Analysis of airflow through experimental rural buildings: Sensitivity to turbulence models

被引:107
作者
Bartzanas, T.
Kittas, C.
Sapounas, A. A.
Nikita-Martzopoulou, Ch.
机构
[1] Ctr Res & Technol, Inst Technol & Management Agr Ecosyst, Volos 38500, Greece
[2] Aristotle Univ Thessaloniki, Lab Agr Struct & Equipment, Thessaloniki 54006, Greece
关键词
VENTILATION; PREDICTION; SIMULATION; FIELD;
D O I
10.1016/j.biosystemseng.2007.02.009
中图分类号
S2 [农业工程];
学科分类号
082806 [农业信息与电气工程];
摘要
Full-scale experimental data and computational fluid dynamics (CFD) methods are used to determine the accuracy of four different turbulence models [standard k-epsilon, k-epsilon renormalisation group (RNG), k-epsilon realisable, Reynolds stress model (RSM)], which are used to describe the turbulent part of air in problems concerning the natural ventilation of buildings. Ventilation rates were measured in a livestock building using the decay tracer gas (CO2) technique. Airflow and temperature patterns were mapped out in a greenhouse with a tomato crop using a three-dimensional sonic anemometer and a fast-response temperature sensor. A commercially available CFD code was used to evaluate the different turbulence models. Average values from experiments were used for boundary conditions. The numerical results are compared with the experimental data, and they showed a good agreement, especially when the k-epsilon RNG turbulence model was used. The computations of the flow field using the different turbulence models showed noticeable differences for computed ventilation rate, air velocity and air temperature confirming the importance of the choice of the closure model for turbulence modelling. (c) 2007 IAgrE. All rights reserved. Published by Elsevier Ltd
引用
收藏
页码:229 / 239
页数:11
相关论文
共 28 条
[1]
*ANSYS, 2006, ANSYS CFX REL 10 0 T
[2]
Greenhouse ventilation rate: Theory and measurement with tracer gas techniques [J].
Baptista, FJ ;
Bailey, BJ ;
Randall, JM ;
Meneses, JF .
JOURNAL OF AGRICULTURAL ENGINEERING RESEARCH, 1999, 72 (04) :363-374
[3]
Effect of vent arrangement on windward ventilation of a tunnel greenhouse [J].
Bartzanas, T ;
Boulard, T ;
Kittas, C .
BIOSYSTEMS ENGINEERING, 2004, 88 (04) :479-490
[4]
Modeling of air inlets in CFD prediction of airflow in ventilated animal houses [J].
Bjerg, B ;
Svidt, K ;
Zhang, G ;
Morsing, S ;
Johnsen, JO .
COMPUTERS AND ELECTRONICS IN AGRICULTURE, 2002, 34 (1-3) :223-235
[5]
Air flow and associated sensible heat exchanges in a naturally ventilated greenhouse [J].
Boulard, T ;
Papadakis, G ;
Kittas, C ;
Mermier, M .
AGRICULTURAL AND FOREST METEOROLOGY, 1997, 88 (1-4) :111-119
[6]
Computational fluid dynamic modeling to improve the design of the Spanish parral style greenhouse [J].
Brugger, M ;
Montero, J ;
Baezz, E ;
Perez-Parra, J .
PROCEEDINGS OF THE INTERNATIONAL CONFERENCE ON SUSTAINABLE GREENHOUSE SYSTEMS, VOLS 1 AND 2, 2005, (691) :425-+
[7]
Determination of greenhouse-specific aspects of ventilation using three-dimensional computational fluid dynamics [J].
Campen, JB ;
Bot, GPA .
BIOSYSTEMS ENGINEERING, 2003, 84 (01) :69-77
[8]
Optimisation of greenhouse insect screening with computational fluid dynamics [J].
Fatnassi, H ;
Boulard, T ;
Poncet, C ;
Chave, M .
BIOSYSTEMS ENGINEERING, 2006, 93 (03) :301-312
[9]
MEASUREMENT AND PREDICTION OF GREENHOUSE VENTILATION RATES [J].
FERNANDEZ, JE ;
BAILEY, BJ .
AGRICULTURAL AND FOREST METEOROLOGY, 1992, 58 (3-4) :229-245
[10]
*FLUENT, 1998, FLUENT V5