參數(shù)資料
型號: ML4790
廠商: Fairchild Semiconductor Corporation
英文描述: Adjustable Output, Low Ripple Boost Regulator(輸出可調(diào)、小波紋升壓穩(wěn)壓器)
中文描述: 可調(diào)輸出,低紋波升壓穩(wěn)壓器(輸出可調(diào),小波紋升壓穩(wěn)壓器)
文件頁數(shù): 6/10頁
文件大小: 192K
代理商: ML4790
6
ML4790
Figure 7 shows efficiency under the conditions used to
create Figure 6. It can be seen that efficiency is mostly
independent of input voltage and is closely related to
inductor value. This illustrates the need to keep the
inductor value as high as possible to attain peak system
efficiency. As the inductor value goes down to 10
μ
H, the
efficiency drops to between 70% and 75%. With 47
μ
H,
the efficiency reaches approximately 90% and there is
little room for improvement. At values greater than 47
μ
H,
the operation of the synchronous rectifier becomes
unreliable at low input voltages because the inductor
current is so small that it is difficult for the control circuitry
to detect as shown for the 5.5V output.
After the appropriate inductor value is chosen, it is
necessary to find the minimum inductor current rating
required. Peak inductor current is determined from the
following formula:
I
T
V
L
L PEAK
(
ONMAX
(
INMAX
(
MIN
)
)
)
=
×
(2)
It is important to note that for reliable operation, make
sure that I
L(PEAK)
does not exceed the 1A maximum switch
current rating. In the two cell application previously
described, a maximum input voltage of 3V would give a
peak current of 880mA. When comparing various
inductors, it is important to keep in mind that suppliers
use different criteria to determine their ratings. Many use a
conservative current level, where inductance has dropped
to 90% of its normal level. In any case, it is a good idea to
try inductors of various current ratings with the ML4790 to
determine which inductor is the best choice. Check
Figure 6. Output Current versus Input Voltage.
200
180
160
140
120
100
80
60
40
20
0
1.0
2.0
I
O
3.0
4.0
5.0
V
IN
(V)
V
OUT =
5.5V
L = 10
μ
H
L = 22
μ
H
L = 47
μ
H
35
30
25
20
15
10
5
0
I
O
1.0
1.2
1.4
1.6
1.8
2.0
V
OUT =
2.5V
L = 10
μ
H
V
IN
(V)
L = 22
μ
H
L = 47
μ
H
140
120
100
80
60
40
20
0
1.0
1.5
I
O
2.0
2.5
3.0
V
IN
(V)
V
OUT =
3.5V
L = 10
μ
H
L = 22
μ
H
L = 47
μ
H
180
160
140
120
100
80
60
40
20
0
I
O
1.0
1.5
2.0
2.5
V
IN
(V)
3.0
3.5
4.0
L = 10
μ
H
L = 22
μ
H
L = 47
μ
H
V
OUT =
4.5V
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