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AD7939BCP Folha de dados(PDF) 20 Page - Analog Devices

Nome de Peças AD7939BCP
Descrição Electrónicos  8-Channel, 1.5 MSPS, 12-Bit and 10-Bit Parallel ADCs with a Sequencer
PDF  32 Pages
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Fabricante Electrônico  AD [Analog Devices]
Página de início  http://www.analog.com
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AD7938/AD7939
Preliminary Technical Data
0.47
µF
+1.25V
VIN
R
R
3R
0V
–1.25V
+2.5V
0V
VIN0
VIN7
VREFOUT
AD7938/
AD7939*
*ADDITIONAL PINS OMITTED FOR CLARITY
Figure 24. THD vs. Analog Input Frequency for Various Source Impedances
Figure 25
Figure 25. THD vs. Analog Input Frequency for Various Supply Voltages
shows a graph of the THD versus the analog input
frequency for various supplies while sampling at 1.5 MHz with
an SCLK of 20 MHz. In this case, the source impedance is 10 Ω.
ANALOG INPUTS
The AD7938/AD7939 have software selectable analog input
configurations. The user can choose either eight single-ended
inputs, four fully differential pairs, four pseudo-differential
pairs, or seven pseudo-differential inputs. The analog input
configuration is chosen by setting the MODE0/MODE1 bits in
the internal control register (see
).
Table 9
Single-Ended Mode
The AD7938/AD7939 can have eight single-ended analog input
channels by setting the MODE0 and MODE1 bits in the control
register to 0. In applications where the signal source has a high
impedance, it is recommended to buffer the analog input before
applying it to the ADC. The analog input range can be
programmed to be either 0 to VREF or 0 to 2 × VREF.
If the analog input signal to be sampled is bipolar, the internal
reference of the ADC can be used to externally bias up this
signal to make it of the correct format for the ADC.
Figure 26
Figure 26. Single-Ended Mode Connection Diagram
Differential Mode
The AD7938/AD7939 can have four differential analog input
pairs by setting the MODE0 and MODE1 bits in the control
register to 0 and 1, respectively.
Differential signals have some benefits over single-ended
signals, including noise immunity based on the device’s
common-mode rejection and improvements in distortion
performance. F
defines the fully differential analog
input of the AD7938/AD7939.
igure 27
Figure 27. Differential Input Definition
VREF
p-p
VIN+
VIN–
VREF
p-p
*ADDITIONAL PINS OMITTED FOR CLARITY
AD7938/
AD7939*
COMMON-MODE
VOLTAGE
The amplitude of the differential signal is the difference
between the signals applied to the VIN+ and VIN− pins in each
differential pair (i.e., VIN+ − VIN−). VIN+ and VIN− should be
simultaneously driven by two signals each of amplitude VREF
that are 180° out of phase (assuming the 0 to VREF range is
selected). The amplitude of the differential signal is therefore
−VREF to +VREF peak-to-peak (i.e., 2 × VREF). This is regardless of
the common mode (CM). The common mode is the average of
the two signals, i.e. (VIN+ + VIN−)/2 and is therefore the voltage
that the two inputs are centered on. This results in the span of
each input being CM ± VREF/2. This voltage has to be set up
externally and its range varies with VREF. As the value of VREF
increases, the common-mode range decreases. When driving
the inputs with an amplifier, the actual common-mode range is
determined by the amplifier’s output voltage swing.
Figure 28 and
show how the common-mode range
typically varies with VREF for a 5 V power supply using the 0 to
VREF range or 2 × VREF range, respectively. The common mode
must be in this range to guarantee the functionality of the
AD7938/AD7939.
Figure 29
shows a typical connection diagram when operating
the ADC in single-ended mode.
Rev. PrN | Page 20 of 32



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