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LT3741 Datasheet(PDF) 19 Page - Linear Technology |
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LT3741 Datasheet(HTML) 19 Page - Linear Technology |
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19 / 32 page ![]() LT8390 19 8390fa For more information www.linear.com/LT8390 APPLICATIONS INFORMATION Frequency Synchronization The LT8390 switching frequency can be synchronized to an external clock using the SYNC/SPRD pin. Driving the SYNC/SPRD with a 50% duty cycle waveform is always a good choice, otherwise maintain the duty cycle between 10%and90%.Duetotheuseofaphase-lockedloop(PLL) inside, there is no restriction between the synchronization frequency and the internal oscillator frequency. The rising edge of the synchronization clock represents the begin- ning of a switching cycle, turning on switches A and C, or switches A and D. Inductor Selection The switching frequency and inductor selection are inter- relatedinthathigherswitchingfrequenciesallowtheuseof smaller inductor and capacitor values. The inductor value has a direct effect on ripple current. The highest current ripple∆IL%happensinthebuckregionatVIN(MAX),andthe lowest current ripple ∆IL% happens in the boost region at VIN(MIN). For any given ripple allowance set by customers, the minimum inductance can be calculated as: LBUCK > VOUT • VIN(MAX) − VOUT ( ) f •IOUT(MAX) • ∆IL% • VIN(MAX) LBOOST > VIN(MIN) 2 • V OUT − VIN(MIN) ( ) f •IOUT(MAX) • ∆IL% • VOUT 2 where: ∆IL% = ∆IL IL(AVG) f is switching frequency VIN(MIN) is minimum input voltage VIN(MAX) is maximum input voltage VOUT is output voltage IOUT(MAX) is maximum output current Slope compensation provides stability in constant fre- quency current mode control by preventing subharmonic oscillationsatcertaindutycycles.Theminimuminductance required for stability when duty cycles are larger than 50% can be calculated as: L > 10 • VOUT •RSENSE f For high efficiency, choose an inductor with low core loss, such as ferrite. Also, the inductor should have low DC resistance to reduce the I2R losses, and must be able to handle the peak inductor current without saturating. To minimize radiated noise, use a shielded inductor. RSENSE Selection and Maximum Output Current RSENSE is chosen based on the required output current. The duty cycle independent maximum current sense thresholds (50mV in peak-buck and 50mV in peak-boost) set the maximum inductor peak current in buck region, buck-boost region, and boost region. In boost region, the lowest maximum average load current happens at VIN(MIN) and can be calculated as: IOUT(MAX_BOOST) = 50mV RSENSE − ∆IL(BOOST) 2 • VIN(MIN) VOUT where ∆IL(BOOST) is peak-to-peak inductor ripple current in boost region and can be calculated as: ∆IL(BOOST) = VIN(MIN) • VOUT − VIN(MIN) ( ) f •L • VOUT In buck region, the lowest maximum average load current happens at VIN(MAX) and can be calculated as: IOUT(MAX_BUCK) = 50mV RSENSE − ∆IL(BUCK) 2 where ∆IL(BUCK) is peak-to-peak inductor ripple current in buck region and can be calculated as: ∆IL(BUCK) = VOUT • VIN(MAX) − VOUT ( ) f •L • VIN(MAX) |
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