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 VO3052, VO3053
Vishay Semiconductors
Optocoupler, Non Zero Crossing Phototriac, 1.5 kV/s dV/dt, 600 V
FEATURES
* 1500 V/s dV/dt minimum 2000 V/s typical * 600 V blocking voltage * 100 mA on-state current * Low input trigger current
thdip67
* 6 pin DIP package * Lead (Pb)-free component
A1 C2 NC 3 6 MT2 5 NC
* Component in accordance to RoHS 2002/95/EC and WEEE 2002/96/EC
APPLICATIONS
4 MT1
* Household appliances * Triac drive/AC motor drives * Solenoid/valve controls
i179041
DESCRIPTION
The VO3052/VO3053 triac driver family consists of a GaAs infrared LED optically coupled to a monolithic photosensitive non zero crossing triac detector chip. The 600 V blocking voltage permits control of off-line voltages up to 240 VAC, with a safety factor or more than two, and is sufficient for as much as 380 V.
* Office automation equipment/machine * Temperature (HVAC)/lighting controls * Switching power supply
AGENCY APPROVALS
* UL-file E52744 system code H or J * CUL - file no. E52744, equivalent to CSA bulletin 5A * DIN EN 60747-5-5 (VDE 0884) available with option 1 * BSI IEC 60950
ORDER INFORMATION
PART VO3053 VO3052 VO3053-X006 VO3052-X006 VO3053-X007T VO3052-X007T Note For additional information on the available options refer to option information. REMARKS DIP-6, NZC, 600 V, Ift = 5 mA DIP-6, NZC, 600 V, Ift = 10 mA DIP-6 400 mil (option 6), NZC, 600 V, Ift = 5 mA DIP-6 400 mil (option 6), NZC, 600 V, Ift = 10 mA SMD-6 (option 7), NZC, 600 V, Ift = 5 mA SMD-6 (option 7), NZC, 600 V, Ift = 10 mA
ABSOLUTE MAXIMUM RATINGS
PARAMETER INPUT Reverse voltage Forward current - continuous Power dissipation OUTPUT Off state output terminal voltage Peak repetitive surge current Power dissipation On-state RMS current
(1)
TEST CONDITION
PART
SYMBOL VR IF Pdiss
VALUE 6.0 60 100 600 1.0 200 100
UNIT V mA mW V A mW mA
VO3052/3053 PW = 100 ms, 120 pps
VDRM ITSM Pdiss IT(RMS)
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For technical questions, contact: optocoupler.answers@vishay.com
Document Number: 83749 Rev. 1.6, 23-Oct-08
VO3052, VO3053
Optocoupler, Non Zero Crossing Phototriac, Vishay Semiconductors 1.5 kV/s dV/dt, 600 V
ABSOLUTE MAXIMUM RATINGS
PARAMETER COUPLER Isolation test voltage Total power dissipation Operating temperature Storage temperature Soldering temperature (2) 10 s t = 1.0 s VISO Ptot Tamb Tstg Tsld 5300 300 - 40 to + 100 - 55 to + 150 260 VRMS mW C C C
(1)
TEST CONDITION
PART
SYMBOL
VALUE
UNIT
Notes (1) T amb = 25 C, unless otherwise specified. Stresses in excess of the absolute maximum ratings can cause permanent damage to the device. Functional operation of the device is not implied at these or any other conditions in excess of those given in the operational sections of this document. Exposure to absolute maximum ratings for extended periods of the time can adversely affect reliability. (2) Refer to reflow profile for soldering conditions for surface mounted devices (SMD). Refer to wave profile for soldering conditions for through hole devices (DIP).
120 100
Load Current (mA)
80 IF = 10 mA 60 40 20 0 - 40 - 20
0
20
40
60
80
100
21353
Temperature (C)
Fig. 1 - On-State Current (RMS) vs. Temperature Note The allowable load current was calculated out under a given operating conditions and only for reference: LED power: QE = 0.015 W, RBA (2-layer) = 72 C/W
THERMAL CHARACTERISTICS
PARAMETER Maximum LED junction temperature Maximum output die junction temperature Thermal resistance, junction emitter to board Thermal resistance, junction emitter to case Thermal resistance, junction detector to board Thermal resistance, junction detector to case Thermal resistance, junction emitter to junction detector Thermal resistance, case to ambient TEST CONDITION SYMBOL Tjmax Tjmax JEB JEC JDB JDC JED CA VALUE 125 125 150 139 78 103 496 3563 UNIT C C C/W C/W C/W C/W C/W C/W
Note The thermal model is represented in the thermal network below. Each resistance value given in this model can be used to calculate the temperatures at each node for a given operating condition. The thermal resistance from board to ambient will be dependent on the type of PCB, layout and thickness of copper traces. For a detailed explanation of the thermal model, please reference Vishay's Thermal Characteristics of Optocouplers Application note.
Document Number: 83749 Rev. 1.6, 23-Oct-08
For technical questions, contact: optocoupler.answers@vishay.com
www.vishay.com 923
VO3052, VO3053
Vishay Semiconductors Optocoupler, Non Zero Crossing Phototriac,
1.5 kV/s dV/dt, 600 V
TA
CA
TC Package
DC
TJD
EC DE
TJE
DB
TB
EB
BA
19996
TA
ELECTRICAL CHARACTERISTCS
PARAMETER INPUT Reverse current Forward voltage OUTPUT Leakage with LED off, either direction Critical rate of rise off-state voltage COUPLER LED trigger current, current required to latch output Peak on-state voltage, either direction Holding current, either direction ITM = 100 mA peak, IF = rated IFT VO3053 VO3052 IFT IFT VTM IH 1.7 200 5 10 3 mA mA V A VDRM = 600 V VD = 400 V IDRM dV/dt 1500 10 2000 500 nA V/s VR = 6 V IF = 30 mA IR VF 1.2 10 1.5 A V TEST CONDITION PART SYMBOL MIN. TYP. MAX. UNIT
Note Tamb = 25 C, unless otherwise specified. Minimum and maximum values were tested requierements. Typical values are characteristics of the device and are the result of engineering evaluations. Typical values are for information only and are not part of the testing requirements.
SAFETY AND INSULATION RATINGS
PARAMETER Climatic classification Pollution degree Tracking resistance (comparative tracking index) Highest allowable overvoltage Maximum working insulation voltage Insulation resistance at 25 C Insulation resistance at TS Insulation resistance at 100 C Partial discharge test voltage Safety limiting values maximum values allowed in the event of a failure Output power Input current Case temperature TEST CONDITION IEC 68 part 1 DIN VDE 0109 Insulation group Illa Transient overvoltage Recurring peak voltage VIO = 500 V VIO = 500 V VIO = 500 V Method a, Vpd = VIORM x 1.875 CTI VIOTM VIORM RIS RIS RIS Vpd PSO ISI TSI 175 8000 890 1012 1012 1012 Vpeak Vpeak Vpeak mW mA C SYMBOL MIN. TYP. 40/100/21 2 MAX. UNIT
1669 500 250 175
www.vishay.com 924
For technical questions, contact: optocoupler.answers@vishay.com
Document Number: 83749 Rev. 1.6, 23-Oct-08
VO3052, VO3053
Optocoupler, Non Zero Crossing Phototriac, Vishay Semiconductors 1.5 kV/s dV/dt, 600 V
SAFETY AND INSULATION RATINGS
PARAMETER Minimum external air gap (clearance) TEST CONDITION Measured from input terminals to output terminals, shortest distance through air Measured from input terminals to output terminals, shortest distance path along body Measured from input terminals to output terminals, shortest distance through air Measured from input terminals to output terminals, shortest distance path along body SYMBOL MIN. 7 TYP. MAX. UNIT mm
Minimum external tracking (creepage)
7
mm
Minimum external air gap (clearance)
8
mm
Minimum external tracking (creepage)
8
mm
Note As per IEC 60747-5-2, 7.4.3.8.1, this optocoupler is suitable for "safe electrical insulation" only within the safety ratings. Compliance with the safety ratings shall be ensured by means of prodective circuits.
TYPICAL CHARACTERISTICS
Tamb = 25 C, unless otherwise specified
1.5 100
Forward LED Voltage (V)
On-State Current ITM (mA)
100
- 40 C 1.3 1.1 0.9 25 C 0.7 0.5 1
20335
80 60 40 20 0 - 20 - 40 - 60 - 80 - 100
85 C
10
- 2 - 1.5 - 1 - 0.5
20338
0
0.5
1
1.5
2
Forward LED Current (mA)
On-State Voltage VTM (V)
Fig. 4 - On-State Current vs. VTM
Fig. 2 - Forward Voltage vs. Forward Current
1000
1.4 1.2
100
Normalized IFT
0 20 40 60 80 100
1.0 0.8 0.6 0.4 0.2
IIkg (nA)
10 1 - 40 - 20
20337
0.0 - 40
20340
10
60
100
Temperature (C)
Temperature (C)
Fig. 3 - Off-State Leakage Current vs. Temperature
Fig. 5 - Normalized Trigger Current vs. Temperature
Document Number: 83749 Rev. 1.6, 23-Oct-08
For technical questions, contact: optocoupler.answers@vishay.com
www.vishay.com 925
VO3052, VO3053
Vishay Semiconductors Optocoupler, Non Zero Crossing Phototriac,
1.5 kV/s dV/dt, 600 V
100
25 20
Turn-on Time (s)
Turn-on Time (s)
5 7 9 11 13 15
15 10
10
5
1
20341
0 - 40
20339
- 20
0
20
40
60
80
100
LED Current (mA) Fig. 6 - Turn-on Time vs. LED Current
Temperature (C) Fig. 8 - Turn-on Time vs. Temperature
2.0 1.8 1.6
5.0 4.8 4.6 4.4 4.2 4.0 - 40 - 20 0 20 40 60 80 100
20343
Normalized Ih
1.2 1.0 0.8 0.6 0.4
IFT (mA)
1.4
30
45
60
75
90
100
Temperature (C) Fig. 7 - Normalized Holding Current vs. Temperature
20342
Pulse Width (s) Fig. 9 - Trigger Current vs. Pulse Width
PACKAGE DIMENSIONS in inches (millimeters)
Pin one ID 3 2 1
Option 6
0.407 (10.36) 0.391 (9.96) 0.307 (7.8) 0.291 (7.4)
0.248 (6.30) 0.256 (6.50)
ISO method A
4
5
6 20 0.300 (7.62) typ. 0.014 (0.35) 0.010 (0.25) 0.400 (10.16) 0.430 (10.92)
0.335 (8.50) 0.343 (8.70) 0.039 (1.00 ) min . 0.048 (1.22) 0.052 (1.32) 0.130 (3.30) 0.150 (3.81) 18 0.033 (0.84) typ. 0.018 (0.46) 0.020 (0.51) i178014_1 0.033 (0.84) typ. 0.100 (2.54) typ. 3 - 9 0.008 (0.20) 0.012 (0.30) 0.300 to 0.347 (7.62 to 8.81) 0.130 (3.30) 0.150 (3.81) 0.028 (0.7)
Option 7
0.300 (7.62) TYP .
4 typ .
0.180 (4.6) 0.160 (4.1) 0.315 (8.0) min. . 0.331 (8.4) min. 0.406 (10.3) max.
www.vishay.com 926
For technical questions, contact: optocoupler.answers@vishay.com
Document Number: 83749 Rev. 1.6, 23-Oct-08
VO3052, VO3053
Optocoupler, Non Zero Crossing Phototriac, Vishay Semiconductors 1.5 kV/s dV/dt, 600 V
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: 83749 Rev. 1.6, 23-Oct-08
For technical questions, contact: optocoupler.answers@vishay.com
www.vishay.com 927
Legal Disclaimer Notice
Vishay
Disclaimer
All product specifications and data are subject to change without notice. Vishay Intertechnology, Inc., its affiliates, agents, and employees, and all persons acting on its or their behalf (collectively, "Vishay"), disclaim any and all liability for any errors, inaccuracies or incompleteness contained herein or in any other disclosure relating to any product. Vishay disclaims any and all liability arising out of the use or application of any product described herein or of any information provided herein to the maximum extent permitted by law. The product specifications do not expand or otherwise modify Vishay's terms and conditions of purchase, including but not limited to the warranty expressed therein, which apply to these products. No license, express or implied, by estoppel or otherwise, to any intellectual property rights is granted by this document or by any conduct of Vishay. The products shown herein are not designed for use in medical, life-saving, or life-sustaining applications unless otherwise expressly indicated. Customers using or selling Vishay products not expressly indicated for use in such applications do so entirely at their own risk and agree to fully indemnify Vishay for any damages arising or resulting from such use or sale. Please contact authorized Vishay personnel to obtain written terms and conditions regarding products designed for such applications. Product names and markings noted herein may be trademarks of their respective owners.
Document Number: 91000 Revision: 18-Jul-08
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