Numerical simulation on effects of augmentation in temperature of inlet steam on wet steam flow in supersonic nozzle: energy and exergy analysis

被引:0
|
作者
Xuesong Hui
Yanjie Ma
Xiaochen Deng
机构
[1] North China University of Science and Technology,College of Qian’an
关键词
Supersonic nozzle; Wet steam; Energy consumption; Exergy destruction; Nucleation; Condensation;
D O I
暂无
中图分类号
学科分类号
摘要
Because of limited energy resources, the examination of losses in industrial systems is very imperative. The energy and exergy analysis is considered one of the methods to evaluate losses. In aerospace and power engineering, supersonic nozzles have many applications. Their performance can be enhanced by means of the energy and exergy analysis. In the supersonic nozzles, the non-equilibrium condensation occurred. It is an irreversible process that engenders thermodynamic losses. In this investigation, to estimate the performance of supersonic nozzles, an analysis on the energy and exergy is provided. The influences of augmentation in the temperature of the inlet steam on the performance of the nozzle are elucidated. Accordingly, a 2D numerical simulation of the nozzle is presented. After validation of numerical results, the effects of increment of the temperature are researched. It is observed that as the temperature of the inlet steam is enhanced, a condensation shock with a delay is occurred, the nucleation area becomes smaller, and the liquid mass fraction is abated in the nozzle. Moreover, the mass flow inlet rate, energy consumption, and exergy destruction are diminished. As the temperature of the inlet steam is augmented by 40 °C, the liquid mass fraction, mass flow inlet rate, energy consumption, and exergy destruction are reduced by 28%, 4.6%, 1.3%, and 32%, respectively.
引用
收藏
页码:723 / 732
页数:9
相关论文
共 50 条
  • [1] Numerical simulation on effects of augmentation in temperature of inlet steam on wet steam flow in supersonic nozzle: energy and exergy analysis
    Hui, Xuesong
    Ma, Yanjie
    Deng, Xiaochen
    MULTISCALE AND MULTIDISCIPLINARY MODELING EXPERIMENTS AND DESIGN, 2023, 6 (04) : 723 - 732
  • [2] Simulation of Swirling Wet Steam Flow through a Supersonic Nozzle
    Vijayakumaran, Harrivin
    Lemma, Tamiru Alemu
    6TH INTERNATIONAL CONFERENCE ON PRODUCTION, ENERGY AND RELIABILITY 2018: WORLD ENGINEERING SCIENCE & TECHNOLOGY CONGRESS (ESTCON), 2018, 2035
  • [3] Transonic Flow of Wet Steam - Numerical Simulation
    Halama, Jan
    ACTA POLYTECHNICA, 2012, 52 (06) : 124 - 130
  • [4] CFD-Exergy analysis of the flow in a supersonic steam ejector
    Boulenouar, M.
    Ouadha, A.
    3RD INTERNATIONAL CONFERENCE ON MATHEMATICAL MODELING IN PHYSICAL SCIENCES (IC-MSQUARE 2014), 2015, 574
  • [5] Numerical simulation of wet steam transonic condensation flow in the last stage of a steam turbine
    Han, Xu
    Han, Zhonghe
    Zeng, Wei
    Li, Peng
    Qian, Jiangbo
    INTERNATIONAL JOURNAL OF NUMERICAL METHODS FOR HEAT & FLUID FLOW, 2018, 28 (10) : 2378 - 2403
  • [6] Numerical investigation of the effect of inlet condition on self-excited oscillation of wet steam flow in a supersonic turbine cascade
    Xiaoming, Wu
    Liang, Li
    Guojun, Li
    Zhenping, Feng
    INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN FLUIDS, 2009, 60 (12) : 1334 - 1350
  • [7] Numerical simulation of transonic flow of wet steam in nozzles and turbines
    Halama, Jan
    Fort, Jaroslav
    COMPUTING, 2013, 95 (01) : S303 - S318
  • [8] Numerical simulation of transonic flow of wet steam in nozzles and turbines
    Jan Halama
    Jaroslav Fořt
    Computing, 2013, 95 : 303 - 318
  • [9] New Design Method of a Supersonic Steam Injection Nozzle and Its Numerical Simulation Verification
    Wang, Qianhui
    Pang, Zhanxi
    Tian, Cong
    Chen, Jiajie
    ACS OMEGA, 2023, 8 (47): : 44485 - 44496
  • [10] Numerical Simulation on Wet Steam Flow in the Last Stage of Steam Turbine in Nuclear Power Plant
    Qian Yong
    Xie Dan-mei
    Tan Chen-cheng
    Zhao Xian-bo
    Hou You-min
    Xu Sen
    Zheng Hua-bin
    2009 ASIA-PACIFIC POWER AND ENERGY ENGINEERING CONFERENCE (APPEEC), VOLS 1-7, 2009, : 426 - 429