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https://doi.org/10.1007/978-3-642-82285-8nalysis, we obtained the amplitude factor (δ-factor) of 1.198±0.035 and a time lag about 20 days against to the gravity changes predicted from the IERS (International Earth Rotation Service) polar motion data. Our analysis using simulation data suggests that the results for least-squares fitting are
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W. A. Martin,K. W. Church,R. S. Patilto, as well as data of groundwater level and rainfall during the period from February 1992 to July 1996. Gravity changes of several . gals were observed according to groundwater level changes of 2 m. The gravity changes are in proportion to the change of the groundwater level. The admittance was det
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Economic and Commercial Fundamentals,ystems spanning more than a few kilometers cannot rely solely on this approach. Fortunately, geological evidence suggests that the bulk of spreading center strain accumulation occurs within a few kilometers of the ridge axis. Two approaches to acoustic strain monitoring have emerged. The direct appr
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Natural Hazards and Disaster Justicemean gravity values, on the other hand, increase at a rate of about 1.0 × 10.ms./day (3.6 × 10.ms./year). The rate of 3.6 × 10.ms./year (3.6.Gals/year) is equivalent to crustal subsidence at the rate of about 11mm/year if we assume the height variation only takes part in the gravity change with the
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