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MCP3910 Datenblatt(PDF) 27 Page - Microchip Technology

Teilenummer MCP3910
Bauteilbeschribung  3V Two-Channel Analog Front End
PDF  90 Pages
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Hersteller  MICROCHIP [Microchip Technology]
Direct Link  http://www.microchip.com
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MCP3910 Datenblatt(HTML) 27 Page - Microchip Technology

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DS20005116D-page 27
MCP3910
4.11
Total Harmonic Distortion (THD)
The Total Harmonic Distortion is the ratio of the output
harmonics power to the fundamental signal power for a
sine wave input and is defined in Equation 4-7.
EQUATION 4-7:
The THD calculation includes the first 35 harmonics for
the MCP3910 specifications. The THD is usually only
measured with respect to the ten first harmonics. THD
is sometimes expressed in %. Equation 4-8 converts
the THD in %.
EQUATION 4-8:
This specification depends mainly on the DITHER
setting.
4.12
Spurious-Free Dynamic Range
(SFDR)
SFDR is the ratio between the output power of the
fundamental and the highest spur in the frequency
spectrum (see Equation 4-9). The spur frequency is not
necessarily a harmonic of the fundamental, even
though this is usually the case. This figure represents
the dynamic range of the ADC when a full-scale signal
is used at the input. This specification depends mainly
on the DITHER setting.
EQUATION 4-9:
4.13
MCP3910 Delta-Sigma
Architecture
The MCP3910 incorporates two Delta-Sigma ADCs
with a multibit architecture. A Delta-Sigma ADC is an
oversampling converter that incorporates a built-in
modulator, which digitizes the quantity of charges
integrated by the modulator loop (see Figure 5-1). The
quantizer is the block that performs the Analog-to-
Digital conversion. The quantizer is typically 1 bit, or a
simple comparator, which helps maintain the linearity
performance of the ADC (the DAC structure is, in this
case, inherently linear).
Multibit quantizers help lower the quantization error
(the error fed back in the loop can be very large with
1-bit quantizers) without changing the order of the
modulator or the OSR, which leads to better SNR
figures. However, typically, the linearity of such
architectures is more difficult to achieve since the DAC
linearity is as difficult to attain and its linearity limits the
THD of such ADCs.
The MCP3910 device’s 5-level quantizer is a Flash
ADC composed of four comparators, arranged with
equally spaced thresholds and a thermometer coding.
The MCP3910 also includes proprietary 5-level DAC
architecture that is inherently linear for improved THD
figures.
4.14
Idle Tones
A Delta-Sigma converter is an integrating converter. It
also has a finite quantization step (LSB) which can be
detected by its quantizer. A DC input voltage that is
below the quantization step should only provide an all
zeros result, since the input is not large enough to be
detected. As an integrating device, any Delta-Sigma
will show Idle tones. This means that the output will
have spurs in the frequency content that depend on the
ratio between the quantization step voltage and the
input voltage. These spurs are the result of the inte-
grated sub-quantization step inputs that will eventually
cross the quantization steps after a long enough
integration. This will induce an AC frequency at the out-
put of the ADC and can be shown in the ADC output
spectrum.
These Idle tones are residues that are inherent to the
quantization process and the fact that the converter is
integrating at all times without being reset. They are
residues of the finite resolution of the conversion
process. They are very difficult to attenuate and they
are heavily signal-dependent. They can degrade the
SFDR and THD of the converter, even for DC inputs.
They can be localized in the baseband of the converter
and are thus difficult to filter from the actual input signal.
For power metering applications, Idle tones can be very
disturbing, because energy can be detected even at
the 50 or 60 Hz frequency, depending on the DC offset
of the ADCs, while no power is really present at the
inputs. The only practical way to suppress or attenuate
the Idle tones phenomenon is to apply dithering to the
ADC. The amplitudes of the Idle tones are a function of
the order of the modulator, the OSR and the number of
levels in the quantizer of the modulator. A higher order,
a higher OSR or a higher number of levels for the
quantizer will attenuate the amplitudes of the Idle
tones.
THD dB

10
HarmonicsPower
FundamentalPower
-----------------------------------------------------


log
=
THD %

100
10
THD dB

20
------------------------
=
SFDR dB

10
FundamentalPower
HighestSpurPower
-----------------------------------------------------


log
=



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