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ADL5903SCPZN-R7 数据表(PDF) 18 Page - Analog Devices

部件名 ADL5903SCPZN-R7
功能描述  200 MHz to 6 GHz 35 dB TruPwr??Detector
PDF  20 Pages
Scroll/Zoom Zoom In 100%  Zoom Out
制造商  AD [Analog Devices]
网页  http://www.analog.com
标志 AD - Analog Devices

ADL5903SCPZN-R7 数据表(HTML) 18 Page - Analog Devices

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ADL5903
Data Sheet
Rev. B | Page 18 of 20
After the slope and intercept are calculated (and stored in some
form) an equation can be used to calculate an unknown input
level based on the output voltage of the detector.
PIN (Unknown) = (VRMS(MEASURED)/Slope) + Intercept
(4)
The log conformance error is the difference between this
straight line and the actual performance of the detector.
Error (dB) = (VRMS(MEASURED) − VRMS(IDEAL))/Slope
(5)
Figure 45 shows the log conformance error at five temperatures,
ranging from −55°C to +125°C, when using a two-point
calibration (calibration points are +10 dBm and −10 dBm)
measured at one temperature, 25°C. The error at the two
calibration points passes through 0 dB for the 25°C curve by
definition.
Multipoint calibration can be used to further extend the
measurement dynamic range. In this case, the transfer function
is segmented, with each segment having its own slope and
intercept. Figure 46 shows the error plot of the same device with
calibration points at −16 dBm, −4 dBm, and+12 dBm. The
three-point, dual-slope calibration results in tighter error
bounds over the high end of the range and extends the lower
measurement range to better than −20 dBm for ±1 dB error.
Figure 46. 2.14 GHz VRMS and Log Conformance Error at +25°C, −40°C, −55°C,
+85°C, and +125°C
For the example shown in Figure 46, the error drift with tempera-
ture is very small over the upper 20 dB of the measurement
range, varying ±0.3 dB, but widens at lower power levels, from
−20 dBm to −5 dBm to as high as ±0.9 dB. This is typical
performance, although some devices may perform better.
Figure 47. 2.14 GHz VRMS and Log Conformance Error for Second Device at
+25°C, −40°C, −55°C, +85°C, and +125°C
For comparison, the three-point calibration of a different device
is shown in Figure 47 for the same frequency and calibration
points. For this example, note that the device has greater
dynamic range, and the temperature dependence of error at
lower power levels is inverted.
Finally, Figure 48 shows the log conformance error at 2.14 GHz
for a collection of four devices at +25°C, −40°C, and +85°C with
three-point calibration (−16 dBm, −4 dBm, and+12 dBm). The
error plots at each temperature are calculated with respect to
the slope and intercept measurements from the 25°C line for
each device. This is consistent with a typical production
environment where calibration at one temperature is required.
Figure 48 illustrates the various error scenarios possible at low
input levels. The dynamic range of the three-point calibrated
devices extends to below −20 dBm for ±1.0 dB error.
Figure 48. 2.14 GHz VRMS and Log Conformance +25°C, −40°C, and +85°C for
Multiple Devices
20
15
10
5
0
–5
–10
–15
–20
–25
–30
–35
–40
2.4
2.2
2.0
1.8
1.6
1.4
1.2
1.0
0.8
0.6
0.4
0.2
0
6
5
4
3
2
1
0
–1
–2
–3
–4
–5
–6
PIN (dBm)
–55°C
–40°C
+25°C
+85°C
+125°C
CALIBRATION AT –16dBm, –4dBm, AND +12dBm
20
15
10
5
0
–5
–10
–15
–20
–25
–30
–35
–40
2.4
2.2
2.0
1.8
1.6
1.4
1.2
1.0
0.8
0.6
0.4
0.2
0
6
5
4
3
2
1
0
–1
–2
–3
–4
–5
–6
PIN (dBm)
–55°C
–40°C
+25°C
+85°C
+125°C
CALIBRATION AT –16dBm, –4dBm, AND +12dBm
20
15
10
5
0
–5
–10
–15
–20
–25
–30
–35
–40
2.4
2.2
2.0
1.8
1.6
1.4
1.2
1.0
0.8
0.6
0.4
0.2
0
6
5
4
3
2
1
0
–1
–2
–3
–4
–5
–6
PIN (dBm)
–40°C
+25°C
+85°C
CALIBRATION AT –16dBm, –4dBm, AND +12dBm



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