XAMPLE 5 For the transistor configuration in Fig. 1 a and VBE have been provided: in which Vec = 22 V a. Determine the voltage Vg and the current Ig. b. Calculate V. c. Determine VBc using the fact that the approximation Ic= Ig is often applied to transistor networks. d. Calculate VcE using the information obtained in parts (a) through (c). Rc 10 kf V R 40 kn V 2V VCE B VRE=0.7 V -OE VE V2 R4 kn REI kn FIG. 1 Example 7.9.

Introductory Circuit Analysis (13th Edition)
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, in which
EXAMPLE 5 For the transistor configuration in Fig. 1
VB and VBE have been provided:
Vec = 22 V
dc
a. Determine the voltage VẸ and the current Ig.
b. Calculate V,.
c. Determine VBc using the fact that the approximation Ic = IE is often
applied to transistor networks.
d. Calculate VCEusing the information obtained in parts (a) through (c).
Rc
10 kN
40 kN
VBC
V = 2 V
VCE
B.
Vg = 0.7 V -OE
VE
V2 R2 4 kfl
Rg1 kN
FIG. 1
Example 7.9.
of the
Transcribed Image Text:, in which EXAMPLE 5 For the transistor configuration in Fig. 1 VB and VBE have been provided: Vec = 22 V dc a. Determine the voltage VẸ and the current Ig. b. Calculate V,. c. Determine VBc using the fact that the approximation Ic = IE is often applied to transistor networks. d. Calculate VCEusing the information obtained in parts (a) through (c). Rc 10 kN 40 kN VBC V = 2 V VCE B. Vg = 0.7 V -OE VE V2 R2 4 kfl Rg1 kN FIG. 1 Example 7.9. of the
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