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LTC3313JVPBF 数据表(PDF) 13 Page - Analog Devices |
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LTC3313JVPBF 数据表(HTML) 13 Page - Analog Devices |
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13 / 28 page ![]() LTC3313 13 Rev. 0 For more information www.analog.com Refer to the Block Diagram for reference. FB Resistor Network The output voltage on the LTC3313 is programmed with a resistor divider between the output and the FB pin. Choose the resistor values according to: RA =RB VOUT 500mV – 1 ⎛ ⎝ ⎜ ⎞ ⎠ ⎟ (1) as shown in Figure 1: Figure 1. COUT CFF RA SW FB 3313 F01 BUCK SWITCHING REGULATOR (OPTIONAL) RB L VOUT Feedback Resistor Network Reference designators refer to the Block Diagram. 1% resistors are recommended to maintain output voltage accuracy. When optimizing the control loop for high band- width and optimal transient response, add a phase-lead capacitor connected from VOUT to FB. Operating Frequency Selection and Trade-Offs Selection of the operating frequency is a trade-off between efficiency, component size, transient response, and input voltage range. The advantage of high frequency operation is that smaller inductor and capacitor values may be used. Higher switching frequencies allow for higher control loop bandwidth and, therefore, faster transient response. The disadvantages of higher switching frequencies are lower efficiency, because of increased switching losses, and a smaller input voltage range, because of minimum switch on-time limitations. Although the maximum programmable switching fre- quency is 5MHz, the minimum on-time of the LTC3313 imposes a minimum operating duty cycle. The highest APPLICATIONS INFORMATION switching frequency (fSW(MAX)) for a given application can be calculated as follows: fSW MAX ( ) = VOUT tON MIN ( ) •VIN MAX ( ) (2) where VIN(MAX) is the maximum input voltage, VOUT is the output voltage, and tON(MIN) is the minimum top switch on- time. This equation shows that a slower switching fre- quency is necessary to accommodate a high VIN/VOUT ratio. The LTC3313 is capable of a maximum duty cycle of 100%, therefore, the VIN-to-VOUT dropout is limited by the RDS(ON) of the top switch, the inductor DCR, and the load current. Setting the Switching Frequency The LTC3313 uses a constant frequency PWM architecture. There are three methods to set the switching frequency. The first method is with a resistor (RT) tied from the RT pin to ground. The frequency can be programmed to switch from 500kHz to 5MHz. Table 1 shows the necessary RT value for a desired switching frequency. The RT resistor required for a desired switching frequency is calculated using the following formula: RT = 580 fSW − 16 (3) where RT is in kΩ and fSW is the desired switching fre- quency in MHz. Table 1. Switching Frequency vs RT Value fSW (MHz) RT (kΩ) 0.5 1210 1 549 2 274 2.2 243 3 178 4 130 5 100 |
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