AD9834CRUZ Analog Devices Inc, AD9834CRUZ Datasheet - Page 15

IC DDS 10BIT 75MHZ LP 20-TSSOP

AD9834CRUZ

Manufacturer Part Number
AD9834CRUZ
Description
IC DDS 10BIT 75MHZ LP 20-TSSOP
Manufacturer
Analog Devices Inc
Datasheet

Specifications of AD9834CRUZ

Design Resources
Amplitude Control Circuit for AD9834 Waveform Generator (CN0156)
Resolution (bits)
10 b
Master Fclk
75MHz
Tuning Word Width (bits)
28 b
Voltage - Supply
2.3 V ~ 5.5 V
Operating Temperature
-40°C ~ 105°C
Mounting Type
Surface Mount
Package / Case
20-TSSOP
Synthesizer Type
Frequency
Frequency
75MHz
Supply Voltage Range
2.3V To 5.5V
Supply Current
17mA
Operating Temperature Range
-40°C To +105°C
Digital Ic Case Style
TSSOP
No. Of Pins
20
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
For Use With
EVAL-AD9834EBZ - BOARD EVAL FOR AD9834
Lead Free Status / RoHS Status
Lead free / RoHS Compliant, Lead free / RoHS Compliant

Available stocks

Company
Part Number
Manufacturer
Quantity
Price
Part Number:
AD9834CRUZ
Manufacturer:
ADI
Quantity:
860
THEORY OF OPERATION
Sine waves are typically thought of in terms of their magnitude
form a(t) = sin (ωt). However, these are nonlinear and not easy
to generate except through piecewise construction. On the
other hand, the angular information is linear in nature, that is,
the phase angle rotates through a fixed angle for each unit of
time. The angular rate depends on the frequency of the signal
by the traditional rate of ω = 2π f .
+1
–1
2p
0
0
Figure 27. Sine Wave
MAGNITUDE
PHASE
Rev. C | Page 15 of 36
Knowing that the phase of a sine wave is linear and given a
reference interval (clock period), the phase rotation for that
period can be determined.
Solving for ω,
Solving for f and substituting the reference clock frequency for
the reference period (1/ f
The AD9834 builds the output based on this simple equation. A
simple DDS chip can implement this equation with three major
subcircuits: numerically controlled oscillator + phase modulator,
SIN ROM, and digital-to-analog converter (DAC). Each of these
subcircuits is discussed in the Circuit Description section.
Δ Phase = ω Δ t
ω = Δ Phase /Δ t = 2π f
f = Δ Phase × f
MCLK
/ 2π
MCLK
= Δ t ),
AD9834

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