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AD9772AST датащи(PDF) 16 Page - Analog Devices |
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AD9772AST датащи(HTML) 16 Page - Analog Devices |
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16 / 30 page ![]() REV. 0 AD9772 –16– The current output appearing at IOUTA and IOUTB is a func- tion of both the input code and IOUTFS and can be expressed as: IOUTA = (DAC CODE/16384) × I OUTFS (1) IOUTB = (16383 – DAC CODE)/16384 × I OUTFS (2) where DAC CODE = 0 to 16383 (i.e., Decimal Representation). As previously mentioned, IOUTFS is a function of the reference current IREF, which is nominally set by a reference voltage VREFIO, and external resistor, RSET. It can be expressed as: IOUTFS = 32 × I REF (3) where IREF = VREFIO/RSET (4) The two current outputs will typically drive a resistive load directly or via a transformer. If dc coupling is required, IOUTA and IOUTB should be directly connected to matching resistive loads, RLOAD, that are tied to analog common, ACOM. Note that RLOAD may represent the equivalent load resistance seen by IOUTA or IOUTB as would be the case in a doubly terminated 50 Ω or 75 Ω cable. The single-ended voltage output appearing at the IOUTA and IOUTB nodes is simply: VOUTA = IOUTA × R LOAD (5) VOUTB = IOUTB × R LOAD (6) Note that the full-scale value of VOUTA and VOUTB should not exceed the specified output compliance range of 1.25 V to pre- vent signal compression. To maintain optimum distortion and linearity performance, the maximum voltages at VOUTA and VOUTB should not exceed ±500 mV p-p. The differential voltage, VDIFF, appearing across IOUTA and IOUTB, is: VDIFF = (IOUTA – IOUTB) × R LOAD (7) Substituting the values of IOUTA, IOUTB and IREF; VDIFF can be expressed as: VDIFF = [(2 DAC CODE – 16383)/16384] × (32 RLOAD/RSET) × V REFIO (8) The last two equations highlight some of the advantages of operating the AD9772 differentially. First, the differential operation will help cancel common-mode error sources such as noise, distortion and dc offsets associated with IOUTA and IOUTB. Second, the differential code-dependent current and subsequent voltage, VDIFF, is twice the value of the single-ended voltage output (i.e., VOUTA or VOUTB), thus providing twice the signal power to the load. Note that the gain drift temperature performance for a single- ended (VOUTA and VOUTB) or differential output (VDIFF) of the AD9772 can be enhanced by selecting temperature tracking resistors for RLOAD and RSET due to their ratiometric relation- ship as shown in Equation 8. REFERENCE OPERATION The AD9772 contains an internal 1.20 V bandgap reference that can easily be disabled and overridden by an external reference. REFIO serves as either an output or input, depending on whether the internal or external reference is selected. If REFLO is tied to ACOM, as shown in Figure 32, the internal reference is activated, and REFIO provides a 1.20 V output. In this case, the internal reference must be compensated externally with a ceramic chip capacitor of 0.1 µF or greater from REFIO to REFLO. If any additional loading is required, REFIO should be buffered with an external amplifier having an input bias cur- rent less than 100 nA. +1.2V REF REFIO FSADJ CURRENT SOURCE ARRAY 250pF REFLO AVDD AD9772 2k 0.1 F ADDITIONAL LOAD OPTIONAL EXTERNAL REF BUFFER +2.7V TO +3.6VA Figure 32. Internal Reference Configuration The internal reference can be disabled by connecting REFLO to AVDD. In this case, an external 1.2 V reference such as the AD1580 may then be applied to REFIO as shown in Figure 33. The external reference may provide either a fixed reference voltage to enhance accuracy and drift performance or a varying reference voltage for gain control. Note that the 0.1 µF compen- sation capacitor is not required since the internal reference is disabled, and the high input impedance of REFIO minimizes any loading of the external reference. +1.2V REF REFIO FSADJ CURRENT SOURCE ARRAY 250pF REFLO AVDD AD9772 AD1580 +2.7 TO +3.6VA REFERENCE CONTROL AMPLIFIER RSET IREF = VREFIO/RSET 10k VREFIO Figure 33. External Reference Configuration REFERENCE CONTROL AMPLIFIER The AD9772 also contains an internal control amplifier that is used to regulate the DAC’s full-scale output current, IOUTFS. The control amplifier is configured as a V-I converter, as shown in Figure 33, such that its current output, IREF, is determined by the ratio of the VREFIO and an external resistor, RSET, as stated in Equation 4. IREF is copied over to the segmented current sources with the proper scaling factor to set IOUTFS as stated in Equation 3. The control amplifier allows a wide (10:1) adjustment span of IOUTFS over a 2 mA to 20 mA range by setting IREF between 62.5 µA and 625 µA. The wide adjustment span of I OUTFS provides several application benefits. The first benefit relates directly to the power dissipation of the AD9772’s DAC, which is proportional to IOUTFS (refer to the Power Dissipation sec- tion). The second benefit relates to the 20 dB adjustment, which is useful for system gain control purposes. IREF can be controlled using the single-supply circuit shown in Figure 34 for a fixed RSET. In this example, the internal refer- ence is disabled, and the voltage of REFIO is varied over its compliance range of 1.25 V to 0.10 V. REFIO can be driven |
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