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LTC660 датащи(PDF) 6 Page - Linear Technology |
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LTC660 датащи(HTML) 6 Page - Linear Technology |
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6 / 12 page ![]() 6 LTC660 APPLICATIONS INFORMATION Theory of Operation To understand the theory of operation for the LTC660, a review of a basic switched-capacitor building block is helpful. In Figure 2, when the switch is in the left position, capacitor C1 will charge to voltage V1. The total charge on C1 will be q1 = C1V1. The switch then moves to the right, discharging C1 to voltage V2. After this discharging time, the charge on C1 is q2 = C1V2. Note that charge has been transferred from the source V1 to the output V2. The amount of charge transferred is: ∆q = q1 – q2 = C1 (V1 – V2) If the switch is cycled “f” times per second, the charge transfer per unit time (i.e., current) is: I = f • ∆q = f • C1 (V1 – V2) Rewriting in terms of voltage and impedance equivalence, I VV fC VV REQUIV = − = − 12 11 12 / A new variable REQUIV has been defined such that REQUIV=1/fC1.Thus,theequivalentcircuitfortheswitched- capacitor network is as shown in Figure 3. Figure 4 shows that the LTC660 has the same switching action as the basic switched-capacitor building block. Figure 2. Switched-Capacitor Building Block Figure 3. Switched-Capacitor Equivalent Circuit LTC660 • F04 CAP+ (2) CAP– (4) GND (3) VOUT (5) V+ (8) LV (6) 4.5 × (1) OSC (7) OSC +2 CLOSED WHEN V+ > 3.0V C1 C2 BOOST SW1 SW2 φ φ + Figure 4. LTC660 Switched-Capacitor Voltage Converter Block Diagram This simplified circuit does not include finite on-resistance of the switches and output voltage ripple, however, it does give an intuitive feel for how the device works. For ex- ample, if you examine power conversion efficiency as a function of frequency this simple theory will explain how the LTC660 behaves. The loss and hence the efficiency is set by the output impedance. As frequency is decreased, the output impedance will eventually be dominated by the 1/fC1 term and voltage losses will rise decreasing the efficiency. As the frequency increases the quiescent cur- rent increases. At high frequency this current loss be- comes significant and the power efficiency starts to de- crease. The LTC660 oscillator frequency is designed to run where the voltage loss is a minimum. With the external 150 µF capacitors the effective output impedance is determined by the internal switch resistances and the capacitor ESRs. LV (Pin 6) The internal logic of the LTC660 runs between V+ and LV (Pin 6). For V+ ≥3V,aninternalswitchshortsLVtoground (Pin 3). For V+ < 3V, the LV pin should be tied to ground. For V+ ≥3V,theLVpincanbetiedtogroundorleftfloating. OSC (Pin 7) and BOOST (Pin 1) The switching frequency can be raised, lowered or driven from an external source. Figure 5 shows a functional diagram of the oscillator circuit. C1 C2 V2 660 F02 V1 RL C2 V2 660 F03 V1 RL REQUIV REQUIV = 1 fC1 |
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