參數(shù)資料
    型號: AD7669JPZ
    廠商: Analog Devices Inc
    文件頁數(shù): 7/20頁
    文件大?。?/td> 0K
    描述: IC I/O PORT 8BIT ANLG 28-PLCC
    標(biāo)準(zhǔn)包裝: 1
    系列: LC²MOS
    應(yīng)用: 模擬 I/O
    接口: 總線
    電源電壓: 4.75 V ~ 5.25 V
    封裝/外殼: 28-LCC(J 形引線)
    供應(yīng)商設(shè)備封裝: 28-PLCC(11.51x11.51)
    包裝: 管件
    安裝類型: 表面貼裝
    AD7569/AD7669
    –15–
    REV. B
    an RD pulse for the AD7569/AD7669. This RD pulse accesses
    data from the ADC and places the conversion result into a regis-
    ter on the 74646. The rising edge of this pulse generates an in-
    terrupt request to the processor. The conversion result is read
    from the 74646 register by performing an I/O read to the
    decoded address of the 74646. Writing data to the relevant
    AD7569/AD7669 DAC involves an I/O write to the 74646,
    which transfers the data to the data inputs of the AD7569/
    AD7669. Data is latched into the selected DAC register on the
    rising edge of IOW.
    APPLYING THE AD7569/AD7669 DAC
    An internal gain/offset network on the AD7569/AD7669 allows
    several output voltage ranges. The part can produce unipolar
    output ranges of 0 V to +1.25 V or 0 V to +2.5 V and bipolar
    output ranges of –1.25 V to +1.25 V or –2.5 V to +2.5 V. Con-
    nections for these various output ranges are outlined below.
    UNIPOLAR (0 V to +1.25 V) CONFIGURATION
    The first of the configurations provides an output voltage range
    of 0 V to +1.25 V. This is achieved by tying the VSS and
    RANGE inputs to AGNDDAC(= 0 V). Figure 21 shows the con-
    figuration of the AD7569 to achieve this output range. A similar
    configuration of the AD7669 gives the same output range. The
    table for output voltage versus the digital code in the DAC regis-
    ter is shown in Table IV.
    Figure 21. AD7569 Unipolar (0 V to +1.25 V) Operation
    Table IV. Unipolar (0 V to +1.25 V) Code Table
    DAC Register Contents
    MSB
    LSB
    Analog Output, VOUT
    1111
    +VREF
    255
    256
    1000
    0001
    +VREF
    129
    256
    1000
    0000
    +VREF
    128
    256
    = +VREF/2
    0111
    1111
    +VREF
    127
    256
    0000
    0001
    +VREF
    1
    256
    0000
    0 V
    NOTE: 1 LSB = (VREF) (2
    –8) = V
    REF (1/256); VREF = +1.25 V Nominal
    UNIPOLAR (0 V to +2.5 V) CONFIGURATION
    The 0 V to +2.5 V output voltage range is achieved by tying VSS
    to AGNDDAC(= 0 V) and the RANGE input to VDD. The table
    for output voltage versus digital code is as in Table IV with
    2.VREF replacing VREF. Note that for this range
    1 LSB
    = 2.V
    REF (2
    8 ) = V
    REF
    1
    128
    BIPOLAR (–1.25 V to +1.25 V) CONFIGURATION
    The first of the bipolar configurations is achieved by tying the
    RANGE input to AGNDDAC(= 0 V) and VSS to –5 V. The VSS
    voltage level at which the AD7569/AD7669 changes to bipolar
    operation is approximately –1 V. When the part is configured
    for bipolar outputs, the input coding becomes twos comple-
    ment. The table for output voltage versus the digital code in the
    DAC register is shown in Table V. Note as with the unipolar
    configuration, a digital input code of all 0s produces an output
    of 0 V. It should be noted, however, that a low pulse on the
    RESET
    line for the bipolar ranges sets the output voltage to
    negative full scale.
    Table V. Bipolar (–1.25 V to +1.25 V) Code Table
    DAC Register Contents
    MSB
    LSB
    Analog Output, VOUT
    0111
    1111
    +VREF
    127
    128
    0000
    0001
    +VREF
    1
    128
    0000
    0 V
    1111
    –VREF
    1
    128
    1000
    0001
    –VREF
    127
    128
    1000
    0000
    –VREF
    128
    = –VREF
    NOTE: 1 LSB = (VREF)(2
    –7) = V
    REF (1/128)
    BIPOLAR (–2.5 V to +2.5 V) CONFIGURATION
    The –2.5 V to +2.5 V bipolar output range is achieved by tying
    the RANGE input to VDD and the VSS input to –5 V. Once
    again, the input coding is 2s complement. The table for output
    voltage versus digital code is as in Table V with 2.VREF replacing
    VREF. Note that for this range
    1 LSB
    = 4.V
    REF (2
    8 ) = V
    REF
    1
    64
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