Open Access
Issue
JNWPU
Volume 44, Number 2, April 2026
Page(s) 371 - 379
DOI https://doi.org/10.1051/jnwpu/20264420371
Published online 12 June 2026
  1. JÄEGER A, DECKER F, HARTMANN M, et al. Numerical and experimental investigations of the noise generated by a flap in a simplified HVAC duct[C]//14th AIAA/CEAS Aeroacoustics Conference, Reston, 2008. [Google Scholar]
  2. CARO S, DETANDT Y, MANERA J, et al. Validation of a new hybrid CAA strategy and application to the noise generated by a flap in a simplified HVAC duct[C]//15th AIAA/CEAS Aeroacoustics Conference, Reston, 2009. [Google Scholar]
  3. KIERKEGAARD A, WEST A, CARO S. HVAC noise simulations using direct and hybrid methods[C]//22nd AIAA/CEAS Aeroacoustics Conference, Reston, 2016. [Google Scholar]
  4. MIKEDIS K. Prediction of aerodynamically induced noise in automotive HVAC systems[D]. Athens: National Technnical University of Athens, 2023. [Google Scholar]
  5. CARTON DE WIART C, GEUZAINE P, DETANDT Y, et al. Validation of a Hybrid CAA Method: Noise Generated by a Flap in a Simplifed HVAC duct[C]//16th AIAA/CEAS Aeroacoustics Conference, Reston, 2010. [Google Scholar]
  6. QING Hongjun, LIU Jie. An Investigation into simulation method of aerodynamic noise in vehicle HVAC ducts[J]. Automotive Engineering, 2018, 40(11): 1370–1375 (in Chinese) [Google Scholar]
  7. MEIRA L S, SOUZA F J. Numerical investigation of the flow-induced noise in a turbulent flow inside an HVAC duct[M]//MEIER H F, DE Oliveier A, JUNIOR A A M, et al. Advances in turbulence. Cham: Springer, 2020: 57–69. [Google Scholar]
  8. GARCKE J, IZA-TERAN R, GSCHEIDLE C, et al. Analysis of turbulent flow data based on a spectral basis representation[C]//2019 NAFEMS World Congress, Hamilton, 2019. [Google Scholar]
  9. XU Fei, HE Erming. Simulation of flow-induced noise generation on orifice plates in an aircraft climate control system[J]. Journal of Northwestern Polytechnical University, 2017, 35(4): 608–614. [Article] (in Chinese) [Google Scholar]
  10. PARKER R. Resonance effects in wake shedding from parallel plates: some experimental observations[J]. Journal of Sound and Vibration, 1966, 4(1): 62–72 [Google Scholar]
  11. PARKER R. Resonance effects in wake shedding from parallel plates: calculation of resonant frequencies[J]. Journal of Sound and Vibration, 1967, 5(2): 330–343 [Google Scholar]
  12. TAUTZ M. Aeroacoustic noise prediction of automotive HVAC systems[D]. Erlangen: FAU University, 2019. [Google Scholar]
  13. AISSAOUI A, TUPAKE R S, BIJWE V, et al. Flow-induced noise optimization of suv hvac system using a lattice boltzmann method[J]. SAE International Journal of Passenger Cars-Mechanical Systems, 2015, 8(3): 1053–1062 [Google Scholar]
  14. GEIHE B, WELLNER J, ASHCROFT G. Numerical simulation of acoustic resonance in a duct containing a flat plate[J]. Fluids, 2022, 7: 1–14 [Google Scholar]
  15. ZHAO Fengtong, CUI Bo, WU Fei, et al. Investigation on characterization of typical characteristics in compressor based on flat plate model[J]. Applied Sciences, 2022, 12: 1–21 [Google Scholar]
  16. TAN B T, THOMPSON M C, HOURIGAN K. Sources of acoustic resonance generated by flow around a long rectangular plate in a duct[J]. Journal of Fluids and Structures, 2003, 18(6): 729–740 [Google Scholar]

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