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OP27 数据表(PDF) 13 Page - Analog Devices |
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OP27 数据表(HTML) 13 Page - Analog Devices |
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13 / 16 page ![]() REV. A OP27 –13– Therefore, for low-frequency applications, the OP07 is better than the OP27/OP37 when RS > 3 k Ω. The only exception is when gain error is important. Figure 6 illustrates the 10 Hz noise. As expected, the results are between the previous two figures. For reference, typical source resistances of some signal sources are listed in Table I. Table I. Source Device Impedance Comments Strain Gauge <500 Ω Typically used in low- frequency applications. Magnetic <1500 Ω Low is very important to Tapehead reduce self-magnetization problems when direct coupling is used. OP27 IB can be neglected. Magnetic <1500 Ω Similar need for low IB in Phonograph direct coupled applications. Cartridges OP27 will not introduce any self-magnetization problem. Linear Variable <1500 Ω Used in rugged servo-feedback Differential applications. Bandwidth of Transformer interest is 400 Hz to 5 kHz. Open-Loop Gain Frequency at OP07 OP27 OP37 3 Hz 100 dB 124 dB 125 dB 10 Hz 100 dB 120 dB 125 dB 30 Hz 90 dB 110 dB 124 dB For further information regarding noise calculations, see “Minimization of Noise in Op Amp Applications,” Application Note AN-15. RS – SOURCE RESISTANCE – 10 50 10k 5 500 1k 5k 1 100 50 100 50k OP07 5534 OP27/37 REGISTER NOISE ONLY OP08/108 RS1 RS2 1 RS UNMATCHED e.g. RS = RS1 = 10k , R S2 = 0 2 RS MATCHED e.g. RS = 10k , R S1 = RS2 = 5k 1 2 Figure 6. 10 Hz Noise vs. Source Resistance (Includes Resistor Noise) AUDIO APPLICATIONS The following applications information has been abstracted from a PMI article in the 12/20/80 issue of Electronic De- sign magazine and updated. Figure 7 is an example of a phono pre-amplifier circuit using the OP27 for A1; R1-R2-C1-C2 form a very accurate RIAA net- work with standard component values. The popular method to accomplish RIAA phono equalization is to employ frequency- dependent feedback around a high-quality gain block. Properly chosen, an RC network can provide the three necessary time constants of 3180, 318, and 75 µs.1 For initial equalization accuracy and stability, precision metal film resistors and film capacitors of polystyrene or polypropy- lene are recommended since they have low voltage coefficients, dissipation factors, and dielectric absorption.4 (High-K ceramic capacitors should be avoided here, though low-K ceramics— such as NPO types, which have excellent dissipation factors and somewhat lower dielectric absorption—can be considered for small values.) Ca 150pF A1 OP27 Ra 47.5k R1 97.6k MOVING MAGNET CARTRIDGE INPUT R2 7.87k R3 100 C1 0.03 F C2 0.01 F C3 0.47 F R4 75k ++ C4 (2) 220 F LF ROLLOFF OUT IN OUTPUT R5 100k G = 1kHz GAIN = 0.101 ( ) R1 R3 1 + = 98.677 (39.9dB) AS SHOWN Figure 7. The OP27 brings a 3.2 nV/ √Hz voltage noise and 0.45 pA/√Hz current noise to this circuit. To minimize noise from other sources, R3 is set to a value of 100 Ω, which generates a voltage noise of 1.3 nV/ √Hz. The noise increases the 3.2 nV/√Hz of the amplifier by only 0.7 dB. With a 1 k Ω source, the circuit noise measures 63 dB below a 1 mV reference level, unweighted, in a 20 kHz noise bandwidth. Gain (G) of the circuit at 1 kHz can be calculated by the expression: G R R =+ 0 101 1 1 3 . For the values shown, the gain is just under 100 (or 40 dB). Lower gains can be accommodated by increasing R3, but gains higher than 40 dB will show more equalization errors because of the 8 MHz gain-bandwidth of the OP27. This circuit is capable of very low distortion over its entire range, generally below 0.01% at levels up to 7 V rms. At 3 V output levels, it will produce less than 0.03% total harmonic distortion at frequencies up to 20 kHz. Capacitor C3 and resistor R4 form a simple –6 dB-per-octave rumble filter, with a corner at 22 Hz. As an option, the switch- selected shunt capacitor C4, a nonpolarized electrolytic, bypasses the low-frequency rolloff. Placing the rumble filter’s high-pass action after the preamp has the desirable result of discriminating |
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