Home

DOI 10.21440/2307-2091-2017-3-60-64

Development of the testing procedure for units and elements of mining equipment pdf

P. B. Gerike

The author considers in detail the stages of creating a testing procedure for mining equipment based on the complex implementation of principles of nondestructive testing and technical diagnostics. The author substantiates effectiveness of application of a complex diagnostic approach for assessing the state of metal structures and energy-mechanical equipment of mining machines. The opportunity for timely detection of defects, regardless of their type and degree of danger, presents itself only with a wide application of the modern methods of vibration diagnostics and nondestructive testing. The author substantiates the effectiveness of specific combination of methods of nondestructive testing, most optimally suited for solving given tasks. The article contains the developed complex of more than 120 diagnostic rules, suitable for performing automated analysis of vibroacoustic signal and revealing the main damages of energy-mechanical equipment based on selective groups of informative frequencies. The author formulates the main criteria that one can use as a basic platform for improving the methodology for normalizing the parameters of mechanical oscillations. The developed diagnostic criteria became a basis for the development of individual spectral masks suitable for performing the analysis of parameters of vibroacoustic waves generated during operation of mining equipment. The author proves necessity of transition of repair and maintenance divisions of industrial enterprises to the system of maintenance of machinery according to its actual technical state, and the developed complex of diagnostic rules for detecting defects can serve as a platform for the implementation of basic elements of this system. The author substantiates the principal validity of the developed methodology for testing mining machines equipment and its individual elements, such as the predictive modeling of degradation of technical state of mining equipment and the improvement of normalization using spectral masks and unified diagnostic criteria. Implementation of the principles of the developed testing methodology will increase reliability of mining equipment and minimize the number of emergency failures of complex expensive equipment, which in the end will generally have a positive impact on the safety of mining operations.

Keywords: vibrodiagnostics; mining equipment; testing procedure; residual resource; normalization of mechanical vibration parameters.

 

REFERENCES

1. Trebuna F., Šimcak F., Bocko J., Hunady R., Pastor M. 2014, Complex approach to the vibrodiagnostic analysis of excessive vibration of the exhaust
fan. Engineering Failure Analysis. vol. 37, pp. 86–95.
2. Puchalski A. 2015, A technique for the vibration signal analysis in vehicle diagnostics. Mechanical Systems and Signal Processing, vol. 56–57, pp. 173–180.
3. Sushko A. E. 2007, Razrabotka spetsial'nogo matematicheskogo i programmnogo obespecheniya dlya avtomatizirovannoy diagnostiki slozhnykh
sistem: dis. … kand. tekhn. nauk [Development of special mathematical and software for automated diagnostics of complex systems: the dissertation of the candidate of technical sciences], Moscow, 170 p.
4. Balducchi F., Arghir M., Gaudillere S. 2014, Experimental analysis of the unbalance response of rigid rotors supported on aerodynamic foil bearings.
Proceedings of ASME Turbo Expo 2014: Turbine Technical Conference and Exposition GT2014 (June 16–20, 2014), Düsseldorf, Germany, 12 p.
5. Klyuev V. V. 2005, Nerazrushayushchiy kontrol': spravochnik [Non-destructive testing: reference book], Moscow, vol. 7, 828 p.
6. Skeinik R., Petersen D. Automated fault detection via selective frequency band alarming in PC-based predictive maintenance systems. CSI, Knaxville, TN 37923, USA.
7. Luk'yanov A. V. 1999, Klassifikator vibrodiagnosticheskikh priznakov defektov rotornykh mashin [Classifier of vibrodiagnostic features of defects of rotary machines], Irkutsk, 230 p.
8. Gerike P. B. 2015, Opyt sozdaniya modeley degradatsii tekhnicheskogo sostoyaniya dinamicheskogo oborudovaniya ekskavatorov-draglaynov na
osnove analiza parametrov mekhanicheskikh kolebaniy [Experience in creating models of degradation of technical condition of dynamic equipment of dragline excavators on the basis of analysis of mechanical vibration parameters]. Vestnik Nauch. tsentra po bezopasnosti rabot v ugol'noy promyshlennosti [Industial Safety], no. 3, pp. 66–73.
9. Gerike P. B. 2013, Nerazrushayushchiy kontrol' oborudovaniya gidromekhanizatsii na ugol'nykh razrezakh Kuzbassa [Non-destructive monitoring
of hydromechanization equipment at coal mines of Kuzbass]. Izv. UGGU [News of the Ural State Mining University], no. 4, pp. 72–76.
10. Pozhidaeva V. 2005, Determining the roughness of contact surfaces of the rolling bearings by the method of shock pulses. World Tribology Congress III, Washington, USA.
11. Liu G., Parker R. 2008, Dynamic Modeling and Analysis of Tooth Profile Modification for Multimesh Gear Vibration. Journal of Mechanical Design. vol. 130, pp. 121402/1–121402/13.
12. Klishin V. I., Zvorygin L. V., Lebedev A. V. et al. 2011, Problemy bezopasnosti i novye tekhnologii podzemnoy razrabotki ugol'nykh mestorozhdeniy [Security problems and new technologies for underground mining of coal deposits], Novosibirsk, 524 p.
13. Eshcherkin P. V. 2012, Razrabotka metodiki diagnostirovaniya i prognozirovaniya tekhnicheskogo sostoyaniya dizel'-gidravlicheskikh burovykh
stankov: avtoref. dis. … kand. tekhn. nauk [Development of methods for diagnosing and forecasting the technical condition of diesel-hydraulic drilling rigs: the author's abstract of the dissertation of the candidate of technical sciences], Kemerovo, 18 p.
14. Bently D. E., Hatch C. T. 2002, Fundamentals of rotating Machinery Diagnostics, Minden, 726 p.

Лицензия Creative Commons
All articles posted on the site are available under the Creative Commons Attribution 4.0 Global License.