Section 8. Operation
451
Decay Ratio =
Ending Amplitude
/
Beginning Amplitude
Some sensors will decay very rapidly. A good practice is to characterize sensor
decay and amplitude when a sensor is new, so the health of the sensor can be
monitored over time.
Signal-to-Noise Ratio Diagnostic
The spectrum data shown in the figure
VSPECT Data
(p. 450)
are derived from the
time-series data through an
FFT
(p. 583).
These data emphasize the amplitude of
the natural-resonant frequency, labeled
Response Amplitude
, and the amplitude
of noise frequencies, labeled
Noise Amplitude
. The signal-to-noise ratio is
calculated as follows:
Signal-to-
Noise Ratio =
Response Amplitude
/
Noise Amplitude
Low Signal Strength Amplitude Warning
When the response amplitude is measured as less than 0.01 mV RMS, the
Resonant Frequency
value reports
NAN
indicating that low signal strength
amplitudes have occurred. The 0.01 mV threshold can be modified in the
VibratingWire()
instruction.
Invalid Voltage Supply Warning
A
Resonant Frequency
value of
-555555
is an error code indicating an invalid
voltage supply in the hardware of the CR6, which is an internal problem requiring
factory repair.
Vibrating Wire Quality
The following may improve measurement quality:
•
Match frequency ranges to expected frequencies
•
Reject noise
•
Minimize resonant decay
•
Prevent spectral leakage
Match Measurement Ranges to Expected Frequencies
Measurements are best when the frequency ranges of the swept excitation and of
the response analysis match the range of resonant frequencies expected from the
sensor. The swept and analysis ranges for specific sensors are determined using
the tools in
Device Configuration Utility
(p. 148)
software CR6
VW Diagnostics
tab. Once determined, the ranges are then programmed into the CRBasic program
by adjusting the
BeginFreq
and
EndFreq
parameters in the
VibratingWire()
instruction.
Содержание CR6 Series
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Страница 76: ...Section 5 Overview 76 FIGURE 20 Half Bridge Wiring Example Wind Vane Potentiometer ...
Страница 80: ...Section 5 Overview 80 FIGURE 23 Pulse Input Wiring Example Anemometer ...
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Страница 251: ...Section 7 Installation 251 FIGURE 46 Running Average Frequency Response FIGURE 47 Running Average Signal Attenuation ...
Страница 454: ...Section 8 Operation 454 FIGURE 104 Narrow Sweep High Noise ...
Страница 459: ...Section 8 Operation 459 FIGURE 106 Vibrating Wire Sensor Calibration Report ...
Страница 535: ...Section 8 Operation 535 8 11 2 Data Display FIGURE 121 CR1000KD Displaying Data ...
Страница 537: ...Section 8 Operation 537 FIGURE 123 CR1000KD Real Time Custom ...
Страница 538: ...Section 8 Operation 538 8 11 2 3 Final Storage Data FIGURE 124 CR1000KD Final Storage Data ...
Страница 539: ...Section 8 Operation 539 8 11 3 Run Stop Program FIGURE 125 CR1000KD Run Stop Program ...
Страница 541: ...Section 8 Operation 541 FIGURE 127 CR1000KD File Edit ...
Страница 542: ...Section 8 Operation 542 8 11 5 PCCard Memory Card Management FIGURE 128 CR1000KD PCCard Memory Card Management ...
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Страница 549: ...Section 9 Maintenance Details 549 FIGURE 133 Separate Back Shell from Module FIGURE 134 Disconnect Battery Connector ...
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Страница 610: ...Section 11 Glossary 610 FIGURE 137 Relationships of Accuracy Precision and Resolution ...
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