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ADC912AFP Arkusz danych(PDF) 1 Page - Analog Devices

Numer części ADC912AFP
Szczegółowy opis  CMOS Microprocessor-Compatible 12-Bit A/D Converter
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REV. B
Information furnished by Analog Devices is believed to be accurate and
reliable. However, no responsibility is assumed by Analog Devices for its
use, nor for any infringements of patents or other rights of third parties that
may result from its use. No license is granted by implication or otherwise
under any patent or patent rights of Analog Devices.
a
ADC912A
One Technology Way, P.O. Box 9106, Norwood, MA 02062-9106, U.S.A.
Tel: 781/329-4700
www.analog.com
Fax: 781/326-8703
© Analog Devices, Inc., 2001
CMOS Microprocessor-Compatible
12-Bit A/D Converter
FUNCTIONAL BLOCK DIAGRAM
THREE-STATE
OUTPUT
DRIVERS
THREE-STATE
OUTPUT
DRIVERS
CLOCK
OSCILLATOR
CONTROL
LOGIC
MULTIPLEXER
12-BIT LATCH
12-BIT DAC
SUCCESSIVE
APPROXIMATION
REGISTER
ADC912A
AGND VREFIN
AIN
VDD
VSS
CLK OUT
CLK IN
HBEN
CS
RD
BUSY
D11
D7
D8
D4 DGND D3/11 D0/8
5k
48
8
ANALOG INPUT
100
90
10
0%
TRANSITION NOISE
Figure 2. Transition Noise Cross Plot
FEATURES
Low Cost
Low Transition Noise between Code
12-Bit Accurate
1/2 LSB Nonlinearity Error over Temperature
No Missing Codes at All Temperatures
10
s Conversion Time
Internal or External Clock
8- or 16-Bit Data Bus Compatible
Improved ESD Resistant Design
Latchup Resistant Epi-CMOS Processing
Low 95 mW Power Consumption
Space-Saving 24-Lead 0.3" DIP, or 24-Lead SOIC
APPLICATIONS
Data Acquisition Systems
DSP System Front End
Process Control Systems
Portable Instrumentation
GENERAL DESCRIPTION
The ADC912A is a monolithic 12-bit accurate CMOS A/D
converter. It contains a complete successive-approximation A/D
converter built with a high-accuracy D/A converter, a precision
bipolar transistor high-speed comparator, and successive-
approximation logic including three-state bus interface for logic
compatibility. The accuracy of the ADC912A results from the
addition of precision bipolar transistors to Analog Devices’
advanced-oxide isolated silicon-gate CMOS process. Particular
attention was paid to the reduction of transition noise between
adjacent codes achieving a 1/6 LSB uncertainty. The low noise
design produces the same digital output for dc analog inputs
not located at a transition voltage, see Figures 1 and 2. NPN
digital output transistors provide excellent bus interface timing,
125 ns access and bus disconnect time which results in faster
data transfer without the need for wait states. An external
1.25 MHz clock provides a 10
µs conversion time.
In stand-alone applications an internal clock can be used with
external crystal.
An external negative five-volt reference sets the 0 V to 10 V
input range. Plus 5 V and minus 12 V power supplies result in
95 mW of total power consumption.
256
0
64
128
192
2045
2049
2048
2047
2046
256 SUCCESSIVE
CONVERSIONS
WITH
AIN = 4.99756V
OUTPUT CODE – Decimal
Figure 1. Code Repetition


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