A numerical model and experimental verification for analysing a new vacuum spray flash desalinator utilising low grade energy

被引:35
作者
Araghi, A. Hosseini [1 ]
Khiadani, M. [1 ]
Sadafi, M. H. [2 ]
Hooman, K. [2 ]
机构
[1] Edith Cowan Univ, Sch Engn, 270 Joondalup Dr, Joondalup, WA 6027, Australia
[2] Univ Queensland, Sch Mech & Min Engn, St Lucia, Qld 4072, Australia
关键词
Desalination; DTECD; Vacuum spray flash evaporation (VSFE); CFD simulation; DPM model; WATER; VAPORIZATION; PERFORMANCE; EVAPORATION;
D O I
10.1016/j.desal.2017.03.014
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
This study investigates the performance of a new vacuum spray flash desalinator, a core component of the open water cycle in a discharge thermal energy combined desalination (DTECD) technology using theoretical and experimental techniques. The feedwater contains 3.5wt% of NaCl while the inlet temperature range can vary over a range of 55 degrees C to 75 degrees C based on the low temperature utilised in the DTECD system. In order to design an efficient desalinator, physical aspects of the proposed vacuum spray flash evaporation (VSFE) should be studied. Thus, an experimental study was undertaken to verify the theoretical evaporation rate and centreline temperature data. The proposed desalinator was modelled using a CFD model implemented in the available package ANSYS FLUENT 16.2 and some results are compared with a thermodynamic model embedded in ASPEN/HYSY 8.0. It was observed that the defined thermodynamic models based on vapor-liquid equilibrium in the Aspen and Fluent can predict the evaporation rate with the average errors of 5% and 17%, respectively. Moreover, discrete phase model (DPM) approach can analyse the thermo-fluid field in the desalinator with acceptable accuracy about 9%. Droplets size, velocity, temperature and concentration profiles are predicted and the underlying physics are discussed regarding the VSFE geometry. (C) 2017 Published by Elsevier B.V.
引用
收藏
页码:109 / 118
页数:10
相关论文
共 46 条
[31]   Theoretical analysis of a single-stage and two-stage solar driven flash desalination system based on passive vacuum generation [J].
Maroo, Shalabh C. ;
Goswami, D. Yogi .
DESALINATION, 2009, 249 (02) :635-646
[32]   AN EXPERIMENTAL-STUDY OF SPRAY FLASH EVAPORATION [J].
MIYATAKE, O ;
TOMIMURA, T ;
IDE, Y ;
FUJII, T .
DESALINATION, 1981, 36 (02) :113-128
[33]   On the evaporation of superheated water drops formed by flashing of liquid jets [J].
Mutair, Sami ;
Ikegami, Yasuyuki .
INTERNATIONAL JOURNAL OF THERMAL SCIENCES, 2012, 57 :37-44
[34]   Experimental investigation on the characteristics of flash evaporation from superheated water jets for desalination [J].
Mutair, Sami ;
Ikegmi, Yasuyuki .
DESALINATION, 2010, 251 (1-3) :103-111
[35]   Low temperature flash vaporization for desalination [J].
Muthunayagam, AE ;
Ramamurthi, K ;
Paden, JR .
DESALINATION, 2005, 180 (1-3) :25-32
[36]   Modelling and experiments on vaporization of saline water at low temperatures and reduced pressures [J].
Muthunayagam, AE ;
Ramamurthi, K ;
Paden, JR .
APPLIED THERMAL ENGINEERING, 2005, 25 (5-6) :941-952
[37]   General review of flashing jet studies [J].
Polanco, Geanette ;
Holdo, Arne Erik ;
Munday, George .
JOURNAL OF HAZARDOUS MATERIALS, 2010, 173 (1-3) :2-18
[38]  
Prausnitz J.M., 1980, Computer Calculations for multicomponent vapour-liquid and liquid-liquid equlibria
[39]   A vaporization model for discrete multi-component fuel sprays [J].
Ra, Youngchul ;
Reitz, Rolf D. .
INTERNATIONAL JOURNAL OF MULTIPHASE FLOW, 2009, 35 (02) :101-117
[40]   Empty Spray Sections of Vacuum Towers: Heat and Mass Transfer with a CFD approach [J].
Ropelato, Karolline ;
Castro, Antonio ;
Mori, Milton ;
Geraldelli, Washington .
CHEMICAL PRODUCT AND PROCESS MODELING, 2010, 5 (01)