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  • 參數(shù)資料
    型號: TL7660IDGKRG4
    廠商: TEXAS INSTRUMENTS INC
    元件分類: 穩(wěn)壓器
    英文描述: SWITCHED CAPACITOR CONVERTER, 9 kHz SWITCHING FREQ-MAX, PDSO8
    封裝: GREEN, PLASTIC, MSOP-8
    文件頁數(shù): 22/22頁
    文件大小: 566K
    代理商: TL7660IDGKRG4
    www.ti.com
    Typical Applications
    Simple Negative Voltage Converter
    1
    2
    3
    4
    8
    7
    6
    5
    +
    TL7660
    +
    -
    10 F
    V+
    10 F
    V
    = –V+
    OUT
    CMOS VOLTAGE CONVERTER
    SCAS794 – JUNE 2006
    APPLICATION INFORMATION (continued)
    The majority of applications will undoubtedly utilize the TL7660 for generation of negative supply voltages.
    Figure 3 shows typical connections to provide a negative supply negative (GND) for supply voltages below
    3.5 V.
    Figure 3. Simple Negative-Voltage Converter
    The output characteristics of the circuit in Figure 3 can be approximated by an ideal voltage source in series with
    a resistance. The voltage source has a value of –VCC. The output impedance (RO) is a function of the ON
    resistance of the internal MOS switches (shown in Figure 2), the switching frequency, the value of C1 and C2,
    and the ESR (equivalent series resistance) of C1 and C2. A good first order approximation for RO is:
    RO ≈ 2(RSW1 + RSW3 + ESRC1) + 2(RSW2 + RSW4 + ESRC1)
    RO ≈ 2(RSW1 + RSW3 + ESRC1) + 1/fPUMPC1 + ESRC2
    Where fPUMP = fOSC/2 , RSWX = MOSFET switch resistance.
    Combining the four RSWX terms as RSW, we see that:
    RO ≈ 2 (RSW) + 1/fPUMPC1 + 4 (ESRC1) + ESRC2
    RSW, the total switch resistance, is a function of supply voltage and temperature (See the Output Source
    Resistance graphs). Careful selection of C1 and C2 reduces the remaining terms, minimizing the output
    impedance. High value capacitors reduce the 1/fPUMPC1 component, and low ESR capacitors lower the ESR
    term. Increasing the oscillator frequency reduces the 1/fPUMPC1 term but may have the side effect of a net
    increase in output impedance when C1 > 10 F and there is no longer enough time to fully charge the capacitors
    every cycle. In a typical application where fOSC = 10 kHz and C = C1 = C2 = 10 F:
    RO ≈ 2(23) + 1/(5 × 10
    3)(10–5) + 4(ESR
    C1) + ESRC2
    RO ≈ 46 + 20 + 5 (ESRC)
    Because the ESRs of the capacitors are reflected in the output impedance multiplied by a factor of 5, a high
    value could potentially swamp out a low 1/fPUMPC1 term, rendering an increase in switching frequency or filter
    capacitance ineffective. Typical electrolytic capacitors may have ESRs as high as 10
    .
    9
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