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상용 CFD 프로그램을 사용한 베인형 관성분리기의 설계인자 영향 검토

Study on the Effect of Design Parameters of the Vane Type Inertial Separator Using Commercial CFD Code

  • 이답연 (충남대학교 선박해양공학과) ;
  • 류재문 (충남대학교 선박해양공학과)
  • Lee, Dap-Yeon (Dept. of Naval Architecture and Ocean Engineering, Chungnam National University) ;
  • Lew, Jae-Moon (Dept. of Naval Architecture and Ocean Engineering, Chungnam National University)
  • 투고 : 2017.06.15
  • 심사 : 2017.10.31
  • 발행 : 2017.12.20

초록

Since the intake air of gas turbine engine of marine purpose contains water particles, inertial separator for separating the air and water particles are provided. Saw type and wave type separator are now used to separate inflow water particle from the gas. In this paper, the design parameters of saw type separator are studied by numerical simulations. Using the commercial CFD program, Star-CCM+, Lagrangian-Eulerian method was used to perform the analysis of two phase flow of the mist in the air. This method solves Reynolds-Averaged Navier-Stokes equations in Eulerian framework for the continuous phase, while solves equation of motion for individual particles in Lagrangian framework. Lagrangian multiphase method was applied to monitor the particles of different sizes and shapes and to verify collision between particles by chasing particles. Water particles were injected through injectors located at the inlet of the separator and escape mode was used which assumes that the particles attached on the surface of inertial separator were removed from the simulation, effectively escaping the solution domain. Through the numerical computations with the inlet condition of constant water particle size in the wetness fraction of 85%, efficiency of eliminating the water particle and the pressure drop between the inlet and outlet were examined.

키워드

참고문헌

  1. CD-adapco, 2013. User Guide Star-CCM+ version 8.04.
  2. Choi, J.K. & Kim, H.T., 2010. A study of using wall function for numerical analysis of high reynolds number turbulent flow. Journal of the Society of Naval Architects of Korea, 47(5), pp.647-655. https://doi.org/10.3744/SNAK.2010.47.5.647
  3. Lee, S.Y. Hong, W.S. Shin, W.H. Kim, G.J. & Song, D.K., 2013. Evaluation of removal efficiency of water contents using inertial impaction separator. Particle and Aerosol Research, 9(1), pp.23-29. https://doi.org/10.11629/jpaar.2013.9.1.023
  4. Li, J. Huang, S. & Wang, X., 2007. Numerical study of steam-water separators with wave-type vanes. Chinese Journal Chemical Engineering, 15(4), pp.492-498. https://doi.org/10.1016/S1004-9541(07)60114-1
  5. Gas Machinery Research Council Southwest Research Institute (GMRC SwRI), 2010, Guideline for gas turbine inlet a filtration systems. RELEASE 1.0, Dallas: GMRC SwRI.
  6. Swanborn, R. A., 1988. A new approach to the design of gas-liquid separators for the oil industry. Ph. D. Delft: Technische Universiteit