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7708 Datasheet(PDF) 23 Page - Power Integrations, Inc. |
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7708 Datasheet(HTML) 23 Page - Power Integrations, Inc. |
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23 / 42 page ![]() Rev. B 04/15 23 TFS7701-7708 www.power.com 2. Efficiency of 80% at full load, minimum nominal input. 3. Minimum data sheet value of I2f. 4. Transformer primary inductance tolerance of ±10%. 5. Reflected output voltage (V OR) of 100 V. 6. Voltage only output of 5 V with a Schottky diode. 7. Continuous conduction mode operation with transient K P* value of 0.25. 8. Highest standby current limit selection. 9. Heat sink max temperature is 95 °C. *Below a value of 1, K P is the ratio of ripple to peak primary current. A transient K P limit of ≥0.25 is recommended to prevent reduced power capability due to premature termination of switching cycles. Due to the initial current limit (I INIT) being exceeded at MOSFET turn-on. Reducing No-Load Consumption The BYPASS pin can be powered from the internal high-voltage current source from the HIGH-SIDE DRAIN pin, but R16 (7.5 k W) in Figure 30 will reduce no-load consumption by providing the BYPASS pin current from a lower voltage and inhibiting the internal high-voltage current source. Audible Noise Standard dip varnishing on the standby transformer will prevent the possibility of audible noise in the standby converter. Additionally, the peak core flux density should be kept below 3000 Gauss (300 mT). Vacuum impregnation of the transformer is not recommended because it will increase standby no-load losses due to the increased primary capacitance. Higher flux densities are possible, however careful evaluation of the audible noise performance should be made using production transformer samples before approving the design. Ceramic capacitors that use dielectrics such as Z5U, when used in clamp circuits with high ripple voltage, may also generate audio noise. If this is the case, try replacing them with a capacitor having a different dielectric or construction, for example a film type. Recommended First-Time Power-Up Procedure Place a small, fast-blow low-capacity fuse between the bulk capacitor and the HiperTFS-2 circuitry. Use a current-limited bench power supply to power the HiperTFS-2 converter instead of using the PFC or the AC mains. Be careful using a programmable bench AC source in DC mode, because when they are loaded with a large bulk capacitor and their output is turned off, the output of the AC source can undershoot to a negative voltage and damage the HiperTFS-2. If a remote-on circuit is present, keep it OFF so that only the standby will run. Place a voltage and current probe on the STANDBY DRAIN pin. Raise the bulk capacitor voltage slowly until the standby turns on. Check for proper waveforms (peak voltage, and check for core saturation) and for output regulation. Check the VAUX voltage. Check for over-heating components. Slowly increase the load and the input voltage. Check for over-heating components again. Place voltage probes on DRAIN and HIGH-SIDE SOURCE pins. Place current probe in DRAIN pin. If a remote-on circuit is present turn remote to ON. Keep input voltage below UV start threshold (typically 330 V). Slowly increase input voltage until main converter starts. Check for proper waveforms and for output regulation. Check for over-heating components, especially the Drain clamp diode, and associated snubber components. Slowly increase input voltage and load. Check for over-heating components again. Quick Design Checklist Flyback 1. Maximum standby drain voltage – Verify that DSB voltage does not exceed 675 V at highest input voltage and peak (overload) output power. This 50 V margin to the 725 V BVDSS specification gives margin for unit-to-unit variation. 2. Maximum DSB current – At maximum ambient temperature, maximum input voltage and peak output (overload) power, verify Standby Drain current waveforms for any signs of transformer saturation and excessive leading edge current spikes at start-up. Repeat under steady-state conditions and verify that the leading edge current spike event is below I LIMIT(N)(MIN) at the end of the tLEB(MIN). Under all conditions, the maximum Standby Drain current should be below the specified absolute maximum ratings. 3. Thermal check – With main converter off (and any system fans are also off), at specified maximum output power, minimum input voltage and maximum ambient temperature, verify that the temperature specifications are not exceeded for the HiperTFS-2, transformer, output diode, and output capacitors. Main (Forward) Converter Examine the voltage and current at 20% load and nominal input voltage. Measure and check the following: • Switching frequency • Duty cycle • Peak voltage Repeat the measurements at full load. Be cautious of over- heating the power supply and use a strong fan. Measure the source voltage (HS) of the high-side MOSFET at turn-on for each steady-state switch cycle (Figure 28). It should be < 40% of the bulk voltage. Calculate and verify the K P from the current waveform and verify with the spreadsheet. Also check the peak current at peak load – do not dwell at peak load for more than several seconds to prevent over-heating. Check for any oscillation visible in the Drain current envelope. Start-Up Examine the start-up voltage and current. The peak start-up current should be close to the I LIMIT of the device. Examine the output voltage monotonicity. Check for the high-side misfiring during start-up. If the bootstrap diode is omitted (66 kHz only), the VDDH capacitor should be ≥4.7 mF to prevent misfiring. Start-up should be acceptable with either the remote-on/off switch, or by bringing up the HVDC supply with remote-on already asserted. Check startup at maximum expected input voltage. |
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