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ADE9103 数据表(PDF) 23 Page - Analog Devices

部件名 ADE9103
功能描述  Isolated, Sigma-Delta ADCs with SPI
PDF  55 Pages
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制造商  AD [Analog Devices]
网页  http://www.analog.com
标志 AD - Analog Devices

ADE9103 数据表(HTML) 23 Page - Analog Devices

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Data Sheet
ADE9103/ADE9112/ADE9113
TERMINOLOGY
analog.com
Rev. A | 23 of 55
ADC Offset Drift over Temperature
The ADC offset drift is the change in offset over temperature. It
is measured at −40°C, +25°C, and +125°C. The offset drift over
temperature is computed as follows:
Drift‐40 to +125= Offset−40−Offset+125
−40−125
Offset drift is expressed in nV/°C.
Gain Error
The gain error in the ADCs represents the difference between
the measured ADC output code (minus the offset) and the ideal
output code when the internal voltage reference is used (see the
Analog-to-Digital Conversion section). The difference is expressed
as a percentage of the ideal code. It represents the overall gain
error of one of the current or one of the voltage channels.
Gain Drift over Temperature
This temperature coefficient includes the temperature variation of
the ADC gain and of the internal voltage reference. It represents the
overall temperature coefficient of one current or one of the voltage
channels. With the internal voltage reference in use, the ADC
gain is measured at −40°C, +25°C, and +125°C. The temperature
coefficient is computed as follows:
Drift‐40 to +125= Gain−40−Gain+125
Gain+25 × −40−125
Gain drift is measured in ppm/°C.
Power Supply Rejection (PSR)
PSR quantifies the measurement error as a percentage of reading
when the power supplies are varied. For the AC PSR measure-
ment, a reading at nominal supplies (3.3 V) is taken when the
voltage at the input pins is 0 V. A second reading is obtained with
the same input signal levels when an AC signal (120 mV RMS at 50
Hz or 100 Hz) is introduced onto the supplies. Any error introduced
by this AC signal is expressed as a percentage of the reading
(PSRR). PSR = 20 log10 (PSRR).
For the DC PSR measurement, a reading at nominal supplies
(3.3 V) is taken when the voltage between the IP and IM pins
is 3.125 mV peak, and the voltages between the V1P and V1M
pins and between the V2P and V2M pins are 100 mV peak. A
second reading is obtained with the same input signal levels when
the power supplies are varied by ±10%. Any error introduced is
expressed as a percentage of the reading (PSRR). Then, PSR =
20 log10 (PSRR).
Common-Mode Rejection Ratio (CMRR)
CMRR is defined as the differential gain of the channel divided by
the common-mode gain.
IP − IM = 31.25 mV peak differential is applied, and an FFT is used
to measure the fundamental in dB.
IP = IM = 31.25 mV peak to the local ground reference, Pin 11,
common-mode is applied, and an FFT is used to measure the
fundamental in dB.
VxP - VxM = 100 mV peak differential is applied, and an FFT is
used to measure the fundamental in dB.
VxP = VxM = 100 mV peak to the local ground reference, Pin
11, common-mode is applied, and an FFT is used to measure the
fundamental in dB.
Signal-to-Noise Ratio (SNR)
SNR is the ratio of the RMS value of the actual input signal to the
RMS sum of all other spectral components within the bandwidth,
excluding harmonics and DC. The waveform samples are coherent-
ly sampled over approximately 8 sec to avoid using a window
function. The value for SNR is expressed in decibels relative to
full-scale (dBFS).
Signal-to-Noise-and-Distortion (SINAD) Ratio
SINAD is the ratio of the RMS value of the actual input signal to the
RMS sum of all other spectral components within the bandwidth,
including harmonics but excluding DC. The waveform samples are
coherently sampled over approximately 8 sec to avoid using a
window function. The value for SINAD is expressed in decibels
relative to full-scale (dBFS).
Total Harmonic Distortion (THD)
THD is the ratio of the RMS sum of all harmonics (excluding
the noise components) to the RMS value of the fundamental.
The waveform samples are coherently sampled over approximately
8 sec to avoid using a window function. The value for SNR is
expressed in decibels relative to full-scale (dBFS).
Spurious-Free Dynamic Range (SFDR)
SFDR is the ratio of the RMS value of the actual input signal to the
RMS value of the peak spurious component over the measurement
bandwidth of the waveform samples. The waveform samples are
coherently sampled over approximately 8 sec to avoid using a
window function. The value of SFDR is expressed in decibels
relative to full scale (dBFS).



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