TSOP58240RR [VISHAY]

Photo IC, LOGIC OUTPUT PHOTO DETECTOR, ROHS COMPLIANT, PLASTIC PACKAGE-3;
TSOP58240RR
型号: TSOP58240RR
厂家: VISHAY    VISHAY
描述:

Photo IC, LOGIC OUTPUT PHOTO DETECTOR, ROHS COMPLIANT, PLASTIC PACKAGE-3

远程控制 输出元件 光电
文件: 总8页 (文件大小:156K)
中文:  中文翻译
下载:  下载PDF数据表文档文件
TSOP582..  
Vishay Semiconductors  
IR Receiver Modules for Remote Control Systems  
Description  
The TSOP582.. - series are miniaturized receivers for  
infrared remote control systems. PIN diode and  
preamplifier are assembled on lead frame, the epoxy  
package is designed as IR filter.  
The demodulated output signal can directly be  
decoded by a microprocessor. TSOP582.. is the stan-  
dard IR remote control receiver series, supporting all  
major transmission codes.  
19026  
Features  
• Photo detector and preamplifier in one  
package  
Mechanical Data  
Pinning:  
1 = OUT, 2 = GND, 3 = VS  
• Build in filter for carrier frequency of IR  
e3  
signal  
Parts Table  
• Shielding against electrical field  
disturbance  
Part  
TSOP58230  
TSOP58233  
TSOP58236  
TSOP58237  
TSOP58238  
TSOP58240  
TSOP58256  
Carrier Frequency  
30 kHz  
• TTL and CMOS compatibility  
• Output active low  
• Low power consumption  
• Lead (Pb)-free component  
• Component in accordance to RoHS 2002/95/EC  
and WEEE 2002/96/EC  
33 kHz  
36 kHz  
36.7 kHz  
38 kHz  
40 kHz  
56 kHz  
Special Features  
• Improved immunity against ambient light  
• Suitable burst length 10 cycles/burst  
Block Diagram  
Application Circuit  
16842  
16833  
R1 = 100 Ω  
Transmitter  
TSOPxxxx  
3
with  
VS  
+VS  
C1  
=
VS  
TSALxxxx  
30 kΩ  
4.7 µF  
µC  
1
OUT  
OUT  
VO  
Band Demo-  
GND  
GND  
Input  
AGC  
dulator  
Pass  
2
R1 + C1 recommended to suppress power supply  
disturbances.  
PIN  
GND  
Control  
Circuit  
The output voltage should not be hold continuously a  
=
a voltage below VO 3.3 V by the external circuit.  
Document Number 81221  
Rev. 1.0, 16-Nov-05  
www.vishay.com  
1
TSOP582..  
Vishay Semiconductors  
Absolute Maximum Ratings  
Absolute Maximum Ratings  
Tamb = 25 °C, unless otherwise specified  
Parameter  
Test condition  
Symbol  
VS  
Value  
Unit  
V
Supply Voltage  
(Pin 3)  
(Pin 3)  
(Pin 1)  
(Pin 1)  
- 0.3 to + 6.0  
Supply Current  
IS  
VO  
5
mA  
V
Output Voltage  
- 0.3 to + (Vs + 0.3)  
Output Current  
IO  
10  
100  
mA  
°C  
Junction Temperature  
Storage Temperature Range  
Operating Temperature Range  
Power Consumption  
Soldering Temperature  
Tj  
Tstg  
Tamb  
Ptot  
Tsd  
- 25 to + 85  
- 25 to + 85  
50  
°C  
°C  
(Tamb 85 °C)  
mW  
°C  
t 10 s, 1 mm from case  
260  
Electrical and Optical Characteristics  
Tamb = 25 °C, unless otherwise specified  
Parameter  
Test condition  
VS = 5 V, Ev = 0  
Symbol  
Min  
0.8  
Typ.  
1.2  
1.5  
Max  
1.5  
Unit  
mA  
mA  
V
ISD  
ISH  
VS  
Supply Current (Pin 3)  
VS = 5 V, Ev = 40 klx, sunlight  
Supply Voltage  
4.5  
5.5  
Ev = 0, test signal see fig.1,  
Transmission Distance  
IR diode TSAL6200,  
IF = 400 mA  
d
35  
m
IOSL = 0.5 mA, Ee = 0.7 mW/m2,  
test signal see fig. 1  
VOSL  
Output Voltage Low (Pin 1)  
250  
0.5  
mV  
Pulse width tolerance:  
Minimum Irradiance  
(30 - 40 kHz)  
mW/m2  
mW/m2  
t
pi - 5/fo < tpo < tpi + 6/fo,  
Ee min  
0.35  
0.4  
test signal see fig.1  
Pulse width tolerance:  
t
pi - 5/fo < tpo < tpi + 6/fo,  
test signal see fig.1  
pi - 5/fo < tpo < tpi + 6/fo,  
Ee min  
Minimum Irradiance (56 kHz)  
0.6  
t
W/m2  
deg  
Ee max  
Maximum Irradiance  
Directivity  
30  
test signal see fig. 1  
Angle of half transmission  
distance  
ϕ1/2  
45  
www.vishay.com  
2
Document Number 81221  
Rev. 1.0, 16-Nov-05  
TSOP582..  
Vishay Semiconductors  
Typical Characteristics (Tamb = 25 °C unless otherwise specified)  
Optical Test Signal  
(IR diode TSAL6200, I = 0.4 A, 30 pulses, f = f , T = 10 ms)  
E
e
1.0  
0.9  
0.8  
0.7  
0.6  
0.5  
0.4  
0.3  
0.2  
0.1  
0.0  
F
0
Ton  
Toff  
t
t
pi  
*
T
* t w 10/fo is recommended for optimal function  
pi  
16110  
Output Signal  
V
V
O
= 950 nm,  
optical test signal, fig.3  
1 )  
2 )  
7/f < t < 15/f  
0
0
d
OH  
t –5/f < t < t +6/f  
pi  
0
po  
pi  
0
V
OL  
0.1  
1.0  
10.0 100.0 1000.0 10000.0  
2 )  
1 )  
t
t
po  
t
d
16909  
E – Irradiance (mW/m²)  
e
Figure 1. Output Function  
Figure 4. Output Pulse Diagram  
1.2  
1.0  
0.8  
0.6  
0.4  
0.2  
0.0  
1.0  
0.9  
0.8  
0.7  
0.6  
0.5  
0.4  
0.3  
0.2  
0.1  
0.0  
Output Pulse  
Input Burst Duration  
f = f 5 %  
0
= 950 nm,  
optical test signal, fig.1  
f ( 3dB ) = f /10  
0
0.7  
0.9  
1.1  
1.3  
0.1  
1.0  
10.0 100.0 1000.0 10000.0  
– Irradiance (mW/m²)  
16925  
f/f – Relative Frequency  
0
16908  
E
e
Figure 2. Pulse Length and Sensitivity in Dark Ambient  
Figure 5. Frequency Dependence of Responsivity  
Optical Test Signal  
4.0  
E
e
Correlation with ambient light sources:  
3.5  
2
10 W/m  
10 W/m  
1.4 klx(Std.illum.A,T= 2855 K)  
8.2 klx(Daylight, T= 5900 K)  
2
3.0  
2.5  
2.0  
1.5  
1.0  
0.5  
0.0  
t
600 ms  
600 ms  
T = 60 ms  
Ambient, = 950 nm  
94 8134  
Output Signal, ( see Fig.4 )  
V
O
V
OH  
V
OL  
0.01  
0.10  
1.00  
10.00  
100.00  
t
T
on  
T
off  
2
16911  
E – Ambient DC Irradiance (W/m )  
Figure 3. Output Function  
Figure 6. Sensitivity in Bright Ambient  
Document Number 81221  
Rev. 1.0, 16-Nov-05  
www.vishay.com  
3
TSOP582..  
Vishay Semiconductors  
1.2  
1.0  
0.8  
0.6  
0.4  
0.2  
0
2.0  
f = f  
o
1.5  
1.0  
0.5  
0.0  
f = 10 kHz  
f = 1 kHz  
f = 100 Hz  
750  
850  
950  
1050  
1150  
0.1  
1.0  
10.0  
100.0  
1000.0  
16912  
94 8408  
Wavelength (nm)  
V
sRMS  
– AC Voltage on DC Supply Voltage (mV)  
Figure 7. Sensitivity vs. Supply Voltage Disturbances  
Figure 10. Relative Spectral Sensitivity vs. Wavelength  
0°  
10°  
20°  
0.8  
0.7  
0.6  
0.5  
0.4  
0.3  
2
30°  
40°  
1.0  
0.9  
0.8  
50°  
60°  
0.2  
0.1  
0.0  
f = 38 kHz, E = 2 mW/m  
e
70°  
80°  
0.7  
0.6 0.4 0.2  
0
0.2  
0.4 0.6  
0
20  
40  
60  
80  
100 120  
d
- Relative Transmission Distance  
16913  
19258  
Burst Length ( number of cycles / burst )  
rel  
Figure 8. Max. Envelope Duty Cycle vs. Burstlength  
Figure 11. Horizontal Directivity ϕx  
0°  
10°  
20°  
0.6  
30°  
40°  
Sensitivity in dark ambient  
0.5  
0.4  
0.3  
0.2  
0.1  
0.0  
1.0  
0.9  
0.8  
50°  
60°  
70°  
80°  
0.7  
0.6 0.4 0.2  
0
0.2  
0.4 0.6  
–30 –15  
0
15 30 45 60 75 90  
d
- Relative Transmission Distance  
16918  
T
amb  
– Ambient Temperature (°C)  
19259  
rel  
Figure 9. Sensitivity vs. Ambient Temperature  
Figure 12. Vertical Directivity ϕy  
www.vishay.com  
4
Document Number 81221  
Rev. 1.0, 16-Nov-05  
TSOP582..  
Vishay Semiconductors  
Suitable Data Format  
The circuit of the TSOP582.. is designed in that way  
that unexpected output pulses due to noise or distur-  
bance signals are avoided. A bandpass filter, an inte-  
grator stage and an automatic gain control are used  
to suppress such disturbances.  
The distinguishing mark between data signal and dis-  
turbance signal are carrier frequency, burst length  
and duty cycle.  
IR Signal from fluorescent  
lamp with low modulation  
The data signal should fulfill the following conditions:  
• Carrier frequency should be close to center fre-  
quency of the bandpass (e.g. 38 kHz).  
• Burst length should be 10 cycles/burst or longer.  
0
5
10  
15  
20  
16920  
Time (ms)  
• After each burst which is between 10 cycles and 70  
cycles a gap time of at least 14 cycles is necessary.  
Figure 13. IR Signal from Fluorescent Lamp with low Modulation  
• For each burst which is longer than 1.8 ms a corre-  
sponding gap time is necessary at some point in the  
data stream. This gap time should be at least 4 times  
longer than the burst.  
IR Signal from fluorescent  
lamp with high modulation  
• Up to 800 short bursts per second can be received  
continuously.  
Some examples for suitable data format are: NEC  
Code (repetitive pulse), NEC Code (repetitive data),  
Toshiba Micom Format, Sharp Code, RC5 Code,  
RC6 Code, R-2000 Code, Sony Code.  
When a disturbance signal is applied to the  
TSOP582.. it can still receive the data signal. How-  
ever the sensitivity is reduced to such a level that no  
unexpected pulses will occur.  
0
5
10  
15  
20  
16921  
Time (ms)  
Some examples for such disturbance signals which  
are suppressed by the TSOP582.. are:  
Figure 14. IR Signal from Fluorescent Lamp with high Modulation  
• DC light (e.g. from tungsten bulb or sunlight)  
• Continuous signal at 38 kHz or at any other fre-  
quency  
• Signals from fluorescent lamps with electronic bal-  
last with high or low modulation  
(see Figure 13 or Figure 14).  
Document Number 81221  
Rev. 1.0, 16-Nov-05  
www.vishay.com  
5
TSOP582..  
Vishay Semiconductors  
Package Dimensions in mm  
19009  
www.vishay.com  
6
Document Number 81221  
Rev. 1.0, 16-Nov-05  
TSOP582..  
Vishay Semiconductors  
Ozone Depleting Substances Policy Statement  
It is the policy of Vishay Semiconductor GmbH to  
1. Meet all present and future national and international statutory requirements.  
2. Regularly and continuously improve the performance of our products, processes, distribution and operating  
systems with respect to their impact on the health and safety of our employees and the public, as well as  
their impact on the environment.  
It is particular concern to control or eliminate releases of those substances into the atmosphere which are  
known as ozone depleting substances (ODSs).  
The Montreal Protocol (1987) and its London Amendments (1990) intend to severely restrict the use of ODSs  
and forbid their use within the next ten years. Various national and international initiatives are pressing for an  
earlier ban on these substances.  
Vishay Semiconductor GmbH has been able to use its policy of continuous improvements to eliminate the use  
of ODSs listed in the following documents.  
1. Annex A, B and list of transitional substances of the Montreal Protocol and the London Amendments  
respectively.  
2. Class I and II ozone depleting substances in the Clean Air Act Amendments of 1990 by the Environmental  
Protection Agency (EPA) in the USA.  
3. Council Decision 88/540/EEC and 91/690/EEC Annex A, B and C (transitional substances) respectively.  
Vishay Semiconductor GmbH can certify that our semiconductors are not manufactured with ozone depleting  
substances and do not contain such substances.  
We reserve the right to make changes to improve technical design  
and may do so without further notice.  
Parameters can vary in different applications. All operating parameters must be validated for each  
customer application by the customer. Should the buyer use Vishay Semiconductors products for any  
unintended or unauthorized application, the buyer shall indemnify Vishay Semiconductors against all  
claims, costs, damages, and expenses, arising out of, directly or indirectly, any claim of personal  
damage, injury or death associated with such unintended or unauthorized use.  
Vishay Semiconductor GmbH, P.O.B. 3535, D-74025 Heilbronn, Germany  
Document Number 81221  
Rev. 1.0, 16-Nov-05  
www.vishay.com  
7
Legal Disclaimer Notice  
Vishay  
Notice  
Specifications of the products displayed herein are subject to change without notice. Vishay Intertechnology, Inc.,  
or anyone on its behalf, assumes no responsibility or liability for any errors or inaccuracies.  
Information contained herein is intended to provide a product description only. No license, express or implied, by  
estoppel or otherwise, to any intellectual property rights is granted by this document. Except as provided in Vishay's  
terms and conditions of sale for such products, Vishay assumes no liability whatsoever, and disclaims any express  
or implied warranty, relating to sale and/or use of Vishay products including liability or warranties relating to fitness  
for a particular purpose, merchantability, or infringement of any patent, copyright, or other intellectual property right.  
The products shown herein are not designed for use in medical, life-saving, or life-sustaining applications.  
Customers using or selling these products for use in such applications do so at their own risk and agree to fully  
indemnify Vishay for any damages resulting from such improper use or sale.  
Document Number: 91000  
Revision: 08-Apr-05  
www.vishay.com  
1

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