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LTC1625IGN Datenblatt(PDF) 10 Page - Linear Technology |
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LTC1625IGN Datenblatt(HTML) 10 Page - Linear Technology |
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10 / 24 page ![]() 10 LTC1625 APPLICATIONS INFORMATION Top Duty Cycle V V Bottom Duty Cycle VV V OUT IN IN OUT IN = = – The MOSFET power dissipations at maximum output current are: P V V IR kV I C f P VV V IR TOP OUT IN O MAX T TOP DS ON IN O MAX RSS BOT IN OUT IN O MAX T BOT DS ON = + = ()( )( ) ()( )( )( )( ) – ()( )( ) () ( ) ( ) () () ( ) ( ) 2 2 2 ρ ρ Both MOSFETs have I2R losses and the PTOP equation includes an additional term for transition losses, which are largest at high input voltages. The constant k = 1.7 can be used to estimate the amount of transition loss. The bottom MOSFET losses are greatest at high input voltage or during a short circuit when the duty cycle is nearly 100%. Operating Frequency and Synchronization The choice of operating frequency and inductor value is a trade-off between efficiency and component size. Low frequency operation improves efficiency by reducing MOSFET switching losses, both gate charge loss and transition loss. However, lower frequency operation requires more inductance for a given amount of ripple current. The internal oscillator runs at a nominal 150kHz frequency when the SYNC pin is left open or connected to ground. Pulling the SYNC pin above 1.2V will increase the fre- quency by 50%. The oscillator will injection lock to a clock signal applied to the SYNC pin with a frequency between 165kHz and 200kHz. The clock high level must exceed 1.2V for at least 1 µs and no longer than 4µs as shown in Figure 4. The top MOSFET turn-on will synchronize with the rising edge of the clock. 0 ± 1 µs4µs 1625 F04 7V 1.2V Figure 4. SYNC Clock Waveform Inductor Value Selection Given the desired input and output voltages, the inductor value and operating frequency directly determine the ripple current: ∆I V fL V V L OUT OUT IN = ()( ) – 1 Lower ripple current reduces core losses in the inductor, ESR losses in the output capacitors and output voltage ripple. Thus, highest efficiency operation is obtained at low frequency with small ripple current. To achieve this, however, requires a large inductor. A reasonable starting point is to choose a ripple current that is about 40% of IO(MAX). Note that the largest ripple current occurs at the highest VIN. To guarantee that ripple current does not exceed a specified maximum, the induc- tor should be chosen according to: L V fI V V OUT L MAX OUT IN MAX ≥ ()( ) – () () ∆ 1 Burst Mode Operation Considerations The choice of RDS(ON) and inductor value also determines the load current at which the LTC1625 enters Burst Mode operation. When bursting, the controller clamps the peak inductor current to approximately: I mV R BURST PEAK DS ON () () = 30 |
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