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    參數(shù)資料
    型號(hào): MPC92432FAR2
    廠商: FREESCALE SEMICONDUCTOR INC
    元件分類: 時(shí)鐘產(chǎn)生/分配
    英文描述: 1360 MHz, OTHER CLOCK GENERATOR, PQFP48
    封裝: LQFP-48
    文件頁(yè)數(shù): 7/20頁(yè)
    文件大?。?/td> 412K
    代理商: MPC92432FAR2
    Advanced Clock Drivers Devices
    Freescale Semiconductor
    15
    MPC92432
    VCC_PLL Filter
    The MPC92432 is a mixed analog/digital product. Its
    analog circuitry is naturally susceptible to random noise,
    especially if this noise is seen on the power supply pins.
    Random noise on the VCC_PLL pin impacts the device AC
    characteristics. The MPC92432 provides separate power
    supplies for the digital circuitry (VCC) and the internal PLL
    (VCC_PLL) of the device. The purpose of this design
    technique is to isolate the high switching noise digital outputs
    from the relatively sensitive internal analog phase-locked
    loop. In digital system environments where it is more difficult
    to minimize noise on the power supplies a second level of
    isolation is recommended: a power supply filter on the
    VCC_PLL pin for the MPC92432.
    Figure 7. VCC_PLL Power Supply Filter
    Figure 7 illustrates a recommended power supply filter
    scheme.
    The MPC92432 is most susceptible to noise with spectral
    content in the 100 kHz to 1 MHz range. Therefore, the filter
    should be designed to target this range. The key parameter
    that needs to be met in the final filter design is the DC voltage
    drop that will be seen between the VCC supply and the
    VCC_PLL pin of the MPC92432. From the data sheet, the
    VCC_PLL current (the current sourced through the VCC_PLL
    pin) is maximum 10 mA, assuming that a minimum of 2.985 V
    must be maintained on the VCC_PLL pin. The resistor shown
    in Figure 7 must have a resistance of 1015
    to meet the
    voltage drop criteria. The minimum values for RF and the filter
    capacitor CF are defined by the filter characteristics: the RC
    filter should provide an attenuation greater than 40 dB for
    noise whose spectral content is above 100 kHz. In the
    recommended filter shown in Figure 7 the filter cut-off
    frequency is around 3.04.5 kHz and the noise attenuation at
    100 kHz is better than 42 dB.
    As the noise frequency crosses the series resonant point
    of an individual capacitor its overall impedance begins to look
    inductive and thus increases with increasing frequency. The
    parallel capacitor combination shown ensures that a low
    impedance path to ground exists for frequencies well above
    the bandwidth of the PLL.
    The On-Chip Crystal Oscillator
    The MPC92432 features an integrated on-chip crystal
    oscillator to minimize system implementation cost. The
    integrated oscillator is a Pierce-type that uses the crystal in
    its parallel resonance mode. It is recommended to use a 15
    to 20 MHz crystal with a load specification of CL =10pF.
    Crystals with a load specification of CL = 20 pF may be used
    at the expense of an resulting slightly higher frequency than
    specified for the crystal. Externally connected capacitors on
    both the XTAL_IN and XTAL_OUT pins are not required but
    can be used to fine-tune the crystal frequency as desired.
    The crystal, the trace and optional capacitors should be
    placed on the board as close as possible to the MPC92432
    XTAL_IN and XTAL_OUT pins to reduce crosstalk of active
    signals into the oscillator. Short and wide traces further
    reduce parasitic inductance and resistance. It is further
    recommended to guard the crystal circuit by placing a ground
    ring around the traces and oscillator components.
    RF = 10–15
    VCC
    CF = 22 F
    10 nF
    33...100 nF
    VCC_PLL
    VCC
    MPC92432
    7
    Table 23. Recommended Crystal Specifications
    Parameter
    Value
    Crystal Cut
    Fundamental AT Cut
    Resonance Mode
    Parallel
    Crystal Frequency
    16–20 MHz
    Shunt Capacitance C0
    5–7 pF
    Load Capacitance CL
    10 pF
    Equivalent Series Resistance ESR
    20–60
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