79 V ∆V2 = IR2 = (0.798 A)(4.03 Ω) = 3.22 V
5. R1 = 7.0 Ω ∆V = 4.5 V I = 0.60 A
∆V Req = R1 + R2 = I ∆V 4.5 V R2 = − R1 = − 7.0 Ω I 0.60 A R2 = 7.5 Ω − 7.0 Ω = 0.5 Ω
6. ∆V = 115 V I = 1.70 A
∆V 115 V a. Req = = = 67.6 Ω I 1.70 A
R = 1.50 Ω
b. NR = Req
Req 67.6 Ω N = = = 45 bulbs R 1.50 Ω
Section One—Pupil’s Edition Solutions
I Ch. 20–1
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Practice 20B, p. 744
Givens
Solutions
1. ∆V = 9.0 V R1 = 2.0 Ω
I
R2 = 4.0 Ω R3 = 5.0 Ω R4 = 7.0 Ω
∆V 9.0 V I1 = = = 4.5 A R1 2.0 Ω ∆V 9.0 V I2 = = = 2.2 A R2 4.0 Ω ∆V 9.0 V I3 = = = 1.8 A R3 5.0 Ω ∆V 9.0 V I4 = = = 1.3 A R4 7.0 Ω
2. Req = 2.00 Ω
�
−1
−1
� ��
1 1 1 1 1 Parallel: Req = + + + + R R R R R
5 = R
R = 5Req = 5(2.00 Ω) = 10.0 Ω Series: Req = 5R = 5(10.0 Ω) = 50.0 Ω 3. R1 = 4.0 Ω R2 = 8.0 Ω R3 = 12.0 Ω ∆V = 24.0 V
�
−1
� �
1 1 1 a. Req = + + R1 R2 R3
�
−1
�
1 1 1 = + + 4.0 Ω 8.0 Ω 12.0 Ω −1
� �
1 1 1 Req = 0.25 + 0.12 + 0.0833 Ω Ω Ω
−1
�
1 = 0.45 Ω
Req = 2.2 Ω ∆V 24.0 V b. I1 = = = 6.0 A R1 4.0 Ω
∆V 24.0 V I3 = = = 2.00 A R3 12.0 Ω 4. R1 = 18.0 Ω R2 = 9.00 Ω R3 = 6.00 Ω I2 = 4.00 A
�
−1
� �
1 1 1 a. Req = + + R1 R2 R3
�
�
−1
� �
1 1 1 Req = 0.0555 + 0.111 + 0.167 Ω Ω Ω Req = 2.99 Ω
b. ∆V = I2 R2 = (4.00 A)(9.00 Ω) = 36.0 V ∆V 36.0 V c. I1 = = = 2.00 A R1 18.0 Ω ∆V 36.0 V I3 = = = 6.00 A R3 6.00 Ω
I Ch. 20–2
Holt Physics Solution Manual
−1
1 1 1 = + + 18.0 Ω 9.00 Ω 6.00 Ω
−1
�
1 = 0.334 Ω
Copyright © by Holt, Rinehart and Winston. All rights reserved.
∆V 24.0 V I2 = = = 3.0 A R2 8.0 Ω
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Givens 4. R1 = 2.0 Ω R2 = 4.0 Ω ∆V = 12 V
Solutions a. Req = R1 + R2 = 2.0 Ω + 4.0 Ω = 6.0 Ω ∆V 12 V I1 = I2 = I = = = 2.0 A Req 6.0 Ω
I
∆V1 = I1R1 = (2.0 A)(2.0 Ω) = 4.0 V ∆V2 = I2 R2 = (2.0 A)(4.0 Ω) = 8.0 V
R1 = 2.0 Ω R2 = 4.0 Ω ∆V = 12 V
�
−1
� �
1 1 b. Req = + R1 R2
�
−1
�
1 1 = + 2.0 Ω 4.0 Ω −1
−1
� = �0.75 Ω�
1 1 Req = 0.50 + 0.25 Ω Ω
1
= 1.3 Ω
∆V1 = ∆V2 = ∆V = 12 V 12 V ∆V I1 = 1 = = 6.0 A 2.0 Ω R1 12 V ∆V I2 = 2 = = 3.0 A 4.0 Ω R2 R1 = 4.0 Ω
c. Req = R1 + R2 = 4.0 Ω + 12.0 Ω = 16.0 Ω
R2 = 12.0 Ω
∆V 4.0 V I1 = I2 = I = = = 0.25 A Req 16.0 Ω
∆V = 4.0 V
∆V1 = I1R1 = (0.25 A)(4.0 Ω) = 1.0 V ∆V2 = I2 R2 = (0.25 A)(12.0 Ω) = 3.0 V
Copyright © by Holt, Rinehart and Winston. All rights reserved.
R1 = 4.0 Ω R2 = 12.0 Ω ∆V = 4.0 V
−1
1 1 + = 4.0 Ω 12.0 Ω −1
Req
−1
� � � � 1 1 1 = 0.25 + 0.0833 = 0.33 � Ω � Ω� Ω�
1 1 d. Req = + R1 R2
−1
= 3.0 Ω
∆V1 = ∆V2 = ∆V = 4.0 V 4.0 V ∆V I1 = 1 = = 1.0 A 4.0 Ω R1 4.0 V ∆V I2 = 2 = = 0.33 A 12.0 Ω R2
Section One—Pupil’s Edition Solutions
I Ch. 20–3
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Givens
Solutions
5. R1 = 150 Ω R2 = 180 Ω ∆V = 12 V
a. Req = R1 + R2 = 150 Ω + 180 Ω = 330 Ω ∆V 12 V I1 = I2 = I = = = 0.036 A Req 330 Ω ∆V1 = I1R1 = (0.036 A)(150 Ω) = 5.4 V
I
∆V2 = I2 R2 = (0.036 A)(180 Ω) = 6.5 V
R1 = 150 Ω R2 = 180 Ω ∆V = 12 V
b. ∆V1 = ∆V2 = ∆V = 12 V ∆V 12 V I1 = 1 = = 0.080 A R1 150 Ω ∆V 12 V I2 = 2 = = 0.067 A R2 180 Ω
6. I = 0.20 A ∆V = 120.0 V N = 35 bulbs
∆V 120.0 V Req = = = 600 Ω I 0.20 A Req 600 Ω R = = = 17 Ω N 35
Practice 20C, p. 748 1. Ra = 25.0 Ω Rb = 3.0 Ω Rc = 40.0 Ω
−1
−1
� � � � 1 1 1 = 0.33 + 0.0250 = 0.36 � Ω � Ω� Ω�
1 1 a. Rbc = + Rb Rc
1 1 = + 3.0 Ω 40.0 Ω −1
Rbc
−1
Rbc = 2.8 Ω
Ra = 12.0 Ω Rb = 35.0 Ω Rc = 25.0 Ω
−1
−1
+ � � = � 35.0 Ω 25.0 Ω� 1 1 1 = 0.0286 + 0.0400 = 0.0686 � Ω � Ω� Ω�
1 1 b. Rbc = + Rb Rc
1
1
−1
Rbc
Rbc = 14.6 Ω Req = Ra + Rbc = 12.0 Ω + 14.6 Ω = 26.6 Ω
I Ch. 20–4
Holt Physics Solution Manual
−1
Copyright © by Holt, Rinehart and Winston. All rights reserved.
Req = Ra + Rbc = 25.0 Ω + 2.8 Ω = 27.8 Ω
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Print Givens Ra = 15.0 Ω Rb = 28.0 Ω Rc = 12.0 Ω
Solutions −1
−1
� � � � 1 1 1 = 0.0357 + 0.0833 = 0.0119 � Ω � Ω� Ω�
1 1 c. Rbc = + Rb Rc
1 1 = + 28.0 Ω 12.0 Ω −1
Rbc
−1
I
Rbc = 8.40 Ω Req = Ra + Rbc = 15.0 Ω + 8.40 Ω = 23.4 Ω 2. Ra = 25.0 Ω Rb = 3.0 Ω Rc = 40.0 Ω Rd = 15.0 Ω Re = 18.0 Ω
−1
−1
� � � � 1 1 1 = 0.0400 + 0.33 = 0.37 � Ω Ω� � Ω�
1 1 a. Rab = + Ra Rb
1 1 = + 25.0 Ω 3.0 Ω −1
Rab
−1
Rab = 2.7 Ω −1
−1
+ � � = � 15.0 Ω 18.0 Ω� 1 1 1 = 0.0667 + 0.0556 = 0.1223 � Ω �Ω � Ω�
1 1 Rde = + Rd Re
1
1
−1
Rde
−1
Rde = 8.177 Ω Req = Rab + Rc + Rde = 2.7 Ω + 40.0 Ω + 8.177 Ω = 50.9 Ω
Ra = 12.0 Ω Rb = 35.0 Ω Rc = 25.0 Ω Rd = 50.0 Ω
Copyright © by Holt, Rinehart and Winston. All rights reserved.
Re = 45.0 Ω
−1
−1
� � � � 1 1 1 = 0.0833 + 0.0286 = 0.1119 � Ω � Ω� Ω�
1 1 b. Rab = + Ra Rb
1 1 = + 12.0 Ω 35.0 Ω −1
Rab
−1
Rab = 8.937 Ω −1
1
1
−1
Rde
−1
+ � � = � 50.0 Ω 45.0 Ω� 1 1 1 = 0.0200 + 0.0222 = 0.0422 � Ω �Ω � Ω�
1 1 Rde = + Rd Re
−1
Rde = 23.7 Ω Req = Rab + Rc + Rde = 8.937 Ω + 25.0 Ω + 23.7 Ω = 57.6 Ω
Section One—Pupil’s Edition Solutions
I Ch. 20–5
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Practice 20D, p. 751
I
Givens
Solutions
Ra = 5.0 Ω
Rab = Ra + Rb = 5.0 Ω + 7.0 Ω = 12.0 Ω
Rb = 7.0 Ω Rc = 4.0 Ω
1 1 Rabc = + Rab Rc
Rd = 4.0 Ω
Rabc
Re = 4.0 Ω Rf = 2.0 Ω
−1
−1
+ � � = � 12.0 Ω 4.0 Ω� 1 1 1 = 0.0833 + 0.25 = 0.33 = 3.0 Ω � Ω Ω� � Ω� 1 1 1 1 = + = + �R R � �4.0 Ω 4.0 Ω� 1 1 1 = 0.25 + 0.25 = 0.50 = 2.0 Ω � Ω Ω� � Ω� 1
1
−1
−1
Rde
d
∆V = 14.0 V
−1
−1
e
−1
Rde
−1
Req = Rabc + Rde + Rf = 3.0 Ω + 2.0 Ω + 2.0 Ω = 7.0 Ω ∆V 14.0 V I = = = 2.0 A Req 7.0 Ω ∆Vabc = IRabc = (2.0 A)(3.0 Ω) = 6.0 V 6.0 V ∆Vabc Iab = = = 0.50 A 12.0 Ω Rab Ra: Ia = Iab = 0.50 A ∆Va = IaRa = (0.50 A)(5.0 Ω) = 2.5 V Rb : Ib = Iab = 0.50 A ∆Vb = Ib Rb = (0.50 A)(7.0 Ω) = 3.5 V Rc : ∆Vc = ∆Vabc = 6.0 V 6.0 V ∆V Ic = c = = 1.5 A 4.0 Ω Rc Rd: ∆Vd = ∆Vde = 4.0 V 4.0 V ∆V Id = d = = 1.0 A 4.0 Ω Rd Re : ∆Ve = ∆Vde = 4.0 V 4.0 V ∆V Ie = e = = 1.0 A 4.0 Ω Re Rf : If = I = 2.0 A ∆Vf = If Rf = (2.0 A)(2.0 Ω) = 4.0 V
I Ch. 20–6
Holt Physics Solution Manual
Copyright © by Holt, Rinehart and Winston. All rights reserved.
∆Vde = IRde = (2.0 A)(2.0 Ω) = 4.0 V
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Givens 1. R1 = 5.0 Ω R2 = 5.0 Ω R3 = 5.0 Ω R4 = 5.0 Ω R5 = 1.5 Ω
Solutions R23 = R2 + R3 = 5.0 Ω + 5.0 Ω = 10.0 Ω −1
−1
+ � � = � 10.0 Ω 5.0 Ω� 1 1 1 = 0.100 + 0.20 = 0.30 � Ω Ω� � Ω�
1 1 R234 = + R23 R4
1
1
−1
R234
−1
I = 3.3 Ω
Req = R1 + R234 + R5 = 5.0 Ω + 3.3 Ω + 1.5 Ω = 9.8 Ω
R1 18.0 V
R2 R4
R5 2. Req = 9.8 Ω ∆V = 18.0 V 3. I5 = 1.8 A
R3
∆V 18.0 V I5 = I = = = 1.8 A Req 9.8 Ω ∆V5 = I5 R5 = (1.8 A)(1.5 Ω) = 2.7 V
R5 = 1.5 Ω 5. ∆V = 120 V RT = 16.9 Ω RM = 8.0 Ω RP = 10.0 Ω RC = 0.01 Ω
Copyright © by Holt, Rinehart and Winston. All rights reserved.
6. ∆V = 120 V
−1
1 1 1 = + + 16.9 Ω 8.0 Ω 10.0 Ω −1
RTMP
Req = 3.6 Ω RTMP = 3.6 Ω
∆V T = ∆V TMP = IRTMP = (33 A)(3.6 Ω) = 120 V
RT = 16.9 Ω
∆V 120 V IT = T = = 7.1 A RT 16.9 Ω
∆V = 120.0 V N = 35 bulbs n = 3 strands
8. ∆V = 120.0 V
Req, strand = NR = (35)(15.0 Ω) = 525 Ω −1
−1
Req
−1
� � = �525Ω + 525Ω + 525Ω� 1 1 1 1 = 0.0019 + 0.0019 + 0.0019 = 0.0057 = 175 Ω � Ω � � Ω Ω Ω�
1 1 1 Req = + + Req, strand Req, strand Req, strand
1
1
1
−1
∆Vstrand = ∆V = 120.0 V
Req, strand = 520 Ω
∆V rand 120.0 V Istrand = st = = 0.23 A Req, strand 520 Ω
R = 15 Ω
∆V = IstrandR = (0.23 A)(15 Ω) = 3.4 V
Req = 170 Ω
−1
Req = RTMP + RC = 3.6 Ω + 0.01 Ω = 3.6 Ω ∆V 120 V I = = = 33 A Req 3.6 Ω
7. R = 15.0 Ω
−1
� � � � 1 1 1 1 = 0.0592 + 0.12 + 0.100 = 0.28 = 3.6 Ω � Ω Ω Ω� � Ω�
1 1 1 RTMP = + + RT RM RP
Section One—Pupil’s Edition Solutions
I Ch. 20–7
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Givens
Solutions
9. Req, strand = 520 Ω R = 15 Ω
∆V rand 120.0 V Istrand = st = = 0.23 A Req, strand 520 Ω
n = 2 strands
∆V = IstrandR = (0.23 A)(15 Ω) = 3.4 V
∆V = 120.0 V
I
∆Vstrand = ∆V = 120.0 V
N = 35 bulbs
Chapter Review and Assess, pp. 754–759 16. R = 0.15 Ω
Req = 5R = 5(0.15 Ω) = 0.75 Ω
17. R1 = 4.0 Ω
a. Req = R1 + R2 + R3 = 4.0 Ω + 8.0 Ω + 12 Ω = 24 Ω
R2 = 8.0 Ω R3 = 12 Ω ∆V = 24 V 18. R1 = 4.0 Ω R2 = 8.0 Ω R3 = 12 Ω ∆V = 24 V
∆V 24 V b. I = = = 1.0 A Req 24 Ω
−1
1 1 1 = + + 4.0 Ω 8.0 Ω 12 Ω −1
Req
−1
� � � � 1 1 1 1 = 0.25 + 0.12 + 0.083 = 0.45 = 2.2 Ω � Ω Ω Ω� � Ω�
1 1 1 a. Req = + + R1 R2 R3
−1
∆V 24 V b. I = = = 11 A Req 2.2 Ω
R2 = 9.00 Ω R3 = 6.00 Ω ∆V = 12 V
−1
1
1
1
−1
Req
−1
+ + � � = � 18.0 Ω 9.00 Ω 6.00 Ω� 1 1 1 1 = 0.0556 + 0.111 + 0.167 = 0.334 � Ω Ω Ω� � Ω�
1 1 1 a. Req = + + R1 R2 R3
−1
= 2.99 Ω
∆V 12 V b. I = = = 4.0 A Req 2.99 Ω 23. R1 = 12 Ω R2 = 18 Ω R3 = 9.0 Ω R4 = 6.0 Ω ∆V = 30.0 V 24. R1 = 7.0 Ω R2 = 7.0 Ω R3 = 7.0 Ω R4 = 7.0 Ω R5 = 1.5 Ω
1
1
1
−1
R234
−1
−1
= 2.9 Ω
Req = R1 + R234 = 12 Ω + 2.9 Ω = 15 Ω R34 = R3 + R4 = 7.0 Ω + 7.0 Ω = 14.0 Ω
�
−1
� �
1 1 R234 = + R2 R34
−1
� �
1 1 = + 7.0 Ω 14.0 Ω
Holt Physics Solution Manual
−1
�
1 1 = 0.14 + 0.0714 Ω Ω
Req = R1 + R234 + R5 = 7.0 Ω + 4.8 Ω + 1.5 Ω = 13.3 Ω
∆V = 12.0 V
I Ch. 20–8
−1
� � = �18Ω + 9.0Ω + 6.0Ω� 1 1 1 1 = 0.056 + 0.11 + 0.17 = 0.34 � Ω Ω Ω� � Ω�
1 1 1 R234 = + + R2 R3 R4
= 4.8 Ω
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19. R1 = 18.0 Ω
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Solutions
25. R1 = 6.0 Ω
Current:
R2 = 9.0 Ω
∆V12 = IR12 = (1.8 A)(3.6 Ω) = 6.5 V
R3 = 3.0 Ω
∆V12 6.5 V I1 = = = 1.1 A 6.0 Ω R1
∆V = 12 V
I
∆V12 6.5 V I2 = = = 0.72 A 9.0 Ω R2 −1
−1
� � � � 1 1 1 = 0.17 + 0.11 = 0.28 � Ω Ω� � Ω�
1 1 R12 = + R1 R2
1 1 = + 6.0 Ω 9.0 Ω −1
R12
−1
= 3.6 Ω
Req = R12 + R3 = 3.6 Ω + 3.0 Ω = 6.6 Ω ∆V 12 V I = = = 1.8 A Req 6.6 Ω I3 = 1.8 A Potential difference: ∆V1 = ∆V2 = ∆V12 = 6.5 V ∆V3 = I3R3 = (1.8 A)(3.0 Ω) = 5.4 V 26. R1 = 3.0 Ω R2 = 3.0 Ω
−1
� �
−1
� �
1 1 = + 6.0 Ω 6.0 Ω
R234 = R2 + R34 = 3.0 Ω + 2.9 Ω = 5.9 Ω
R4 = 6.0 Ω R5 = 4.0 Ω
1 1 R56 = + R5 R6
R6 = 12.0 Ω
R56
∆V = 18.0 V
−1
−1
�
1 = 0.34 Ω
= 2.9 Ω
−1
� � � � 1 1 1 = 0.25 + 0.0833 = 0.33 � Ω � Ω� Ω� 1 1 = + 4.0 Ω 12.0 Ω
−1
� �
1 1 = 0.17 + 0.17 Ω Ω
R3 = 6.0 Ω
R7 = 2.0 Ω Copyright © by Holt, Rinehart and Winston. All rights reserved.
�
1 1 a. R34 = + R3 R4
−1
−1
= 3.0 Ω
R567 = R56 + R7 = 3.0 Ω + 2.0 Ω = 5.0 Ω −1
1 1 = + 5.9 Ω 5.0 Ω −1
R234567
−1
� � � � 1 1 1 = 0.17 + 0.20 = 0.37 = 2.7 Ω � Ω Ω� � Ω�
1 1 R234567 = + R234 R567
−1
Req = R1 + R234567 = 3.0 Ω + 2.7 Ω = 5.7 Ω ∆V 18.0 V I = = = 3.2 A Req 5.7 Ω ∆V234567 = IR234567 = (3.2 A)(2.7 Ω) = 8.6 V ∆V234567 8.6 V = = 1.7 A I7 = I567 = R567 5.0 Ω
Section One—Pupil’s Edition Solutions
I Ch. 20–9
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Givens
Solutions b. ∆V7 = I7R7 = (1.7 A)(2.0 Ω) = 3.4 V c. ∆V56 = I567R56 = (1.7 A)(3.0 Ω) = 5.1 V ∆V6 = ∆V56 = 5.1 V
I
5.1 V ∆V d. I6 = 6 = = 0.42 A 12.0 Ω R6 27. R1 = 8.0 Ω R2 = 6.0 Ω ∆V2 = 12 V
28. R1 = 9.0 Ω
Req = R1 + R2 = 8.0 Ω + 6.0 Ω = 14.0 Ω 12 V ∆V I2 = 2 = = 2.0 A 6.0 Ω R2 ∆V = I2Req = (2.0 A)(14.0 Ω) = 28 V ∆V1 = I1R1 = (0.25 A)(9.0 Ω) = 2.2 V
R2 = 6.0 Ω I1 = 0.25 A 29. R1 = 9.0 Ω
Req = R1 + R2 = 9.0 Ω + 6.0 Ω = 15.0 Ω
R2 = 6.0 Ω
∆V = I1Req = (0.25 A)(15.0 Ω) = 3.8 V
I1 = 0.25 A
R2 = 6.0 Ω
∆V 12 V I = 2 = = 2.0 A R2 6.0 Ω
∆V2 = 12 V
Req = R1 + R2 = 9.0 Ω + 6.0 Ω = 15.0 Ω
30. R1 = 9.0 Ω
∆V = IReq = (2.0 A)(15.0 Ω) = 3.0 × 101 V
R2 = 9.00 Ω R3 = 6.00 Ω I2 = 4.00 A
a. Req = R1 + R2 + R3 = 18.0 Ω + 9.00 Ω + 6.00 Ω = 33.0 Ω b. I = I2 = 4.00 A ∆V = IReq = (4.00 A)(33.0 Ω) = 132 V c. I1 = I3 = I2 = 4.00 A
33. R1 = 90.0 Ω
R12 = R1 + R2 = 90.0 Ω + 10.0 Ω = 100.0 Ω
R2 = 10.0 Ω
R34 = R3 + R4 = 10.0 Ω + 90.0 Ω = 100.0 Ω
R3 = 10.0 Ω R4 = 90.0 Ω
1 1 R1234 = + R12 R34
Req = 60.0 Ω
R1234
−1
� � � 1 = 0.020000 = 50.00 Ω � Ω�
−1
� �
1 1 = + 100.0 Ω 100.0 Ω
−1
Req = R + R1234 R = Req − R1234 = 60.0 Ω − 50.00 Ω = 10.0 Ω
I Ch. 20–10 Holt Physics Solution Manual
−1
�
1 1 = 0.01000 + 0.01000 Ω Ω
Copyright © by Holt, Rinehart and Winston. All rights reserved.
31. R1 = 18.0 Ω
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Solutions
34. Req = 150.0 Ω
N Req, string = R
∆V = 120.0 V N = 25
−1
−1
�� �� 25 = R
R = 25
R R 2R Req = + = = 150.0 Ω 25 25 25
I
25(150.0 Ω) R = = 1875 Ω 2 35. R = 6.0 Ω
The following equations represent the circuits as listed. (a) Req = 2R = 2(6.0 Ω) = 12.0 Ω −1
−1
�� � �
2 (b) Req = R
−1
2 = 6.0 Ω
−1
�� � �
3 (c) Req = R
3 = 6.0 Ω −1
= 3.0 Ω
= 2.0 Ω −1
� � = �6.0Ω + 12.0 Ω� 1 1 1 = 0.17 + 0.0833 = 0.25 � Ω �Ω � Ω�
1 1 (d) Req = + R 2R
1
1
−1
Req
−1
��
2 (e) Req = R 36. ∆V = 9.0 V R1 = 4.5 Ω R2 = 3.0 Ω
−1
= 4.0 Ω
+ R = 3.0 Ω + 6.0 Ω = 9.0 Ω
�
−1
−1
−1
� = �3.0Ω + 2.0Ω� = �0.83 Ω�
1 1 a. R23 = + R2 R3
1
1
1
= 1.2 Ω
Req = R1 + R23 = 4.5 Ω + 1.2 Ω = 5.7 Ω
Copyright © by Holt, Rinehart and Winston. All rights reserved.
R3 = 2.0 Ω ∆V 9.0 V b. I = = = 1.6 A Req 5.7 Ω c. I1 = I = 1.6 A ∆V23 = IR23 = (1.6 A)(1.2 Ω) = 1.9 V ∆V23 1.9 V I2 = = = 0.63 A R2 3.0 Ω ∆V23 1.9 V I3 = = = 0.95 A R3 2.0 Ω d. ∆V1 = I1R1 = (1.6 A)(4.5 Ω) = 7.2 V ∆V2 = ∆V3 = ∆V23 = 1.9 V
Section One—Pupil’s Edition Solutions
I Ch. 20–11
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Givens
Solutions
37. R1 = 18.0 Ω
Req = R1 + R2 = 18.0 Ω + 6.0 Ω = 24.0 Ω
R2 = 6.0 Ω ∆V = 18.0 V
∆V 18.0 V I1 = I2 = I = = = 0.750 A Req 24.0 Ω ∆V1 = I1 R1 = (0.750 A)(18.0 Ω) = 13.5 V
I
∆V2 = I2 R2 = (0.750 A)(6.0 Ω) = 4.5 V 38. R1 = 30.0 Ω R2 = 15.0 Ω R3 = 5.00 Ω ∆V = 30.0 V
−1
−1
+ � � = � 30.0 Ω 15.0 Ω� 1 1 1 = 0.0333 + 0.0667 = 0.1000 � Ω �Ω � Ω�
1 1 b. R12 = + R1 R2
1
1
−1
R12
−1
= 10.00 Ω
Req = R12 + R3 = 10.00 Ω + 5.00 Ω = 15.00 Ω ∆V 30.0 V c. I3 = I = = = 2.00 A Req 15.00 Ω ∆V12 = IR12 = (2.00 A)(10.00 Ω) = 20.0 V ∆V12 20.0 V I1 = = = 0.667 A R1 30.0 Ω ∆V12 20.0 V I2 = = = 1.33 A R2 15.0 Ω d. ∆V1 = ∆V2 = ∆V12 = 20.0 V ∆V3 = I3 R3 = (2.00 A)(5.00 Ω) = 10.0 A 39. R2 = 12 Ω ∆V = 12 V I1 = 3.0 A 40. R1 = 18.0 Ω
�
−1
� �
R2 = 6.0 Ω
1 1 Req = + R1 R2
∆V = 18.0 V
Req = 4.3 Ω ∆V1 = ∆V2 = ∆V = 18.0 V ∆V 18.0 V I1 = 1 = = 1.00 A R1 18.0 Ω ∆V 18.0 V I2 = 2 = = 3.0 A R2 6.0 Ω
I Ch. 20–12
Holt Physics Solution Manual
−1
� �
1 1 = + 18.0 Ω 6.0 Ω
−1
� �
1 1 = 0.0556 + 0.17 Ω Ω
−1
�
1 = 0.23 Ω
Copyright © by Holt, Rinehart and Winston. All rights reserved.
∆V 12 V R1 = = = 4.0 Ω I1 3.0 A
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41. R1 = 90.0 Ω
Switch open:
R2 = 10.0 Ω
R12 = R1 + R2 = 90.0 Ω + 10.0 Ω = 100.0 Ω
R3 = 10.0 Ω
R34 = R3 + R4 = 10.0 Ω + 90.0 Ω = 100.0 Ω
R4 = 90.0 Ω Req = 2Req,S
�
−1
� �
1 1 R1234 = + R12 R34
−1
� �
1 1 = + 100.0 Ω 100.0 Ω
−1
�
1 = 0.02000 Ω
= 50.00 Ω
I
Req = R + R1234 = R + 50.00 Ω Switch closed: −1
−1
� � � � 1 1 1 = 0.0111 + 0.100 = 0.111 = 9.01 Ω � Ω Ω� � Ω� 1 1 1 1 = + = + = 9.01 Ω �R R � �10.0 Ω 90.0 Ω�
1 1 R13 = + R1 R3
1 1 = + 90.0 Ω 10.0 Ω −1
R13
−1
R24
2
−1
−1
4
Req,S = R + R13 + R24 = R + 9.01 Ω + 9.01 Ω = R + 18.02 Ω Req = 2Req,S R + 50.00 Ω = 2(R + 18.02 Ω) = 2R + 36.04 Ω 2R − R = 50.00 Ω − 36.04 Ω R = 13.96 Ω 42. R = 20.0 Ω
a. Two resistors in series with two parallel resistors: −1
��
2 Req = R + R + R
�
−1
�
2 = 20.0 Ω + 20.0 Ω + 20.0 Ω
= 50.0 Ω
Copyright © by Holt, Rinehart and Winston. All rights reserved.
b. Four parallel resistors: −1
��
4 Req = R
R 20.0 Ω = = = 5.00 Ω 4 4
Section One—Pupil’s Edition Solutions
I Ch. 20–13
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Givens
Solutions
43. ∆V = 12.0 V
a. R12 = R1 + R2 = 30.0 Ω + 50.0 Ω = 80.0 Ω
R1 = 30.0 Ω
I
R3 = 90.0 Ω
R123
R4 = 20.0 Ω
−1
−1
� � � � 1 1 1 = 0.0125 + 0.0111 = 0.0236 � Ω � Ω� Ω�
R2 = 50.0 Ω
1 1 R123 = + R12 R3
1 1 = + 80.0 Ω 90.0 Ω −1
−1
= 42.4 Ω
Req = R123 + R4 = 42.4 Ω + 20.0 Ω = 62.4 Ω ∆V 12.0 V b. I = = = 0.192 A Req 62.4 Ω c. ∆V123 = IR123 = (0.192 A)(42.4 Ω) = 8.14 V ∆V123 8.14 V I12 = = = 0.102 A R12 80.0 Ω I1 = I12 = 0.102 A
d. ∆V2 = I12 R2 = (0.102 A)(50.0 Ω) = 5.10 V (∆V2 )2 (5.10 V)2 P2 = = = 0.520 W R2 50.0 Ω e. ∆V4 = IR4 = (0.192 A)(20.0 Ω) = 3.84 V (∆V4 )2 (3.84 V)2 P4 = = = 0.737 W R4 20.0 Ω series:
∆VA = 4.0 V (series)
∆V = ∆VA + ∆VB
IB = 2.0 A (parallel)
∆VB = ∆V − ∆VA = 6.0 V − 4.0 V = 2.0 V 2.0 V ∆V IB = B = = 0.67 A 3.0 Ω RB IA = IB = 0.67 A 4.0 V ∆V RA = A = = 6.0 Ω 0.67 A IA parallel: ∆VA = ∆VB = 6.0 V ∆V 6.0 V RB = B = = 3.0 Ω IB 2.0 A
I Ch. 20–14
Holt Physics Solution Manual
Copyright © by Holt, Rinehart and Winston. All rights reserved.
44. ∆V = 6.0 V
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46. R1 = 5.0 Ω
a. R789 = R7 + R8 + R9 = 3.0 Ω + 4.0 Ω + 3.0 Ω = 10.0 Ω
R2 = 10.0 Ω
�
−1
� �
−1
� �
�
R3 = 4.0 Ω R4 = 3.0 Ω
R456789 = R4 + R5789 + R6 = 3.0 Ω + 5.00 Ω + 2.0 Ω = 10.0 Ω
R5 = 10.0 Ω R6 = 2.0 Ω R7 = 3.0 Ω
R2456789
�
1 1 = + 10.0 Ω 10.0 Ω
−1
1 1 R5789 = + R5 R789
−1
� �
1 1 = + R2 R456789
1 = 0.200 Ω
−1
= 5.00 Ω
� �
1 1 = + 10.0 Ω 10.0 Ω
−1
�
1 = 0.200 Ω
I = 5.00 Ω
Req = R1 + R2456789 + R3 = 5.0 Ω + 5.00 Ω + 4.0 Ω = 14.0 Ω
R8 = 4.0 Ω R9 = 3.0 Ω ∆V = 28 V
∆V 28 V b. I = = = 2.0 A Req 14.0 Ω I1 = I = 2.0 A
47. P = 4.00 W R1 = 3.0 Ω R2 = 10.0 Ω R3 = 5.0 Ω R4 = 4.0 Ω R5 = 3.0 Ω
−1
−1
� � � � 1 1 1 = 0.100 + 0.20 = 0.30 � Ω Ω� � Ω�
1 1 a. R23 = + R2 R3
1 1 = + 10.0 Ω 5.0 Ω −1
R23
−1
= 3.3 Ω
R234 = R23 + R4 = 3.3 Ω + 4.0 Ω = 7.3 Ω −1
1 1 = + 7.3 Ω 3.0 Ω −1
R2345
−1
� � � � 1 1 1 = 0.14 + 0.33 = 0.47 � Ω Ω� � Ω�
1 1 R2345 = + R234 R5
−1
= 2.1 Ω
Req = R1 + R2345 = 3.0 Ω + 2.1 Ω = 5.1 Ω
Copyright © by Holt, Rinehart and Winston. All rights reserved.
�
�
b. ∆V = P �R �eq � = (4 �.0 �0�W �)( �5. �1�Ω �)� = 4.5 V 48. PT = 1200 W
P = I∆V
PC = 1200 W
PT + PC = I∆V
∆V = 120 V
2(1200 W) I = = 20 A 120 V
Imax = 15 A
no, because 20 A > 15 A 49. PH = 1300 W PT = 1100 W PG = 1500 W ∆V = 120 V
P 1300 W = = 11 A a. heater: I = H ∆V 120 V PT 1100 W toaster: I = = = 9.2 A ∆V 120 V PG 1500 W grill: I = = = 12 A ∆V 120 V b. yes; Itot = 11 A + 9.2 A + 12 A = 32.2 A
Section One—Pupil’s Edition Solutions
I Ch. 20–15
