MCA230 [INFINEON]

PHOTODARLINGTON OPTOCOUPLER; 光电复合光耦
MCA230
型号: MCA230
厂家: Infineon    Infineon
描述:

PHOTODARLINGTON OPTOCOUPLER
光电复合光耦

光电
文件: 总2页 (文件大小:48K)
中文:  中文翻译
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MCA230/231/255  
PHOTODARLINGTON  
OPTOCOUPLER  
FEATURES  
• CTR Minimum  
Dimensions in inches (mm)  
Pin One ID.  
MCA230/255, 100%  
MCA231, 200%  
2
1
6
3
1
2
3
6
5
4
Anode  
Cathode  
NC  
Base  
• Isolation Test Voltage, 5300 VAC  
• Coupling Capacitance, 0.5 pF  
• Fast Rise Time, 10 µs  
• Fast Fall Time, 35 µs  
• Underwriters Lab File #E52744  
.248 (6.30)  
.256 (6.50)  
RMS  
Collector  
Emitter  
4
5
.335 (8.50)  
.343 (8.70)  
• VDE #0884 Available with Option 1  
.300 (7.62)  
typ.  
.039  
(1.00)  
min.  
DESCRIPTION  
The MCA230/231/255 are industry standard opto-  
couplers, consisting of a Gallium Arsenide infrared  
LED and a silicon phototdarlington. These opto-  
couplers are constructed with a high voltage insu-  
lation, double molded packaging process which  
offers 7.5 KV withstand test capability.  
.130 (3.30)  
.150 (3.81)  
4°  
typ.  
18° typ.  
.110 (2.79)  
.150 (3.81)  
.020 (.051) min.  
.010 (.25)  
.014 (.35)  
.031 (0.80)  
.035 (0.90)  
.018 (0.45)  
.022 (0.55)  
.300 (7.62)  
.347 (8.82)  
.100 (2.54) typ.  
Maximum Ratings  
Emitter  
Reverse Voltage .................................................6 V  
Continuous Forward Current ........................ 60 mA  
Power Dissipation at 25°C..........................135 mW  
Derate Linearly from 25°C ......................1.8 mW/°C  
Detector  
Characteristics (T =25°C)  
A
Symbol Min. Typ. Max. Unit Condition  
Emitter  
Forward Voltage  
Reverse Current  
V
1.1  
50  
1.5  
10  
V
I =50 mA  
F
F
Collector-Emitter Breakdown Voltage  
I
µA  
pF  
V =3 V  
R
R
MCA230/231 .................................................30 V  
MCA255 ........................................................55 V  
Emitter-Collector Breakdown Voltage ................7 V  
Collector-Base Breakdown Voltage  
MCA230/231 .................................................30 V  
MCA255 ........................................................55 V  
Power Dissipation at 25°C..........................210 mW  
Derate Linearly from 25°C ......................2.8 mW/°C  
Junction  
C
V =3 V  
J
R
Capacitance  
Detector  
BV  
30  
30  
V
V
I =100 µA, I =0 mA  
CEO  
C
F
MCA230/231  
MCA255  
I =100 µA, I =0 mA  
C F  
BV  
7
V
I =10 µA, I =0 mA  
E F  
ECO  
BV  
30  
55  
V
V
I =10 µA, I =0 mA  
C
F
I =10 µA, I =0 mA  
C F  
CBO  
Package  
Total Package Dissipation at 25°C  
MCA230/231  
MCA55  
(LED plus Detector) ................................260 mW  
Derate Linearly from 25°C ......................3.5 mW/°C  
Storage Temperature .................. –55°C to +150°C  
Operating Temperature .............. –55°C to +100°C  
Lead Soldering Time at 260°C .................... 10 sec.  
I
100  
nA  
V =10 V, I =0 mA  
CE F  
CEO  
Package  
V
0.8  
1.0  
1.0  
1.0  
1.2  
V
V
V
V
V
I
=2 mA, I =16 mA  
CEsat  
CE F  
I =I =50 mA  
C
F
I =2 mA, I =1 mA  
C
F
Isolation Test Voltage ........................5300 VAC  
I =10 mA, I =5 mA  
RMS  
C
F
I =50 mA, I =10 mA  
Isolation Resistance  
C
F
12  
V =500 V, T =25°C..................................10  
DC Current  
Transfer Ratio  
MCA230/255  
MCA231  
IO  
A
11  
V =500 V, T =100°C................................ 10  
IO  
A
CTR  
CTR  
100  
200  
%
%
V =5 V, I =10 mA  
CE F  
V
=5 V, I =1 mA  
CE  
F
Capacitance  
Input to Output  
C
0.5  
pF  
IO  
Switching Times  
t
t
10  
35  
µs  
µs  
R =100 Ω  
L
on  
off  
V
=10 V  
CE  
5–1  
Figure 1. Forward voltage versus forward current  
Figure 5. Non-saturated and saturated HFE versus base current  
1.4  
10000  
Ta = 25°C  
1.3  
1.2  
1.1  
1.0  
Ta = -55°C  
Ta = 25°C  
Vce = 5 V  
8000  
6000  
4000  
0.9  
0.8  
0.7  
Ta = 85°C  
Vce = 1 V  
2000  
0
.01  
.1  
1
10  
100  
.1  
1
10  
100  
IF - Forward Current - mA  
Ib - Base Current - µA  
Figure 2. Normalized non-saturated and saturated  
Figure 6. Low to high propagation delay versus  
collector load resistance and LED current  
CTRce at T = 25°C versus LED current  
A
1.2  
80  
Normalized to:  
Ta = 25°C, Vcc = 5V  
1KΩ  
Vce = 5 V  
IF = 10 mA  
Ta = 25 °C  
1.0  
0.8  
0.6  
0.4  
0.2  
0.0  
Vth = 1.5 V  
60  
Vce = 5 V  
220Ω  
40  
470Ω  
20  
Vce =1V  
100Ω  
0
.1  
1
10  
100  
1000  
0
5
10  
15  
20  
IF -LED Current - mA  
IF - LED Current - mA  
Figure 3. Normalized non-saturated and saturated  
collector-emitter current versus LED current  
Figure 7. High to low propagation delay versus  
collector load resistance and LED current  
20  
10  
Normalized to:  
Ta = 25°C  
Vce = 5 V  
1KΩ  
Ta = 25°C  
Vcc = 5 V  
Vth = 1.5 V  
IF = 10 mA  
Vce = 5 V  
15  
1
.1  
Vce = 1V  
10  
5
100Ω  
.01  
.001  
0
100  
.1  
1
10  
0
5
10  
15  
20  
IF - LED Current - mA  
IF - LED Current - mA  
Figure 4. Normalized collector-base photocurrent  
versus LED current  
Figure 8. Switching timing waveform and schematic  
I
F
10  
Normalized to:  
V
5 V  
CC=  
Ta = 25°C  
Vcb = 3.5 V  
IF = 10 mA  
1
.1  
F=10 KHz,  
DF=50%  
R
L
t
R
D
t
V
O
V
O
t
PLH  
.01  
.001  
I
V
TH  
=1.5 V  
F=10 mA  
t
t
t
S
F
PHL  
.1  
1
10  
100  
IF - LED Current - mA  
MCA230/231/255  
5–2  

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