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Method for Tuning the Parameters of Active Force Reducing Building Vibrations—Numerical Tests

Author

Listed:
  • Andrzej Dymarek

    (Faculty of Mechanical Engineering, Silesian University of Technology, 44-100 Gliwice, Poland)

  • Tomasz Dzitkowski

    (Faculty of Mechanical Engineering, Silesian University of Technology, 44-100 Gliwice, Poland)

  • Krzysztof Herbuś

    (Faculty of Mechanical Engineering, Silesian University of Technology, 44-100 Gliwice, Poland)

  • Piotr Ociepka

    (Faculty of Mechanical Engineering, Silesian University of Technology, 44-100 Gliwice, Poland)

  • Andrzej Niedworok

    (Laboratory of Applied Tests, KOMAG Institute of Mining Technology, 44-101 Gliwice, Poland)

  • Łukasz Orzech

    (Laboratory of Applied Tests, KOMAG Institute of Mining Technology, 44-101 Gliwice, Poland)

Abstract

The paper formulates a method of active reduction of structure vibrations in the selected resonance zones of the tested object. The method ensures reduction of vibrations of the selected resonance zones by determining the parameters of the active force that meets the desired dynamic properties. The paper presents a method for determining the parameters of the active force by reducing the vibrations of the structure in its resonance zones to a given vibration amplitude. For this purpose, an analytical form was formulated, which will clearly define the dynamic properties of the tested object and the force reducing the vibrations in the form of a mathematical model. The formulated mathematical model is a modified object input function, which in its form takes into account the properties of the active force reducing the vibrations. In such a case, it is possible to use the methods of mechanical synthesis to decompose the modified characteristic function into the parameters of the system and the parameters of the force being sought. In the formulated method, the desired dynamic properties of the system and the vibration reducing force were defined in such a way that the determined parameters of the active force (velocity-dependent function) had an impact on all forms of natural vibrations of the tested system. Based on the formalized method, the force reducing the vibrations of the four-story frame to the desired displacement amplitude was determined. Two cases of determining the active force reducing the vibrations to the desired vibration amplitude of the system by modifying the dynamic characteristics describing the object together with the active force were considered. For both cases, the system’s responses to the oscillation generated by harmonic force of frequencies equal to the first two forms of natural vibrations of the tested system were determined. In order to verify the determined force reducing the vibrations of the object and to create a visualization of the analyzed phenomenon, the building structure dynamics were analyzed with the use of PLM Siemens NX 12 software. The determined force parameters were implemented into the numerical model, in which the tested system was modelled, and the response time waveforms were generated with regard to the considered story. The generated waveforms were compared with the waveforms obtained in the formalized mathematical model for determining the active force reducing the vibrations. The vibrations of the tested numerical model were induced by the kinematic excitation with the maximum amplitude equal to 100 mm, which corresponds to the vibration amplitude during the earthquake with a force equal to level 5 on the Richter scale.

Suggested Citation

  • Andrzej Dymarek & Tomasz Dzitkowski & Krzysztof Herbuś & Piotr Ociepka & Andrzej Niedworok & Łukasz Orzech, 2021. "Method for Tuning the Parameters of Active Force Reducing Building Vibrations—Numerical Tests," Energies, MDPI, vol. 14(24), pages 1-17, December.
  • Handle: RePEc:gam:jeners:v:14:y:2021:i:24:p:8293-:d:698592
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    References listed on IDEAS

    as
    1. Ahad Javanmardi & Zainah Ibrahim & Khaled Ghaedi & Niaz Bahadur Khan & Hamed Benisi Ghadim, 2018. "Seismic isolation retrofitting solution for an existing steel cable-stayed bridge," PLOS ONE, Public Library of Science, vol. 13(7), pages 1-22, July.
    2. Jijian Lian & Yue Zhao & Chong Lian & Haijun Wang & Xiaofeng Dong & Qi Jiang & Huan Zhou & Junni Jiang, 2018. "Application of an Eddy Current-Tuned Mass Damper to Vibration Mitigation of Offshore Wind Turbines," Energies, MDPI, vol. 11(12), pages 1-18, November.
    3. Sung Gook Cho & Seongkyu Chang & Deokyong Sung, 2020. "Application of Tuned Mass Damper to Mitigation of the Seismic Responses of Electrical Equipment in Nuclear Power Plants," Energies, MDPI, vol. 13(2), pages 1-22, January.
    4. Andrzej Dymarek & Tomasz Dzitkowski, 2016. "Inverse Task of Vibration Active Reduction of Mechanical Systems," Mathematical Problems in Engineering, Hindawi, vol. 2016, pages 1-11, October.
    5. Tomasz Dzitkowski & Andrzej Dymarek & Jerzy Margielewicz & Damian Gąska & Lukasz Orzech & Krzysztof Lesiak, 2021. "Designing of Drive Systems in the Aspect of the Desired Spectrum of Operation," Energies, MDPI, vol. 14(9), pages 1-15, April.
    Full references (including those not matched with items on IDEAS)

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