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AD9671EBZ датащи(PDF) 25 Page - Analog Devices |
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AD9671EBZ датащи(HTML) 25 Page - Analog Devices |
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25 / 61 page ![]() AD9675 Data Sheet Rev. A | Page 24 of 60 For other values of CLG, determine the high-pass filter cutoff frequency by scaling the values from Table 10 or calculating based on CLG, LNAGAIN, and gm, as shown in Equation 6. LG HP LG m GAIN LG HP C f C g LNA C f nF 10 2 1 ) ( (6) where fHP is the high-pass filter cutoff frequency (see Table 10). Variable Gain Amplifier (VGA) The differential X-AMP VGA provides precise input attenu- ation and interpolation. It has a low input referred noise of 2.5 nV/√Hz and excellent gain linearity. The VGA is driven by a fully differential input signal from the LNA. The X-AMP archi- tecture produces a linear-in-dB gain law conformance and low distortion levels—deviating only ±0.5 dB or less from the ideal. The gain slope is monotonic with respect to the control voltage and is stable with variations in process, temperature, and supply. The resulting total gain range is 45 dB, which allows range loss at the endpoints. The X-AMP inputs are part of a PGA that completes the VGA. The PGA in the VGA can be programmed to a gain of 21 dB, 24 dB, 27 dB, or 30 dB, allowing for optimization of channel gain for different imaging modes in the ultrasound system. The VGA bandwidth is greater than 100 MHz. The input stage ensures excellent frequency response uniformity across the gain setting. For TGC mode, this minimizes time delay variation across the gain range. Gain Control The analog gain control interface, GAIN±, is a differential input. VGAIN varies the gain of all VGAs through the interpolator by selecting the appropriate input stages connected to the input attenuator. The nominal VGAIN range is 14 dB/V from −1.6 V to +1.6 V, with the best gain linearity from approximately −1.44 V to +1.44 V, where the error is typically less than ±0.5 dB. For VGAIN voltages of greater than 1.44 V and less than −1.44 V, the error increases. The value of GAIN± can exceed the supply voltage by 1 V without gain foldover. Gain control response time is less than 750 ns to settle within 10% of the final value for a change from minimum to maximum gain. The differential input pins, GAIN+ and GAIN−, can interface to an amplifier, as shown in Figure 38. Decouple and drive the GAIN+ and GAIN− pins to accommodate a 3.2 V full-scale input. Figure 38. Differential GAIN± Pin Configuration Use Address 0x011, Bits[7:4], to disable the analog gain control and to control the attenuator digitally. The control range is 45 dB and the step size is 3.5 dB. VGA Noise In a typical application, a VGA compresses a wide dynamic range input signal to within the input span of an ADC. The input referred noise of the LNA limits the minimum resolvable input signal, whereas the output referred noise, which depends primarily on the VGA, limits the maximum instantaneous dynamic range that can be processed at any one particular gain control voltage. This latter limit is set in accordance with the total noise floor of the ADC. The output referred noise is a flat 40 nV/√Hz (postamp gain = 24 dB) over most of the gain range because it is dominated by the fixed output referred noise of the VGA. At the high end of the gain control range, the noise of the LNA and the source prevail. The input referred noise reaches its minimum value near the maximum gain control voltage, where the input referred contribution of the VGA is miniscule. At lower gains, the input referred noise and, therefore, the noise figure increase as the gain decreases. The instantaneous dynamic range of the system is not lost, however, because the input capacity increases as the input referred noise increases. The contribution of the ADC noise floor has the same dependence. The important relationship is the magnitude of the VGA output noise floor relative to that of the ADC. Gain control noise is a concern in very low noise applications. Thermal noise in the gain control interface can modulate the channel gain. The resulting noise is proportional to the output signal level and is usually evident only when a large signal is present. Take care to minimize noise impinging at the GAIN± inputs. Use an external RC filter to remove VGAIN source noise. Ensure that the filter bandwidth is sufficient to accommodate the desired control bandwidth and attenuate unwanted switching noise from the external DACs used to drive the gain control. The AD9675 can bypass the GAIN± inputs and control the gain of the attenuator digitally (see the Gain Control section). This mode removes any external noise contributions when active gain control is not needed. Antialiasing Filter (AAF) The filter that the signal reaches prior to the ADC is used to reject dc signals and to band limit the signal for antialiasing. The antialiasing filter is a combination of a single-pole, high-pass filter and a second-order, low-pass filter. Configure the high- pass filter as a ratio of the low-pass filter cutoff frequency using Address 0x02B, Bits[1:0]. The filter uses on-chip tuning to trim the capacitors and, in turn, to set the desired low-pass cutoff frequency and reduce variations. The default −3 dB low-pass filter cutoff is 1/3, 1/4.5, or 1/6 of the ADC sample clock rate. The cutoff can be scaled to 0.75, 0.8, 0.9, 1.0, 1.13, 1.25, or 1.45 times this frequency using Address 0x00F. The cutoff tolerance (±10%) is maintained from 8 MHz to 18 MHz for low bandwidth mode or 13.5 MHz to 30 MHz for high bandwidth mode. ADA4938-1 ADA4938-2 249Ω AD9675 249Ω ±0.8V DC AT 0.8V CM ±0.8V DC AT 0.8V CM ±1.6V 249Ω 0.8V CM 249Ω 100Ω 0.01µF GAIN+ GAIN– 0.01µF 100Ω 31.3kΩ 10kΩ |
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