성에제거 덕트 입구 가이드베인 형상이 노즐출구 유량분포특성에 미치는 영향

Effects of an Inlet Guide Vane on the Flowrate Distribution Characteristics of the Nozzle Exit in a Defrost Duct System

  • 김덕진 (자동차부품연구원) ;
  • 이지근 (전북대학교 기계항공시스템공학부)
  • Kim, Duck-Jin (Korea Automotive Technology Institute) ;
  • Lee, Jee-Keun (Division of Aerospace and Mechanical System Engineering, Chonbuk National University, RCIT)
  • 발행 : 2008.07.01

초록

Effects of the duct inlet guide vane on the flowrate distribution characteristics of the defroster nozzle exit in a defrost duct system were investigated experimentally to design the optimum heating, ventilation and air conditioning (HVAC) system applied in an automotive compartment. A 3-dimensional hot-wire anemometer system was used to measure the velocity field in the vicinity of the defroster nozzle jet flow and the velocity distributions near the windshield interior surface. At first, two cases of with- and without-duct inlet guide vanes were considered as the test condition, and then three cases of the duct inlet guide vane were tested to determine the optimum guide vane shape and their positions. The arrangement of the duct inlet guide vanes has an effect on the improved flowrate distribution at the defroster nozzle exit and near the windshield interior surface. However, the application of the lots of guide vane to control the flow direction leads to increase the flow resistance, resulting in the decreased flowrate issuing from the defroster nozzle. The shape of the duct inlet guide vane affects not only the flowrate distribution between the driver side and the assistant driver side but also the reduction of the flow resistance in the defrost duct system.

키워드

참고문헌

  1. SAE Standards, Surface Vehicle Recommended Practice, No. J902
  2. SAE Standards, Surface Vehicle Recommended Practice, No. J381
  3. SAE Standards, Surface Vehicle Recommended Practice, No. J382
  4. N. G. Hur and W. K. Cho, "3-D Numerical Simulation of Flow Inside a Passenger Compartment of a Model Vehicle for Hearting, Air- Conditioning and Defrosting Modes," Transactions of KSAE, Vol.1, No.2, pp.60-68, 1993
  5. W. G. Park, M. S. Park and K. L. Jang, "Flow and Temperature Analysis within Automobile Cabin Discharged Hot Air From Defrost Nozzle," Int. J. Automotive Technology, Vol.7, No.2, pp.139-143, 2006
  6. S. H. Kang, J. H. Lee and J. S. Byun, "3D Unsteady Numerical Analysis to Design Defrosting System of Automotive Windshield Glass," Transactions of KSAE, Vol.15, No.5, pp.1-8, 2007
  7. I. H. Bae, K. T. Kang, J. E. Hwang, W. G. Park and K. Y. Jang, "Numerical Study of the Design Factor for Flow Analysis of Automotive Defrost Nozzle," Spring Conference Proceedings, KSAE, pp.578-583, 2001
  8. T. Komoriya, T. Kobayashi and N. Taniguchi, "Numerical Simulation of the Flow in a Vehicle Passenger Compartment using General Co-ordinate System with Finite Volume Method," JSAE 902265, 1990
  9. J. G. Lee, Y. Jiang, A. J. Przekwas and M. Sioshansi, "Automotive Windshield Ice-Clearing Analysis," SAE 930289, 1993
  10. B. S. AbdulNour, "Hot-Wire Velocity Measurements of Defroster and Windshield Flow," SAE 970109, 1997