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AD5544ACPZ-1-R2 数据表(PDF) 20 Page - Analog Devices |
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AD5544ACPZ-1-R2 数据表(HTML) 20 Page - Analog Devices |
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20 / 24 page ![]() AD5544/AD5554 Data Sheet Rev. H | Page 20 of 24 APPLICATIONS INFORMATION The AD5544/AD5554 are, inherently, two-quadrant multiplying DACs. That is, they can be easily set up for unipolar output operation. The full-scale output polarity is the inverse of the reference input voltage. In some applications, it may be necessary to generate the full four-quadrant multiplying capability or a bipolar output swing. This is easily accomplished using an additional external ampli- fier (A2) configured as a summing amplifier (see Figure 27). A2 A1 ONE CHANNEL AD5544 IOUTX RFBX VREFX VDD VSS AGNDF AGNDX VOUT 10k Ω 10k Ω 5k Ω AD588 VREF 10V DIGITAL INTERFACE CONNECTIONS OMITTED FOR CLARITY. –10V < VOUT < +10V Figure 27. Four-Quadrant Multiplying Application Circuit In this circuit, the first and second amplifiers (A1 and A2) provide a total gain of 2, which increases the output voltage span to 20 V. Biasing the external amplifier with a 10 V offset from the reference voltage results in a full four-quadrant multiplying circuit. The transfer equation of this circuit shows that both negative and positive output voltages are created as the input data (D) is incremented from code zero (VOUT = −10 V) to midscale (VOUT = 0 V) to full scale (VOUT = 10 V). REF OUT V D V − × −1 768 , 32 (for the AD5544) (3) REF OUT V D V − × −1 8192 (for the AD5554) (4) REFERENCE SELECTION When selecting a reference for use with the AD55xx series of current output DACs, pay attention to the output voltage, temperature coefficient specification of the reference. Choosing a precision reference with a low output temperature coefficient minimizes error sources. Table 10 lists some of the references available from Analog Devices, Inc., that are suitable for use with this range of current output DACs. AMPLIFIER SELECTION The primary requirement for the current-steering mode is an amplifier with low input bias currents and low input offset voltage. Because of the code-dependent output resistance of the DAC, the input offset voltage of an op amp is multiplied by the variable gain of the circuit. A change in this noise gain between two adjacent digital fractions produces a step change in the output voltage due to the amplifier’s input offset voltage. This output voltage change is superimposed upon the desired change in output between the two codes and gives rise to a differential linearity error, which, if large enough, can cause the DAC to be nonmonotonic. The input bias current of an op amp also generates an offset at the voltage output because of the bias current flowing in the feedback resistor, RFB. Common-mode rejection of the op amp is important in voltage- switching circuits because it produces a code-dependent error at the voltage output of the circuit. Provided that the DAC switches are driven from true wideband, low impedance sources (VIN and AGND), they settle quickly. Consequently, the slew rate and settling time of a voltage-switching DAC circuit is determined largely by the output op amp. To obtain minimum settling time in this configuration, minimize capacitance at the VREF node (the voltage output node in this application) of the DAC. This is done by using low input capacitance buffer amplifiers and careful board design. Analog Devices offers a wide range of amplifiers for both precision dc and ac applications, as listed in Table 11 and Table 12. |
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