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LT8607 датащи(PDF) 13 Page - Analog Devices |
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LT8607 датащи(HTML) 13 Page - Analog Devices |
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13 / 24 page ![]() LT8609S 13 Rev. D For more information www.analog.com APPLICATIONS INFORMATION FB Resistor Network The output voltage is programmed with a resistor divider between the output and the FB pin. Choose the resistor values according to: R1=R2 VOUT 0.774V –1 ⎛ ⎝ ⎜ ⎞ ⎠ ⎟ 1% resistors are recommended to maintain output voltage accuracy. The total resistance of the FB resistor divider should be selected to be as large as possible when good low load efficiency is desired: The resistor divider generates a small load on the output, which should be minimized to optimize the quiescent current at low loads. When using large FB resistors, a 10pF phase lead capac- itor should be connected from VOUT to FB. Setting the Switching Frequency The LT8609S uses a constant frequency PWM archi- tecture that can be programmed to switch from 200kHz to 2.2MHz by using a resistor tied from the RT pin to ground. A table showing the necessary RT value for a desired switching frequency is in Table 1. When in spread spectrum modulation mode, the frequency is modulated upwards of the frequency set by RT. Table 1. SW Frequency vs RT Value fSW (MHz) RT (kΩ) 0.2 221 0.300 143 0.400 110 0.500 86.6 0.600 71.5 0.700 60.4 0.800 52.3 0.900 46.4 1.000 40.2 1.200 33.2 1.400 27.4 1.600 23.7 1.800 20.5 2.000 18.2 2.200 16.2 Operating Frequency Selection and Trade-Offs Selection of the operating frequency is a trade-off between efficiency, component size, and input voltage range. The advantage of high frequency operation is that smaller inductor and capacitor values may be used. The disadvan- tages are lower efficiency and a smaller input voltage range. The highest switching frequency (fSW(MAX)) for a given application can be calculated as follows: fSW(MAX) = VOUT +VSW(BOT) tON(MIN) VIN – VSW(TOP)+VSW(BOT) ( ) where VIN is the typical input voltage, VOUT is the output voltage, VSW(TOP) and VSW(BOT) are the internal switch drops (~0.4V, ~0.25V, respectively at max load) and tON(MIN) is the minimum top switch on-time (see Electrical Characteristics). This equation shows that slower switch- ing frequency is necessary to accommodate a high VIN/ VOUT ratio. For transient operation VIN may go as high as the Abs Max rating regardless of the RT value, however the LT8609S will reduce switching frequency as necessary to maintain control of inductor current to assure safe operation. The LT8609S is capable of maximum duty cycle approaching 100%, and the VIN to VOUT dropout is limited by the RDS(ON) of the top switch. In this mode the LT8609S skips switch cycles, resulting in a lower switching frequency than programmed by RT. For applications that cannot allow deviation from the pro- grammed switching frequency at low VIN/VOUT ratios use the following formula to set switching frequency: VIN(MIN) = VOUT +VSW(BOT) 1– fSW • tOFF(MIN) – VSW(BOT)+VSW(TOP) where VIN(MIN) is the minimum input voltage without skipped cycles, VOUT is the output voltage, VSW(TOP) and VSW(BOT) are the internal switch drops (~0.4V, ~0.25V, respectively at max load), fSW is the switching frequency (set by RT), and tOFF(MIN) is the minimum switch off- time. Note that higher switching frequency will increase the minimum input voltage below which cycles will be dropped to achieve higher duty cycle. |
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