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OP176GS データシート(PDF) 13 Page - Analog Devices |
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OP176GS データシート(HTML) 13 Page - Analog Devices |
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13 / 21 page ![]() OP176 REV. 0 –13– A Low Noise, +5 V/+10 V Reference In many high resolution applications, voltage reference noise can be a major contributor to overall system error. Monolithic voltage references often exhibit too much wide band noise to be used alone in these systems. Only through careful filtering and buffering of these monolithic references can one realize wide- band microvolt noise levels. The circuit illustrated in Figure 41 is an example of a low noise precision reference optimized for both ac and dc performance around the OP176. With a +10 V reference (the AD587), the circuit exhibits a 1 kHz spot output noise spectral density < 10 nV/ √Hz. The reference output voltage is selectable between 5 V and 10 V, depending only on the selection of the monolithic reference. The output table illustrated in the figure provides a selection of monolithic references compatible with this circuit. Figure 41. A Low Noise, +5 V/+10 V Reference In operation, the basic reference voltage is set by U1, either a 5 V or 10 V 3-terminal reference chosen from the table. In this case, the reference used is a 10 V buried Zener reference, but all U1 IC types shown can plug into the pinout and can be optionally trimmed. The stable 10 V from the reference is then applied to the R1-C1-C2 noise filter, which uses electrolytic capacitors for a low corner frequency. When electrolytic capacitors are used for filtering, one must be cognizant of their dc leakage current errors. Here, however, a dc bootstrap of C1 is used, so this capacitor sees only the small R2 dc drop as bias, effectively lowering its leakage current to negligible levels. The resulting low noise, dc-accurate output of the filter is then buffered by a low noise, unity gain op amp using an OP176. With the OP176’s low V OS and control of the source resistances, the dc performance of this circuit is quite good and will not compromise voltage reference accuracy and/or drift. Also, the OP176 has a typical current limit of 50 mA, so it can provide higher output currents when compared to a typical IC reference alone. A Differential ADC Driver High performance audio sigma-delta ADCs, such as the stereo 16-bit AD1878 and the 18-bit AD1879, present challenging design problems with regards to input interfacing. Because of an internal switched capacitor input circuit, the ADC input structure presents a difficult dynamic load to the drive amplifier with fast transient input currents due to their 3 MHz ADC sampling rate. Also, these ADCs inputs are differential with a rated full-scale range of ±6.3 V, or about 4.4 V rms. Hence, the ADC interface circuit of Figure 42 is designed to accept a balanced input signal to drive the low dynamic impedances seen at the inputs of these ADCs. The circuit uses two OP176 Figure 42. A Balanced Driver Circuit for Sigma-Delta ADCs amplifiers as inverting low-pass filters for their speed and high output current drive. The outputs of the OP176s then drive the differential ADC inputs through an RC network. This RC network buffers the amplifiers against step changes at the ADC sampling inputs using one differential (C3) and two common- mode connected capacitors (C4 and C5). The 51 Ω series resistors isolate the OP176s from the heavily capacitive loads, while the capacitors absorb the transient currents. Operating on ±12 V supplies, this circuit exhibits a very low THD + N of 0.001% at 5 V rms outputs. For single-ended drive sources, a third op amp unity gain inverter can be added between R2’s (+) input terminal and R4. For best results, short-lead, noninduc- tive capacitors are suggested for C3, C4, and C5 (which are placed close to the ADC), and 1% metal-film types for R1 through R6. For surface mount PCBs, these components can be NPO ceramic chip capacitors and thin-film chip resistors. C1 100pF R1 5.76k Ω R2 5.62k Ω ΩR5 51 Ω C2 100pF R3 5.49k Ω R4 5.62k Ω ΩR6 51 Ω C4 0.01µF U1 U2 C3 0.0047µF C5 0.01µF BALANCED INPUTS = AG, PIN 10 OR 18 VIN – VIN + TO AD1878/ AD1879 SIGMA- DELTA ADC L & R INPUTS U1, U2 = OP176 –12V ANALOG (+) (–) NOTES C1–C5 = NPO CERAMIC, NON-INDUCTIVE, C3-C5 CLOSE TO ADC R1–R6 = 1% METAL FILM 0.1µF 0.1µF 100µ/25V +12V ANALOG COM +VS –VS TO U1, U2 100µ/25V (+) USE FOR SINGLE-ENDED INPUTS 5k Ω 5k Ω OUTPUT TABLE VOUT 10V 10V 10V 10V 5V 5V 5V 5V U1 AD587 REF01 REF10 AD581 REF195 AD586 REF02 REF05 TOLERANCE (+/–mV) 5 TO 10 30 TO 100 30 TO 50 5 TO 30 2 TO 10 2.5 TO 20 15 TO 50 15 TO 25 U2 OP176 4 7 6 2 3 +15V R1 1k Ω R3 100 Ω R2 10k Ω C4 0.1µF C2 100µF/25V 6 5 8 4 RTRIM 10k Ω C1 100µF/25V C3 100µF/25V R5 1.1k Ω R4 100 Ω R6 3.3 Ω C5 10µF/25V VOUT REF COMMON (OPTIONAL) 2 U1 |
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