MID400 ONSEMI | Alldatasheet

Document overview

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Technical content

Features

  • Direct Operation from any Line V oltage with the Use of an External Resistor
  • Externally Adjustable Time Delay
  • Externally Adjustable AC V oltage Sensing Level
  • Logic Level Compatibility
  • Safety and Regulatory Approvals: ♦ UL1577, 2,500 V ACRMS for 1 Minute ♦ DIN−EN/IEC60747−5−5, 630 V Peak Working Insulation V oltage

Applications

  • Monitoring of the AC/DC “Line−down” Condition
  • “Closed−loop” Interface between Electromechanical Elements such as Solenoids, Relay Contacts, Small Motors, and Microprocessors
  • Time Delay Isolation Switch MARKING DIAGRAM FUNCTIONAL SCHEMATIC MID400 = Specific Device Code V = DIN EN/IEC60747 −5−5 Option (only appears on component ordered with this option) XX = Two −Digit Year Code, e.g., “06” YY = Digit Work Week, Ranging from “01” to “53” T1 = Assembly Package Code See detailed ordering and shipping information on page 8 of this data sheet.

ORDERING INFORMATION

PDIP8 6.6x3.81, 2.54P CASE 646BW PDIP8 9.655x6.6, 2.54P CASE 646CQ PDIP8 GW CASE 709AC ON MID400 VXXYYT1 4 5 8V CC AUX GNDN/C N/C VO

www.onsemi.com SAFETY AND INSULATION RATINGS (As per DIN EN/IEC 60747−5−5, this optocoupler is suitable for “safe electrical insulation” only within the safety limit data. Compliance with the safety ratings shall be ensured by means of protective circuits.) Parameter Characteristics Installation Classifications per DIN VDE 0110/1.89 Table 1, For Rated Mains Voltage <150 VRMS I–IV <300 VRMS I–IV Climatic Classification 55/100/21 Pollution Degree (DIN VDE 0110/1.89) 2 Comparative Tracking Index 175 Symbol Parameter Value Unit VPR Input−to−Output Test Voltage, Method A, VIORM x 1.6 = VPR, Type and Sample Test with tm = 10 s, Partial Discharge < 5 pC

1008 Vpeak

Input−to−Output Test Voltage, Method B, VIORM x 1.875 = VPR, 100% Production Test with tm = 1 s, Partial Discharge < 5 pC

1182 Vpeak

VIORM Maximum Working Insulation Voltage 630 Vpeak VIOTM Highest Allowable Over−Voltage 6000 Vpeak External Creepage ≥7 mm External Clearance ≥7 mm DTI Distance Through Insulation (Insulation Thickness) ≥0.4 mm TS Case Temperature (Note 1) 150 °C IS,INPUT Input Current (Note 1) 60 mA PS,OUTPUT Output Power (Note 1) 150 mW RIO Insulation Resistance at TS, VIO = 500 V (Note 1) >109 /C0087 1. Safety limit values – maximum values allowed in the event of a failure. ABSOLUTE MAXIMUM RATINGS Symbol Parameter Value Unit TSTG Storage Temperature −55 to +125 °C TOPR Operating Temperature −40 to +85 °C TJ Junction Temperature −55 to +100 °C TSOL Lead Solder Temperature (Wave soldering only. See recommended reflow profile graph for SMD mounting) 260 for 10 seconds °C PD Total Device Power Dissipation @ TA = 25°C 115 mW Derate Above 70°C 4 mW/°C EMITTER RMS Current 25 mA DC Current ±30 mA PD(EMITTER) LED Power Dissipation @ TA = 25°C 45 mW Derate Above 70°C 2 mW/°C DETECTOR IOL Low Level Output Current 20 mA VOH High Level Output Voltage 7 V VCC Supply Voltage 7 V PD(DETECTOR) Detector Power Dissipation @ TA = 25°C 70 mW Derate Above 70°C 2 mW/°C Stresses exceeding those listed in the Maximum Ratings table may damage the device. If any of these limits are exceeded, device functionality should not be assumed, damage may occur and reliability may be affected.

www.onsemi.com ELECTRICAL CHARACTERISTICS (0°C to 70°C Free Air Temperature unless otherwise specified) Symbol Parameter Test Conditions Min Typ Max Unit INDIVIDUAL COMPONENT CHARACTERISTICS EMITTER VF Input Forward Voltage IIN(DC) = ±30 mA − − 1.5 V DETECTOR ICCL Logic Low Output Supply Current IIN(RMS) = 4.0 mA, VO = Open, VCC = 5.5V,

24 V ≤ VIN(ON_RMS) ≤ 240 V

− − 3.0 mA ICCH Logic High Output Supply Current IIN(RMS) = 0.15 mA, VCC = 5.5 V, VIN(OFF_RMS) ≥ 5.5 V − − 0.8 mA TRANSFER CHARACTERISTICS DC CHARACTERISTICS VOL Logic Low Output Current IIN = IIN(ON_RMS), IO = 16 mA, VCC = 4.5 V, − 0.18 0.40 V IOH Logic High Output Current IIN(RMS) = 0.15 mA, VO = VCC = 5.5 V, VIN(OFF_RMS) ≥ 5.5 V − 0.02 100 /C0109A VIN(ON_RMS) On−state RMS Input Voltage IO = 16 mA, VO = 0.4 V, VCC = 4.5 V, RIN = 22 k/C0087 90 − − V VIN(OFF_RMS) Off−state RMS Input Voltage IO ≤ 100 /C0109A, VO = VCC = 5.5 V, RIN = 22 k/C0087 − − 5.5 V IIN(ON_RMS) On−state RMS Input Current IO = 16 mA, VO = 0.4 V, VCC = 4.5 V, 4.0 − − mA IIN(OFF_RMS) Off−state RMS Input Current IO ≤ 100 /C0109A, VO = VCC = 5.5 V, VIN(OFF_RMS) ≥ 5.5 V − − 0.15 mA AC CHARACTERISTICS tON Turn−On Time IIN(RMS) = 4.0 mA, IO = 16 mA, VCC = 4.5 V, RIN = 22 k/C0087 (See figure 3) − 1.0 − ms tOFF Turn−Off Time − 1.0 − ms ISOLATION CHARACTERISTICS VISO Steady State Isolation Voltage Relative Humidity ≤ 50%, II−O ≤ 10 /C0109A, 1 Minute, 60 Hz 2,500 − − VACRMS CISO Isolation Capacitance f = 1 MHz − − 2 pF RISO Isolation Resistance VI−O = 500 VDC 1011 − − /C0087 Product parametric performance is indicated in the Electrical Characteristics for the listed test conditions, unless otherwise noted. Product performance may not be indicated by the Electrical Characteristics if operated under different conditions.

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APPLICATION INFORMATION

The input of the MID400 consists of two back −to−back LED diodes which will accept and convert alternating currents into light energy. An integrated photo diode−detector amplifier forms the output network. Optical coupling between input and output provides 2500 V ACRMS voltage isolation. A very high current transfer ratio (defined as the ratio of the DC output current and the DC input current) is achieved through the use of high gain amplifier. The detector amplifier circuitry operates from a 5 V DC supply and drives an open collector transistor output. The switching times are intentionally designed to be slow in order to enable the MID400, when used as an AC line monitor, to respond only to changes in input voltage exceeding many milliseconds. The short period of time during zero−crossing which occurs once every half cycle of the power line is completely ignored. To operate the MID400, always add a resistor, R IN, in series with the input (as shown in figure 2) to limit the current to the required value. The value of the resistor can be determined by the following equation: RIN /C0043 VIN /C0042VF IIN (eq. 1) Where, VIN (RMS) is the input voltage. VF is the forward voltage drop across the LED. IIN (RMS) is the desired input current required to sustain a logic “O” on the output. PIN DESCRIPTION Pin Number Pin Name Description 1, 3 VIN1, VIN2 Input terminals 2, 4 N/C No Connect 8 VCC Supply voltage, output circuit. 7 AUX Auxiliary terminal. Programmable capacitor input to adjust AC voltage sensing level and time delay. 6 VO Output terminal; open collector. 5 GND Circuit ground potential. SCHEMATIC DIAGRAM 1VIN1 N/C N/C VIN2 VCC AUX. GND VO Figure 1. Schematic Diagram element to be sustained in the on−state within one full cycle. element to be sustained in the off−state within one full cycle. product specification will establish a low−level at the output. IF is applied to the anode of the LED. on−state within one full cycle. off−state within one full cycle.

www.onsemi.com IOL Low−Level Output Current The current flowing into an output with input conditions applied according to the product specification will establish low−level at the output. ICCL Supply Current, Output LOW The current flowing into the V CC supply terminal of a circuit when the output is at a low−level voltage. ICCH Supply Current, Output HIGH The current flowing into the V CC supply terminal of a circuit when the output is at a high−level voltage. Dynamic Characteristics tON Turn−On Time The time between the specified reference points on the input and the output voltage waveforms with the output changing from the defined high −level to the defined low−level. t OFF Turn−Off Time The time between the specified reference points on the input and the output voltage waveforms with the output changing from the defined low −level to the defined high−level.

1 INPUT CC

2 INPUT

Figure 2. Typical Application Circuit Figure 3. MID400 Switching Time

www.onsemi.com REFLOW PROFILE 215C, 10–30 s 225C peak Time (Minute) 300 250 200 0.5 1 1.5 2 2.5 3 3.5 4 4.5 Time above 183C, 60–150 s Ramp up = 3C/s Temperature (°C) 150 100 Figure 9. Reflow Profile

  • Peak reflow temperature: 225C (package surface temperature)
  • Time of temperature higher than 183C for 60–150 seconds
  • One time soldering reflow is recommended

Part Number Package Shipping† MID400 DIP 8−Pin (Pb−Free) 50 / Tube MID400S SMT 8−Pin (Lead Bend) (Pb−Free) 50 / Tube MID400SD SMT 8−Pin (Lead Bend) (Pb−Free) 1,000 / Tape and Reel MID400V DIP 8−Pin, DIN EN/IEC 60747−5−5 Option (Pb−Free) 50 / Tube MID400SV SMT 8−Pin (Lead Bend), DIN EN/IEC 60747−5−5 Option (Pb−Free) 50 / Tube MID400SDV SMT 8−Pin (Lead Bend), DIN EN/IEC 60747−5−5 Option (Pb−Free) 1,000 / Tape and Reel MID400WV DIP 8−Pin, 0.4” Lead Spacing, DIN EN/IEC 60747−5−5 Option (Pb−Free) 50 / Tube †For information on tape and reel specifications, including part orientation and tape sizes, please refer to our Tape and Reel Packaging Specifications Brochure, BRD8011/D.

PDIP8 6.6x3.81, 2.54P CASE 646BW ISSUE O DATE 31 JUL 2016 MECHANICAL CASE OUTLINE PACKAGE DIMENSIONS ON Semiconductor and are trademarks of Semiconductor Components Industries, LLC dba ON Semiconductor or its subsidiaries in the United States and/or other countries. ON Semiconductor reserves the right to make changes without further notice to any products herein. ON Semiconductor makes no warranty, representation or guarantee regarding the suitability of its products for any particular purpose, nor does ON Semiconductor assume any liability arising out of the application or use of any product or circuit, and specifically disclaims any and all liability, including without limitation special, consequential or incidental damages. ON Semiconductor does not convey any license under its patent rights nor the rights of others. 98AON13445GDOCUMENT NUMBER: DESCRIPTION: Electronic versions are uncontrolled except when accessed directly from the Document Repository. Printed versions are uncontrolled except when stamped “CONTROLLED COPY” in red. PAGE 1 OF 1PDIP8 6.6X3.81, 2.54P © Semiconductor Components Industries, LLC, 2019 www.onsemi.com

PDIP8 9.655x6.6, 2.54P CASE 646CQ ISSUE O DATE 18 SEP 2017 MECHANICAL CASE OUTLINE PACKAGE DIMENSIONS ON Semiconductor and are trademarks of Semiconductor Components Industries, LLC dba ON Semiconductor or its subsidiaries in the United States and/or other countries. ON Semiconductor reserves the right to make changes without further notice to any products herein. ON Semiconductor makes no warranty, representation or guarantee regarding the suitability of its products for any particular purpose, nor does ON Semiconductor assume any liability arising out of the application or use of any product or circuit, and specifically disclaims any and all liability, including without limitation special, consequential or incidental damages. ON Semiconductor does not convey any license under its patent rights nor the rights of others. 98AON13446GDOCUMENT NUMBER: DESCRIPTION: Electronic versions are uncontrolled except when accessed directly from the Document Repository. Printed versions are uncontrolled except when stamped “CONTROLLED COPY” in red. PAGE 1 OF 1PDIP8 9.655X6.6, 2.54P © Semiconductor Components Industries, LLC, 2019 www.onsemi.com

ON Semiconductor and are trademarks of Semiconductor Components Industries, LLC dba ON Semiconductor or its subsidiaries in the United States and/or other countries. ON Semiconductor reserves the right to make changes without further notice to any products herein. ON Semiconductor makes no warranty, representation or guarantee regarding the suitability of its products for any particular purpose, nor does ON Semiconductor assume any liability arising out of the application or use of any product or circuit, and specifically disclaims any and all liability, including without limitation special, consequential or incidental damages. ON Semiconductor does not convey any license under its patent rights nor the rights of others. 98AON13447GDOCUMENT NUMBER: DESCRIPTION: Electronic versions are uncontrolled except when accessed directly from the Document Repository. Printed versions are uncontrolled except when stamped “CONTROLLED COPY” in red. PAGE 1 OF 1PDIP8 GW © Semiconductor Components Industries, LLC, 2019 www.onsemi.com

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