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ADL5906SCPZN-R2 数据表(PDF) 18 Page - Analog Devices

部件名 ADL5906SCPZN-R2
功能描述  10 MHz to 10 GHz 67 dB TruPwr Detector
PDF  32 Pages
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制造商  AD [Analog Devices]
网页  http://www.analog.com
标志 AD - Analog Devices

ADL5906SCPZN-R2 数据表(HTML) 18 Page - Analog Devices

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ADL5906
Data Sheet
Rev. 0 | Page 18 of 32
TEMPERATURE COMPENSATION INTERFACE
The ADL5906 has a TADJ pin that provides the ability to optimize
temperature performance using proprietary techniques as in
the ADL5902. Just like the ADL5902, the ADL5906 has dual
functionality on Pin 1, TADJ/PWDN; however, the PWDN
function was redesigned to be driven by CMOS logic as low
as 1.8 V. For more detail on the power-down interface, see the
Power-Down Interface section.
For optimal performance, the output temperature drift must
be compensated using the TADJ pin. The absolute value of
compensation varies with frequency and VTGT. For recommended
VTADJ values at popular frequencies, see the Setting VTADJ section.
One difference in the temperature compensation of the ADL5906
compared to the ADL5902 is that VTADJ adjusts the slope of the
detector, and with the ADL5902, the intercept was adjusted.
Adjusting the slope was found beneficial to locking in temperature
drift and thereby producing parallel error curves over most
frequencies. Any remaining intercept temperature drift can
then be reduced in the digital domain after sampling VRMS
because the intercept drift is quite repeatable at frequencies
up to approximately 5.8 GHz (see the Using VTEMP to
Improve Intercept Temperature Drift section).
There is a trade-off in setting values, and optimizing for one
area of the dynamic range may mean less than optimal drift
performance at other input amplitudes. In addition, different
voltages applied to the VTGT pin impact drift; all TADJ voltages
shown in the performance curves were determined with a
VTGT of 0.8 V. For VTGT values that do not deviate too far
from the nominal 0.8 V, and for frequencies up to approximately
5 GHz, it is expected that the TADJ voltages are a good starting
point for the best temperature drift compensation.
Compensating the device for temperature drift using VTADJ allows
for great flexibility. If the user requires minimum temperature drift
at a given input power, a subset of the dynamic range, or even
over a different temperature range than shown in this data
sheet, the VTADJ can be swept while monitoring VRMS over the
temperature at the frequency and amplitude of interest. The
optimal VTADJ to achieve minimum temperature drift at a given
power and frequency is the value of VTADJ where the output has
minimum movement.
3.20
3.25
3.30
3.35
3.40
3.45
3.50
3.55
3.60
3.65
3.70
0
0.1
0.2
0.3
0.4
0.5
0.6
0.7
0.8
0.9
1.0
VTADJ VOLTAGE (V)
Figure 45. Effect of VTADJ at Various Temperatures, 2.14 GHz, 0 dBm
Varying VTADJ has only a very slight effect on VRMS at device
temperatures near 25°C; however, the compensation circuit has
increasing effect as the temperature departs farther from 25°C.
It is important to note that the slope is adjusted vs. temperature.
The pivot point of this is at low input power levels and thereby
moves the VRMS output more at larger input signal levels; that
is, near maximum input power, the temperature drift can be
minimized the most. This is advantageous in most power
measurement cases because errors at larger powers tend to have
more of a negative effect.
The TADJ/PWDN pin has a nominal input resistance of 70 kΩ and
can be conveniently driven from an external source or from an
attenuated value of VREF using a resistor divider. The resistors are
shown in the evaluation board schematic (see Figure 63). The
voltage range for VTADJ is from 0 V to approximately 1.0 V because
approximately 1.3 V is the logic threshold for power down of
the device.



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