2. (a) Using the characteristics of Fig. 2.131b, determine I, and Vp for the circuit of Fig. 2.132. (b) Repeat part (a) with R = 0.47 kfN. (c) Repeat part (a) with R = 0.18 kſ2.

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Answer only number 2 a,b,c problem, with illustration and solutions.

 

§ 2.2 Load-Line Analysis
PROBLEMS
1. (a) Using the characteristies of Fig. 2.131b, determine Ip, Vp, and Vg for the circuit of Fig.
2.131a.
(b) Repeat part (a) using the approximate model for the diode and compare results.
(c) Repeat part (a) using the ideal model for the diode and compare results.
E SV
0.33 k
(a)
Figure 2.131 Problems 1, 2
10
V (V)
17 V
(b)
Si
E SV
220
Figure 2.132 Problems 2, 3
2. (a) Using the characteristics of Fig. 2.131b, determine In and p for the circuit of Fig. 2.132.
(b) Repeat part (a) with R = 0.47 k2.
(c) Repeat part (a) with R = 0.18 kMN.
(d) Is the level of Vp relatively close to 0.7 V in each case?
How do the resulting levels of I, compare? Comment accordingly.
Transcribed Image Text:§ 2.2 Load-Line Analysis PROBLEMS 1. (a) Using the characteristies of Fig. 2.131b, determine Ip, Vp, and Vg for the circuit of Fig. 2.131a. (b) Repeat part (a) using the approximate model for the diode and compare results. (c) Repeat part (a) using the ideal model for the diode and compare results. E SV 0.33 k (a) Figure 2.131 Problems 1, 2 10 V (V) 17 V (b) Si E SV 220 Figure 2.132 Problems 2, 3 2. (a) Using the characteristics of Fig. 2.131b, determine In and p for the circuit of Fig. 2.132. (b) Repeat part (a) with R = 0.47 k2. (c) Repeat part (a) with R = 0.18 kMN. (d) Is the level of Vp relatively close to 0.7 V in each case? How do the resulting levels of I, compare? Comment accordingly.
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