Design and Optimization of a Radial Turbine to Be Used in a Rankine Cycle Operating with an OTEC System

被引:9
作者
Alawadhi, Khaled [1 ]
Alhouli, Yousef [1 ]
Ashour, Ali [2 ]
Alfalah, Abdullah [3 ]
机构
[1] Publ Author Appl Educ & Training, Coll Technol Studies, Dept Automot & Marine Engn Technol, Kuwait 70654, Kuwait
[2] Minist Interior, Coast Guard, Tech Dept, Kuwait 70654, Kuwait
[3] Publ Author Appl Educ & Training, Ind Inst Sabah Alsalem, Automot Dept, Kuwait 70654, Kuwait
关键词
radial turbine design; optimization; organic Rankine cycle; response surface methodology (RSM); PERFORMANCE ANALYSIS; INFLOW TURBINE; ORC SYSTEM;
D O I
10.3390/jmse8110855
中图分类号
U6 [水路运输]; P75 [海洋工程];
学科分类号
0814 ; 081505 ; 0824 ; 082401 ;
摘要
Design and optimization of a radial turbine for a Rankine cycle were accomplished ensuring higher thermal efficiency of the system despite the low turbine inlet temperature. A turbine design code (TDC) based on the meanline design methodology was developed to construct the base design of the turbine rotor. Best design practices for the base design were discussed and adopted to initiate a robust optimization procedure. The baseline design was optimized using the response surface methodology and by coupling it with the genetic algorithm. The design variables considered for the study are rotational speed, total to static speed ratio, hub radius ratio, shroud radius ration, and number of blades. Various designs of the turbine were constructed based on the Central Composite Design (CCD) while performance variables were computed using the in-house turbine design code (TDC) in the MATLAB environment. The TDC can access the properties of the working fluid through a subroutine that links NIST's REFPROP to the design code through a subroutine. The finalization of the geometry was made through an iterative process between 3D-Reynolds-Averaged Navier-Stokes (RANS) simulations and the one-dimensional optimization procedure. 3D RANS simulations were also conducted to analyze the optimized geometry of the turbine rotor for off-design conditions. For computational fluid dynamics (CFD) simulation, a commercial code ANSYS-CFX was employed. 3D geometry was constructed using ASYS Bladegen while structured mesh was generated using ANSYS Turbogrid. Fluid properties were supplied to the CFD solver through a real gas property (RGP) file that was constructed in MATLAB by linking it to REFPROP. Computed results show that an initial good design can reduce the time and computational efforts necessary to reach an optimal design successfully. Furthermore, it can be inferred from the CFD calculation that Response Surface Methodology (RSM) employing CFD as a model evaluation tool can be highly effective for the design and optimization of turbomachinery.
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页码:1 / 22
页数:23
相关论文
共 28 条
  • [1] Response surface method for airfoil design in transonic flow
    Ahn, J
    Kim, HJ
    Lee, DH
    Rho, OH
    [J]. JOURNAL OF AIRCRAFT, 2001, 38 (02): : 231 - 238
  • [2] [Anonymous], 2015, ANSYS CFX PREUS GUID
  • [3] Aungier R.H., 2006, Turbine Aerodynamics: Axial-Flow and Radial-Flow Turbine Design and Analysis M
  • [4] MEAN STREAMLINE AERODYNAMIC PERFORMANCE ANALYSIS OF CENTRIFUGAL COMPRESSORS
    AUNGIER, RH
    [J]. JOURNAL OF TURBOMACHINERY-TRANSACTIONS OF THE ASME, 1995, 117 (03): : 360 - 366
  • [5] Bharathan D., 2009, STAGING RANKINE CYCL
  • [6] Bradley N, 2007, RESPONSE SURFACE MET
  • [7] Brun K., 2017, FUNDAMENTALS APPL SU
  • [8] Web Application for OTEC Simulator Using Double-stage Rankine Cycle
    Goto, Satoru
    Matsuda, Yoshitaka
    Sugi, Takenao
    Morisaki, Takafumi
    Yasunaga, Takeshi
    Ikegami, Yasunori
    Egashira, Naruto
    [J]. IFAC PAPERSONLINE, 2017, 50 (01): : 121 - 128
  • [9] Construction of Simulation Model for OTEC Plant Using Uehara Cycle
    Goto, Satoru
    Motoshima, Yoshiki
    Sugi, Takenao
    Yasunaga, Takeshi
    Ikegami, Yasuyuki
    Nakamura, Masatoshi
    [J]. ELECTRICAL ENGINEERING IN JAPAN, 2011, 176 (02) : 1 - 13
  • [10] Improved thermodynamic design of organic radial-inflow turbine and ORC system thermal performance analysis
    Han, Zhonghe
    Fan, Wei
    Zhao, Ruocheng
    [J]. ENERGY CONVERSION AND MANAGEMENT, 2017, 150 : 259 - 268