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MSK5979RH データシート(PDF) 3 Page - M.S. Kennedy Corporation |
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MSK5979RH データシート(HTML) 3 Page - M.S. Kennedy Corporation |
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3 / 8 page ![]() APPLICATION NOTES PARALLELING DEVICES When currents greater than 0.9A are needed, the MSK5979RH's may be paralleled to multiply the current capacity. As shown in Figure 4, the Vin and SET pins must be tied together. The VOUT pins are connected to the load with consideration to the conductor resistance. The conductor resis- tance of each MSK5979RH VOUT connection to the load, must be equal to create equal load sharing. As little as 10mΩ ballast resistance typically ensures better than 80% equal sharing of load current at full load. Additional consideration must be given to the effect the additional VOUT conductor resistance has on load regulation; see paragraph titled "Load Regulation". OUTPUT CAPACITANCE For stability purposes, the MSK5979RH requires a minimum output ca- pacitor of 10µF with an ESR of 0.5Ω or less. Tantalum or ceramic capac- itors are recommended. A larger capacitance value will improve transient response for increased load current changes. Consideration must also be given to temperature characteristics of the capacitors used. FIGURE 1 OUTPUT VOLTAGE 3 FIGURE 3 FIGURE 4 A single resistor (Rset) from the SET pin to ground creates the reference voltage for the internal Error Amplifier. The MSK5979RH SET pin supplies a constant current of 10uA that develops the reference voltage. The output voltage is simply Rset x 10uA. Since the output is internally driven by a unity-gain amplifier, an alternative to using Rset is to connect a high quality reference source to the SET pin. With a minimum load requirement of 1mA on the Output, the Output Voltage can be adjusted to near 0V. To bring the output voltage to 0V, the load must be connected to a slightly negative voltage supply to sink the 1mA minimum load current from a 0V output. ADDITIONAL STABILITY A capacitor placed in parallel with the SET pin resistor to ground, will im- prove the output transient response and filter noise in the system. To reduce output noise, typically less than 100pF is all that will be required. Capacitors up to 1µF can be used, however consideration must be given to the effect the time constant created will have on the startup time. LOAD REGULATION The MSK5979RH specified load regulation is Kelvin Sensed, therefore the parasitic resistance of the system must be considered to design an ac- ceptable load regulation. The overall load regulation includes the specified MSK5979RH load regulation plus the parasitic resistance multiplied by the load current as shown in Figure 3. RSO is the series resistance of all conductors between the MSK5979RH output and the load. It will directly increase output load regulation error by a voltage drop of ∆Io x Rso. Rss is the series resistance between the set pin and the load. RSS will have little effect on load regulation if the set pin trace is connected as close to the load as possible keeping the load return current on a separate trace as shown. RSR is the series resistance of all of the conductors between the load and the input power source return. RSR will not effect load regulation if the set pin is connected with a Kelvin Sense type connection as shown in Figure 3, but it will increase the effective dropout voltage by a factor of IO x RSR. Keeping RSO and RSR as low as possible will ensure minimal voltage drops and wasted power. FIGURE 2 LOW DROPOUT OPERATION Using separate VIN and Vcontrol power supplies allows for lower dropout and improved efficiency. Figure 2 shows the MSK5979RH output transis- tor collector is connected to the VIN pin. The regulator control circuitry is powered by the Vcontrol input. The dropout of the regulator is determined by the saturation voltage of the output transistor, typical 300mV at 0.9A load. The Vcontrol supply must supply the base drive current for the output transistor. The Vcontrol current minus the 10µA set current is supplied to the load. See the Typical Performance Characteristics curves for expected VIN dropout voltage, control pin dropout voltage and current requirements under various conditions. With separate supplies for VIN and Vcontrol, power dissipation is reduced and efficiency improves. 8548-133 Rev. B 8/15 |
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