0.5 A Output Current IGBT and MOSFET Driver
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1 . A Output Current IGBT and VOA 9 DESCRIPTION NC A C NC _ The VOA consists of a LED optically coupled to an integrated circuit with a power output stage. This optocoupler is ideally suited for driving power IGBTs and MOSFETs used in motor control inverter applications. The high operating voltage range of the output stage provides the drive voltages required by gate controlled devices. The voltage and current supplied by this optocoupler makes it ideally suited for directly driving IGBTs with ratings up to V/ A. For IGBTs with higher ratings, the VOA can be used to drive a discrete power stage which drives the IGBT gate. Shield V D E FEATURES. A minimum peak output current kv/μs minimum common mode rejection (CMR) at V CM = V I CC =. ma maximum supply current Under voltage lock-out (UVLO) with hysteresis Wide operating range: V to V. μs maximum propagation delay Industrial temperature range: - C to C. V maximum low level output voltage (L ) Compliant to RoHS directive /9/EC APPLICATIONS Isolated IGBT/MOSFET gate driver AC and brushless DC motor drives Induction stove top Industrial inverters Switch mode power supplies (SMPS) Uninterruptible power supplies (UPS) AGENCY APPROVALS UL - file no. E system code H, double protection cul - file no. E, equivalent to CSA bulletin A DIN EN -- (VDE) available with option ORDERING INFORMATION A - X T DIP- Option PART NUMBER PACKAGE OPTION TAPE AND REEL. mm >. mm PACKAGE UL, cul UL, cul, VDE DIP- VOA - SMD-, option VOA-XT VOA-XT TRUTH TABLE LED - POSITIVE GOING (TURN ON) - NEGATIVE GOING (TURN OFF) Off V to V V to V Low On V to V V to 9. V Low On V to. V 9. V to V Transition On. V to V V to V High Document Number: For technical questions, contact: optocoupleranswers@vishay.com Rev.., -Jan-
2 VOA. A Output Current IGBT and ABSOLUTE MAXIMUM RATINGS () (T amb = C, unless otherwise specified) PARAMETER TEST CONDITION SYMBOL VALUE UNIT INPUT Input forward current ma Peak transient input current < μs pulse width, pps (TRAN) A Reverse input voltage V R V Output power dissipation P diss mw OUTPUT High peak output current () I OH(PEAK). A Low peak output current () I OL(PEAK). A Supply voltage ( - ) to V Output voltage (PEAK) to V Output power dissipation P diss mw OPTOCOUPLER Isolation test voltage (between emitter and detector, climate per DIN, part, Nov. ) t = s V ISO V RMS Storage temperature range T S - to C Ambient operating temperature range T amb - to C Total power dissipation P tot 9 mw Lead solder temperature () for s,. mm below seating plane T sld C Notes () 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. () Maximum pulse width = μs, maximum duty cycle =. %. This value is intended to allow for component tolerances for designs with I O peak minimum =. A. See applications section for additional details on limiting I OH peak. () Refer to reflow profile for soldering conditions for surface mounted devices (SMD). Refer to wave profile for soldering conditions for through hole devices (DIP). RECOMMENDED OPERATING CONDITION PARAMETER SYMBOL MIN. MAX. UNIT Power supply voltage - V Input LED current (on) ma Input voltage (off) V F(OFF) -. V Operating temperature T amb - C For technical questions, contact: optocoupleranswers@vishay.com Document Number: Rev.., -Jan-
3 . A Output Current IGBT and VOA THERMAL CHARACTERISTICS PARAMETER SYMBOL VALUE UNIT LED power dissipation P diss mw Output power dissipation P diss mw T A Total power dissipation P tot mw θ CA Maximum LED junction temperature T jmax. C T C Package Maximum output die junction temperature T jmax. C θ DC θ EC Thermal resistance, junction emitter to board θ JEB 9 C/W T JD θ DE T JE Thermal resistance, junction emitter to case θ JEC 9 C/W Thermal resistance, junction detector to board θ JDB C/W θ DB T B θ EB Thermal resistance, junction detector to case θ JDC C/W Thermal resistance, junction emitter to junction detector θ JED C/W 999 θ BA Thermal resistance, case to ambient θ CA C/W T A 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. ELECTRICAL CHARACTERISTICS () PARAMETER TEST CONDITION SYMBOL MIN. TYP. MAX. UNIT High level output current = ma, R g = Ω, C g = nf, = V, I OH (). A Low level output current = ma, R g = Ω, C g = nf, = V, I () OL. A High level output voltage I O = - ma V () OH - -. V Low level output voltage I O = ma L.. V High level supply current Output open, = ma to ma I CCH. ma Low level supply current Output open, V F = - V to. V I CCL. ma Threshold input current low to high I O = ma, > V LH. ma Threshold input voltage high to low V FHL. V Input forward voltage = ma V F.. V Temperature coefficient of forward voltage = ma ΔV F /ΔT A -. mv/ C Input reverse breakdown voltage I R = μa BVΡ V Input capacitance f = MHz, V F C IN pf V V UVLO.. V UVLO threshold = ma V UVLO- 9.. V UVLO hysteresis UVLO HYS.9 V Notes () Minimum and maximum values were tested over recommended operating conditions (T amb = - C to C, (ON) = ma to ma, V F(OFF) = - V to. V, = V to V, = ground) unless otherwise specified. 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. All typical values were measured at T amb = C and with - = V. () Maximum pulse width = μs, maximum duty cycle =. %. () Maximum pulse width = μs, maximum duty cycle =. %. This value is intended to allow for component tolerances for designs with I O peak minimum =. A. () In this test H is measured with a dc load current. When driving capacitive loads H will approach as I OH approaches zero A. Maximum pulse width = ms, maximum duty cycle = %. Document Number: For technical questions, contact: optocoupleranswers@vishay.com Rev.., -Jan-
4 VOA. A Output Current IGBT and TEST CIRCUITS = ma to ma. µf I OH V = V to V. µf L ma = V to V 9_ 9_ Fig. - I OH Test Circuit Fig. - L Test Circuit. µf. µf I OL. V = V to V > V = V to V 9_ 9_ Fig. - I OL Test Circuit Fig. - LH Test Circuit = ma to ma. µf H ma = V to V IF = ma. µf > V 9_ 9 Fig. - H Test Circuit Fig. - UVLO Test Circuit SWITCHING CHARACTERISTICS PARAMETER TEST CONDITION SYMBOL MIN. TYP. MAX. UNIT Propagation delay time to logic low output () Propagation delay time to logic high output () Pulse width distortion () Propagation delay difference between any two parts () Rise time Fall time R g = Ω, C g = nf, f = khz, duty cycle = % R g = Ω, C g = nf, f = khz, duty cycle = % R g = Ω, C g = nf, f = khz, duty cycle = % R g = Ω, C g = nf, f = khz, duty cycle = % R g = Ω, C g = nf, f = khz, duty cycle = % R g = Ω, C g = nf, f = khz, duty cycle = %.. μs.. μs PWD. μs PDD ( - ) -.. μs t r. μs t f. μs For technical questions, contact: optocoupleranswers@vishay.com Document Number: Rev.., -Jan-
5 . A Output Current IGBT and VOA SWITCHING CHARACTERISTICS PARAMETER TEST CONDITION SYMBOL MIN. TYP. MAX. UNIT UVLO turn on delay > V, = ma T UVLO-ON. μs UVLO turn off delay > V, = ma T UVLO-OFF. μs Notes () This load condition approximates the gate load of a V/ A IGBT. () Pulse width distortion (PWD) is defined as - for any given device. () The difference between and between any two VOA parts under the same test condition. khz % duty cycle I = ma to ma F Ω. µf Ω nf = V to V OUT t r t f 9 % % % 99_ Fig. -,, t r and t f Test Circuit and Waveforms COMMON MODE TRANSIENT IMMUNITY PARAMETER TEST CONDITION SYMBOL MIN. TYP. MAX. UNIT Common mode transient immunity at logic high output ()() T A = C, = ma to ma, V CM = V, = V Common mode transient immunity at logic low output ()() T A = C, V CM = V, = V, V F CM H kv/μs CM L kv/μs Notes () Pins and need to be connected to LED common. () Common mode transient immunity in the high state is the maximum tolerable dv CM /dt of the common mode pulse, V CM, to assure that the output will remain in the high state (i.e., > V). () Common mode transient immunity in a low state is the maximum tolerable dv CM /dt of the common mode pulse, V CM, to assure that the output will remain in a low state (i.e., < V). V dv V = CM I dt Dt F. µf A R V Dt = V H Switch at A: = ma L Switch at B: = ma 9- V CM = V Fig. - CMR Test Circuit and Waveforms Document Number: For technical questions, contact: optocoupleranswers@vishay.com Rev.., -Jan-
6 VOA. A Output Current IGBT and SAFETY AND INSULATION RATINGS PARAMETER TEST CONDITION SYMBOL MIN. TYP. MAX. UNIT Climatic classification (according to IEC part ) // Comparative tracking index CTI 99 V IOTM V V IORM 9 V P SO mw I SI ma T SI C Creepage distance Standard DIP- mm Clearance distance Standard DIP- mm Creepage distance mil DIP- mm Clearance distance mil DIP- mm Note As per IEC --,..., 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 (T amb = C, unless otherwise specified) H - VCC - High Output Voltage Drop (V) = ma I OUT = - ma = V Fig. 9 - High Output Voltage Drop vs. Temperature L - Output Low Voltage (V) V F(OFF) =. V I OUT = ma = V Fig. - Output Low Voltage vs. Temperature I OH - High Output Current (A)..... = ma R g = Ω, C g = nf = V Fig. - High Output Current vs. Temperature I OL - Output Low Current (A)..... = ma R g = Ω, C g = nf = V. - - Fig. - Output Low Current vs. Temperature For technical questions, contact: optocoupleranswers@vishay.com Document Number: Rev.., -Jan-
7 . A Output Current IGBT and VOA L - Output Low Voltage (V).. = ma = V C C..... I OL - Output Low Current (A) - C Fig. - Output Low Voltage vs. Output Low Current I CC - Supply Current (ma)..... = ma for I CCH = ma for I CCL T A = C I CCH I CCL. - Supply Voltage (V) Fig. - Supply Current vs. Supply Voltage (H - ) Output High Voltage Drop (V) = ma = V C - C C I OH - Output High Current (A) Fig. - Output High Voltage Dropvs. Output High Current LH - Low to High Current Threshold (ma) -.. = V. Output = open Fig. - Low to High Current Threshold vs. Temperature I CC - Supply Current (ma)... - I CCL I CCH. = ma for I CCH. = ma for I CCL = V. - - Fig. - Supply Current vs. Temperature - Output Voltage (V) T A = C - Forward LED Current (ma) Fig. - Transfer Characteristics Document Number: For technical questions, contact: optocoupleranswers@vishay.com Rev.., -Jan-
8 VOA. A Output Current IGBT and t p - Propagation Delay (ns) = ma, T A = C R g = Ω, C g = nf Duty cycle = % f = khz t p - Propagation Delay (ns) = V, = ma, T A = C C g = nf Duty cycle = % f = khz - Supply Voltage (V) Fig. 9 - Propagation Delay vs. Supply Voltage 9 R g - Series Load Resistance (Ω) Fig. - Propagation Delay vs. Series Load Resistance t p - Propagation Delay (ns) = V, = ma R g = Ω, C g = nf Duty cycle = % f = khz t p - Propagation Delay (ns) = V, = ma, T A = C R g = Ω Duty cycle = % f = khz - - T A - Fig. - Propagation Delay vs. Temperature C g - Series Load Capacitance (nf) Fig. - Propagation Delay vs. Series Load Capacitance t p - Propagation Delay (ns) = V, = ma, T A = C R g = Ω, C g = nf Duty cycle = % f = khz - Forward LED Current (ma) Fig. - Propagation Delay vs. Forward LED Current For technical questions, contact: optocoupleranswers@vishay.com Document Number: Rev.., -Jan-
9 . A Output Current IGBT and VOA PACKAGE DIMENSIONS in millimeters Pin one ID.. ISO method A typ..9. typ... i.... typ...9 to Option. typ.... min.. min.. max. - PACKAGE MARKING VOA V YWW H - Note VDE logo is only marked on option parts. Option information is not marked on the part. Document Number: For technical questions, contact: optocoupleranswers@vishay.com Rev.., -Jan- 9
10 Legal Disclaimer Notice Vishay Disclaimer ALL PRODUCT, PRODUCT SPECIFICATIONS AND DATA ARE SUBJECT TO CHANGE WITHOUT NOTICE TO IMPROVE RELIABILITY, FUNCTION OR DESIGN OR OTHERWISE. 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 in any datasheet or in any other disclosure relating to any product. Vishay makes no warranty, representation or guarantee regarding the suitability of the products for any particular purpose or the continuing production of any product. To the maximum extent permitted by applicable law, Vishay disclaims (i) any and all liability arising out of the application or use of any product, (ii) any and all liability, including without limitation special, consequential or incidental damages, and (iii) any and all implied warranties, including warranties of fitness for particular purpose, non-infringement and merchantability. Statements regarding the suitability of products for certain types of applications are based on Vishay s knowledge of typical requirements that are often placed on Vishay products in generic applications. Such statements are not binding statements about the suitability of products for a particular application. It is the customer s responsibility to validate that a particular product with the properties described in the product specification is suitable for use in a particular application. Parameters provided in datasheets and/or specifications may vary in different applications and performance may vary over time. All operating parameters, including typical parameters, must be validated for each customer application by the customer s technical experts. Product specifications do not expand or otherwise modify Vishay s terms and conditions of purchase, including but not limited to the warranty expressed therein. Except as expressly indicated in writing, Vishay products are not designed for use in medical, life-saving, or life-sustaining applications or for any other application in which the failure of the Vishay product could result in personal injury or death. Customers using or selling Vishay products not expressly indicated for use in such applications do so at their own risk and agree to fully indemnify and hold Vishay and its distributors harmless from and against any and all claims, liabilities, expenses and damages arising or resulting in connection with such use or sale, including attorneys fees, even if such claim alleges that Vishay or its distributor was negligent regarding the design or manufacture of the part. Please contact authorized Vishay personnel to obtain written terms and conditions regarding products designed for such applications. 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. Product names and markings noted herein may be trademarks of their respective owners. Material Category Policy Vishay Intertechnology, Inc. hereby certifies that all its products that are identified as RoHS-Compliant fulfill the definitions and restrictions defined under Directive //EU of The European Parliament and of the Council of June, on the restriction of the use of certain hazardous substances in electrical and electronic equipment (EEE) - recast, unless otherwise specified as non-compliant. Please note that some Vishay documentation may still make reference to RoHS Directive /9/EC. We confirm that all the products identified as being compliant to Directive /9/EC conform to Directive //EU. Revision: -Mar- Document Number: 9
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