參數(shù)資料
型號(hào): LTC1929CG-PG
英文描述: Analog IC
中文描述: 模擬IC
文件頁(yè)數(shù): 4/28頁(yè)
文件大?。?/td> 389K
代理商: LTC1929CG-PG
LTC1929/LTC1929-PG
SYMBOL
I
B
A
OL
PARAMETER
Input Bias Current
Open Loop DC Gain
CONDITIONS
Op Amp Mode (LTC1929 Only)
Op Amp Mode; 0.7V
V
DIFFOUT
< 10V
(LTC1929 Only)
Op Amp Mode (LTC1929 Only)
Op Amp Mode; 0V < V
CM
< 3V (LTC1929 Only)
Op Amp Mode; 6V < V
IN
< 30V (LTC1929 Only)
Op Amp Mode; V
DIFFOUT
= 0V (LTC1929 Only)
Op Amp Mode; I
DIFFOUT
= 1mA (LTC1929 Only)
Op Amp Mode; I
DIFFOUT
= 1mA (LTC1929 Only)
Op Amp Mode; R
L
= 2k (LTC1929 Only)
MIN
TYP
30
5000
MAX
200
UNITS
nA
V/mV
V
CM
CMRR
OA
PSRR
OA
I
CL
V
O(MAX)
GBW
SR
Common Mode Input Voltage Range
Common Mode Rejection Ratio
Power Supply Rejection Ratio
Maximum Output Current
Maximum Output Voltage
Gain-Bandwidth Product
Slew Rate
0
3
V
70
70
10
10
90
90
35
11
2
5
dB
dB
mA
V
MHz
V/
μ
s
ELECTRICAL CHARACTERISTICS
temperature range, otherwise specifications are at T
A
= 25
°
C. V
IN
= 15V, V
RUN/SS
= 5V unless otherwise noted.
Note 5:
When the AMPMD pin is high (default for the LTC1929-PG), the
LTC1929 IC pins are connected directly to the internal op amp inputs.
When the AMPMD pin is low, internal MOSFET switches connect four
40k resistors around the op amp to create a standard unity-gain
differential amp.
Note 6:
Minimum on-time condition corresponds to the on inductor
peak-to-peak ripple current
40% of I
MAX
(see minimum on-time
considerations in the Applications Information section).
Note 1:
Absolute Maximum Ratings are those values beyond which the
life of a device may be impaired.
Note 2:
T
J
is calculated from the ambient temperature T
A
and power
dissipation P
D
according to the following formulas:
LTC1929CG: T
J
= T
A
+ (P
D
95
°
C/W)
Note 3:
The LTC1929 is tested in a feedback loop that servos V
ITH
to a
specified voltage and measures the resultant V
EAIN
.
Note 4:
Dynamic supply current is higher due to the gate charge being
delivered at the switching frequency. See Applications Information.
TYPICAL PERFOR U
Efficiency vs Output Current
(Figure 13)
OUTPUT CURRENT (A)
0.1
E
100
80
60
40
20
0
1929 G01
1
10
100
V
OUT
= 2V
V
= 0V
FREQ = 200kHz
V
IN
= 5V
V
IN
= 8V
V
IN
= 12V
V
IN
= 20V
OUTPUT CURRENT (A)
0.1
E
40
60
1929 G02
20
0
10
1
100
100
80
V
IN
= 12V
V
= 2V
FREQ = 200kHz
V
EXTVCC
= 5V
V
EXTVCC
= 0V
V
IN
(V)
5
E
100
90
80
70
60
50
1929 G03
10
15
20
V
EXTVCC
= 5V
I
OUT
V
OUT
= 2V
V
OUT
= 1.6V
Efficiency vs Output Current
(Figure 13)
Efficiency vs V
IN
(Figure 13)
The
G
denotes the specifications which apply over the full operating
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