A MULTIOBJECTIVE PARAMETER STUDY OF TWO-PHASE FLOW CHANNEL DESIGN

被引:0
|
作者
Evich, Nicholas A. [1 ]
Larimer, Nicholas R. [1 ]
Frecker, Mary, I [1 ]
Rau, Matthew J. [1 ]
机构
[1] Penn State Univ, Dept Mech Engn, University Pk, PA 16802 USA
关键词
Two-phase flow; Additive manufacturing; Homogeneous Equilibrium Model; Multiobjective design; BOILING HEAT-TRANSFER; PRESSURE-DROP;
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
Advanced manufacturing techniques have improved dramatically in recent years and design freedom for engineered components and systems has never been greater. Despite these advancements, the majority of our design tools for thermal-fluids systems are still rooted within traditional architectures and manufacturing techniques. In particular, the complex nature of two-phase flow and heat transfer has made the development of design methods that can accommodate these complex geometries enabled by new manufacturing techniques challenging. Here, we investigate a new design method for two-phase flow systems. We conduct a multiobjective parameter study considering two-phase flow and heat transfer through a single channel with a circular cross section. To increase our design degrees of freedom, we allow the channel to increase or decrease in cross-sectional area along its flow length, but constrain the channel inlet and outlet to a constant hydraulic diameter. Maximizing heat transfer and minimizing pressure drop are the two design objectives, which we evaluate using two-phase heat transfer correlations and the Homogeneous Equilibrium Model. We find that using small expansion angles can greatly reduce two-phase flow pressure drop and also provide high heat transfer coefficients when compared to straight channel designs. We present a set of feasible designs for varying input heat fluxes, liquid mass flow rates, and channel orientation angles and show how the ideal expansion channel angle varies with these operational conditions.
引用
收藏
页数:6
相关论文
共 50 条
  • [21] Kinematic Parameters of a Two-Phase Flow in a Rectangular Channel
    V. A. Kalinichenko
    Fluid Dynamics, 2004, 39 : 605 - 611
  • [22] Mass Transfer in a Two-Phase Flow in a Curvilinear Channel
    Pecherkin, N. I.
    Chekhovich, V. Yu.
    JOURNAL OF ENGINEERING THERMOPHYSICS, 2008, 17 (02) : 113 - 119
  • [23] DESIGN OF A TWO-PHASE FLOW FORCED CONVECTION LOOP FOR TWO-PHASE INSTABILITY ANALYSIS
    Ruspini, Leonardo
    Dorao, Carlos
    Fernandino, Maria
    EXPERIMENTAL FLUID MECHANICS 2010, 2010, : 569 - 581
  • [24] Two-phase flow dynamics in a micro hydrophilic channel: A theoretical and experimental study
    Cho, Sung Chan
    Wang, Yun
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2014, 70 : 340 - 352
  • [25] Numerical study of two-phase helium II stratified channel flow with inclination
    Xiang, Y
    Petersen, B
    Wolff, S
    Van Sciver, SW
    Weisend, JG
    IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2000, 10 (01) : 1530 - 1533
  • [26] Study on Uncertainty of Two-Phase Flow Parameter Detection Based on Monte Carlo Method
    Liu, Li
    Zhu, Longxiang
    Zhang, Luteng
    Ma, Zaiyong
    Sun, Wan
    Pan, Liangming
    Deng, Jian
    Hedongli Gongcheng/Nuclear Power Engineering, 2024, 45 (04): : 38 - 44
  • [27] Numerical calculation of relative phase permeabilities for two-phase flow in the channel
    Akasheva, Zhibek
    Assilbekov, Bakhytzhan
    Kudaikulov, Aziz
    Beisembetov, Iskander
    MATERIALS TODAY-PROCEEDINGS, 2020, 25 : 52 - 57
  • [28] Two-phase flow across-the-channel model of PEMFC (II). Cell performance affected by channel design
    Wang, Hongxing
    Xu, Li
    Wang, Yuxin
    Huagong Xuebao/Journal of Chemical Industry and Engineering (China), 2007, 58 (07): : 1699 - 1705
  • [29] STUDY OF HEAT TRANSFER IN BOILING TWO-PHASE CHANNEL FLOW - 1. FLOW PATTERNS IN A BOILING CHANNEL.
    Sato, Takashi
    Minamiyama, Tatsuo
    Yanai, Makoto
    Tokura, Takayuki
    Heat Transfer - Japanese Research, 1972, 1 (04): : 1 - 14
  • [30] Gas-Liquid Two-Phase Flow in a Pipe or Channel
    Pakhomov, Maksim A.
    Lobanov, Pavel D.
    WATER, 2021, 13 (23)