dc.contributor.author | Πετρόπουλος, Αναστάσιος | el |
dc.contributor.author | Μόσχος, Αναστάσιος | el |
dc.contributor.author | Αθηναίος, Σπύρος Σ. | el |
dc.contributor.author | Καλτσάς, Γρηγόριος | el |
dc.date.accessioned | 2015-05-20T17:40:02Z | |
dc.date.available | 2015-05-20T17:40:02Z | |
dc.date.issued | 2015-05-20 | |
dc.identifier.uri | http://hdl.handle.net/11400/10790 | |
dc.rights | Αναφορά Δημιουργού-Μη Εμπορική Χρήση-Όχι Παράγωγα Έργα 3.0 Ηνωμένες Πολιτείες | * |
dc.rights.uri | http://creativecommons.org/licenses/by-nc-nd/3.0/us/ | * |
dc.source | http://www.elsevier.com/ | en |
dc.subject | Convective thermal accelerometer | |
dc.subject | Organic substrate | |
dc.subject | Sensor signals | |
dc.subject | Sensor surfaces | |
dc.subject | Μεταφερόμενο θερμικό επιταχυνσιόμετρο | |
dc.subject | Οργανικό υπόστρωμα | |
dc.subject | Σήματα αισθητήρα | |
dc.subject | Επιφάνειες αισθητήρα | |
dc.title | A thermal accelerometer directly integrated on organic substrate | en |
heal.type | journalArticle | |
heal.generalDescription | 25th Eurosensors Conference. Athens, Greece. 4-7 September 2011. Code 88600 | en |
heal.classification | Technology | |
heal.classification | Electrical engineering | |
heal.classification | Τεχνολογία | |
heal.classification | Ηλεκτρολογία Μηχανολογία | |
heal.classificationURI | http://id.loc.gov/authorities/subjects/sh85133147 | |
heal.classificationURI | http://zbw.eu/stw/descriptor/18426-4 | |
heal.classificationURI | **N/A**-Τεχνολογία | |
heal.classificationURI | **N/A**-Ηλεκτρολογία Μηχανολογία | |
heal.identifier.secondary | DOI: 10.1016/j.proeng.2011.12.160 | |
heal.language | en | |
heal.access | campus | |
heal.publicationDate | 2011 | |
heal.bibliographicCitation | PETROPOULOS, A., MOSCHOS, A., ATHINEOS, S.S. & KALTSAS, G. (2011). A thermal accelerometer directly integrated on organic substrate. Procedia Engineering. [online] 25. p. 643-646. Available from: http://www.elsevier.com/[Accessed 08/01/2012] | en |
heal.abstract | A thermal accelerometer was developed and evaluated. The presented device was fabricated directly on an organic substrate, which ensures a high level of thermal isolation, while also facilitating direct electrical communication to the macroworld. The role of the seismic mass was utilized by a fluid (water), which was confined in a tank adjusted on the sensor surface. Acceleration quantification is achieved by the monitoring of the cooling effect on the heating element. A sensor signal of 32mV for an acceleration of 1g was obtained. | en |
heal.publisher | Elsevier | en |
heal.journalName | Procedia Engineering | en |
heal.journalType | peer-reviewed | |
heal.fullTextAvailability | true |
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