參數(shù)資料
型號(hào): AD7801BRZ
廠商: Analog Devices Inc
文件頁(yè)數(shù): 14/16頁(yè)
文件大?。?/td> 0K
描述: IC DAC 8BIT PARALLEL INP 20-SOIC
產(chǎn)品培訓(xùn)模塊: Data Converter Fundamentals
DAC Architectures
標(biāo)準(zhǔn)包裝: 37
設(shè)置時(shí)間: 1.2µs
位數(shù): 8
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): 12.9mW
工作溫度: -40°C ~ 105°C
安裝類型: 表面貼裝
封裝/外殼: 20-SOIC(0.295",7.50mm 寬)
供應(yīng)商設(shè)備封裝: 20-SOIC W
包裝: 管件
輸出數(shù)目和類型: 1 電壓,單極;1 電壓,雙極
采樣率(每秒): 833k
產(chǎn)品目錄頁(yè)面: 785 (CN2011-ZH PDF)
AD7801
–7–
REV. 0
TERMINOLOGY
Integral Nonlinearity
For the DAC, Relative Accuracy or End-Point nonlinearity is a
measure of the maximum deviation, in LSBs, from a straight
line passing through the endpoints of the DAC transfer
function. A graphical representation of the transfer curve is
shown in Figure 14.
Differential Nonlinearity
Differential Nonlinearity is the difference between the mea-
sured change and the ideal 1 LSB change between any two
adjacent codes. A specified differential nonlinearity of
±1 LSB
maximum ensures monotonicity.
Zero-Code Error
Zero-Code Error is the measured output voltage from VOUT of
the DAC when zero code (all zeros) is loaded to the DAC
latch. It is due to a combination of the offset errors in the DAC
and output amplifier. Zero-code error is expressed in LSBs.
Gain Error
This is a measure of the span error of the DAC. It is the
deviation in slope of the DAC transfer characteristic from ideal
expressed as a percent of the full-scale value. It includes full-
scale errors but not offset errors.
Digital-to-Analog Glitch Impulse
Digital-to-Analog Glitch Impulse is the impulse injected into
the analog output when the digital inputs change state with
the DAC selected and the
LDAC used to update the DAC. It
is normally specified as the area of the glitch in nV-secs and
measured when the digital input code is changed by 1 LSB at
the major carry transition.
Digital Feedthrough
Digital Feedthrough is a measure of the impulse injected into
the analog output of a DAC from the digital inputs of the same
DAC, but is measured when the DAC is not updated. It is
specified in nV-secs and measured with a full-scale code change
on the data bus, i.e., from all 0s to all 1s and vice versa.
Power Supply Rejection Ratio (PSRR)
This specification indicates how the output of the DAC is affected
by changes in the power supply voltage. Power supply rejection
ratio is quoted in terms of % change in output per % change in
VDD for full-scale output of the DAC. VDD is varied
±10%.
GENERAL DESCRIPTION
D/A Section
The AD7801 is an 8-bit voltage output digital-to-analog con-
verter. The architecture consists of a reference amplifier and a
current source DAC followed by a current-to-voltage converter
capable of generating rail-to-rail voltages on the output of the
DAC. Figure 19 shows a block diagram of the basic DAC
architecture.
AD7801
VOUT
REFIN
I/V
11.7k
11.7k
CURRENT
DAC
30k
30k
VDD
REFERENCE
AMPLIFIER
Figure 19. DAC Architecture
The DAC output is internally buffered and has rail-to-rail
output characteristics. The output amplifier is capable of driving
a load of 100 pF and 10 k
to both V
DD and ground. The
reference selection for the DAC can be either internally gener-
ated from VDD or externally applied through the REFIN pin. A
comparator on the REFIN pin detects whether the required
reference is the internally generated reference or the externally
applied voltage to the REFIN pin. If REFIN is connected to
VDD, the reference selected is the internally generated VDD/2
reference. When an externally applied voltage is more than one
volt below VDD, the comparator selection switches to the externally
applied voltage on the REFIN pin. The range on the external
reference input is from 1.0 V to VDD/2 V. The output voltage
from the DAC is given by:
VO = 2V REF ×
N
256
where VREF is the voltage applied to the external REFIN pin or
VDD/2 when the internal reference is selected. N is the decimal
equivalent of the code loaded to the DAC register and ranges
from 0 to 255.
VTH
PMOS
MUX
INT
REF
COMPARATOR
SELECTED REFERENCE
OUTPUT
VDD
REFIN
INT REF
EXT REF
Figure 20. Reference Selection Circuitry
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