INVESTIGATION OF AN AIR SUPPLY CENTRIFUGAL FAN FOR AIR CUSHION VEHICLE: IMPELLER DESIGN AND VALIDATION

被引:0
|
作者
Lee, Yu-Tai [1 ]
Ahuja, Vineet
Hosangadi, Ashvin
Slipper, Michael E.
Mulvihill, Lawrence P. [1 ]
Birkbeck, Roger
Coleman, Roderick M. [1 ]
机构
[1] Naval Surface Warfare Ctr, Carderock Div, Bethesda, MD USA
关键词
D O I
暂无
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
A design method is presented for re-designing the double-discharge, double-width, double-inlet (DWDI) centrifugal impeller for the lift fans of a hovercraft. Given the current high performance of impellers, the design strategy uses a computational method, which is capable of predicting flow separation and vortex-dominated flow fields, enabling a detailed comparison of all aerodynamic losses. The design method, assuming a weak interaction between the impeller and the volute, employs a blade optimization procedure and several effective flow path modifications. Simplified CFD calculations were performed on fans with two existing impellers and the newly designed impeller to evaluate the impeller design criterion. The calculation was made with the impeller/volute coupling calculation and a frozen impeller assumption. Further refined CFD calculations, including the gap between the stationary bellmouth and the rotating shroud, revealed a reduction in the new impeller's gain in efficiency due to the gap. The calculations also further supported the necessity of matching the volute and the impeller to improve the fan's overall efficiency. Measured data of three fans validated CFD predictions in pressure rise at design and off-design conditions. CFD calculations also demonstrated the Reynolds number effect between the model- and full-scale fans. Power reduction data were compared between the measurements and the predictions along with the original design requirements.
引用
收藏
页码:2273 / 2285
页数:13
相关论文
共 50 条
  • [21] Controller design for a semi-track air-cushion vehicle
    Ma, C.
    He, D.
    Xie, D.
    Yu, F.
    Luo, Z.
    INTERNATIONAL JOURNAL OF AUTOMOTIVE TECHNOLOGY, 2015, 16 (04) : 581 - 591
  • [22] Optimization of Impeller Structure Parameters of a Centrifugal Fan in a Powered Air-Purifying Respirator Power System
    Zhao, Xintong
    Guan, Jianhui
    Wang, Tianyu
    Liu, Xinyu
    Xu, Qingao
    Zhou, Jie
    PROCESSES, 2024, 12 (02)
  • [23] Comparative Study of Blade Shape Design of Centrifugal Fan Impeller
    Zahariea, Danut
    ENGINEERING SOLUTIONS AND TECHNOLOGIES IN MANUFACTURING, 2014, 657 : 619 - 623
  • [24] FLOW IN A CENTRIFUGAL FAN IMPELLER AT OFF-DESIGN CONDITIONS
    WRIGHT, T
    TZOU, KTS
    MADHAVAN, S
    MECHANICAL ENGINEERING, 1984, 106 (07) : 89 - 89
  • [25] FLOW IN A CENTRIFUGAL FAN IMPELLER AT OFF-DESIGN CONDITIONS
    WRIGHT, T
    TZOU, KTS
    MADHAVAN, S
    JOURNAL OF ENGINEERING FOR GAS TURBINES AND POWER-TRANSACTIONS OF THE ASME, 1984, 106 (04): : 913 - 919
  • [26] CHALLENGES IN THE DESIGN OF A NEW CENTRIFUGAL FAN WITH VARIABLE IMPELLER GEOMETRY
    Odyjas, Piotr
    Wieckowski, Jedrzej
    Pietrusiak, Damian
    Moczko, Przemyslaw
    ACTA MECHANICA ET AUTOMATICA, 2023, 17 (01) : 16 - 27
  • [27] TRACKED AIR-CUSHION RESEARCH VEHICLE
    GRUBELIC.G
    MECHANICAL ENGINEERING, 1972, 94 (05) : 21 - &
  • [28] STRATEGIC POTENTIAL OF AIR-CUSHION VEHICLE
    CANDLIN, AHS
    ASTRONAUTICS & AERONAUTICS, 1968, 6 (07): : 54 - &
  • [29] Fuzzy evaluation for an intelligent air-cushion tracked vehicle performance investigation
    Hossain, Altab
    Rahman, Ataur
    Mohiuddin, A. K. M.
    JOURNAL OF TERRAMECHANICS, 2012, 49 (02) : 73 - 80
  • [30] Research on Heading Control of Air Cushion Vehicle
    Wang Cheng-long
    Fu Ming-yu
    Bian Xin-qian
    Shi Xiao-cheng
    2008 IEEE INTERNATIONAL CONFERENCE ON AUTOMATION AND LOGISTICS, VOLS 1-6, 2008, : 650 - 655