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HCPL-070A 参数 Datasheet PDF下载

HCPL-070A图片预览
型号: HCPL-070A
PDF下载: 下载PDF文件 查看货源
内容描述: 极低的功耗高增益光电耦合器 [Very Low Power Consumption High Gain Optocouplers]
分类和应用: 光电输出元件
文件页数/大小: 16 页 / 301 K
品牌: AGILENT [ AGILENT TECHNOLOGIES, LTD. ]
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13  
Table 1. Typical HCPL-4701 Power Dissipation for 3 V and 5 V Applications  
VCC = 3.3 Vdc  
VCC = 5 Vdc  
Power Dissipation  
(µW)  
IF = 40 µA  
IF = 500 µA  
625  
IF = 40 µA  
IF = 500 µA  
625  
PLED  
PVcc  
50  
65  
20  
50  
100  
25  
330  
10  
500  
20  
[1]  
PO-C  
[2]  
PTOTAL  
135 µW  
965 µW  
175 µW  
1,145 µW  
Notes:  
1. RL of 11 kopen-collector (o-c) pull-up resistor was used for both 3.3 Vdc and 5 Vdc calculations.  
2. For typical total interface circuit power consumption in 3.3 Vdc application, add to PTOTAL approximately 80 µW for 40 µA  
(1,025 µW for 500 µA) LED current-limiting resistor, and 960 µW for the 11 kpull-up resistor power dissipations. Similarly, for 5  
Vdc applications, add to PTOTAL approximately 150 µW for 40 µA (1,875 µW for 500 µA) LED current-limiting resistor and 2,230  
µW for the 11 kpull-up resistor power dissipations.  
Propagation Delay  
Applications  
Battery-Operated Equipment  
supplied-power sensing. In  
particular, Integrated Services  
Digital Network (ISDN) applica-  
tions, as illustrated in Figure 10,  
can severely restrict the input  
power that an optocoupler inter-  
face circuit can use (approxi-  
mately 3 mW). Figure 10 shows  
three isolated signals that can be  
served by the small input LED  
current of the HCPL-47XX dual-  
and single-channel optocouplers.  
Very low, total power dissipation  
occurs with these series of  
When the HCPL-47XX optocoup-  
ler is operated under very low  
input and output current condi-  
tions, the propagation delay times  
will lengthen. When lower input  
drive current level is used to  
switch the high-efficiency AlGaAs  
LED, the slower the charge and  
discharge time will be for the  
LED. Correspondingly, the propa-  
gation delay times will become  
longer as a result. In addition, the  
split-Darlington (open-collector)  
output amplifier needs a larger,  
pull-up load resistance to ensure  
the output current is within a  
controllable range. Applications  
that are not sensitive to longer  
propagation delay times and that  
are easily served by this HCPL-  
47XX optocoupler, typically 65 µs  
or greater, are those of status  
monitoring of a telephone line,  
power line, battery condition of a  
portable unit, etc. For faster  
HCPL-47XX propagation delay  
times, approximately 30 µs, this  
optocoupler needs to operate at  
higher IF (500 µA) and Io  
Common applications for the  
HCPL-47XX optocoupler are  
within battery-operated, portable  
equipment, such as test or  
medical instruments, computer  
peripherals and accessories where  
energy conservation is required to  
maximize battery life. In these  
applications, the optocoupler  
would monitor the battery voltage  
and provide an isolated output to  
another electrical system to  
indicate battery status or the need  
to switch to a backup supply or  
begin a safe shutdown of the  
equipment via a communication  
port. In addition, the HCPL-47XX  
optocouplers are specified to  
operate with 3 Vdc CMOS logic  
family of devices to provide logic-  
signal isolation between similar or  
different logic circuit families.  
devices.  
Switched-Mode Power  
Supplies  
Within Switched-Mode Power  
Supplies (SMPS) the less power  
consumed the better. Isolation for  
monitoring line power, regulation  
status, for use within a feedback  
path between primary and  
secondary circuits or to external  
circuits are common applications  
for optocouplers. Low-power  
HCPL-47XX optocoupler can help  
keep higher energy conversion  
efficiency for the SMPS. The block  
diagram of Figure 11 shows where  
low-power isolation can be used.  
Telephone Line Interfaces  
Applications where the HCPL-  
47XX optocoupler would be best  
used are in telephone line inter-  
face circuitry for functions of ring  
detection, on-off hook detection,  
line polarity, line presence and  
(1 mA) levels.