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TLV5619 Datasheet(数据表) 4 Page - Texas Instruments

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部件型号  TLV5619
说明  2.7 V TO 5.5 V 12-BIT PARALLEL DIGITAL-TO-ANALOG CONVERTER WITH POWER DOWN
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制造商  TI [Texas Instruments]
网页  http://www.ti.com
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TLV5619 Datasheet(HTML) 4 Page - Texas Instruments

 
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TLV5619
2.7 V TO 5.5 V 12-BIT PARALLEL DIGITAL-TO-ANALOG CONVERTER
WITH POWER DOWN
SLAS172C – DECEMBER 1997 – REVISED APRIL 2000
4
POST OFFICE BOX 655303
DALLAS, TEXAS 75265
electrical characteristics over recommended operating free-air temperature range, supply
voltages, and reference voltages (unless otherwise noted)
static DAC specifications
PARAMETER
TEST CONDITIONS
MIN
TYP
MAX
UNIT
Resolution
Vref(REFIN) = 2.048 V at 5 V,
1.024 V at 3 V
12
bits
Integral nonlinearity (INL)
Vref(REFIN) = 2.048 V at 5 V,
1.024 V at 3 V,
See Note 3
±1.5
±4
LSB
Differential nonlinearity (DNL)
Vref(REFIN) = 2.048 V at 5 V,
1.024 V at 3 V,
See Note 4
± 0.4
± 1
LSB
EZS
Zero-scale error (offset error at zero scale)
Vref(REFIN) = 2.048 V at 5 V,
1.024 V at 3 V,
See Note 5
±3
±20
mV
Zero-scale-error temperature coefficient
Vref(REFIN) = 2.048 V at 5 V,
1.024 V at 3 V,
See Note 6
3
ppm/
°C
EG
Gain error
Vref(REFIN) = 2.048 V at 5 V,
1.024 V at 3 V,
See Note 7
±0.25
±0.5
% of FS
voltage
Gain error temperature coefficient
Vref(REFIN) = 2.048 V at 5 V,
1.024 V at 3 V,
See Note 8
1
ppm/
°C
PSRR
Power supply rejection ratio
Zero scale
See Notes 9 and 10
65
dB
PSRR
Power-supply rejection ratio
Gain
See Notes 9 and 10
65
dB
NOTES:
3. The relative accuracy or integral nonlinearity (INL), sometimes referred to as linearity error, is the maximum deviation of the output
from the line between zero and full scale excluding the effects of zero code and full-scale errors.
4. The differential nonlinearity (DNL), sometimes referred to as differential error, is the difference between the measured and ideal 1
LSB amplitude change of any two adjacent codes. Monotonic means the output voltage changes in the same direction (or remains
constant) as a change in the digital input code.
5. Zero-scale error is the deviation from zero voltage output when the digital input code is zero.
6. Zero-scale-error temperature coefficient is given by: EZS TC = [EZS (Tmax) – EZS (Tmin)]/Vref × 106/(Tmax – Tmin).
7. Gain error is the deviation from the ideal output (2
× Vref – 1 LSB) with an output load of 10 kΩ excluding the effects of the zero-error.
8. Gain temperature coefficient is given by: EG TC = [EG(Tmax) – EG (Tmin)]/Vref × 106/(Tmax – Tmin).
9. Zero-scale-error rejection ratio (EZS-RR) is measured by varying the VDD from 4.5 V to 5.5 V dc and measuring the proportion of
this signal imposed on the zero-code output voltage.
10. Gain-error rejection ratio (EG-RR) is measured by varying the VDD from 4.5 V to 5.5 V dc and measuring the proportion of this signal
imposed on the full-scale output voltage after subtracting the zero scale change.
output specifications
PARAMETER
TEST CONDITIONS
MIN
TYP
MAX
UNIT
VO
Voltage output range
RL = 10 kΩ
0
VDD–0.4
V
Output load regulation accuracy
VO(OUT) = 4.096 V,
2.048 V
RL = 2 kΩ
0.1
0.29
% of FS
voltage
IOSC(source)
Output short circuit source current
VO(OUT) = 0 V,
5-V Supply
100
mA
IOSC(source)
Out ut short circuit source current
O(OUT)
Full scale code
3-V Supply
25
mA
IO(source)
Output source current
RL = 100 Ω
5-V Supply
10
mA
IO(source)
Out ut source current
RL = 100 Ω
3-V Supply
10
mA




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