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TPS53353 датащи(PDF) 21 Page - Texas Instruments |
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TPS53353 датащи(HTML) 21 Page - Texas Instruments |
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21 / 37 page ![]() ( ) ( ) ( ) ( ) ( ) - ´ = + ´ ´ ´ IN OUT OUT max TRIP IND peak SW IN DS on max V V V V 1 I 32 R L f V ( ) ( ) ( ) ( ) ( ) ( ) ( ) - ´ - ´ = ´ = ´ ´ ´ IN OUT OUT IN OUT OUT max max SW IN OUT SW IN(max) IND ripple max max V V V V V V 1 3 L I f V I f V 21 TPS53353 www.ti.com SLUSAK2C – AUGUST 2011 – REVISED FEBRUARY 2016 Product Folder Links: TPS53353 Submit Documentation Feedback Copyright © 2011–2016, Texas Instruments Incorporated Typical Applications (continued) 8.2.1.1 Design Requirements Table 4. Design Parameters PARAMETER TEST CONDITIONS MIN TYP MAX UNIT INPUT CHARACTERISTICS VIN Voltage range 8 12 14 V IMAX Maximum Input current VIN = 8 V, IOUT = 20 A 4.1 A No load input current VIN = 14 V, IOUT = 0 A with auto-skip mode 1 mA OUTPUT CHARACTERISTICS VOUT Output voltage 1.5 V Output voltage regulation Line regulation, 8 V ≤ VIN ≤ 15 V 0.1% Load regulation, VIN = 12 V, 0 A ≤ IOUT ≤ 20 A with FCCM 0.2% VRIPPLE Output voltage ripple VIN = 12 V, IOUT = 20 A with FCCM 20 mVPP ILOAD Output load current 0 20 A IOCP Output overcurrent threshold 26 A tSS Soft-start time 1.4 ms SYSTEMS CHARACTERISTICS fSW Switching frequency 500 kHz η Peak efficiency VIN = 12 V, VOUT = 1.1 V, IOUT = 10 A 91.87% Full load efficiency VIN = 12 V, VOUT = 1.1 V, IOUT = 20 A 91.38% TA Operating temperature 25 °C 8.2.1.2 Detailed Design Procedure 8.2.1.2.1 External Component Selection Refer to the External Component Selection Using All Ceramic Output Capacitors section for guidelines for this design with all ceramic output capacitors. The external components selection is a simple process when using organic semiconductors or special polymer output capacitors. 1. SELECT OPERATION MODE AND SOFT-START TIME Select operation mode and soft-start time using Table 3. 2. SELECT SWITCHING FREQUENCY Select the switching frequency from 250 kHz to 1 MHz using Table 1. 3. CHOOSE THE INDUCTOR The inductance value should be determined to give the ripple current of approximately 1/4 to 1/2 of maximum output current. Larger ripple current increases output ripple voltage and improves signal-to-noise ratio and helps ensure stable operation, but increases inductor core loss. Using 1/3 ripple current to maximum output current ratio, the inductance can be determined by Equation 8. (8) The inductor requires a low DCR to achieve good efficiency. It also requires enough room above peak inductor current before saturation. The peak inductor current can be estimated in Equation 9. (9) |
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