NE5517ANG ON Semiconductor, NE5517ANG Datasheet - Page 9

IC AMP XCONDUCTANCE DUAL 16-DIP

NE5517ANG

Manufacturer Part Number
NE5517ANG
Description
IC AMP XCONDUCTANCE DUAL 16-DIP
Manufacturer
ON Semiconductor
Datasheet

Specifications of NE5517ANG

Amplifier Type
Transconductance
Number Of Circuits
2
Output Type
Push-Pull
Slew Rate
50 V/µs
Gain Bandwidth Product
2MHz
Current - Input Bias
400nA
Voltage - Input Offset
400µV
Current - Supply
2.6mA
Current - Output / Channel
650µA
Voltage - Supply, Single/dual (±)
4 V ~ 44 V, ±2 V ~ 22 V
Operating Temperature
0°C ~ 70°C
Mounting Type
Through Hole
Package / Case
16-DIP (0.300", 7.62mm)
Number Of Channels
2
Input Offset Voltage
2 mV
Supply Voltage (max)
44 V
Supply Current
2.6 mA
Common Mode Rejection Ratio (min)
80 dB
Input Voltage Range (max)
Positive Rail - 3 V
Mounting Style
Through Hole
Maximum Operating Temperature
+ 70 C
Minimum Operating Temperature
0 C
Maximum Power Dissipation
1500 mW
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
-3db Bandwidth
-
Lead Free Status / Rohs Status
Lead free / RoHS Compliant
Other names
NE5517ANG
NE5517ANGOS
Stereo Amplifier With Gain Control
a control input. Excellent tracking of typical 0.3 dB is easy
to achieve. With the potentiometer, R
adjusted. For AC-coupled amplifiers, the potentiometer
may be replaced with two 510 W resistors.
Figure 24 shows a stereo amplifier with variable gain via
CARRIER
V
SIGNAL
V
IN2
IN1
V
V
IN1
IN2
V
C
10kW
V
30kW
10kW
10kW
R
OS
R
R
C
IN
IN
P
1k
, the offset can be
1k
Figure 24. Gain-Controlled Stereo Amplifier
1kW
NE5517, NE5517A, AU5517
R
R
P
P
+V
+V
Figure 25. Amplitude Modulator
I
15kW
D
CC
CC
30kW
R
I
ABC
C
15kW
15kW
http://onsemi.com
R
R
D
D
2
15
3
4
14
13
3
4
+
NE5517/A
+
+
NE5517/A
NE5517/A
9
−V
+V
CC
+V
CC
11
6
Modulators
Transconductance Amplifier) is directly proportional to I
the amplification of a signal can be controlled easily. The
output current is the product from transconductance×input
voltage. The circuit is effective up to approximately 200 kHz.
Modulation of 99% is easy to achieve.
CC
11
6
Because the transconductance of an OTA (Operational
I
I
ABC
ABC
1
1
16
12
5
10
R
10kW
R
10kW
L
L
10kW
R
L
7
5.1kW
R
S
8
9
INT
+V
V
V
−V
+V
−V
INT
OUT1
OUT2
CC
CC
CC
CC
R
S
8
V
−V
INT
+V
INT
OUT
CC
CC
ABC
,

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