ACPL-M483 AVAGO | Alldatasheet
Document overview
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Technical content
Features
Inverted output type (totem pole output) Truth Table Guaranteed: Vcc from 4.5 V to 30 V Performance Specifi ed for Common IPM Applications Over Industrial Temperature Range. Short Maximum Propagation Delays Minimized Pulse Width Distortion (PWD) Very High Common Mode Rejection (CMR) Hysteresis Available in SO-5 (ACPL-M483) and Stretched SO-6 package (ACPCL-P483/W483). Package Clearance/Creepage at 8 mm (ACPL-W483) Safety Approval: – UL Recognized with 5000 V rms (ACPL-W483) for 1 minute per UL1577. – CSA Approved. – IEC/EN/DIN EN 60747-5-5 Approved with V IORM =
567 Vpeak for ACPL-M483 and V IORM = 891 V peak for
ACPL-P483 and VIORM = 1140 V peak for ACPL-W483, under option 060. Specifi cations Wide operating temperature range: -40°C to 105°C. Maximum propagation delay tPHL/tPLH = 120/120 ns Maximum Pulse Width Distortion (PWD) = 50 ns. Propagation Delay Diff erence Min/Max = –100/100 ns Wide Operating VCC Range: 4.5 to 30 Volts 30 kV/s minimum common mode rejection (CMR) at VCM = 1000 V. Ground VCCAnode Cathode VO
43 SHIELD
N.C. Cathode VO ACPL-P483 & ACPL-W483
Ordering Information
ACPL-M483/P483/W483 is UL recognized with 3750/3750/5000 Vrms/1 minute rating per UL 1577 respectively. Part number Option Package Surface Mount Tape & Reel IEC/EN/DIN EN 60747-5-5 QuantityRoHS Compliant ACPL-M483 -000E SO-5 X 100 per tube -500E X X 1500 per reel -060E X X 100 per tube -560E X X X 1500 per reel ACPL-P483 ACPL-W483 -000E Stretched SO-6 X 100 per tube -500E X X 1000 per reel -060E X X 100 per tube -560E X X X 1000 per reel To order, choose a part number from the part number column and combine with the desired option from the option column to form an order entry. Example 1: ACPL-P483-560E to order product of Stretched SO-6 Surface Mount package in Tape and Reel packaging with IEC/EN/ DIN EN 60747-5-5 Safety Approval in RoHS compliant. Example 2: ACPL-P483-000E to order product of Stretched SO-6 Surface Mount package in Tube packaging and RoHS compliant. Example 3: ACPL-M483-000E to order product of SO-5 Surface Mount package in Tube packaging and RoHS compliant. Option datasheets are available. Contact your Avago sales representative or authorized distributor for information.
7.0 ± 0.2 (0.276 ± 0.008) 2.5 ± 0.1 (0.098 ± 0.004) 0.102 ± 0.102 (0.004 ± 0.004) 4.4 ± 0.1 (0.173 ± 0.004) 1.27 (0.050)BSC 0.15 ± 0.025 (0.006 ± 0.001) 0.71 (0.028) MIN 0.4 ± 0.05 (0.016 ± 0.002) 3.6 ± 0.1* (0.142 ± 0.004) Dimensions in millimeters (inches). * Maximum Mold flash on each side is 0.15 mm (0.006). Note: Foating Lead Protrusion is 0.15 mm (6 mils) max. TYPE NUMBER (LAST 3 DIGITS) DATE CODE 7° MAX. MAX. LEAD COPLANARITY = 0.102 (0.004) Land Pattern Recommendation 8.27 (0.325) 2.0 (0.080) 1.3 (0.05) 0.64 (0.025) 4.4 (0.17) 2.5 (0.10)
ACPL-P483 Stretched SO-6 Package, 7 mm clearance ACPL-W483 Stretched SO-6 Package, 8 mm clearance 45° 5° NOM. 0.381 ±0.127 (0.015 ±0.005) 1.27 (0.050) BSG 4.580 + 0.254 – 0 3.180 ±0.127 (0.125 ±0.005) 1.590 ±0.127 (0.063 ±0.005) 0.254 ±0.050 (0.010 ±0.002) 9.7 ±0.250 (0.382 ±0.010) Floating Lead Protusions max. 0.25 (0.01) Dimensions in Millimeters (Inches) Lead Coplanarity = 0.1 mm (0.004 Inches) 0.180 + 0.010 – 0.000() 1 ±0.250 (0.040 ±0.010) 0.20 ±0.10 (0.008 ±0.004) 7.62 (0.300) 6.81 (0.268) 0.45 (0.018) 10.7 (0.421) 1.27 (0.05) 0.64 (0.025) 2.16 (0.085) Land Pattern Recommendation 45°7° 0.381 ±0.127 (0.015 ±0.005) 0.20 ±0.10 (0.008 ±0.004) Floating Lead Protusions max. 0.25 (0.01) Dimensions in Millimeters (Inches) Lead Coplanarity = 0.1 mm (0.004 Inches) 4.580 + 0.254 – 0 0.180 + 0.010 0.000() 6.807 + 0.127 0.268 + 0.005 0.000() 1.27 (0.050) BSG 35° NOM. 0.750 ±0.250 (0.0295 ±0.010) 11.500 ±0.25 (0.453 ±0.010) 0.254 ±0.050 (0.010 ±0.002) 1.590 ±0.127 (0.125 ±0.005) 0.45 (0.018) 7.62 (0.300) 12.65 (0.5) 1.27 (0.05) 0.64 (0.025) 1.905 (0.075) Land Pattern Recommendation
Recommended refl ow condition as per JEDEC Standard, J-STD-020 (latest revision). Non-Halide Flux should be used. Approval under CSA Component Acceptance Notice #5, File CA 88324. **Table 1. IEC/EN/DIN EN 60747-5-5 Insulation Characteristics* (ACPL-M483/P483/W483 Option 060)** (IEC/EN/DIN EN 60747-5-2) for a detailed description of Method a and Method b partial discharge test profi les.
Table 2. Insulation and Safety Related Specifi cations Table 3. Absolute Maximum Ratings Solder Refl ow Temperature Profi le See Refl ow Thermal Profi le. Table 4. Recommended Operating Conditions
- Truth Table guaranteed: 4.5 V to 30 V
Table 5. Electrical Specifi cations 0.8 V, unless otherwise specifi ed. All typical values at TA = 25°C.
1.85 V I F = 4 mA
Table 6. Switching Specifi cations to 0.8 V, unless otherwise specifi ed. All typicals at TA = 25° C. Table 7. Package Characteristics voltage rating. For the continuous voltage rating, refer to the IEC/EN/DIN EN 60747-5-5 Insulation Characteristics Table (if applicable). Figures 10a and b show typical output waveforms during Power-up and Power-down processes.
- Derate total package power dissipation, PT, linearly above 70°C free-air temperature at a rate of 4.5mW/°C (ACPL-P483/W483) and linearly above
85°C free-air temperature at a rate of 0.75 mW/°C (ACPL-M483).
- Detector requires a Vcc of 4.5 V or higher for stable operation as output might be unstable if Vcc is lower than 4.5 V. Be s ure to check the power
ON/OFF operation other than the supply current.
- Duration of output short circuit time should not exceed 500 s.
- Input capacitance is measured between pin 1 and pin 3.
- Device considered a two-terminal device: pins 1, 2 and 3 shorted together and pins 4, 5 and 6 shorted together.
edge of the output pulse. Peaking capacitor, C1 = 120 pF must be connected as shown in Figure 5.
- CM H is the maximum slew rate of the common mode voltage that can be sustained with the output voltage in the logic high state, V O > 2.0 V.
Equal value split resistors (Rin/2) must be used at both ends of the LED.
- In accordance with UL 1577, each optocoupler is proof tested by applying an insulation test voltage 4500 VRMS for one second (leakage detection
60747-5-5 Insulation Characteristics Table, if applicable.
- Pulse Width Distortion (PWD) is defi ned as |tPHL - tPLH | for any given device.
- The diff erence of tPLH and tPHL between any two devices under the same test condition.
- Use of a 0.1 F bypass capacitor connected between pins Vcc and Ground is recommended.
Figure 1. Typical Logic Low Output Voltage vs. Temperature Figure 2. Typical Logic High Output Voltage vs. Temperature Figure 3. Typical Output Voltage vs. Forward Input Current Figure 4. Typical Input Diode Forward Characteristic Figure 5. Circuit for tPLH, tPHL, tr, tf
Figure 6. Typical Propagation Delays vs. Temperature Figure 7. Typical Logic High Output Voltage vs. Supply Voltage Figure 8. Typical Propagation Delay vs. Supply Voltage Figure 9. Test Circuit for Common Mode Transient Immunity and Typical Waveforms
For product information and a complete list of distributors, please go to our web site: www.avagotech.com Avago, Avago Technologies, and the A logo are trademarks of Avago Technologies in the United States and other countries. Data subject to change. Copyright © 2012–2016 Avago Technologies. All rights reserved. AV02-3216EN - September 9, 2016 Thermal Model for ACPL-P483/W483 Defi nitions R11: Junction to Ambient Thermal Resistance of LED due to heating of LED R12: Junction to Ambient Thermal Resistance of LED due to heating of Detector (Output IC) R21: Junction to Ambient Thermal Resistance of Detector (Output IC) due to heating of LED. R22: Junction to Ambient Thermal Resistance of Detector (Output IC) due to heating of Detector (Output IC). P1: Power dissipation of LED (W). P2: Power dissipation of Detector/Output IC (W). T1: Junction temperature of LED (˚C). T2: Junction temperature of Detector (˚C). Ta: Ambient temperature. ΔT1: Temperature diff erence between LED junction and ambient (˚C). ΔT2: Temperature deference between Detector junction and ambient. Ambient Temperature: Junction to Ambient Thermal Re- sistances were measured approximately 1.25cm above optocoupler at ~23˚C in still air
Description
This thermal model assumes that an 6-pin single-channel plastic package optocoupler is soldered into a 7.62 cm x 7.62 cm printed circuit board (PCB). The temperature at the LED and Detector junctions of the optocoupler can be calculated using the equations below. T Jedec Specifi cations R 11 R12, R21 R22 low K board 167 64, 81 89 high K board 117 31, 39 54 Notes: 1. Maximum junction temperature for above parts: 125°C. Thermal Model for ACPL-M483 Defi nitions R11: Junction to Ambient Thermal Resistance of LED due to heating of LED R12: Junction to Ambient Thermal Resistance of LED due to heating of Detector (Output IC) R21: Junction to Ambient Thermal Resistance of Detector (Output IC) due to heating of LED. R22: Junction to Ambient Thermal Resistance of Detector (Output IC) due to heating of Detector (Output IC). P1: Power dissipation of LED (W). P2: Power dissipation of Detector/Output IC (W). T1: Junction temperature of LED (˚C). T2: Junction temperature of Detector (˚C). Ta: Ambient temperature. ΔT1: Temperature diff erence between LED junction and ambient (˚C). ΔT2: Temperature deference between Detector junction and ambient. Ambient Temperature: Junction to Ambient Thermal Re- sistances were measured approximately 1.25cm above optocoupler at ~23˚C in still air This thermal model assumes that an 5-pin single-channel plastic package optocoupler is soldered into a 7.62 cm x 7.62 cm printed circuit board (PCB). The temperature at the LED and Detector junctions of the optocoupler can be calculated using the equations below. T Jedec Specifi cations R 11 R12, R21 R22 low K board 191 77, 91 99 high K board 126 26, 35 51 Notes: 1. Maximum junction temperature for above parts: 125°C.