Reduction of pressure fluctuations in the discharge lines of screw compressors

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The article highlights the relevance of reducing the intensity of oscillations in the discharge lines of screw compressors. A calculation methodology for compressor flow oscillations is presented, based on the actual geometry of the screw rotors and the discharge port. Schemes for autonomous and integrated gas oscillation silencers are proposed, designed for installation in the compressor discharge pipeline and housing. The study includes an efficiency analysis of the flow pulsation silencers, demonstrating their high effectiveness within the frequency range up to 2 kHz.

Sobre autores

Anna Vidyaskina

Samara National Research University

Autor responsável pela correspondência
Email: vidiaskina@yandex.ru

Postgraduate student

Rússia, Moskovskoe shosse, 34, Samara, 443086

Gleb Belov

Samara National Research University

Email: belov.go@ssau.ru

Candidate of Science (Engineering), Associate Professor

Rússia, Moskovskoe shosse, 34, Samara, 443086

Aleksandr Kryuchkov

Samara National Research University

Email: kryuchkov.an@ssau.ru

Doctor of Science (Engineering), Professor

Rússia, Moskovskoe shosse, 34, Samara, 443086

Kirill Taziev

Samara National Research University

Email: tazievk0403@gmail.com

Student

Rússia, Moskovskoe shosse, 34, Samara, 443086

Bibliografia

  1. Mironova, T., Kryuchkov, A. and Belov, G. (2019), “Dynamical tuning of helical screw compressor”, In the proceedings: INTER-NOISE 2019 MADRID - 48th International Congress and Exhibition on Noise Control Engineering. 48, Noise Control for a Better Environment.
  2. Belov, G. O. (2015), “Methods of performance calculation of pumps and volumetric compressors providing reduction of their dynamic loading”, Technology of Wheeled and Tracked Vehicles, no. 2, pp. 51-56.
  3. Belov, G. O. and Kryuchkov, A. N. (2012), “Improvement of the dynamics of a screw compressor”, Shipbuilding, no. 5 (804), pp. 43–46.
  4. Khisameev, I. G. and Maksimov, V. A. (2000), Dvukhrotornye vintovye i pryamozubye kompressory: teoriya, raschet i proektirovanie [Twin-Rotor Screw and Spur Gear Compressors: Theory, Calculation, and Design], FEN, Kazan, Russia.
  5. Starobinskiy, R. N. (1982), “Theory and synthesis of noise silencers for intake and exhaust systems of internal Combustion Engines”, D. Sc. Thesis, Thermal Engines, Togliatti Polytechnic Institute, Togliatti, Russia.
  6. Noise and vibration control engineering: principles and applications (2006), edited by István L. Vér and Leo L. Beranek. 2nd ed. Hoboken, N.J.: John Wiley & Sons, Physical description, 966 p.
  7. Glikman, B. F. (1986), Matematicheskie modeli pnevmogidravlicheskikh sistem [Mathematical Models of Pneumohydraulic Systems], Nauka, Moscow, Russia.
  8. Lependin, L. F. (1978), Akustika [Acoustics], Vysshaya shkola, Moscow, Russia.
  9. Shorin, V. P. (1980), Ustranenie kolebaniy v aviatsionnykh truboprovodakh [Elimination of Vibrations in Aircraft Pipelines], Mashinostroenie, Moscow, Russia.
  10. Kryuchkov, A. N., Ermilov, M. A., Ermilova, E. N., Balakhonov, I. V. and Vidyaskina, A. N. (2019), “Development of a pulsation dampener for hydraulic systems of power plants”, VESTNIK of Samara University. Aerospace and Mechanical Engineering, vol. 18, no. 2, pp. 146–155.
  11. Belov, G. O. (2012), “Development of Calculation Methods for Positive Displacement Pumps and Compressors to Reduce Their Dynamic Loading”, Abstract of Ph.D. dissertation, Dynamics and Strength of Machines, Instruments, and Apparatus, Samara National Research University, Samara, Russia.

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Declaração de direitos autorais © Vidyaskina A.N., Belov O.O., Kryuchkov A.N., Taziev K.S., 2024

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Este artigo é disponível sob a Licença Creative Commons Atribuição–Compartilhalgual 4.0 Internacional.

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