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    參數(shù)資料
    型號(hào): TLV5606D
    廠商: Texas Instruments, Inc.
    英文描述: 2.7 V TO 5.5 V LOW POWER 10-BIT DIGITAL-TO-ANALOG CONVERTERS WITH POWER DOWN
    中文描述: 2.7 V至5.5 V低功耗10位數(shù)字至模擬與電源降壓轉(zhuǎn)換器
    文件頁數(shù): 4/22頁
    文件大小: 298K
    代理商: TLV5606D
    TLV5606
    2.7 V TO 5.5 V LOW POWER 10-BIT DIGITAL-TO-ANALOG
    CONVERTERS WITH POWER DOWN
    SLAS259 – DECEMBER 1999
    4
    POST OFFICE BOX 655303
    DALLAS, TEXAS 75265
    electrical characteristics over recommended operating free-air temperature range (unless
    otherwise noted) (continued)
    static DAC specifications R
    L
    = 10 k
    , C
    L
    = 100 pF
    PARAMETER
    TEST CONDITIONS
    MIN
    TYP
    MAX
    UNIT
    Resolution
    10
    10
    bits
    INL
    Integral nonlinearity
    See Note 4
    ±
    0.5
    ±
    0.2
    ±
    1.5
    ±
    1
    ±
    10
    LSB
    DNL
    Differential nonlinearity
    See Note 5
    LSB
    EZS
    Zero-scale error (offset error at zero scale)
    See Note 6
    mV
    Zero-scale-error temperature coefficient
    See Note 7
    10
    ppm/
    °
    C
    % of
    FS
    voltage
    EG
    Gain error
    See Note 8
    ±
    0.6
    Gain-error temperature coefficient
    4. The relative accuracy or integral nonlinearity (INL) sometimes referred to as linearity error, is the maximum deviation of the output
    from the line between zero and full scale excluding the effects of zero code and full-scale errors.
    5. The differential nonlinearity (DNL) sometimes referred to as differential error, is the difference between the measured and ideal 1
    LSB amplitude change of any two adjacent codes. Monotonic means the output voltage changes in the same direction (or remains
    constant) as a change in the digital input code.
    6. Zero-scale error is the deviation from zero voltage output when the digital input code is zero.
    7. Zero-scale-error temperature coefficient is given by: EZSTC = [EZS(Tmax) – EZS(Tmin)]/Vref
    ×
    106/(Tmax – Tmin).
    8. Gain error is the deviation from the ideal output (2Vref – 1 LSB) with an output load of 10 k
    excluding the effects of the zero-error.
    9. Gain temperature coefficient is given by: EGTC = [EG(Tmax) – EG (Tmin)]/Vref
    ×
    106/(Tmax – Tmin).
    output specifications
    See Note 9
    10
    ppm/
    °
    C
    NOTES:
    PARAMETER
    TEST CONDITIONS
    MIN
    TYP
    MAX
    UNIT
    VO
    Voltage output range
    RL = 10 k
    0
    AVDD–0.1
    V
    Output load regulation accuracy
    RL = 2 k
    , vs 10 k
    0.1
    ±
    0.25
    % of FS
    voltage
    reference input (REF)
    PARAMETER
    TEST CONDITIONS
    MIN
    TYP
    MAX
    UNIT
    VI
    RI
    CI
    Input voltage range
    0
    VDD–1.5
    V
    Input resistance
    10
    M
    pF
    Input capacitance
    5
    Reference input bandwidth
    REFIN = 0 2 V
    REFIN = 0.2 Vpp + 1.024 V dc
    + 1 024 V dc
    Slow
    525
    kHz
    Fast
    1.3
    MHz
    Reference feed through
    NOTE 10: Reference feedthrough is measured at the DAC output with an input code = 0x000.
    REFIN = 1 Vpp at 1 kHz + 1.024 V dc (see Note 10)
    –75
    dB
    digital inputs
    PARAMETER
    TEST CONDITIONS
    MIN
    TYP
    MAX
    UNIT
    μ
    A
    μ
    A
    pF
    IIH
    IIL
    CI
    High-level digital input current
    VI = VDD
    VI = 0 V
    ±
    1
    ±
    1
    Low-level digital input current
    Input capacitance
    3
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