NOT RECOMMENDED FOR NEW DESIGNS

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1 M.S.KENNEDY CORP. HIGH POWER DUAL OPERATIONAL AMPLIFIER ISO900 CERTIFIED BY DSCC Dey Road Liverpool, N.Y (3) 7067 FEATURES: Operates In Class AB Or Class C Mode MILPRF383 CERTIFIED Low Cost High Voltage Operation : 0V Low Quiescent Current : ± 8.0 Total Typ. In Class "C" Mode High Output Current : A Min. Per Amplifier No Second Breakdown High Speed : 7V/µS Typ. External Compensation For Optimum GainBandwidth DESCRIPTION: MSK0 The MSK 0 is a dual high power monolithic MOSFET operational amplifier ideally suited for high power amplification and magnetic deflection applications. With a total supply voltage rating of 0 volts and A of output current available from each amplifier, the MSK 0 is also an excellent low cost choice for motor drive circuits. The MOSFET output frees the MSK 0 from secondary breakdown limitations and power dissipation is kept to a minimum with a typical quiescent current rating of only ± 8.0 total in class "C" mode. Power saving class "C" mode is enabled by the user externally. The MSK 0 is packaged in a hermetically sealed 8 pin ceramic dip which has two external compensation pins for each amplifier. EQUIVALENT SCHEMATIC NOT RECOMMENDED FOR NEW DESIGNS TYPICAL APPLICATIONS PA Audio Magnetic Deflection Bridge Motor Drive Noise Cancellation PINOUT INFORMATION Inverting Input NonInverting Input Vcc Output Drive +Vcc Quiescent Current Adjust Amp Comp Amp Comp Current Sense Current Sense Amp Comp Amp Comp Quiescent Current Adjust +Vcc Output Drive Vcc NonInverting Input Inverting Input Rev. B /0

2 ABSOLUTE MAXIMUM RATINGS VCC ±IOUT VIND VIN TJ Total Supply Voltage Output Current (within S.O.A.) Input Voltage (Differential) Input Voltage (Common Mode) Junction Temperature 0V ±A ±6V ±Vcc 0 C TST TLD TC RTH Storage Temperature 6 C to +0 C Lead Temperature 300 C Case Operating Temperature (MSK0B) C to + C (MSK0) 0 C to +8 C Thermal Resistance (DC) Junction to Case.0 C/W ELECTRICAL SPECIFICATIONS Parameter Test Conditions Group A Subgroup MSK0B Min. Typ. Max. Min. MSK0 Typ. Max. Units STATIC Supply Voltage Range ± ±7 ± ±7 V ±30 ±30 Quiescent Current ±0 ± 3 ±3 ±6 Quiescent Current (Class 'C') ± ± 6 ± ± 6 INPUT Offset Voltage ± ±0 ± ± mv Offset Voltage Drift,3 ±0 ±0 µv/ C Offset Voltage vs ±Vcc ±8 ± ±8 ± µv/v Input Bias Current VCM = 0V,3 ±0 ±00 ±0 ±00 pa na Input Impedance (DC) 0 0 Ω Input Capacitance pf Common Mode Rejection VCM=±30VDC db Noise 0KHz BW 0 0 µvrms OUTPUT Output Voltage Swing IOUT=±A Peak ±0 ± ±0 ± V Output Current VOUT=MAX ± ±. ± ±. A Power Bandwidth VOUT=80VPP KHz Settling Time to 0.% 3 0V Step µs Capacitive Load AV=+V/V CC=68pF 0 0 nf TRANSFER CHARACTERISTICS Slew Rate CC=Open V/µS Open Loop Voltage Gain F=Hz db NOTES: Unless otherwise noted CC=0pF, RC=.0KΩ, ±VCC= VDC and specifications apply to each amplifier. Derate maximum supply voltage 0.V/ C below TC=+ C. No derating is needed above TC= C. 3 AV=0V/V measured in false summing junction circuit. Devices shall be capable of meeting the parameter, but need not be tested. Typical parameters are for reference only. Industrial grade devices shall be tested to subgroups and unless otherwise requested. 6 Military grade devices ('B' suffix) shall be 00% tested to subgroups,,3 and. 7 Subgroup and 6 testing available upon request. 8 Subgroup, TC=+ C Subgroup, TC=+ C Subgroup 3,6 TA= C Rev. B /0

3 APPLICATION NOTES CURRENT LIMIT (SEE TYPICAL CONNECTION DIAGRAM) A value of current limit resistance can be calculated as follows: RCL=(0.83 (0.0 * ICL)) / ICL Where: RCL is the current limit resistor value ICL is the current limit 0.0 * ICL is the voltage dropped in the current limit path across internal impedances other than the actual current limit resistor 0.83 volts is the voltage drop that must be developed across the current limit connections to activate the current limit circuit SAFE OPERATING AREA (SOA) The MOSFET output stage of this power operational amplifier has two distinct limitations:. The current handling capability of the die metallization.. The junction temperature of the output MOSFET's. NOTE: The output stage is protected against transient flyback. However, for protection against sustained, high energy flyback, external fastrecovery reverse biased diodes should be connected from the output to ground. The maximum practical value of current limit resistance is 6 ohms. The current limit resistor will decrease available output voltage swing in the following manner: VR=IO * RCL VR is the reduction in output voltage swing due to the current limit resistor. It is recommended the user limit output current to a value as close to the required output current as possible, without clipping output voltage swing. Current limit will vary with case temperature. Refer to the typical performance curves to predict current limit drift. If current limit is not required replace the resistor with a short. STABILITY The MSK 0 has sufficient phase margin when compensated for unity gain to be stable with capacitive loads of at least 0nF. However, it is recommended that the parallel sum of the input and feedback resistor be 000 ohms or less for closed loop gains of ten or less to minimize phase shift caused by the RC network formed by the input resistor, feedback resistor and input capacitance. The user can tailor the performance of the MSK 0 to their application using the external compensation pins. The graphs of small signal gain and phase as well as the graphs of slew rate and power response demonstrate the effect of various forms of compensation. The compensation capacitor must be rated at 0 volts working voltage if maximum power supply voltages are used. The compensation resistor and capacitor lead lengths must be kept as short as possible to minimize spurious oscillations. A high quality NPO capacitor is recommended for the compensation capacitor. An effective method of checking amplifier stability is to apply the worst case capacitive load to the output of the amplifier and drive a small signal square wave across it. If overshoot is less than %, the system will typically be stable. INPUT PROTECTION Input protection circuitry within the MSK 0 will clip differential input voltages greater than 6 volts. The inputs are also protected against common mode voltages up to the supply rails as well as static discharge. There are 300 ohm current limiting resistors in series with each input. These resistors may become damaged in the event the input overload is capable of driving currents above. If severe overload conditions are expected, external input current limiting resistors are recommended. TYPICAL CONNECTION DIAGRAM CLASS "C" MODE The user can enable class "C" mode by simply connecting pin to pin 6 and pin 6 to pin 7. This connection will disable the bias control network in the output stage of each amplifier. Quiescent current will drop to ± 8 total typically and a small amount of crossover distortion will appear on the output waveforms. This mode of operation is recommended for switching type applications where distortion is not a critical specification and quiescent power dissipation must be minimized. Disconnecting the pin to pin 6 and pin 6 to pin 7 shorts will enable the bias control network and the outputs will be biased in class AB mode again. Pins and 6 should be left unconnected when using class AB mode. (Do not ground or pull high). 3 Rev. B /0

4 TYPICAL PERFORMANCE CURVES Rev. B /0

5 MECHANICAL SPECIFICATIONS MSK0 ESD TRIANGLE INDICATES PIN. ALL DIMENSIONS ARE ±0.00 INCHES UNLESS OTHERWISE LABELED. ORDERING INFORMATION Part Number MSK0 MSK0B Screening Level Industrial MilPRF383 Class H M.S. Kennedy Corp. 707 Dey Road, Liverpool, New York 3088 Phone (3) 7067 FAX (3) The information contained herein is believed to be accurate at the time of printing. MSK reserves the right to make changes to its products or specifications without notice, however, and assumes no liability for the use of its products. Rev. B /0

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