首页 > 器件类别 > 模拟混合信号IC > 放大器电路

LM2903VDR2

Analog Comparators 2-36V Dual

器件类别:模拟混合信号IC    放大器电路   

厂商名称:ON Semiconductor(安森美)

厂商官网:http://www.onsemi.cn

下载文档
LM2903VDR2 在线购买

供应商:

器件:LM2903VDR2

价格:-

最低购买:-

库存:点击查看

点击购买

器件参数
参数名称
属性值
Brand Name
ON Semiconductor
是否无铅
含铅
是否Rohs认证
不符合
厂商名称
ON Semiconductor(安森美)
零件包装代码
SOIC
包装说明
SOP, SOP8,.25
针数
8
制造商包装代码
751-07
Reach Compliance Code
not_compliant
ECCN代码
EAR99
Factory Lead Time
16 weeks
放大器类型
COMPARATOR
最大平均偏置电流 (IIB)
0.5 µA
25C 时的最大偏置电流 (IIB)
0.25 µA
最大输入失调电压
15000 µV
JESD-30 代码
R-PDSO-G8
JESD-609代码
e0
长度
4.9 mm
湿度敏感等级
1
负供电电压上限
标称负供电电压 (Vsup)
功能数量
2
端子数量
8
最高工作温度
125 °C
最低工作温度
-40 °C
输出类型
OPEN-COLLECTOR
封装主体材料
PLASTIC/EPOXY
封装代码
SOP
封装等效代码
SOP8,.25
封装形状
RECTANGULAR
封装形式
SMALL OUTLINE
峰值回流温度(摄氏度)
240
电源
5 V
认证状态
Not Qualified
标称响应时间
1500 ns
座面最大高度
1.75 mm
最大压摆率
2.5 mA
供电电压上限
36 V
标称供电电压 (Vsup)
5 V
表面贴装
YES
技术
BIPOLAR
温度等级
AUTOMOTIVE
端子面层
Tin/Lead (Sn/Pb)
端子形式
GULL WING
端子节距
1.27 mm
端子位置
DUAL
处于峰值回流温度下的最长时间
30
宽度
3.9 mm
文档预览
LM393, LM293, LM2903,
LM2903V, NCV2903,
NCV2903V
Low Offset Voltage
Dual Comparators
The LM393 series are dual independent precision voltage
comparators capable of single or split supply operation. These devices
are designed to permit a common mode range−to−ground level with
single supply operation. Input offset voltage specifications as low as
2.0 mV make this device an excellent selection for many applications
in consumer, automotive, and industrial electronics.
Features
8
1
SOIC−8
D SUFFIX
CASE 751
1
Micro8E
DM SUFFIX
CASE 846A
http://onsemi.com
PDIP−8
N SUFFIX
CASE 626
Wide Single−Supply Range: 2.0 Vdc to 36 Vdc
Split−Supply Range:
±1.0
Vdc to
±18
Vdc
Very Low Current Drain Independent of Supply Voltage: 0.4 mA
Low Input Bias Current: 25 nA
Low Input Offset Current: 5.0 nA
Low Input Offset Voltage: 5.0 mV (max) LM293/393
Input Common Mode Range to Ground Level
Differential Input Voltage Range Equal to Power Supply Voltage
Output Voltage Compatible with DTL, ECL, TTL, MOS, and CMOS
Logic Levels
ESD Clamps on the Inputs Increase the Ruggedness of the Device
without Affecting Performance
NCV Prefix for Automotive and Other Applications Requiring
Unique Site and Control Change Requirements; AEC−Q100
Qualified and PPAP Capable
These Devices are Pb−Free, Halogen Free/BFR Free and are RoHS
Compliant
V
CC
+ Input
- Input
Output
8
8
1
PIN CONNECTIONS
Output A
Inputs A
GND
1
2
3
4
8
+
7
V
CC
Output B
Inputs B
+
5
6
(Top View)
DEVICE MARKING AND ORDERING
INFORMATION
See detailed marking information and ordering and shipping
information on pages 6 and 7 of this data sheet.
R2
2.1 k
Q3
F1
R4
2.0 k
Q4
Q5
Q6
Q14
Q10
Q1
Q2
R1
4.6 k
Q11
Q8
Q9
Q12
Q15
Q16
Figure 1. Representative Schematic Diagram
(Diagram shown is for 1 comparator)
©
Semiconductor Components Industries, LLC, 2013
December, 2013
Rev. 24
1
Publication Order Number:
LM393/D
LM393, LM293, LM2903, LM2903V, NCV2903, NCV2903V
MAXIMUM RATINGS
Rating
Power Supply Voltage
Input Differential Voltage
Input Common Mode Voltage Range (Note 1)
Output Voltage
Output Short Circuit−to−Ground
Output Sink Current (Note 2)
Power Dissipation @ T
A
= 25°C
Derate above 25°C
Operating Ambient Temperature Range
LM293
LM393
LM2903
LM2903V, NCV2903 (Note 3)
NCV2903V (Note 3)
Maximum Operating Junction Temperature
LM393, 2903, LM2903V
LM293, NCV2903
Storage Temperature Range
ESD Protection at any Pin (Note 4)
Human Body Model
Machine Model
Symbol
V
CC
V
IDR
V
ICR
V
O
I
SC
I
Sink
P
D
1/R
qJA
T
A
−25
to +85
0 to +70
−40
to +105
−40
to +125
−40
to +150
T
J(max)
150
150
−65
to +150
1500
150
°C
Value
+36 or
±18
36
−0.3
to +36
36
Continuous
20
570
5.7
Unit
V
V
V
V
mA
mW
mW/°C
°C
T
stg
V
ESD
°C
V
Stresses exceeding Maximum Ratings may damage the device. Maximum Ratings are stress ratings only. Functional operation above the
Recommended Operating Conditions is not implied. Extended exposure to stresses above the Recommended Operating Conditions may affect
device reliability.
1. For supply voltages less than 36 V, the absolute maximum input voltage is equal to the supply voltage.
2. The maximum output current may be as high as 20 mA, independent of the magnitude of V
CC
, output short circuits to V
CC
can cause
excessive heating and eventual destruction.
3.
NCV2903 and NCV2903V are qualified for automotive use.
4. V
ESD
rating for NCV/SC devices is: Human Body Model
2000 V; Machine Model
200 V.
http://onsemi.com
2
LM393, LM293, LM2903, LM2903V, NCV2903, NCV2903V
ELECTRICAL CHARACTERISTICS
(V
CC
= 5.0 Vdc, T
low
T
A
T
high
, unless otherwise noted.)
LM293, LM393
Characteristic
Input Offset Voltage (Note 6)
T
A
= 25°C
T
low
T
A
T
high
Input Offset Current
T
A
= 25°C
T
low
T
A
T
high
Input Bias Current (Note 7)
T
A
= 25°C
T
low
T
A
T
high
Input Common Mode Voltage Range (Note 7)
T
A
= 25°C
T
low
T
A
T
high
Voltage Gain
R
L
15 kW, V
CC
= 15 Vdc, T
A
= 25°C
Large Signal Response Time
V
in
= TTL Logic Swing, V
ref
= 1.4 Vdc
V
RL
= 5.0 Vdc, R
L
= 5.1 kW, T
A
= 25°C
Response Time (Note 9)
V
RL
= 5.0 Vdc, R
L
= 5.1 kW, T
A
= 25°C
Input Differential Voltage (Note 10)
All V
in
GND or V− Supply (if used)
Output Sink Current
V
in
1.0 Vdc, V
in+
= 0 Vdc, V
O
1.5 Vdc T
A
= 25°C
Output Saturation Voltage
V
in
1.0 Vdc, V
in+
= 0, I
Sink
4.0 mA, T
A
= 25°C
T
low
T
A
T
high
Output Leakage Current
V
in−
= 0 V, V
in+
1.0 Vdc, V
O
= 5.0 Vdc, T
A
= 25°C
V
in−
= 0 V, V
in+
1.0 Vdc, V
O
= 30 Vdc,
T
low
T
A
T
high
Supply Current
R
L
=
Both Comparators, T
A
= 25°C
R
L
=
Both Comparators, V
CC
= 30 V
Symbol
V
IO
Min
0
0
50
Typ
±1.0
±5.0
25
200
300
Max
±5.0
±9.0
±50
±150
250
400
V
CC
−1.5
V
CC
−2.0
LM2903, LM2903V,
NCV2903, NCV2903V
Min
0
0
25
Typ
±2.0
±9.0
±5.0
±50
25
200
200
300
Max
±7.0
±15
nA
±50
±200
nA
250
500
V
V
CC
−1.5
V
CC
−2.0
V/mV
ns
Unit
mV
I
IO
I
IB
V
ICR
A
VOL
t
TLH
V
ID
I
Sink
V
OL
6.0
1.3
16
V
CC
6.0
1.5
16
V
CC
ms
V
mA
mV
150
0.1
0.4
400
700
1000
1.0
2.5
200
0.1
0.4
400
700
nA
1000
mA
1.0
2.5
I
OL
I
CC
LM293 T
low
=
−25°C,
T
high
= +85°C
LM393 T
low
= 0°C, T
high
= +70°C
LM2903 T
low
=
−40°C,
T
high
= +105°C
LM2903V & NCV2903 T
low
=
−40°C,
T
high
= +125°C
NCV2903V T
low
=
−40°C,
T
high
= +150°C
NCV2903 and NCV2903V are qualified for automotive use.
5. The maximum output current may be as high as 20 mA, independent of the magnitude of V
CC
, output short circuits to V
CC
can cause
excessive heating and eventual destruction.
6. At output switch point, V
O
]1.4
Vdc, R
S
= 0
W
with V
CC
from 5.0 Vdc to 30 Vdc, and over the full input common mode range
(0 V to V
CC
=
−1.5
V).
7. Due to the PNP transistor inputs, bias current will flow out of the inputs. This current is essentially constant, independent of the output state,
therefore, no loading changes will exist on the input lines.
8. Input common mode of either input should not be permitted to go more than 0.3 V negative of ground or minus supply. The upper limit of
common mode range is V
CC
−1.5
V.
9. Response time is specified with a 100 mV step and 5.0 mV of overdrive. With larger magnitudes of overdrive faster response times are
obtainable.
10. The comparator will exhibit proper output state if one of the inputs becomes greater than V
CC
, the other input must remain within the common
mode range. The low input state must not be less than
−0.3
V of ground or minus supply.
http://onsemi.com
3
LM393, LM293, LM2903, LM2903V, NCV2903, NCV2903V
LM293/393
80
IIB , INPUT BIAS CURRENT (nA)
IIB , INPUT BIAS CURRENT (nA)
70
60
T
A
= -55° C
50
T
A
= 0° C
40
30
20
10
0
0
5.0
10
15
20
25
30
V
CC
, SUPPLY VOLTAGE (Vdc)
35
40
T
A
= +25° C
T
A
= +125°C
T
A
= +70° C
80
70
60
50
40
30
20
10
0
0
5.0
10
15
20
25
V
CC
, SUPPLY VOLTAGE (Vdc)
30
35
40
T
A
= +85° C
T
A
= 0° C
T
A
= +25° C
T
A
= -40° C
LM2903
Figure 2. Input Bias Current versus
Power Supply Voltage
Figure 3. Input Bias Current versus
Power Supply Voltage
10
VOL , SATURATION VOLTAGE (Vdc)
VOL , SATURATION VOLTAGE (Vdc)
Out of
Saturation
T
A
= +125°C
10
Out of
Saturation
1.0
1.0
T
A
= +85° C
0.1
T
A
= +25° C
0.1
T
A
= +25° C
T
A
= -55° C
0.01
0.01
T
A
= -40° C
0.1
T
A
= 0° C
0.001
0.01
0.1
1.0
10
100
0.001
0.01
1.0
10
100
I
Sink
, OUTPUT SINK CURRENT (mA)
I
Sink
, OUTPUT SINK CURRENT (mA)
Figure 4. Output Saturation Voltage
versus Output Sink Current
Figure 5. Output Saturation Voltage
versus Output Sink Current
1.0
ICC , SUPPLY CURRENT (mA)
0.8
T
A
= 0° C
T
A
= +25° C
0.6
T
A
= +70° C
0.4
0.2
0
T
A
= +125°C
R
L
=
R
5.0
10
15
20
25
30
35
40
ICC , SUPPLY CURRENT (mA)
T
A
= -55° C
1.2
1.0
0.8
T
A
= -40° C
T
A
= 0° C
T
A
= +25° C
0.6
0.4
0
5.0
10
15
20
25
T
A
= +85° C
R
L
=
R
30
35
40
V
CC
, SUPPLY VOLTAGE (Vdc)
V
CC
, SUPPLY VOLTAGE (Vdc)
Figure 6. Power Supply Current versus
Power Supply Voltage
Figure 7. Power Supply Current versus
Power Supply Voltage
http://onsemi.com
4
LM393, LM293, LM2903, LM2903V, NCV2903, NCV2903V
APPLICATIONS INFORMATION
These dual comparators feature high gain, wide
bandwidth characteristics. This gives the device oscillation
tendencies if the outputs are capacitively coupled to the
inputs via stray capacitance. This oscillation manifests
itself during output transitions (V
OL
to V
OH
). To alleviate
this situation, input resistors < 10 kW should be used.
+15 V
R4
220 k
6.8 k
R2
R5
220 k
*
)
LM393
The addition of positive feedback (< 10 mV) is also
recommended. It is good design practice to ground all
unused pins.
Differential input voltages may be larger than supply
voltage without damaging the comparator’s inputs. Voltages
more negative than
−0.3
V should not be used.
R1
8.2 k
V
in
R1
D1
10 k
+V
CC
*
10 k
V
in
V
in(min)
Q
15 k
R3
10 m
V
in
LM393
)
-V
EE
V
CC
V
O
- V
EE
DQ
Q
D1 prevents input from going negative by more than 0.6 V.
R1 + R2 = R3
R3
R5
for small error in zero crossing.
10
V
in(min)
[
0.4 V peak for 1% phase distortion (DQ).
Figure 8. Zero Crossing Detector
(Single Supply)
Figure 9. Zero Crossing Detector
(Split Supply)
V
CC
V
CC
R
-
LM393
V
C
+
V
O
+ V
ref
``ON'' for t
­
t
O
+
Dt
where:
V
ref
)
Dt
= RC n (
V
CC
V
in
0
V
O
0
V
C
0
t
O
V
ref
V
ref
1.0 mW
V
CC
R
L
10 k
t
R
L
-
LM393
+
V
CC
51 k
-
0.001
mF
LM393
+
C
V
O
51 k
51 k
V
CC
V
O
0
t
t
Figure 10. Free−Running Square−Wave Oscillator
V
CC
Figure 11. Time Delay Generator
R
S
= R1 | | R2
R
S
-
LM393
+
V
ref
R1
R2
R
L
V
th1
= V
ref
+
(V
CC
-V
ref
) R1
R1 + R2 + R
L
(V
ref
-V
O
Low) R1
R1 + R2
V
th2
= V
ref
-
Figure 12. Comparator with Hysteresis
http://onsemi.com
5
查看更多>
瑞萨论坛2005开始 主推好用的MCU
2005年7月13日,株式会社瑞萨科技举办的《瑞萨论坛2005》,即中国三城市(北京、上海、深圳)巡...
frozenviolet 汽车电子
【得捷电子Follow me第3期】任务2:驱动扩展板上的OLED屏幕(文字与图形)
任务介绍: 使用扩展板上的 OLED 屏幕显示文字和图形 搭配器件: Seeed...
fangkaixin DigiKey得捷技术专区
TMS320F28379D SCID SCIB 的配置与使用
TI的官方例程里面只给了SCIA的配置而没有给其他的SCI的配置方法 其实这些的配置都是一...
Jacktang 模拟与混合信号
CVAVR V3.12 无法用double类型?
单片机是ATXMEGE64D3,编程中使用到double类型数据,但出现警告如下: Warnin...
草莓咖啡因 Microchip MCU
[SAM R21]ASF 3.21中关于USB的bug
本帖最后由 dcexpert 于 2015-1-26 00:45 编辑 这两天一直被SAM R...
dcexpert Microchip MCU
Linux必学的60个命令
Linux必学的60个命令.... Linux必学的60个命令 感谢楼主分享!!!顶是必须的 支持一...
jreeys Linux与安卓
热门器件
热门资源推荐
器件捷径:
00 01 02 03 04 05 06 07 08 09 0A 0C 0F 0J 0L 0M 0R 0S 0T 0Z 10 11 12 13 14 15 16 17 18 19 1A 1B 1C 1D 1E 1F 1H 1K 1M 1N 1P 1S 1T 1V 1X 1Z 20 21 22 23 24 25 26 27 28 29 2A 2B 2C 2D 2E 2F 2G 2K 2M 2N 2P 2Q 2R 2S 2T 2W 2Z 30 31 32 33 34 35 36 37 38 39 3A 3B 3C 3D 3E 3F 3G 3H 3J 3K 3L 3M 3N 3P 3R 3S 3T 3V 40 41 42 43 44 45 46 47 48 49 4A 4B 4C 4D 4M 4N 4P 4S 4T 50 51 52 53 54 55 56 57 58 59 5A 5B 5C 5E 5G 5H 5K 5M 5N 5P 5S 5T 5V 60 61 62 63 64 65 66 67 68 69 6A 6C 6E 6F 6M 6N 6P 6R 6S 6T 70 71 72 73 74 75 76 77 78 79 7A 7B 7C 7M 7N 7P 7Q 7V 7W 7X 80 81 82 83 84 85 86 87 88 89 8A 8D 8E 8L 8N 8P 8S 8T 8W 8Y 8Z 90 91 92 93 94 95 96 97 98 99 9A 9B 9C 9D 9F 9G 9H 9L 9S 9T 9W
需要登录后才可以下载。
登录取消