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50 Years of scientific thought on Machine Diagnostics in PolanD anD its influence on MaritiMe aPPlications Cover

50 Years of scientific thought on Machine Diagnostics in PolanD anD its influence on MaritiMe aPPlications

Open Access
|Dec 2024

References

  1. Deuszkiewicz P, Dobrociński S, Dziurdź J. & et al. Diagnostyka wibroakustyczna okrętowych turbinowych silników spalinowych. Radom: Wydawnictwo Naukowe Instytutu Technologii Eksploatacji – PIB; 2009. 147 p. [In Polish: Vibroacoustic diagnostics of marine gas turbine engines. Radom: Institute of Sustainable Technologies – NRI].
  2. Gardulski J. Vibroacoustic information processing system used in diagnostics of shock absorbers in passenger cars. Katowice – Radom: Institute of Sustainable Technologies – NRI; 2009. 254 p.
  3. Grządziela A, Kluczyk M, Vidan P. Monitoring the technical condition of the marine turbine engines by analysis of rundown resonance parameters In: Puchalski, A., Łazarz, B.E., Chaari, F., Komorska, I., Zimroz, R. (eds) Advances in Technical Diagnostics II. ICTD 2022. Applied Condition Monitoring, vol 21. Springer, Cham. DOI: 10.1007/978-3-031-31719-4_3.
  4. Madej H. Diagnozowanie uszkodzeń mechanicznych w silnikach spalinowych maskowanych przez elektroniczne urządzenia sterujące. Radom: Wydawnictwo Naukowe Instytutu Technologii Eksploatacji – PIB; 2009. 142 p. [In Polish: Diagnosing mechanical damage in internal combustion engines masked by electronic control devices. Radom: Institute of Sustainable Technologies – NRI].
  5. Niziński S, Kupicz W, Mikołajczak P. et al. Systemy diagnostyczne wojskowych pojazdów mechanicznych. Radom: Wydawnictwo Naukowe Instytutu Technologii Eksploatacji – PIB; 2011. 520 p. [In Polish: Diagnostic systems for military motor vehicles. Radom: Institute of Sustainable Technologies – NRI].
  6. Orłowski Z. Diagnostyka w życiu turbin parowych. Warszawa: Wydawnictwa Naukowo-Techniczne; 2001. 254 p. [In Polish: Diagnostics in the life of steam turbines. Warsaw: Scientific and Technological Publishing House].
  7. Zawisza M. Symptomy wibroakustyczne jako uzupełnienie systemu OBD silników wysokoprężnych. Radom: Wydawnictwo Naukowe Instytutu Technologii Eksploatacji – PIB; 2015. 138 p. [In Polish: Vibroacoustic symptoms as a supplement to the OBD system of diesel engines. Radom: Institute of Sustainable Technologies – NRI].
  8. Engel Z. Ochrona środowiska przed drganiami i hałasem. Warszawa: Wydawnictwo Naukowe PWN; 1993. 460 p. [In Polish: Environmental protection against vibrations and noise. Warsaw: National Scientific Publishers PWN].
  9. Kozak J, Tarełko W., Case study of masts damage of the sail training vessel POGORIA, Engineering Failure Analysis 18(3) 819-827 2011. DOI: 10.1016/j.engfailanal.2010.11.016
  10. Kurowski W. Inżynieria informacji diagnostycznej. Analiza sygnału. Radom: Wydawnictwo Naukowe Instytutu Technologii Eksploatacji – PIB; 2010. 129 p. [In Polish: Diagnostic information engineering. Signal analysis. Radom: Institute of Sustainable Technologies – NRI].
  11. Kniaziewicz T, Zadrąg R. Ranking of toxic compound concentrations as diagnostic parameters of marine internal combustion engine. Polish Maritime Research Special Issue S1 (97) Vol. 25 234-242 2018. DOI: 10.2478/pomr-2018-0047
  12. Kluczyk M, Grządziela A, Polak A. Analysis of changes in the opening pressure of marine engine injectors based on vibration parameters recorded at a constant torque load. Sensors 23(20) 8404 2023. DOI:10.3390/s23208404
  13. Żuławiński W, Antoni J, Zimroz R, Wyłomańska A. Applications of robust statistics for cyclostationarity detection in non-Gaussian signals for local damage detection in bearings. Mechanical Systems and Signal Processing 214 1-24 2024.
  14. Girtler J. The semi-Markov model of the process of appearance of sea-going ship propulsion system ability and inability states in application to determining the reliability of these systems, Polish Maritime Research 4(80) 20 18-24 2013. DOI: 10.2478/pomr-2013-0036
  15. Girtler J. Identification of damages of tribological associations in crankshaft and piston systems of two-stroke internal combustion engines used as main propulsion in sea-going vessels and proposal of probabilistic description of loads as causes of these damages. Polish Maritime Research 2(86) 22 44-54 2015. DOI: 10.1515/pomr-2015-0016
  16. Girtler J. Limiting distribution of the three-state semi-Markov model of technical state transitions of ship power plant machines and its applicability in operational decision-making, Polish Maritime Research 2(106) 27 136-144 2020. DOI: 10.2478/pomr-2020-0035
  17. Müller L. Przekładnie zębate, badania. Warszawa: Wydawnictwa Naukowo-Techniczne; 1984. 227 p. [In Polish: Gears, tests. Warsaw: Scientific and Technological Publishing House].
  18. Natke H G Cempel C. Model-aided diagnosis of mechanical systems: Fundamentals, detection, localization, assessment. Berlin Heidelberg: Springer–Verlag; 1997. 248 p.
  19. Pleban D. Method of acoustic assessment of machinery based on global acoustic quality index. Archives of Acoustics 35(2) 223-235 2010.
  20. Klekot G. Zastosowanie miar propagacji energii wibroakustycznej do monitorowania stanu obiektów oraz jako narzędzie w zarządzaniu hałasem. Radom: Wydawnictwo Naukowe Instytutu Technologii Eksploatacji – PIB; 2012. 122 p. [In Polish: Application of vibroacoustic energy propagation measures to monitor the condition of objects and as a tool in noise management. Radom: Institute of Sustainable Technologies – NRI].
  21. Buszman K. Analysing the impact on underwater noise of changes to the parameters of a ship’s machinery. Polish Maritime Research 3(107) 27 176-181 2020. DOI: 10.2478/pomr-2020-0059
  22. Adamkiewicz A, Drzewieniecki J. Service and maintenance of marine steam turbogenerators with the assistance of vibration diagnostics. Polish Maritime Research 1(77) 20 31-38 2013. DOI: 10.2478/pomr-2013-0004
  23. Filipiak-Kowszyk D, Kamiński W. The application of Kalman filtering to predict vertical rail axis displacements of the overhead crane being a component of seaport transport structure. Polish Maritime Research 2(90) 23 64-70 2016. DOI: 10.1515/pomr-2016-0022
  24. Batko W, Dąbrowski Z, Kiciński J. Nonlinear effects in technical diagnostics. First Edition. Radom: Institute of Sustainable Technologies – NRI; 2008. 302 p.
  25. Szala J, Boroński D. Ocena stanu zmęczenia materiału w diagnostyce maszyn i urządzeń. Bydgoszcz – Radom: Wydawnictwo Naukowe Instytutu Technologii Eksploatacji – PIB; 2008. 287 p. [In Polish: Assessment of material fatigue in the diagnostics of machines and devices. Bydgoszcz – Radom: Institute of Sustainable Technologies – NRI].
  26. Batko W, Banek T. Estymacja zaburzeń w systemach monitorujących. Kraków: Wydawnictwo AGO; 1997. 97 p. [In Polish: Estimation of disorders in monitoring systems. Cracow: AGO Publishing House].
  27. Girtler J, Rudnicki J. Quantumness in diagnostics of marine internal combustion engines and other ship power plant machines. Polish Maritime Research 4(120) 30 110-119 2023. DOI: 10.2478/pomr-2023-0064
  28. Grządziela A, Załęska-Fornal A, Kluczyk M. The single degree of freedom simulation model of underwater explosion impact. Archives of Acoustics 45(2) 341-348 2020. DOI:10.24425/aoa.2020.133154
  29. Kozłowski E, Borucka A, Oleszczuk P, Jałowiec T. Evaluation of the maintenance system readiness using the semi-Markov model taking into account hidden factors. Eksploatacja i Niezawodność–Maintenance and Reliability 25(4) 2023. DOI: 10.17531/ein/172857
  30. Pleban D. Acoustic modeling of machines using the inversion method for the purposes of the acoustic assessment of machines. Archives of Acoustics 32(2) 321-327 2007.
  31. Bzura P. Diagnostic model of crankshaft seals. Polish Maritime Research 3(103) 26 39-46 2019. DOI: 10.2478/pomr-2019-0044
  32. Kluczyk M, Grządziela A, Batur T. Design and operational diagnostics of marine propellers made of polymer materials. Polish Maritime Research 4(116) 29 115-122 2022. DOI: 10.2478/pomr-2022-0049
  33. Tomaszek H, Zieja M, Ważny M. A method for reliability assessment of structural components of aircraft and sea-going ships with taking into account a given failure generation model. Polish Maritime Research 2(90) 23 83-90 2016. DOI: 10.1515/pomr-2016-0024
  34. Pająk M, Muślewski Ł, Landowski B, Grządziela A. Fuzzy identification of the reliability state of the mine detecting ship propulsion system. Polish Maritime Research 1(101) 26 55-64 2019. DOI: 10.2478/pomr-2019-0007
  35. Breńkacz Ł, Żywica G, Drosińska-Komor M. The experimental identification of the dynamic coefficients of two hydrodynamic journal bearings operating at constant rotational speed and under nonlinear conditions. Polish Maritime Research 4(96) 24 108-115 2017. DOI: 10.1515/pomr-2017-0142
  36. Grządziela A, Musiał J, Muślewski Ł, Pająk M. A method for identification of non-coaxiality in engine shaft lines of a selected type of naval ships. Polish Maritime Research 1(85) 22 65-71 2015. DOI: 10.1515/pomr-2015-0009
  37. Emilianowicz K. Monitoring of underdeck corrosion by using acoustic emission method. Polish Maritime Research 1(81) 21 54-61 2014. DOI: 10.2478/pomr-2014-0008
  38. Katunin A. Diagnostics of composite structures using wavelets. Radom: Institute of Sustainable Technologies – NRI; 2015. 315 p.
  39. Korczewski Z. Health monitoring of a compression ignition engine fed with different low-sulphur marine fuels by endoscopic image processing and analysis. Polish Maritime Research 2(118) 30 85-94 2023. DOI: 10.2478/pomr-2023-0024
  40. Puzdrowska P. Diagnostic information analysis of quickly changing temperature of exhaust gas from marine diesel engine: Part I: Single factor analysis. Polish Maritime Research 4(112) 28 97-106 2021. DOI: 10.2478/pomr-2021-0052
  41. Puzdrowska P. Diagnostic analysis of exhaust gas with a quick-changing temperature from a marine diesel engine: Part II: Two factor analysis. Polish Maritime Research 3(119) 30 89-95. DOI: 10.2478/pomr-2023-0042
  42. Szymiczek M. Ocena stopnia degradacji poliestrowoszklanych kompozytów nawijanych. Gliwice: Wydawnictwo Politechniki Śląskiej; 2016. 201 p. [In Polish: Assessment of the degree of degradation of wound polyester-glass composites. Gliwice: Silesian University of Technology Publishing House].
  43. Pawlik P, Kania K, Przysucha B. Fault diagnosis of machines operating in variable conditions using artificial neural network not requiring training data from a faulty machine. Eksploatacja i Niezawodność – Maintenance and Reliability 25(3) 2023. DOI: 10.17531/ein/168109
  44. Puchalski A. Wybrane problemy diagnozowania układów mechatronicznych pojazdów. Radom: Wydawnictwo Naukowe Instytutu Technologii Eksploatacji – PIB; 2013. 129 p. [In Polish: Selected problems in diagnosing vehicle mechatronic systems. Radom: Institute of Sustainable Technologies – NRI].
  45. Osiński Z, Wróbel J. Teoria konstrukcji maszyn. Warszawa: Wydawnictwo Naukowe PWN; 1982. 191 p. [In Polish: The theory of machine design. Warsaw: National Scientific Publishers PWN].
  46. Ziemba S. Problemy rozwoju nauki o eksploatacji maszyn i urządzeń technicznych. Warszawa: Państwowe Wydawnictwo Naukowe; 1983. 260 p. [In Polish: Problems of the development of science about operation of technical machinery and equipment. Warsaw: National Scientific Publishers PWN].
  47. Radkowski S. Wibroakustyczna diagnostyka uszkodzeń niskoenergetycznych. Radom: Wydawnictwo Naukowe Instytutu Technologii Eksploatacji – PIB; 2002. 247 p. [In Polish: Vibroacoustic diagnostics of low-energy faults. Radom: Institute of Sustainable Technologies – NRI].
  48. Adamczyk J, Krzyworzeka P, Łopacz H. Systemy synchronicznego przetwarzania sygnałów diagnostycznych. Kraków: Collegium Columbinum; 1999. 158 p. [In Polish: Systems of synchronous processing of diagnostic signals. Cracow: Collegium Columbinum].
  49. Dziurdź J. Analiza zjawisk nieliniowych w diagnozowaniu układów napędowych pojazdów. Warszawa – Radom: Wydawnictwo Naukowe Instytutu Technologii Eksploatacji – PIB; 2013. 112 p. [In Polish: Analysis of nonlinear phenomena in diagnosing vehicle drive systems. Warsaw –Radom: Institute of Sustainable Technologies – NRI].
  50. Wojnar G, Burdzik R, Wieczorek A N, Konieczny Ł. Multidimensional data interpretation of vibration signals registered in different locations for system condition monitoring of a three-stage gear transmission operating under difficult conditions. Sensors 21 2021 7808 2021. DOI: 10.3390/s21237808
  51. Dąbrowski Z, Deuszkiewicz P, Dziurdź J. Proposition of the vibroacoustic diagnostic methodology of testing toothed gears of marine drives. Journal of Marine Engineering & Technology 16(4) 386-391 2017.
  52. Dąbrowski Z, Dziurdź J, Górnicka D. Utilisation of the coherence analysis in acoustic diagnostics of internal combustion engines. Archives of Acoustics 42(3) 475-481 2017. DOI: 10.1515/aoa-2017-0050
DOI: https://doi.org/10.2478/pomr-2024-0060 | Journal eISSN: 2083-7429 | Journal ISSN: 1233-2585
Language: English
Page range: 161 - 173
Published on: Dec 10, 2024
Published by: Gdansk University of Technology
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2024 Grzegorz Klekot, Zbigniew Dąbrowski, Jacek Dziurdź, published by Gdansk University of Technology
This work is licensed under the Creative Commons Attribution 4.0 License.