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RPI-392 PDF预览

RPI-392

更新时间: 2024-09-14 09:44:47
品牌 Logo 应用领域
罗姆 - ROHM 光电断路器开关插槽式开关输出元件
页数 文件大小 规格书
2页 72K
描述
Photointerrupter, General type

RPI-392 技术参数

是否无铅: 不含铅是否Rohs认证: 符合
生命周期:ObsoleteReach Compliance Code:compliant
风险等级:5.84Is Samacsys:N
Coll-Emtr Bkdn Voltage-Min:30 V配置:SINGLE
最大暗电源:500 nA最大正向电流:0.05 A
间隙大小:4 mmJESD-609代码:e3/e2
安装特点:THROUGH HOLE MOUNT功能数量:1
最大通态电压:30 V标称通态集电极电流:0.5 mA
最高工作温度:85 °C最低工作温度:-25 °C
光电设备类型:TRANSISTOR OUTPUT SLOTTED SWITCH输出电路类型:Transistor
最长响应时间:0.00001 s标称槽宽:4 mm
表面贴装:NO端子面层:TIN/TIN COPPER
Base Number Matches:1

RPI-392 数据手册

 浏览型号RPI-392的Datasheet PDF文件第2页 
External dimensions (Unit : mm)  
RPI-392  
Photointerrupter, General type  
Thrugh hole  
14.6  
3
13.6  
10.4  
Absolute maximum ratings (Ta=25°C)  
Parameter  
Symbol  
Limits  
Unit  
mA  
V
Applications  
Forward current  
IF  
50  
Printers  
Facsimiles  
AV equipment  
Reverse voltage  
VR  
5
80  
2-φ0.9  
Power dissipation  
PD  
mW  
V
4-φ0.8  
3.3  
Collector-emitter voltage  
Emitter-collector voltage  
Collector current  
VCEO  
VECO  
IC  
30  
Gap  
5.3  
4
4.5  
V
Features  
30  
mA  
mW  
°C  
Optical axis center  
1) With a hook.  
2) Gap 4mm.  
Collector power dissipation  
Operating temperature  
Storage temperature  
Soldering temperture  
PC  
80  
Topr  
Tstg  
Tsol  
25 to +85  
40 to +85  
260/3  
°C  
°C/sec  
1mm from the body bottom.  
Electrical and optical characteristics (Ta=25°C)  
C-0.1  
Parameter  
Symbol Min.  
Typ.  
1.3  
Max.  
1.6  
10  
0.5  
Unit  
V
Conditions  
0
2-φ0.8  
-0.1  
4-0.45  
VF  
IR  
IF=50mA  
VR=5V  
0.8  
Forward voltage  
(2)  
4-0.4  
µA  
µA  
nm  
mA  
V
Reverse current  
Dark current  
(2.54)  
7
(2.1)  
(10.4)  
ICEO  
VCE=10V  
Peak sensitivity wavelength  
Collector current  
λ
P
800  
IC  
VCE(sat)  
tr  
0.5  
VCE=5V, IF=20mA  
Cathode  
Collector  
0.1  
IF=20mA, IC=0.5mA  
0.5  
Collector-emitter saturation voltage  
Rise time  
10  
10  
µs  
µs  
Response time  
VCC=5V, IF=20mA, RL=100Ω  
Fall time  
tf  
fC  
Cut-off frequency  
1
MHz  
nm  
Notes:  
1. Unspecified tolerance  
shall be 0.2 .  
2. Dimension in parenthesis are  
show for reference.  
IF=50mA  
Non-coherent Infrared light emitting diode used.  
950  
λP  
Peak light emitting wavelength  
Response time  
13.6 0.05  
Anode  
Emitter  
VCC=5V, IC=1mA, RL=100Ω  
tr tf  
µs  
10  
This product is not designed to be protected against electromagnetic wave.  
λ
P
nm  
Maximum sensitivity wavelength  
800  
Electrical and optical characteristics curves  
1000  
5
4
3
2
1
0
50  
25°C  
1
0°C  
25°C  
50°C  
75°C  
100  
10  
40  
30  
20  
d
200  
100  
0.8  
0.6  
0.4  
0.2  
0
40  
30  
20  
t
r
t
f
R
L
=5kΩ  
V
V
CE=30V  
CE=20V  
t
r
50  
VCE=10V  
t
f
RL  
=2kΩ  
t
f
1
t
r
RL  
=1kΩ  
20  
10  
10  
0
10  
0
0.1  
0.2 0.4 0.6 0.8 1.0 1.2 1.4 1.6 1.8  
FORWARD VOLTAGE : V (V)  
10 20  
50 100 200  
500 1000 2000  
A)  
0
1
2
3
4
5
25  
0
25  
50  
75  
100  
0
10  
20  
30  
40  
50  
20  
0
20  
40  
60  
80  
100  
F
FORWARD CURRENT : I  
F
(mA)  
AMBIENT TEMPERATURE : Ta (°C)  
COLLECTOR CURRENT : IC (µ  
AMBIENT TEMPERATURE : Ta (°C)  
DISTANCE : d (mm)  
Fig.8 Response time vs.  
collector current  
Fig.9 Dark current vs. ambient  
temperature  
Fig.1 Relative output vs. distance ( )  
Fig.2 Forward current falloff  
Fig.3 Forward current vs. forward voltage  
Fig.7 Collector current vs. forward current  
3.0  
160  
140  
120  
100  
80  
Input  
VCC  
1
0.8  
0.6  
0.4  
0.2  
0
100  
80  
60  
40  
20  
0
I
F
=25mA  
2.0  
1.0  
0
PD  
PC  
Input  
Output  
RL  
20mA  
90%  
10%  
15mA  
10mA  
60  
Output  
td  
40  
tr  
tf  
5mA  
td : Delay time  
20  
0
Rise time (time for output current to rise from  
10% to 90% of peak current)  
tr :  
0
0.5  
1
1.5  
2
2.5  
3
40 20  
0
20 40 60 80 100  
0
2
4
6
8
10  
V)  
20  
0
20  
40  
60  
80  
100  
tf :  
Fall time (time for output current to fall from 90%  
to 10% of peak current)  
AMBIENT TEMPERATURE : Ta (°C)  
COLLECTOR-EMITTER VOLTAGE : VCE  
(
AMBIENT TEMPERATURE : Ta (°C)  
DISTANCE : d (mm)  
Fig.5 Power dissipation / collector power  
dissipation vs. ambient temperature  
Fig.6 Relative output vs. ambient  
temperature  
Fig.10 Output characteristics  
Fig.4 Relative output vs. distance (  
)
Fig.11 Response time measurement circuit  

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