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ADA4627-1ACPZ-R2 数据表(PDF) 13 Page - Analog Devices |
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ADA4627-1ACPZ-R2 数据表(HTML) 13 Page - Analog Devices |
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13 / 16 page ![]() ADA4627-1 Rev. A | Page 13 of 16 oscillator is connected to the circuit under test, and the output of the circuit goes back to the analyzer. The analyzer has a tunable notch filter in lock step with the swept oscillator. This removes the fundamental frequency, but allows all of the harmonics and wideband noise to be measured with an integrating voltmeter. However, there is a switchable low-pass filter in series with the notch filter. If the sine wave is at 100 Hz, then the tenth harmonic is still at 1 kHz, thus having a low pass at 80 kHz is not a problem. When the oscillator reaches 20 kHz, the fourth harmonic (80 kHz) is partially attenuated, resulting in a lower reading from the voltmeter. When evaluating THD + N curves from any manufacturer, careful attention should be paid to the test conditions. The difference between an 80 kHz low-pass filter and a 500 kHz filter is shown in Figure 39. 0.01 0.1 1 10 100 FREQUENCY (kHz) 80kHz FILTER 500kHz FILTER 0.01 0.001 0.0001 0.00001 ADA4627-1 TA = 25°C VSY = ±15V VIN = 810mV RL = 600Ω Figure 39. THD + N vs. Frequency PRINTED CIRCUIT BOARD LAYOUT, BIAS CURRENT, AND BYPASSING To take advantage of the very low input bias current of the ADA4627-1 at room temperature, leakage paths must be considered. A printed circuit board, with dust and humidity, can have 100 MΩ of resistance over a few tenths of an inch. A one mV differential between the two points results in 10 pA of leakage current, more than the guaranteed maximum. The op amp inputs should be guarded by surrounding the nets with a metal trace maintained at the predicted voltage. In the case of an inverting configuration or transimpedance amplifier, (see Figure 40), the inverting and noninverting nodes can be surrounded by traces held at a quiet analog ground. 2 3 6 8 ADA4627-1 + VOUT – IN CF RF GUARD Figure 40. Inverting Amplifier with Guard For a noninverting configuration, the trace can be driven from the feedback divider, but the resistors should be chosen to offer a low impedance drive to the trace (see Figure 41). 3 2 6 8 ADA4627-1 + VOUT – VS + – GUARD RF RI Figure 41. Noninverting Amplifier with Guard The board layout should be compact with traces as short as possible. For second-order board considerations, such as triboelectric effects and piezoelectric effects, as well as a table of insulating material properties, see the AD549 data sheet. In some cases, shielding from air currents, may be helpful. A general rule of thumb, for op amps with gain bandwidth products higher than 1 MHz, bypass capacitors should be very close to the part, within 3 millimeters. Each supply should be bypassed with a 0.01 μF ceramic capacitor in parallel with a 1 μF bulk decoupling capacitor. The ceramic capacitors should be closer to the op amp. Sockets, which add inductance and capacitance, should not be used. OUTPUT PHASE REVERSAL Output phase reversal occurs in some amplifiers when the input common-mode voltage range is exceeded. As common-mode voltage is moved outside the common-mode range, the outputs of these amplifiers can suddenly jump in the opposite direction to the supply rail. This is the result of the differential input pair shutting down, causing a radical shifting of internal voltages that results in the erratic output behavior. The ADA4627-1 amplifier has been carefully designed to prevent any output phase reversal if both inputs are maintained within the specified input voltage range. If one or both inputs exceed the input voltage range but remain within the supply rails, an internal loop opens and the output varies. Therefore, the inputs should always be a minimum of 3 V away from either supply rail. DRIVING CAPACITIVE LOADS Adding capacitance to the output of any op amp results in additional phase shift, which reduces stability and leads to overshoot or oscillation. The ADA4627-1 has a high phase margin and low output impedance, so it can drive reasonable values of capacitance. This is a common situation when an amplifier is used to drive the input of switched capacitor ADCs. For other considerations and various circuit solutions, see the Analog Dialogue article titled Ask the Applications Engineer-25, Op Amps Driving Capacitive Loads, available at www.analog.com. |
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