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ADRF6518ACPZ-R7 数据表(PDF) 24 Page - Analog Devices

部件名 ADRF6518ACPZ-R7
功能描述  1.1 GHz Variable Gain Amplifiers Baseband Programmable Filters
PDF  39 Pages
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制造商  AD [Analog Devices]
网页  http://www.analog.com
标志 AD - Analog Devices

ADRF6518ACPZ-R7 数据表(HTML) 24 Page - Analog Devices

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ADRF6518
Data Sheet
Rev. A | Page 24 of 39
NOISE CHARACTERISTICS
The output noise behavior of the ADRF6518 depends on the gain
and bandwidth settings. VGA1 noise dominates in the filter
bypass mode and at high filter corner settings. While at low
corner settings, filter noise tends to dominate.
The filter contributes a noise spectral density profile that is flat
at low frequencies, peaks near the corner frequency, and then
rolls off as the filter poles roll off the gain and noise. The
magnitude of the noise spectral density contributed by the filter,
expressed in nV/√Hz, varies inversely with the square root of
the bandwidth setting, resulting in filter noise in nV that is
nearly constant with the bandwidth setting. However, with
VGA1 NF being lower than the filter, VGA1 tends to dominate
the overall NF. At higher frequencies, after the filter noise rolls
off, the noise floor is set by the VGAs.
Each of the X-AMP VGA sections used in the ADRF6518
contributes a fixed noise spectral density to its respective output,
independent of the analog gain setting. With the digital gain
change, however, VGA output noise changes, because the gain
setting resistors values change. As an example, the VGA1 NF
corresponding to a 15 dB gain setting is 17.3 dB, whereas for a
9 dB gain, the NF is 19 dB. When cascaded, the total noise
contributed by the VGAs at the output of the ADRF6518
increases gradually with higher gain. This is apparent in the
noise floor variation at high frequencies at different VGA gain
settings. The exact relationship depends on the programmed
fixed gain of the amplifiers. At lower frequencies within the filter
bandwidth setting, the VGAs translate the filter noise directly to
the output by a factor equal to the gain following the filter.
At low values of VGA gain, the noise at the output is the flat
spectral density contributed by the last VGA. As the gain
increases, more of the filter and first VGA noise appears at
the output. Because the intrinsic filter noise density increases
at lower bandwidth settings, it is more pronounced than it is
at higher bandwidth settings. In either case, the noise density
asymptotically approaches the limit set by the VGAs at the
highest frequencies. For other values of VGA gain and bandwidth
setting, the detailed shape of the noise spectral density changes
according to the relative contributions of the filters and VGAs.
Because the noise spectral density outside the filter bandwidth
is limited by the VGA output noise, it may be necessary to use
an external, fixed frequency, passive filter prior to analog-to-
digital conversion to prevent noise aliasing from degrading the
signal-to-noise ratio. A higher sampling rate, relative to the maxi-
mum required ADRF6518 corner frequency setting, reduces the
order and complexity of this external filter.
DISTORTION CHARACTERISTICS
To maintain low distortion through the cascaded VGAs and
filter of the ADRF6518, consider the distortion limits of each
stage. The first VGA has higher signal handling capability and
bandwidth than VGA2 and VGA3, because it must cope with
out-of-band signals that can be larger than the in-band signals.
In the filter mode, these out-of-band signals are filtered before
reaching VGA2 and VGA3. It is important to understand the
signals presented to the ADRF6518 and to match these signals
with the input and output characteristics of the part. It is useful
to partition the ADRF6518 into the front end, composed of
VGA1 and the filter, and the back end, composed of VGA2 and
VGA3 and the output buffers.
VGA1 can handle a 5 V p-p signal at a maximum analog attenua-
tion setting, without experiencing appreciable distortion at the
input. In most applications, VGA1 gain should be adjusted such
that the maximum signal presented at the filter inputs (or
VGA2 input in filter bypass mode) is <1.5 V p-p. At this level,
the front end does not limit the distortion performance. The
peak detector output, VPK, can be used as an indicator of the
signal level present at this critical interface. Choose the second
and third VGA gains such that their output levels do not exceed
1 V p-p. If the output signal level is expected to exceed 1.5 V p-p,
it is recommended to set the postamplifier gain to 9 dB.
For these signal level considerations, it is recommended that the
out-of-band signal, if larger than the desired in-band signal, be
addressed. In filter mode, such an out-of-band signal only
affects the VGA1 operation, because it is filtered out by the
filter and does not affect the following stages. In this case, a
high VGA2 and VGA3 gain may be needed to raise the small
desired signal to a higher level at the output. In the filter bypass
mode, such out-of-band signals may need to be filtered prior to
the ADRF6518.
The overall distortion introduced by the part depends on the
input drive level, including the out-of-band signals, and the
desired output signal level. To achieve best distortion
performance and the desired overall gain, keep in mind the
maximum signal levels indicated previously when selecting
different VGA gains.
To distinguish and quantify the distortion performance of the
input section, two different IP3 specifications are presented.
The first is called in-band IP3 and refers to a two-tone test
where the signals are inside the filter bandwidth. This is exactly
the same figure of merit familiar to communications engineers
in which the third-order intermodulation level, IMD3, is
measured.
To quantify the effect of out-of-band signals, a new out-of-band
(OOB) IIP3 figure of merit is introduced. This test also involves
a two-tone stimulus; however, the two tones are placed out-of-
band so that the lower IMD3 product lands in the middle of the
filter pass band. At the output, only the IMD3 product is visible
because the original two tones are filtered out. To calculate the
OOB IIP3 at the input, the IMD3 level is referred to the input
by the overall gain. The OOB IIP3 allows the user to predict the
impact of out-of-band blockers or interferers at an arbitrary
signal level on the in-band performance. The ratio of the desired
input signal level to the input-referred IMD3 at a given blocker
level represents a signal-to-distortion limit imposed by the out-
of-band signals.



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