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A Convergence Study through Flow Analysis due to the Configuration of Automotive Air Breather

자동차 에어 브리더의 형상에 따른 유동해석을 통한 융합연구

  • Oh, Bum Suk (Division of Mechanical & Automotive Engineering, Kongju National University) ;
  • Cho, Jae-Ung (Division of Mechanical & Automotive Engineering, Kongju National University)
  • 오범석 (공주대학교 기계자동차공학부) ;
  • 조재웅 (공주대학교 기계자동차공학부)
  • Received : 2018.08.09
  • Accepted : 2018.10.20
  • Published : 2018.10.28

Abstract

In this study, the flow analysis due to the car body configuration of air breather was carried out. As the resistance force whose flow affects car body has been studied, it is published that the electricity can be decreased. When the inner pressure of air breather is evaluated, there is the study of efficiency in order to raise the flow rate of inner body. At a total of five models, it is shown that the air resistance and pressure happen differently and the air pressure of side flow is changed. This study result was analyzed by using the analysis program of ANSYS, a study model was modelled using the CATIA V5 modelling program. It was investigated that the air flow rate was distributed uniformly as the curved surface of air breather configuration increases. It is thought as the most effective design method to design the air breather by considering the effect on the air resistance and flow. Also, through the design of the vehicle's airbrid configuration, the design of the product can incorporate a aesthetic sense into the design.

본 연구에서는 차체의 Air Breather 형상에 따른 유동 해석을 통해 진행되었다. 유동이 차체에 미치는 저항력이 연구됨에 따라 전력 감소를 줄일 수 있다고 발표되고 있다. Air Breather 내부의 압력을 평가할 때 차체 내부의 유속을 높일 수 있도록 효율에 대한 연구가 되어 있다. 총 5가지 모델에 있어서는, 형상에 따라 공기 저항과 압력이 다르게 일어나며 측류 공기의 압력이 변하는 것이 보인다. 본 연구 결과는 ANSYS 해석 프로그램을 이용하여 해석 하였으며, CATIA V5 모델링 프로그램을 사용하여 연구 모델을 모델링하였다. Air Breather 형상의 곡면이 많아지면 공기 유동 속도가 균일하게 분포하는 것을 고찰하였다. Air Breather의 공기 저항 및 유량에 대한 영향을 고려하여 에어 브리더 설계하는 것이 가장 효율적인 설계방법으로 사료된다. 또한 차량의 에어브리더 형상 설계를 통하여 제품 설계 시 디자인과의 융합을 통하여 미적인 감각을 나타낼 수 있다.

Keywords

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