DocumentCode :
1546734
Title :
A methodology for reducing the effect of meteorological parameters on a continuously recording gravity meter
Author :
Andò, Bruno ; Carbone, Daniele
Author_Institution :
Dipt. Elettrico, Elettronico, e Sistemistico, Universita di Catania, Italy
Volume :
50
Issue :
5
fYear :
2001
fDate :
10/1/2001 12:00:00 AM
Firstpage :
1248
Lastpage :
1254
Abstract :
Gravity changes in geodynamically active areas are usually monitored by using discrete measurements. The temporal resolution, which is only as good as the repeat rate of the observations (usually ranging between one month and one year), is the main drawback of such measurements. To achieve a better temporal resolution and thus improve the possibilities of the investigation task, continuous gravity measurements have to be performed. However, temperature and pressure fluctuations seriously affect the output of continuously running spring gravity meters. In this paper, a methodology allowing the signal from a recording gravity meter to be compensated for the effect of temperature and pressure is discussed. To model how the meter output depends on the interfering signals, both polynomial (LMS) and nonlinear (neuro-fuzzy) forms of three different model structures have been tested. The results obtained through the nonlinear algorithm are satisfactory and could constitute the background for the implementation of a real-time correction system using a fuzzy micro-controller chip
Keywords :
compensation; fuzzy systems; geophysical equipment; gravimeters; least mean squares methods; LMS modelling; continuous gravity measurements; continuously recording gravity meter; interfering signals; meteorological parameters effect reduction; microgravity studies; model structures; neuro-fuzzy modelling; nonlinear algorithm; nonlinear form; polynomial form; pressure compensation; pressure fluctuations; real-time correction system; temperature compensation; temperature fluctuations; temporal resolution; Area measurement; Disk recording; Fluctuations; Gravity measurement; Meteorology; Monitoring; Performance evaluation; Signal resolution; Springs; Temperature;
fLanguage :
English
Journal_Title :
Instrumentation and Measurement, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9456
Type :
jour
DOI :
10.1109/19.963193
Filename :
963193
Link To Document :
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