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Smart Predictive Maintenance Strategy Based on Cyber-Physical Systems for Centrifugal Pumps: A Bearing Vibration Analysis

Author

Listed:
  • Karami, Mahdi

    (E.ON Energy Research Center, Future Energy Consumer Needs and Behavior (FCN))

  • Madlener, Reinhard

    (E.ON Energy Research Center, Future Energy Consumer Needs and Behavior (FCN))

Abstract

Early detection of faults in rotary machines, particularly in centrifugal pumps, has become essential in terms of avoiding unplanned or unnecessary maintenance and enhancing system reliability at minimized costs. This paper focuses on the predictive maintenance (PdM) for centrifugal pumps in Cyber-physical Systems (CPS) and proposes a concept to monitor the bearings in order to evaluate the pump’s health condition. CPS have the potential to provide technical systems with self-awareness and self-maintenance capabilities. The implementation of predictive analytics as part of the CPS framework enables the machinery to continuously track its own performance and predict potential failures. Among the different methods for monitoring the pumps, vibration monitoring is one of the most important methods to collect real-time data. Using this technique for PdM would enable maintenance prior to early failure. In the case of the bearing’s vibration monitoring the residual useful life can be predicted and even increased. Consequently, the probability that a breakdown happens is minimized and a smart PdM which guarantees an optimally safe system can be accomplished. Additionally, a conceptual economic analysis which compares two different maintenance strategies is presented in the last section.

Suggested Citation

  • Karami, Mahdi & Madlener, Reinhard, 2019. "Smart Predictive Maintenance Strategy Based on Cyber-Physical Systems for Centrifugal Pumps: A Bearing Vibration Analysis," FCN Working Papers 14/2019, E.ON Energy Research Center, Future Energy Consumer Needs and Behavior (FCN).
  • Handle: RePEc:ris:fcnwpa:2019_014
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    Citations

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    Cited by:

    1. Wolff, Stefanie & Madlener, Reinhard, 2020. "Willing to Pay? Spatial Heterogeneity of e-Vehicle Charging Preferences in Germany," FCN Working Papers 9/2020, E.ON Energy Research Center, Future Energy Consumer Needs and Behavior (FCN).
    2. Liu, Xueying & Madlener, Reinhard, 2021. "The sky is the limit: Assessing aircraft market diffusion with agent-based modeling," Journal of Air Transport Management, Elsevier, vol. 96(C).
    3. Hellwig, Robert & Atasoy, Ayse Tugba & Madlener, Reinhard, 2020. "The Impact of Social Preferences and Information on the Willingness to Pay for Fairtrade Products," FCN Working Papers 6/2020, E.ON Energy Research Center, Future Energy Consumer Needs and Behavior (FCN).
    4. Walter, Antonia & Held, Maximilian & Pareschi, Giacomo & Pengg, Hermann & Madlener, Reinhard, 2020. "Decarbonizing the European Automobile Fleet: Impacts of 1.5 °C-compliant Climate Policies in Germany and Norway," FCN Working Papers 18/2020, E.ON Energy Research Center, Future Energy Consumer Needs and Behavior (FCN).
    5. Liu, Xueying & Madlener, Reinhard, 2019. "Get Ready for Take-Off: A Two-Stage Model of Aircraft Market Diffusion," FCN Working Papers 15/2019, E.ON Energy Research Center, Future Energy Consumer Needs and Behavior (FCN).

    More about this item

    Keywords

    CPS; Bearing; PdM; Centrifugal pump; Vibration monitoring;
    All these keywords.

    JEL classification:

    • L16 - Industrial Organization - - Market Structure, Firm Strategy, and Market Performance - - - Industrial Organization and Macroeconomics; Macroeconomic Industrial Structure
    • L52 - Industrial Organization - - Regulation and Industrial Policy - - - Industrial Policy; Sectoral Planning Methods
    • O14 - Economic Development, Innovation, Technological Change, and Growth - - Economic Development - - - Industrialization; Manufacturing and Service Industries; Choice of Technology

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