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ADL5511ACPZ-R7 Datasheet(PDF) 22 Page - Analog Devices

Part # ADL5511ACPZ-R7
Description  DC to 6 GHz Envelope and TruPwr RMS Detector
PDF  26 Pages
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Manufacturer  AD [Analog Devices]
Direct Link  http://www.analog.com
Logo AD - Analog Devices

ADL5511ACPZ-R7 Datasheet(HTML) 22 Page - Analog Devices

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Data Sheet
ADL5511
APPLICATIONS INFORMATION
analog.com
Rev. E | 22 of 26
Figure 52. VENV Response to a 20 MHz LTE Carrier with a PEP of 19 dBm
that has been Triggered to Capture the Envelope’s Peak Level
VRMS AND VENV OUTPUT OFFSET
The 900 MHz RF power sweeps in Figure 53 and Figure 54 show
distributions of the VRMS and VENV outputs voltages for multiple
devices at 25°C. The VRMS output response flattens out at approx-
imately −30 dBm while the various VENV response traces begin to
fanout unpredictably (Figure 4 and Figure 7 show this behavior at
other frequencies). While these plots suggest that operation at input
levels down to −30 dBm is feasible, account must also be taken
for variations over temperature. Figure 10 to Figure 38 show how
the linearity error starts to increase below input levels of −20 dBm
(the size of the error varies between VENV and VRMS and with
frequency).
Figure 53. VRMS Output vs. Input Level Distribution of 50 Devices, 900 MHz
Frequency
Figure 54. VENV Output vs. Input Level Distribution of 50 Devices, 900 MHz
Frequency
DEVICE CALIBRATION AND ERROR
CALCULATION
Because slope and intercept vary from device to device, calibration
must be performed to achieve high accuracy. In general, calibration
is performed by applying two or more known input power levels
to the ADL5511 and measuring the corresponding output voltages.
The calibration points are generally chosen to be within the linear
operating range of the device. For a two-point calibration, the
conversion gain (or slope) and intercept are calculated for VRMS
and VENV using the following equations:
Slope = (VOUT2 − VOUT1)/(VIN2 − VIN1)
(9)
Intercept = VOUT1 − (Slope × VIN1)
(10)
where:
VIN is the rms input voltage to RFIN.
VOUT is the voltage output at VRMS or VENV.
Because the gain and intercept of the rms and envelope paths
will be different, both paths should be calibrated, that is, with a
measured signal applied to RFIN, VENV, and VRMS. To ensure that
the voltage at VENV and VRMS is a steady-state value, a constant
envelope signal such as a sine wave should be used as the source
during calibration.
Once slope and intercept are calculated, an equation can be written
that allows calculation of the input rms or envelope level using the
following equations:
VINRMS = (VRMS − InterceptVRMS)/SlopeRMS
(11)
VINENV = (VENV − InterceptVENV)/SlopeVENV
(12)
The law conformance error, that is, the difference between the
actual input level (VIN_IDEAL) and the measured/calculated input
level (VMEASURED), of these calculations can be calculated using the
following equation:



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