APPLICATION OF SMART MOBILE PHONES IN VIBRATION MONITORING

Ljubomir Vračar, Miloš Milovančević, Petra Karanikić

DOI Number
-
First page
143
Last page
153

Abstract


The purpose of the research presented in this paper is the development of the smart mobile phone application for vibration monitoring of pumping aggregate, based on Microchip’s microcontroller (MC). Hardware used is based on Bluetooth connection between smart sensor and smart mobile phone. Software for acquisition and data analysis is optimized for imbedded application in smart sensors. Smart acceleration sensor in conjunction with Bluetooth connection to smart mobile phone creates one touch mobile vibration monitoring system. The authors have performed numerous measurements on a wide range of aggregates for establishing the operating functionality of the newly created system. The possibility of system application I rail vehicle vibration monitoring is also analyzed.

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References


Matić N., Andrić D., 2000, PIC microcontrollers, (in Serbian), Mikroelektronika Beograd.

Milovančević M., Milenković D., Troha S., 2009, The optimization of the vibrodiagnostic method applied on turbo machines, Transactions of FAMENA, 33(3), pp. 63-71.

Milovančević M., Veg A., Makedonski A., Stefanović Marinović J., 2014, Embedded systems for vibration monitoring, Facta Universitatis, series: Mechanical Engineering, 12(2), pp. 171-181.

Manojlović J., Janković P., 2013, Bridge measuring circuits in the strain gauge sensor configuration, Facta Universitatis, series: Mechanical Engineering, 11(1), pp. 75-84.

Paradiso J.A., Starner T., 2005, Energy scavenging for mobile and wireless electronics, IEEE Pervasive Comput., 4(1), pp. 18–27.

Vullers R., Schaijk R., Visser H., Penders J., Van Hoof C., 2010, Energy harvesting for autonomous wireless sensor networks, IEEE Solid-State Circuits Magazine, 2(2), pp. 29–38.

Sardini E., Serpelloni M., 2011, Self–powered wireless sensor for air temperature and velocity measurements with energy harvesting capability, IEEE Trans. Instrum. Meas., 60(5), pp. 1838–1844.

Tan Y.K., Panda S.K., 2011, Self-autonomous wireless sensor nodes with wind energy harvesting for remote sensing of wind-driven wildfire spread, IEEE Trans. Instrum. Meas., 60(4), pp. 1367–1377.

Carmo J.P., Gonçalves L.M., Correia J.H., 2010, Thermoelectric microconverter for energy harvesting systems, IEEE Trans. Ind. Electron., 57(3), pp. 861–867.

Troha S., Lovrin N., Milovančević M., 2012, Selection of the two-carrier shifting planetary gear train controlled by clutches and brakes, Transactions of FAMENA, 36(3), pp. 1-12.

ADXL311 Data Sheet, Analog Devices, 2005, [Online] Available: http://www.analog.com/media/en/

technical-documentation/obsolete-data-sheets/ADXL311.pdf, (last access 05.05.2015)

MCP6022 Data Sheet, Microchip Technology Inc, 2009, [Online] available at: http://ww1.microchip.com/

downloads/en/DeviceDoc/21685d.pdf, (last access: 05.05.2015)

MCP3202 Data Sheet, Microchip Technology Inc, 2006, [Online] available at: http://ww1.microchip.com/

downloads/en/DeviceDoc/21034D.pdf, (last access: 05.05.2015)

PIC18F45K22 Data Sheet, Microchip Technology Inc, 2012, [Online] available at: http://ww1.microchip.com/

downloads/en/DeviceDoc/41412F.pdf, (last access: 05.05.2015)

RN41 Data Sheet, Microchip Technology Inc, 2013, [Online] available at: http://ww1.microchip.com/

downloads/en/DeviceDoc/rn-41-ds-v3.42r.pdf, (last access: 05.05.2015)


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ISSN: 0354-2025 (Print)

ISSN: 2335-0164 (Online)

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