HA17324 Series
Quad Operational Amplifier
Description
HA17324 is quad operational amplifier that provide high gain and internal phase compensation, with single
power supply. They can be widely used to control equipments.
Features
•
Wide range of supply voltage, and single power supply used
•
Internal phase compensation
•
Wide range of common mode voltage, and possible to operate with an input about 0V
Ordering Information
Type No.
HA17324FP
HA17324F
HA17324
HA17324P
Application
Industrial use
Commercial use
Commercial use
Industrial use
Package
FP-14DA
FP-14DA
DP-14
DP-14
HA17324 Series
Pin Arrangement
Vout1
Vin(–)1
Vin(+)1
V
CC
Vin(+)2
Vin(–)2
Vout2
1
2
3
4
5
6
7
(Top View)
– +
2
+ –
3
1
4
14 Vout4
13 Vin(–)4
12 Vin(+)4
11 V
EE
10 Vin(+)3
9
8
Vin(–)3
Vout3
– +
+ –
Circuit Schematic (1/4)
Q
5
Vin(–)
Q
1
Q
2
Q
3
Q
4
Q
6
C
Q
7
R
1
Vin(+)
Q
11
Q
10
Q
8
Q
9
Q
12
Q
13
Vout
2
HA17324 Series
Absolute Maximum Ratings
(Ta = 25°C)
Item
Supply voltage
Sink current
Power dissipation
Common mode input voltage
Differential input voltage
Operating temperature
Storage temperature
Symbol
V
CC
Isink
P
T
V
CM
Vin (diff)
Topr
Tstg
Rating
32
50
625*
–0.3 to V
CC
±V
CC
–20 to +75
–55 to +125
Unit
V
mA
mW
V
V
°C
°C
Note: These are allowable values up to Ta=50°C.
Derate by 8.3mW/°C above that temperature.
In case of SOP, see notes on SOP Package Usage in Reliability section.
3
HA17324 Series
Electrical Characteristics
(V
CC
= +15V, Ta = 25°C)
Item
Input offset voltage
Input offset current
Input bias current
Power source rejection
ratio
Voltage gain
Common mode rejection
ratio
Common mode input
voltage range
Maximum output voltage
Output source current
Output sink current
Supply current
Slew rate
Channel separation
Output sink current
Symbol
V
IO
I
IO
I
IB
PSRR
A
VD
CMR
V
CM
Vop-p
Iosource
Iosink
I
CC
SR
CS
Iosink
Iosink
Output voltage
V
OH
V
OH
Output voltage
V
OL
V
OL
Min
—
—
—
—
75
—
–0.3
—
20
10
—
—
—
15
3
13.2
12.0
—
—
Typ
2
5
30
93
90
80
—
13.6
40
20
0.8
0.19
120
50
9
13.6
13.3
0.8
1.1
Max
7
50
500
—
—
—
13.5
—
—
—
2
—
—
—
—
—
—
1.0
1.8
Unit
mV
nA
nA
dB
dB
dB
V
V
mA
mA
mA
V/µs
dB
µA
mA
V
V
V
V
Test Conditions
V
CM
= 7.5V, R
S
= 50Ω, Rf = 50kΩ
V
CM
= 7.5V, I
IO
=
|
I
I (–)
– I
I (+)
|
V
CM
= 7.5V
f = 100Hz, R
S
= 1kΩ, Rj = 100kΩ
R
S
= 1 kΩ, Rf = 100kΩ, R
L
=
∞
R
S
= 50Ω, Rf = 5kΩ
R
S
= 1kΩ, Rf = 100kΩ, f = 100Hz
f = 100Hz, R
S
= 1kΩ, Rf = 100kΩ,
R
L
= 20kΩ
V
IN+
= 1V, V
IN–
= 0V, V
OH
= 10V
V
IN
= 0V, V
IN
= 1V, V
OL
= 2.5V
V
IN
= GND, R
L
=
∞
f = 1.5kHz, V
CM
= 7.5V, R
L
=
∞
f = 1kHz
V
IN+
= 0V, V
IN–
= 1V, V
OL
= 200mV
V
IN+
= 0V, V
IN–
= 1V, V
OL
= 1V
I
OH
= –1mA
I
OH
= –10mA
I
OL
= 1mA
I
OL
= 10mA
4
HA17324 Series
Characteristic Curves
Output Source Current
vs. Ambient Temperature
80
Input Bias Current I
IB
(nA)
70
60
50
40
30
20
10
0
–20
0
20
40
60
Ambeint Temperature Ta (°C)
80
V
CC
= 15 V
V
OH
= 10 V
80
70
60
50
40
30
20
10
0
–20
0
20
40
60
Ambeint Temperature Ta (°C)
80
V
CC
= 15 V
V
CM
= 7.5 V
Input Bias Current
vs. Ambient Temperature
Output Source Current Iosource (mA)
Supply Current vs. Supply Voltage
4
Supply Current I
CC
(mA)
Input Bias Current I
IB
(nA)
Ta = 25°C
80
Input Bias Current vs. Supply Voltage
Ta = 25°C
3
60
2
40
1
20
0
8
16
24
32
Supply Voltage V
CC
(V)
40
0
8
16
24
32
Supply Voltage V
CC
(V)
40
Maximum Output Voltage V
OP
–
P
(V)
Voltage Gain vs. Supply Voltage
160
Voltage Gain A
VD
(dB)
Ta = 25°C
R
L
=
∞
120
Maxlmum Output Voltage vs. Frequency
20
16
12
8
4
0
1k
V
CC
= 15 V
Ta = 25°C
R
L
= 20 kΩ
80
40
0
8
16
24
32
Supply Voltage V
CC
(V)
40
3k
10 k 30 k 100 k 300 k
Frequency f (Hz)
1M
5