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MCP48FVB08 Arkusz danych(PDF) 107 Page - Microchip Technology

Numer części MCP48FVB08
Szczegółowy opis  8/10/12-Bit Quad/Octal Voltage Output, 6 LSb INL Digital-to-Analog Converters with SPI Interface
PDF  112 Pages
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Producent  MICROCHIP [Microchip Technology]
Strona internetowa  http://www.microchip.com
Logo MICROCHIP - Microchip Technology

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 2020 Microchip Technology Inc.
DS20006362A-page 107
MCP48FXBX4/8
B.13
Settling Time
The settling time is the time delay required for the VOUT
voltage to settle into its new output value. This time is
measured from the start of code transition to when the
VOUT voltage is within the specified accuracy.
For the MCP48FXBX4/8, the settling time is a
measurement of the time delay until the VOUT voltage
reaches within 0.5 LSb of its final value, when the vol-
atile DAC register changes from 1/4 to 3/4 of the FSR
(12-bit device: 400h to C00h).
B.14
Major Code Transition Glitch
Major code transition glitch is the impulse energy
injected into the DAC analog output when the code in
the DAC register changes the state. It is normally
specified as the area of the glitch in nV-Sec and is
measured when the digital code is changed by 1 LSb at
the major carry transition.
B.15
Digital Feedthrough
The digital feed-through is the glitch that appears at the
analog output, caused by coupling from the digital input
pins of the device. The area of the glitch is expressed
in nV-Sec and is measured with a full-scale change on
the digital input pins; example: all ‘0’s to all ‘1’s and vice
versa. The digital feedthrough is measured when the
DAC is not written to the output register.
B.16
-3 dB Bandwidth
This is the frequency of the signal at the VREF pin that
causes the voltage at the VOUT pin to fall a -3 dB value
from a static value on the VREF pin. The output
decreases due to the RC characteristics of the resistor
ladder and the characteristics of the output buffer.
B.17
Power Supply Sensitivity (PSS)
PSS indicates how the output of the DAC is affected by
changes in the supply voltage. PSS is the ratio of the
change in VOUT to a change in VDD for midscale output
of the DAC. The VOUT is measured while the VDD is
varied from 5.5V to 2.7V as a step (VREF voltage held
constant) and is expressed in %/%, which is the %
change of the DAC output voltage with respect to the %
change of the VDD voltage.
EQUATION B-8:
PSS CALCULATION
B.18
Power Supply Rejection Ratio
(PSRR)
PSRR indicates how the output of the DAC is affected
by changes in the supply voltage. PSRR is the ratio of
the change in VOUT to a change in VDD for full-scale
output of the DAC. The VOUT is measured while the
VDD is varied ±10% (VREF voltage held constant) and
expressed in dB or µV/V.
B.19
VOUT Temperature Coefficient
The VOUT temperature coefficient quantifies the error in
the resistor ladder’s resistance ratio (DAC register
code value) and output buffer due to temperature drift.
B.20
Absolute Temperature Coefficient
The absolute temperature coefficient quantifies the
error in the end-to-end output voltage (nominal Output
Voltage, VOUT) due to temperature drift. For a DAC,
this error is typically not an issue due to the ratiometric
aspect of the output.
B.21
Noise Spectral Density
Noise spectral density is a measurement of the
device’s internally generated random noise and is
characterized as a spectral density (voltage per √Hz).
It is measured by loading the DAC to the midscale
value and measuring the noise at the VOUT pin. It is
measured in nV/√Hz.
Example: 011...111 to 100...000
or 100...000 to 011...111
Where:
PSS is expressed in %/%.
VOUT(@5.5V) = The measured DAC output
voltage with VDD = 5.5V.
VOUT(@2.7V) = The measured DAC output
voltage with VDD = 2.7V.
PSS
VOUT(@5.5V) VOUT(@2.7V)
 V
OUT(@5.5V)
5.5V 2.7V
 5.5V

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