Literature DB >> 27029276

Measurement of the Earth tides with a MEMS gravimeter.

R P Middlemiss1,2, A Samarelli1, D J Paul2, J Hough1, S Rowan1, G D Hammond1.   

Abstract

The ability to measure tiny variations in the local gravitational acceleration allows, besides other applications, the detection of hidden hydrocarbon reserves, magma build-up before volcanic eruptions, and subterranean tunnels. Several technologies are available that achieve the sensitivities required for such applications (tens of microgal per hertz(1/2)): free-fall gravimeters, spring-based gravimeters, superconducting gravimeters, and atom interferometers. All of these devices can observe the Earth tides: the elastic deformation of the Earth's crust as a result of tidal forces. This is a universally predictable gravitational signal that requires both high sensitivity and high stability over timescales of several days to measure. All present gravimeters, however, have limitations of high cost (more than 100,000 US dollars) and high mass (more than 8 kilograms). Here we present a microelectromechanical system (MEMS) device with a sensitivity of 40 microgal per hertz(1/2) only a few cubic centimetres in size. We use it to measure the Earth tides, revealing the long-term stability of our instrument compared to any other MEMS device. MEMS accelerometers--found in most smart phones--can be mass-produced remarkably cheaply, but none are stable enough to be called a gravimeter. Our device has thus made the transition from accelerometer to gravimeter. The small size and low cost of this MEMS gravimeter suggests many applications in gravity mapping. For example, it could be mounted on a drone instead of low-flying aircraft for distributed land surveying and exploration, deployed to monitor volcanoes, or built into multi-pixel density-contrast imaging arrays.

Entities:  

Year:  2016        PMID: 27029276     DOI: 10.1038/nature17397

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  1 in total

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Authors:  Mark A Poggi; Andrew W McFarland; Jonathan S Colton; Lawrence A Bottomley
Journal:  Anal Chem       Date:  2005-02-15       Impact factor: 6.986

  1 in total
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Authors:  Zhenyun Qian; Sungho Kang; Vageeswar Rajaram; Cristian Cassella; Nicol E McGruer; Matteo Rinaldi
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3.  Microelectromechanical system gravimeters as a new tool for gravity imaging.

Authors:  Richard P Middlemiss; Steven G Bramsiepe; Rebecca Douglas; Stefan Hild; James Hough; Douglas J Paul; Antonio Samarelli; Sheila Rowan; Giles D Hammond
Journal:  Philos Trans A Math Phys Eng Sci       Date:  2018-05-28       Impact factor: 4.226

Review 4.  SEIS: Insight's Seismic Experiment for Internal Structure of Mars.

Authors:  P Lognonné; W B Banerdt; D Giardini; W T Pike; U Christensen; P Laudet; S de Raucourt; P Zweifel; S Calcutt; M Bierwirth; K J Hurst; F Ijpelaan; J W Umland; R Llorca-Cejudo; S A Larson; R F Garcia; S Kedar; B Knapmeyer-Endrun; D Mimoun; A Mocquet; M P Panning; R C Weber; A Sylvestre-Baron; G Pont; N Verdier; L Kerjean; L J Facto; V Gharakanian; J E Feldman; T L Hoffman; D B Klein; K Klein; N P Onufer; J Paredes-Garcia; M P Petkov; J R Willis; S E Smrekar; M Drilleau; T Gabsi; T Nebut; O Robert; S Tillier; C Moreau; M Parise; G Aveni; S Ben Charef; Y Bennour; T Camus; P A Dandonneau; C Desfoux; B Lecomte; O Pot; P Revuz; D Mance; J tenPierick; N E Bowles; C Charalambous; A K Delahunty; J Hurley; R Irshad; Huafeng Liu; A G Mukherjee; I M Standley; A E Stott; J Temple; T Warren; M Eberhardt; A Kramer; W Kühne; E-P Miettinen; M Monecke; C Aicardi; M André; J Baroukh; A Borrien; A Bouisset; P Boutte; K Brethomé; C Brysbaert; T Carlier; M Deleuze; J M Desmarres; D Dilhan; C Doucet; D Faye; N Faye-Refalo; R Gonzalez; C Imbert; C Larigauderie; E Locatelli; L Luno; J-R Meyer; F Mialhe; J M Mouret; M Nonon; Y Pahn; A Paillet; P Pasquier; G Perez; R Perez; L Perrin; B Pouilloux; A Rosak; I Savin de Larclause; J Sicre; M Sodki; N Toulemont; B Vella; C Yana; F Alibay; O M Avalos; M A Balzer; P Bhandari; E Blanco; B D Bone; J C Bousman; P Bruneau; F J Calef; R J Calvet; S A D'Agostino; G de Los Santos; R G Deen; R W Denise; J Ervin; N W Ferraro; H E Gengl; F Grinblat; D Hernandez; M Hetzel; M E Johnson; L Khachikyan; J Y Lin; S M Madzunkov; S L Marshall; I G Mikellides; E A Miller; W Raff; J E Singer; C M Sunday; J F Villalvazo; M C Wallace; D Banfield; J A Rodriguez-Manfredi; C T Russell; A Trebi-Ollennu; J N Maki; E Beucler; M Böse; C Bonjour; J L Berenguer; S Ceylan; J Clinton; V Conejero; I Daubar; V Dehant; P Delage; F Euchner; I Estève; L Fayon; L Ferraioli; C L Johnson; J Gagnepain-Beyneix; M Golombek; A Khan; T Kawamura; B Kenda; P Labrot; N Murdoch; C Pardo; C Perrin; L Pou; A Sauron; D Savoie; S Stähler; E Stutzmann; N A Teanby; J Tromp; M van Driel; M Wieczorek; R Widmer-Schnidrig; J Wookey
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5.  High-Sensitivity Encoder-Like Micro Area-Changed Capacitive Transducer for a Nano-g Micro Accelerometer.

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Journal:  Sensors (Basel)       Date:  2017-09-20       Impact factor: 3.576

6.  Novel Capacitive Sensing System Design of a Microelectromechanical Systems Accelerometer for Gravity Measurement Applications.

Authors:  Zhu Li; Wen Jie Wu; Pan Pan Zheng; Jin Quan Liu; Ji Fan; Liang Cheng Tu
Journal:  Micromachines (Basel)       Date:  2016-09-14       Impact factor: 2.891

7.  Investigation on the Quality Factor Limit of the (111) Silicon Based Disk Resonator.

Authors:  Xin Zhou; Dingbang Xiao; Qingsong Li; Qian Hu; Zhanqiang Hou; Kaixuan He; Zhihua Chen; Chun Zhao; Yulie Wu; Xuezhong Wu; Ashwin Seshia
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Review 8.  The Recent Progress of MEMS/NEMS Resonators.

Authors:  Lei Wei; Xuebao Kuai; Yidi Bao; Jiangtao Wei; Liangliang Yang; Peishuai Song; Mingliang Zhang; Fuhua Yang; Xiaodong Wang
Journal:  Micromachines (Basel)       Date:  2021-06-19       Impact factor: 2.891

9.  Field Tests of a Portable MEMS Gravimeter.

Authors:  Richard P Middlemiss; Steven G Bramsiepe; Rebecca Douglas; James Hough; Douglas J Paul; Sheila Rowan; Giles D Hammond
Journal:  Sensors (Basel)       Date:  2017-11-08       Impact factor: 3.576

10.  Distortion-free measurement of electric field strength with a MEMS sensor.

Authors:  Andreas Kainz; Harald Steiner; Johannes Schalko; Artur Jachimowicz; Franz Kohl; Michael Stifter; Roman Beigelbeck; Franz Keplinger; Wilfried Hortschitz
Journal:  Nat Electron       Date:  2018-01-08
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