參數(shù)資料
型號(hào): AD7538JR
廠商: Analog Devices Inc
文件頁(yè)數(shù): 5/16頁(yè)
文件大?。?/td> 0K
描述: IC DAC 14BIT W/BUFF 24-SOIC
產(chǎn)品培訓(xùn)模塊: Data Converter Fundamentals
DAC Architectures
標(biāo)準(zhǔn)包裝: 31
設(shè)置時(shí)間: 1.5µs
位數(shù): 14
數(shù)據(jù)接口: 并聯(lián)
轉(zhuǎn)換器數(shù)目: 1
電壓電源: 單電源
功率耗散(最大): 1W
工作溫度: 0°C ~ 70°C
安裝類(lèi)型: 表面貼裝
封裝/外殼: 24-SOIC(0.295",7.50mm 寬)
供應(yīng)商設(shè)備封裝: 24-SOIC W
包裝: 管件
輸出數(shù)目和類(lèi)型: 1 電流,單極;1 電流,雙極
采樣率(每秒): 667k
AD7538
Rev. B | Page 13 of 16
APPLICATION HINTS
OUTPUT OFFSET
CMOS DACs in circuits such as Figure 6 and Figure 8 exhibit
a code dependent output resistance, which in turn can cause a
code dependent error voltage at the output of the amplifier.
The maximum amplitude of this error, which adds to the DAC
nonlinearity, depends on VOS, where VOS is the amplifier input
offset voltage. To maintain specified accuracy with VREF at 10 V,
it is recommended that VOS be no greater than 0.25 mV, or (25 ×
106) (VREF), over the temperature range of operation. The AD711 is
a suitable op amp. The op amp has a wide bandwidth and high
slew rate and is recommended for ac and other applications
requiring fast settling.
GENERAL GROUND MANAGEMENT
Because the AD7538 is specified for high accuracy, it is impor-
tant to use a proper grounding technique. AC or transient
voltages between AGND and DGND can cause noise injection
into the analog output. The simplest method of ensuring that
voltages at AGND and DGND are equal is to tie AGND and
DGND together at the AD7538. In more complex systems
where the AGND and DGND intertie on the backplane, it is
recommended that two diodes be connected in inverse
parallel between the AD7538 AGND and DGND pins
(1N914 or equivalent).
MICROPROCESSOR INTERFACING
The AD7538 is designed for easy interfacing to 16-bit micro-
processors and can be treated as a memory mapped peripheral.
This reduces the amount of external logic needed for interfacing
to a minimal.
AD7538-TO-8086 INTERFACE
Figure 10 shows the 8086 processor interface to a single device.
In this setup, the double buffering feature (using LDAC) of the
DAC is not used. The 14-bit word is written to the DAC in one
MOVE instruction and the analog output responds
immediately.
ADDRESS BUS
DATA BUS
AD0 TO AD15
WR
ALE
AD13
AD0
CS
LDAC
WR
DB0 TO DB13
8096
AD75381
1LINEAR CIRCUITRY OMITTED FOR CLARITY.
01
13
9-
0
10
16-BIT
LATCH
ADDRESS
DECODE
Figure 10. AD7538-to-8086 Interface Circuit
In a multiple DAC system, the double buffering of the AD7538
allows the user to simultaneously update all DACs. In Figure 11,
a 14-bit word is loaded to the input registers of each of the DACs
in sequence. Then, with one instruction to the appropriate
address, CS4 (that is, LDAC) is brought low, updating all the
DACs simultaneously.
ADDRESS BUS
DATA BUS
AD0 TO AD15
WR
ALE
CS
LDAC
WR
DB0 TO DB13
8096
AD75381
1LINEAR CIRCUITRY OMITTED FOR CLARITY.
0
1
13
9-
0
1
16-BIT
LATCH
ADDRESS
DECODE
CS4 CS3 CS2
CS1
CS
LDAC
WR
DB0 TO DB13
AD75381
CS
LDAC
WR
DB0 TO DB13
AD75381
Figure 11. AD7538-to-8086 Interface: Multiple DAC System
AD7538-TO-MC68000 INTERFACE
Figure 12 shows the MC68000 processor interface to a single
device. In this setup, the double buffering feature of the DAC
is not used and the appropriate data is written into the DAC in
one MOVE instruction.
ADDRESS BUS
DATA BUS
ADDRESS
DECODE
D0 TO D15
A1 TO A23
R/W
DTACK
AS
CS
LDAC
WR
DB0 TO DB13
MC68000
AD75381
1LINEAR CIRCUITRY OMITTED FOR CLARITY.
0
1
13
9-
0
12
Figure 12. AD7538-to-MC68000 Interface
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