PC902 SHARP | Alldatasheet
Document overview
- Manufacturer or author: Provided By ALLDATASHEET.COM(FREE DATASHEET DOWNLOAD SITE)
- PDF pages: 6
Technical content
- Capable of forming an integration circuit in conjunction with an external capacitor 3. High sensitivity 4. High isolation voltage between input and output 5. Standard dual-in-line package 1. Programmable controllers 2. Telephone sets 3. AC line monitors *1 Pulse width<=100µ s, Duty ratio : 0.001 1 minute *3 For 10 seconds (Ta= 25˚C )n Absolute Maximum Ratings PC902 θθ (IFHL : MAX. 2mA ) n Outline Dimensions ( Unit : mm) Parameter Symbol Rating Unit Input Forward current I F ±2 0 m A *1Peak forward current I FM ±1 A Power dissipation P 30 mW Output Supply voltage V CC 15 V Output voltage V O 15 V Output current I O 16 mA Power dissipation P O 150 mW Total power dissipation *2Isolation voltage P tot 170 mW V iso Operating temperature T opr - 25 to + 85 ˚C Storage temperature T stg - 55 to + 125 ˚C *3Soldering temperature T sol 260 ˚C data books, etc. Contact SHARP in order to obtain the latest version of the device specification sheets before using any SHARP's device.” “ 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, 6. Recognized by UL, file No. E64380 123 4 5678
1 N C
4 N C
6 GND
10k Ω 0.01µ F (ExternalC) AC Input Type OPIC Photocoupler 2. AC input iso (V
5 V AUX
*2 40 to 60% RH, AC for 5 000 An OPIC consists of a light-detecting element and signal- processing circuit integrated onto a single chip. * “ OPIC ” (Optical IC) is a trademark of the SHARP Corporation. : 5 000Vrms ) Primarys side mark (Sunken place) V rms θ = 0˚ to 13˚
7 V O
8 V CC
2 V IN1
3 V IN2
6.5± 0.5 1.2± 0.30.85± 0.3 9.22± 0.5 3.5± 0.53.0± 0.5 0.5TYP. 7.62± 0.3
Symbol Conditions MIN. TYP. MAX. Unit Input Forward voltage V F IF = ± 20mA - - 1.5 V IF = ± 0.1mA 0.55 0.95 - V Terminal capacitance C t V F - 30 250 pF Output Operating supply voltage V CC 4.5 - V Low level output voltage V OL IOL = 8.0mA, V CC = 5V, IF = ± 2mA - 0.1 0.4 V High level output voltage V OH V CC = 5V, IF = 0 3.5 - - V Low level supply current I CCL IF = ± 2mA, V CC = 5V - 1.7 4.0 mA High level supply current I CCH V CC = 5V, IF = 0 - 1.5 3.5 mA AUX source current I AUX1 Ta = 25˚C, IF = ± 2mA, V CC = 5V, V AUX = 1.3V -2 -3 -5 µ A AUX sink current I AUX2 Ta = 25˚C, IF = 0, VCC = 5V, V AUX = 1.3V 1.0 1.5 2.5 µ A AUX terminal voltage 1 V AUX1 Ta = 25˚C, IF = 0, VCC = 5V - - 0.2 V AUX terminal voltage 2 V AUX2 Ta = 25˚C, IF = ± 2mA, V CC =5 V 2.3 - 2.8 V “ High→ Low ” threshold AUX voltage V AUXHL Ta = 25˚C, IF = 0, VCC = 5V 2.05 - 2.55 V “ Low→ High ” threshold AUX voltage V AUXLH Ta = 25˚C, IF = 0, VCC = 5V 0.75 - 1.10 V Transfer charac- teristics “ High→ Low ” threshold input current 1 IFHL1 Ta = 25˚C, VCC = 5V, R L = 680Ω - 0.7 1.5 mA V CC = 5V, R L = 680Ω 0.1 - 2.0 mA “ High→ Low ” threshold input current 2 IFHL2 Ta = 25˚C, VCC = 5V, R L = 680Ω - - 0.7 - 1.5 mA V CC = 5V, R L = 680Ω - 0.1 - - 2.0 mA Isolation resistance R ISO 5x1 010 1011 - Ω Floating capacitance C f Ta = 25˚C, V = 0, f = 1MHz - 0.6 5 pF tPHL Ta = 25˚C IF = ± 2mA, V CC =5 V C AUX = 0.01µ F R L = 680Ω 4.5 7.0 10 ms 6.5 10.5 15 mstPLH - 0.05 0.5 µ sFall time t f - 0.1 0.5 µ sRise time t r *5Instantaneous common CM H Ta = 25˚C, IF = 0, VCM = 600V (peak ) V O (MIN. ) = 2V, RL = 680Ω , CAUX = 0.01µ F -- V / µ s *5PInstantaneous common “ Output : Low level ” CM L Ta = 25˚C, IF = ± 2mA, V CM V O (MAX. ) = 0.8V, RL = 680Ω , CAUX = 0.01µ F -- V / µ s *4Response time “ High→ Low ” propagation delay time “ Low→ High ” propagation delay time Parameter mode rejection voltage mode rejection voltage “ Output : High level ” = 600V (peak ) Ta = 25˚C, DC500V, 40 to 60% RH - 2 000 2 000 n Electro-optical Characteristics = 0, f = 1kHz (Ta= 0 to + 70˚C unless otherwise specified)
h 4 Test Circuit for Response Time 47Ω Amp. 10kΩ 0.01µ F 0.1µ F Voltage regulator 1.5V TT TT VIN tr= tf= 0.01µ s ZO = 50Ω 680Ω VO VIN VO tPHL tPLH 50% tPHL tPLH 50% VOH 90% 10% VOL tf tr Voltage regulator 0.01µ F 10kΩ Amp. B A Switch for infrared light emitting diode 600V GND GND When the switch for infrared light When the switch for infrared light IF + - VCM 680Ω VO CM H CM L VO (MIN.)= 2.0V VO (MAX.)= 0.8V VOL emitting diode sets to A, emitting diode sets to B, (Note) T>= 50ms h 5 Test Circuit for Instantaneous Common Mode Rejection Voltage
- 25 0 25 50 75 100 85 Ambient temperature T a (˚C) 25˚C 0˚C 100 200 500 50˚C - 25˚C T a = 75˚C Forward voltage VF (V ) Fig. 3 Forward Current vs. Forward Voltage 0.4 Relative threshold input current 0.6 0.8 1.6 0 25 50 100-2 5 7 5 1.4 1.2 1.0 Ambient Temperature Fig. 4 Relative Threshold Input Current vs. Ambient temperature Ta (˚C) Fig. 1 Forward Current vs. Ambient TemperatureForward current IF (mA ) Fig. 2 Power Dissipation vs. Ambient TemperaturePower dissipation PO , Ptot (mW ) Ambient temperature Ta (˚C) Forward Current IF (mA ) V CC =5 V IFHL1 =I FHL2 =1 T a = 25˚C P tot P O Amp. 10kΩ V Voltage regulatorForward current IF Test Circuit For Threshold Input Current vs. Ambient Temperature high to low. IFHL1 is a forward current flowing into pin 2 while IFHL2 is one flowing out of pin 2 . IFHL1 , IFHL2 represents forward current when output goes from -2 5
0.05 0.1 0.2 - 25 25 50 100 0.15 8mA 5mA Ambient Temperature Fig. 6 Low Level Output Voltage vs. Low level output voltage VOL (V ) Ambient temperature Ta (˚C) V CC =5 V 150 25˚C 85˚C ICCL ICCL ICCH ICCH ICCL ICCH Fig. 7 Supply Current vs. Supply Voltage Supply current ICC (mA ) Supply voltage VCC (V ) T a = - 25˚C -2 0 2 0 151050-5-1 0-1 5 AUX sink current AUX source current AUX source current Fig. 8 AUX Current vs. Forward Current AUX current IAUX ( µ A ) Forward current IF (mA ) -2 5 1007550250 = 1.3V Temperature Fig. 9 AUX Current vs. Ambient AUX current IAUX ( µ A ) Ambient Temperature Ta (˚C) V CC =5 V V AUX IF = 0mA AUX sink current IAUX2 0.01 0.02 0.05 0.1 1.0 2 5 10 100 5020 0.2 0.5 Low Level Output Current Fig. 5 Low Level Output Voltage vs. Low level output voltage VOL (V ) Low level output current IOL (mA ) Amp. 10kΩ Voltage regulator I IAUX + :Current flowed from 2 terminal - :Current flowed out to 2 terminal{ V CC =5 V T a = 25˚C IAUX2 IAUX1 IAUX1 ICC = 16mA V CC =5 V V AUX = 1.3V T a = 25˚C AUX source current IAUX1 IF = ± 2mA Test Circuit for AUX IF Forward current
-2 5 1007550250 Ambient Temperature Fig.10 Threshold AUX Voltage vs. V AUX HL , V AUX LH (V ) 0-2 5 1007550250 Ambient Temperature Fig.10 AUX Terminal Voltage vs. AUX terminal voltage VAUX (V ) V AUX1 IF = 0mA IF = ± 2mA V AUX2 - 15 0 10 20-2 0 1 5 -1 0 Forward Current tPLH tPHL tPLH tPHL Fig.12 Propagation Delay Time vs. Forward current IF (mA ) - 25 25 75 100 500 Ambient Temperature Fig.13 Propagation Delay Time vs. PHL , tPLH (ms ) Ambient temperature Ta (˚C) Ambient temperature Ta (˚C) V AUX LH V AUX HL PHL , tPLH (ms ) Ambient temperature Ta (˚C) T a = 25˚C V CC =5 V C AUX = 0.01µ F R L = 680Ω V CC = 5V, CAUX = 0.01µ F R L = 680Ω , IF = ± 2mA tPLH tPHL V CC =5 V V CC =5 V Propagation delay time t Propagation delay time t -5 5-2 2 Amp. 10kΩ Voltage regulator Pulse Generator n Precautions for Use andCC (2) Handle this product the same as with other integrated circuits against static electricity. GND near the device in order to stabilize power supply line. (3) As for other general cautions, please refer to the chapter “ Precautions for Use ” Test Circuit for Propagation Time CAUX 0.01 µ F CRT RL 680Ω 100Ω Frequency f<= 10Hz Duty50% CRT (1) It is recommended that a by-pass capacitor of more than 0.01µ F is added between V