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PC810

型号:

PC810

描述:

高速高负荷下耐光电耦合器[ High Speed Under High Load Resistance Photocoupler ]

品牌:

SHARP[ SHARP ELECTRIONIC COMPONENTS ]

页数:

4 页

PDF大小:

69 K

PC810  
High Speed Under High Load  
Resistance Photocoupler  
PC810  
(
)
(
)
(
)
Lead forming type I type and taping reel type P type are also available. PC810I/PC810P  
( )  
Unit : mm  
Features  
Outline Dimensions  
1. High speed response under high resistance  
load  
2.54± 0.25  
Internal connection  
diagram  
4
3
2
4
3
(
toff : MAX. 1ms at IF = 1mA, VCC = 5V,  
)
R L = 110k  
CTR  
rank mark  
2. High current transfer ratio under low  
input current  
Anode mark  
(
)
CTR : MIN. 60% at IF = 1mA, VCE = 0.4V  
1
2
1
0.9± 0.2  
1.2± 0.3  
3. High isolation voltage between input and  
output  
7.62± 0.3  
(
)
Viso : 5 000V rms  
4.58  
4. Compact dual-in-line package  
5. Recognized by UL, file No. E64380  
Applications  
1. Solid state relays  
0.5± 0.1  
θ
θ
2. Motor-control equipment  
3. Signal transmission between circuits of  
different potentials and impedances  
0.26  
θ = 0 to 13 ˚  
1
2
Anode  
3
4
Emitter  
Collector  
Cathode  
(
)
Absolute Maximum Ratings  
Ta = 25˚C  
Parameter  
Symbol  
IF  
Rating  
Unit  
mA  
A
Forward current  
*1Peak forward current  
50  
IFM  
1
Input  
Reverse voltage  
VR  
6
V
Power dissipation  
P
70  
mW  
V
Collector-emitter voltage  
V CEO  
V ECO  
IC  
35  
Emitter-collector voltage  
6
50  
V
Output  
Collector current  
mA  
mW  
mW  
V rms  
˚C  
Collector power dissipation  
Total power dissipation  
*2Isolation voltage  
PC  
150  
P tot  
V iso  
T opr  
T stg  
T sol  
200  
5 000  
Operating temperature  
- 30 to + 100  
- 55 to + 125  
260  
Storage temperature  
*3Soldering temperature  
˚C  
˚C  
*1 Pulse width<=100µs, Duty ratio : 0.001  
*2 40 to 60% RH, AC for 1 minute  
*3 For 10 seconds  
In the absence of confirmation by device specification sheets, SHARP takes no responsibility for any defects that occur in equipment using any of SHARP's devices, shown in catalogs,  
data books, etc. Contact SHARP in order to obtain the latest version of the device specification sheets before using any SHARP's device. ”  
PC810  
(
)
Ta= 25˚C  
Electro-optical Characteristics  
Parameter  
Symbol  
VF  
Conditions  
MIN.  
TYP.  
1.2  
-
MAX.  
1.4  
3.0  
10  
Unit  
V
Forward voltage  
IF = 20mA  
-
Peak forward voltage  
V FM IFM = 0.5A  
-
V
Input  
Reverse current  
IR  
Ct  
VR = 4V  
-
-
µ A  
pF  
A
Terminal capacitance  
V= 0, f= 1kHz  
-
30  
-
250  
10 - 7  
200  
0.2  
-
Output  
Collector dark current  
*5Current transfer ratio  
Collector-emitter saturation voltage  
Isolation resistance  
ICEO  
VCE = 20V, I F = 0  
-
CTR IF = 1mA, VCE = 0.4V  
V CE IF = 20mA, I C = 1mA  
RISO DC500V, 40 to 60% RH  
60  
-
%
(
)
-
0.1  
1011  
0.6  
60  
10  
10  
0.5  
V
sat  
5 x 1010  
Transfer  
charac-  
teristics  
Floating capacitance  
Cut-off frequency  
Cf  
fc  
V= 0, f= 1MHz  
-
6
-
1.0  
-
pF  
kHz  
µ s  
µ s  
ms  
VCE = 5V, I C = 2mA, R L = 1k , - 3dB  
Rise time  
Fall time  
tr  
50  
*5  
Response time  
*5Turn-off time  
VCE = 2V, I C = 2mA, R L = 1k  
VCC = 5V, I F = 1mA, R L = 110k  
tf  
-
50  
toff  
-
1.0  
*5 Classification table of current transfer ratio and response time is shown below  
Fig. 1 Forward Current vs.  
(
)
(
)
(
)
tr µ s  
tf µ s  
toff µ s  
Model Rank  
(
)
%
CTR  
Ambient Temperature  
60  
No.  
mark  
TYP. MAX. TYP. MAX. TYP. MAX.  
PC810A  
PC810B  
A
60 to 120  
100 to 200  
4
15  
3
15 350 500  
B
10 50 10 50 500 1 000  
50  
40  
30  
20  
A or B, or  
no marking  
PC810  
60 to 200  
-
50  
-
50  
-
1 000  
VCE = 2V  
IC = 2mA  
RL = 1kΩ  
Ta = 25˚C  
IF = 1mA  
VCC = 5V  
RL = 110k Ω  
Ta = 25˚C  
IF = 1mA  
VCE = 0.4V  
Ta = 25˚C  
Measurement  
conditions  
10  
0
- 30  
0
25  
50  
75  
100  
125  
(
)
Ambient temperature T a ˚C  
Fig. 2 Collector Power Dissipation vs.  
Fig. 3 Paek Foward Current vs. Duty Ratio  
Ambient Temperature  
200  
10 000  
Pulse width <=100 µs  
5 000  
Ta = 25˚C  
2 000  
1 000  
150  
500  
200  
100  
100  
50  
50  
20  
10  
5
0
- 30  
- 3  
- 2  
- 1  
2
2
2
5
5
5
5
10  
10  
10  
1
0
25  
50  
75  
100  
125  
(
)
Ambient temperature T a ˚C  
Duty ratio  
PC810  
Fig. 4 Forward Current vs.  
Forward Voltage  
Fig. 5 Current Transfer Ratio vs.  
Forward Current  
240  
500  
T
a = 75˚C  
50˚C  
Ta = 25˚C  
220  
200  
180  
200  
100  
25˚C  
0˚C  
VCE = 5V  
160  
- 25˚C  
50  
140  
120  
100  
80  
20  
10  
5
0.4V  
60  
2
1
40  
20  
0
0.2  
0.5  
Forward current I  
0.1  
1
2
5
10  
20  
50  
0
0.5  
1.0  
1.5  
2.0  
2.5  
3.0  
3.5  
(
)
mA  
F
(
)
V
Forward voltage V F  
Fig. 6 Collector Current vs.  
Collector-emitter Voltage  
Fig. 7 Relative Current Transfer Ratio vs.  
Ambient Temperature  
150  
IF = 1mA  
VCE = 0.4V  
8
Ta = 25˚C  
IF = 3mA  
7
6
5
4
3
2
100  
2mA  
50  
0
1mA  
1
0
0.5mA  
- 30  
0
20  
40  
60  
80  
100  
0
1
2
3
4
5
6
7
8
(
9
10  
(
)
Ambient temperature T a ˚C  
)
V
Collector-emitter voltage VCE  
Fig. 8 Collector-emitter Saturation Voltage  
Fig. 9 Collector Dark Current vs.  
Ambient Temperature  
vs. Ambient Temperature  
- 6  
10  
0.16  
V
CE = 20V  
IF = 20mA  
0.14  
0.12  
0.10  
0.08  
0.06  
0.04  
I
C = 1mA  
- 7  
- 8  
10  
10  
10  
- 9  
- 10  
- 11  
- 12  
- 13  
10  
10  
10  
10  
0.02  
0
- 30  
0
20  
40  
60  
80 100  
- 30  
0
20  
40  
60  
80  
100  
(
)
Ambient temperature T a ˚C  
(
)
Ambient temperature T a ˚C  
PC810  
Fig.10 Response Time vs. Load Resistance  
Fig.11 Turn-off Time vs. Load Resistance  
50  
2 400  
IF = 1mA  
Vcc = 5V  
Ta = 25˚C  
VCE = 2V  
C = 2mA  
a = 25˚C  
I
T
2 000  
20  
10  
1 600  
1 200  
800  
t f  
tr  
5
td  
2
1
ts  
400  
0
0.5  
0.01 0.02  
0.05 0.1 0.2  
0.5  
1
2
5
10  
10  
20  
50  
100  
200  
500 1 000  
(
)
Load resistance R L k Ω  
(
)
Load resistance R L k Ω  
Fig.12 Turn-off Time vs.  
Fig.13 Frequency Response  
Ambient Temperature  
800  
VCE = 5V  
C = 2mA  
IF = 1mA  
VCC = 5V  
I
700  
600  
500  
400  
300  
200  
100  
0
R
L = 110k Ω  
T
a = 25˚C  
0
- 5  
- 10  
100 Ω  
RL = 10k Ω  
1k Ω  
- 15  
- 20  
0.5  
1
2
5
10  
20  
50 100 200 500  
- 30  
0
20  
40  
60  
80 100 120  
(
)
Ambient temperature T a ˚C  
(
)
Frequency f kHz  
Fig.14 Collector-emitter Saturation Voltage  
Test Circuit for Response Time  
vs. Forward Current  
Input  
6
VCC  
I
C = 0.5mA  
1.0mA  
T
a = 25˚C  
Output  
5
4
3
2
1
0
Output  
RL  
RD  
Input  
10%  
2.0mA  
3.0mA  
90%  
td  
ts  
tr  
5.0mA  
7.0mA  
tf  
Test Circuit for Frepuency Response  
VCC  
RL  
RD  
Output  
0
2
4
6
8
10  
12  
14  
16  
18  
20  
(
)
Forward current I F mA  
Please refer to the chapter “Precautions for Use ”  
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