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Method of device diagnostics, operating status logging and configuration changes

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dc.title Method of device diagnostics, operating status logging and configuration changes en
dc.contributor.author Blahová, Marta
dc.contributor.author Mach, Václav
dc.contributor.author Zimek, Ondrej
dc.contributor.author Adámek, Milan
dc.relation.ispartof Annals of DAAAM and Proceedings of the International DAAAM Symposium
dc.identifier.issn 1726-9679 Scopus Sources, Sherpa/RoMEO, JCR
dc.identifier.isbn 978-3-902734-22-8
dc.date.issued 2019
utb.relation.volume 30
utb.relation.issue 1
dc.citation.spage 1014
dc.citation.epage 1018
dc.event.title 30th DAAAM International Symposium on Intelligent Manufacturing and Automation, DAAAM 2019
dc.event.location Zadar
utb.event.state-en Croatia
utb.event.state-cs Chorvatsko
dc.event.sdate 2019-10-23
dc.event.edate 2019-10-26
dc.type conferenceObject
dc.language.iso en
dc.publisher Danube Adria Association for Automation and Manufacturing, DAAAM
dc.identifier.doi 10.2507/30th.daaam.proceedings.141
dc.relation.uri https://daaam.info/30th-proceedings-2019
dc.relation.uri https://www.daaam.info/Downloads/Pdfs/proceedings/proceedings_2019/141.pdf
dc.subject diagnostics of electronic devices en
dc.subject electrical equipment en
dc.subject control units en
dc.subject integrated circuit en
dc.description.abstract The aim of this research is to design a suitable design for a diagnostic device that will periodically monitor and record selected quantities in the device. The diagnostic equipment must be as flexible as possible, as the design will be applicable to all output electronic equipment of this project. This means that the diagnostic design can be applied to all control units, add-on modules or turnstile controllers. Each checked element contains different quantities that are valid for correct diagnostics. Therefore, there is a desire for a uniform design that can be customized based on the device. The data itself should include the exact time and date the measurement occurred. This information should be kept for several years for back diagnosis. Furthermore, the data should be stored primarily on the device with the possibility to transfer it to the PC via the given interface. Baseline states should be available directly on the device for immediate status. This information will be displayed via a small integrated display directly on the PCB. The data itself should be stored on a medium that retains the information even when the power supply is interrupted. The diagnostic part itself should be equipped with a backup battery, which will be functional even after the failure of the primary power supply for possible failure diagnosis. The design should consist of a microcomputer that will record events that can be updated with firmware to accommodate the board's needs. A simple program that visualizes the data for easier diagnostics will be needed to view the recorded data more easily. © 2019, Danube Adria Association for Automation and Manufacturing, DAAAM. All rights reserved. en
utb.faculty Faculty of Applied Informatics
dc.identifier.uri http://hdl.handle.net/10563/1011229
utb.identifier.obdid 43880216
utb.identifier.scopus 2-s2.0-85077887005
utb.source d-scopus
dc.date.accessioned 2023-01-06T08:03:56Z
dc.date.available 2023-01-06T08:03:56Z
dc.description.sponsorship IGA / FAI / 2019/003, IGA/Cebia Tech/2019/003
utb.contributor.internalauthor Blahová, Marta
utb.contributor.internalauthor Mach, Václav
utb.contributor.internalauthor Zimek, Ondrej
utb.contributor.internalauthor Adámek, Milan
utb.fulltext.affiliation Marta Blahova, Vaclav Mach, Ondrej Zimek & Milan Adamek
utb.fulltext.dates -
utb.fulltext.references [1] Chou, Y. & Yao, L. (2009) Automatic Diagnostic System of Electrical Equipment Using Infrared Thermography. International Conference of Soft Computing and Pattern Recognition pp. 155-160. DOI: 10.1109/SoCPaR.2009.41. ISBN 978-1-4244-5330-6. [2] Bernat, P. (2015) On-Line Diagnostics Of Electrical Torque Machines. Available from: http://homen.vsb.cz/~ber30/texty/diagnostika/DIAGO98.pdf [3] JTAG Toolkit. JTAG Tools Source Forge, 2014. Available from: http://jtagtools.sourceforge.net/images/jtg5.gif [4] Maunder, C. & Tulloss, R. (1991) The test access port and boundary-scan architecture. Alamitos, Calif. Computer Society Press, c1991 ISBN 08-186-60708. [5] IEEE Standard for Reduced-Pin and Enhanced-Functionality Test Access Port and Boundary-Scan Architecture The official IEEE 1149.7 Standard [6] EEVblog (2018) What is JTAG and Boundary Scan. Available at: https://www.youtube.com/watch?v=TlWlLeC5BUs. EEVblog's channel [7] Romanek, K. (2011) Independent Datalogger with USB Connection. Brno, Brno University of Technology, Faculty of Electrical Engineering and Communication Technologies. [8] Novobilsky, P. (2011) Independent Datalogger With USB Connection. Brno University of Technology, Faculty of Electrical Engineering and Communication Technologies. [9] Hubálek, J. & Adámek, M. (2001) Microsensors and Microelectromechanical Systems. Brno: Brno University of Technology.
utb.fulltext.sponsorship This research was based on the support of the Internal Grant Agency of Tomas Bata University in Zlín, the IGA/FAI/2019/003, IGA/CebiaTech/2019/003 project and the Institute of Safety Engineering, Faculty of Applied Informatics.
utb.fulltext.projects IGA/FAI/2019/003
utb.fulltext.projects IGA/CebiaTech/2019/003
utb.fulltext.faculty -
utb.fulltext.ou -
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