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ADL5519ACPZ-R7 データシート(PDF) 25 Page - Analog Devices

部品番号 ADL5519ACPZ-R7
部品情報  1 MHz to 10 GHz, 62 dB Dual Log Detector/Controller
PDF  40 Pages
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メーカー  AD [Analog Devices]
ホームページ  http://www.analog.com
Logo AD - Analog Devices

ADL5519ACPZ-R7 データシート(HTML) 25 Page - Analog Devices

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ADL5519
Rev. 0 | Page 25 of 40
Another way of presenting the error function of a log amp detector
is shown in Figure 62. In this example, the decibel (dB) error at
hot and cold temperatures is calculated with respect to the output
voltage at ambient. This is a key difference when compared to the
previous plots, in which all errors have been calculated with respect
to the ideal transfer function at ambient.
2.00
1.75
1.50
1.25
1.00
0.75
0.50
0.25
0
2.0
1.5
1.0
0.5
0
–0.5
–1.0
–1.5
–2.0
–60
–50
–40
–30
–20
–10
0
10
PIN (dBm)
Figure 62. Error vs. Temperature with Respect to Output Voltage at 25°C,
2.14 GHz (Removes Transfer Function Nonlinearities at 25°C)
With this alternative technique, the error at ambient becomes,
by definition, equal to 0 (see Figure 62). This value would be
valid if the device transfer function perfectly followed the ideal
of the VOUT = Slope × (PIN − Intercept) equation.
However, because an rms amp, in practice, never perfectly follows
this equation (especially outside of its linear operating range),
this plot tends to artificially improve linearity and extend the
dynamic range, unless enough calibration points are taken to
remove the error.
Figure 62 is a useful tool for estimating temperature drift at
a particular power level with respect to the (nonideal) output
voltage at ambient.
TEMPERATURE COMPENSATION ADJUSTMENT
The ADL5519 temperature performance has been optimized to
ensure that the output voltage has minimum temperature drift
at −10 dBm input power. The applied voltage for the ADJA and
ADJB pins for some specified frequencies is listed in Table 4.
However, not all frequencies are represented in Table 4, and
experimentation may be required.
Compensating the device for temperature drift by using ADJA,
ADJB allows for great flexibility. To determine the optimal adjust
voltage, sweep ADJA, ADJB at ambient and at the desired
temperature extremes for a couple of power levels while
monitoring the output voltage. The point of intersection
determines the best adjust voltage. Some additional minor
tweaking may be required to achieve the highest level of tempera-
ture stability. With appropriate values, a temperature drift error
of typically ±0.5 dB over the entire rated temperature range can be
achieved.
Table 4. Recommended ADJA, ADJB Voltage Levels
Frequency
Recommended ADJA, ADJB Voltage (V)
100 MHz
0.65, 0.7
900 MHz
0.6, 0.65
1.9 GHz
0.5, 0.55
2.2 GHz
0.48, 0.6
3.6 GHz
0.35, 0.42
5.8 GHz
0.58, 0.7
8 GHz
0.72, 0.82
Proprietary techniques are used to compensate for the temperature
drift. The absolute value of compensation varies with frequency
and circuit board material.
ADJA, ADJB are high impedance pins. The applied ADJA, ADJB
voltages can be supplied from VREF through a resistor divider.
Figure 63 shows a simplified schematic representation of the
ADJA, ADJB interface.
VREF
ICOMP
VTADJ
COMR
ADJA, ADJB
ADL5519
COMR
Figure 63. ADJA, ADJB Interface Simplified Schematic



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