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Part of the book series: Springer Tracts in Civil Engineering ((SPRTRCIENG))

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Abstract

In this chapter, decoupled passive and active control strategies are performed out. Firstly, four different arrangements of vibration isolators for vibration isolation base are investigated, Followed by, decoupling using counter coincidence of mass and stiffness and natural frequency decoupling with loaded mass by using double-chamber air spring are carried out. Based on this, a sensing-control-actuation system was introduced based on the air-floating passive control system decoupled from the load to achieve active control. Finally, a typical engineering example is introduced here, and a systematic research for the presented techniques in this chapter is carried out.

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References

  1. Zhang CL (2003) Research on active vibration control of micro manufacturing platform [D]. Zhejiang University

    Google Scholar 

  2. Hoque ME, Mizuno T, Ishino Y et al (2010) A six-axis hybrid vibration isolation system using active zero-power control supported by passive weight support mechanism [J]. J Sound Vib 329(17):3417–3430

    Article  Google Scholar 

  3. Taylor JH, Wilson BH (1995) A frequency-domain model-order-deduction algorithm for nonlinear systems [C]. In: Proceedings of international conference on control applications. IEEE, pp 1053–1058

    Google Scholar 

  4. Erin C, Wilson B, Zapfe J (1998) An improved model of a pneumatic vibration isolator: theory and experiment [J]. J Sound Vib 218(1):81–101

    Article  Google Scholar 

  5. Subrahmanyan PK (1999) A model approach to precision motion control [D]. MIT

    Google Scholar 

  6. Nasri M, Nezamabadi-pour H, Maghfoori M (2007) A PSO-based optimum design of PID controller for a linear brushless DC motor [J]. World Acad Sci Eng Technol Int J Electr Inf Eng 1(2):171–175

    Google Scholar 

  7. Chen C-K, Kuo H-H, Yan J-J et al (2009) GA-based PID active queue management control design for a class of TCP communication networks [J]. Expert Syst Appl 36(2 (Part 1)):1903–1913

    Article  Google Scholar 

  8. GB50040: Standard for design of dynamic machine foundation [S]

    Google Scholar 

  9. Eberhart R, Kennedy J (1995) A new optimizer using particle swarm theory [C]. In: Proceedings of the sixth international symposium on micro machine and human science. IEEE, pp 39–43

    Google Scholar 

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Huang, W., Xu, J. (2023). Decoupled Passive and Active Control. In: Optimized Engineering Vibration Isolation, Absorption and Control . Springer Tracts in Civil Engineering . Springer, Singapore. https://doi.org/10.1007/978-981-99-2213-0_8

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  • DOI: https://doi.org/10.1007/978-981-99-2213-0_8

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  • Publisher Name: Springer, Singapore

  • Print ISBN: 978-981-99-2212-3

  • Online ISBN: 978-981-99-2213-0

  • eBook Packages: EngineeringEngineering (R0)

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