Page 192 - 30105-2003 การวิเคราะห์วงจรอิเล็กทรอนิกส์ความถี่สูง
P. 192
184
4.
4
505 % 5
0.25V
ก
ก (4.23) R = CC
C
I
C
0.25V 0.25V
ก
ก (4.24) R = CC ≈ CC
E
β +
( F ) 1 I B I C
ก
ก (2.26) R TH = 15R
E
ก
ก (2.27) V TH = I R + V BE + ( β + ) 1 I R
F
B TH
B E
R
V CC TH V CC TH ;
R
ก
ก (2.28) R = , R =
B 1 B 2 )
V (V − V
TH CC TH
V − V FD )
( CC
ก
ก (4.10) I = 1 , I = I ;
D 1 ( R + 2R L ) D 1 D 2
1
V CC − V FD
I = 1
D 1 ( R + 2R L )
1
V CC − V FD
R + ) = 1
L
( 1 2R
I D 1
V CC − V FD
R = 1 − 2R L
1
I D 1
*& 4.20 ก (
R , R , R , R , R R .5( R
,
C E B 1 B 2 1 2 L
+ , ก
ก (4.22) V CE = 0.5V CC ,V RC = 0.25V CC ,V RE = 0.25V CC ;
×
=
=
=
×
×
V = 0.5 12 6 V,V = 0.25 12 3 V,V = 0.25 12 3 V;
CE RC RE
×
I 4.838 10 − 3
I = C = = 54.977 µA
B
β F 88
×
0.25V 0.25 12
ก
ก (4.23) R = CC = = 620 Ω
C
×
I C 4.838 10 − 3
×
0.25V CC 0.25 12
ก
ก (4.24) R = ≈ = 620 Ω
E
( β + ) 1 I B 4.838 10 − 3
×
F
×
ก
ก (2.26) R = 15R = 15 620 = 9.3 kΩ
TH E
ก
ก (2.27) V TH = I R + V BE + ( β + ) 1 I R
B TH
B E
F
)
×
×
×
×
V TH = ( 54.977 10 − 6 × 9.3 10 3 ) + 0.6 + ( 89 54.977 10 − 6 × 620
V TH = 4.144 V
×
×
R
V CC TH 12 9.3 10 3
ก
ก (2.28) R B 1 = = = 26.930 kΩ
V TH 4.144
ก
ก
ก
