Thermal Simulation of a Greenhouse under a Semi-Arid Climate

被引:3
作者
Serir, L. [1 ]
Bournet, P. E. [2 ]
Benmoussa, H. [3 ]
Mesmoudi, K. [4 ]
机构
[1] Appl Res Unit Renewable Energies, Ghardaia, Algeria
[2] Agrocampus Ouest, Environm Phys & Hort Res Unit, Angers, France
[3] Univ Batna, Dept Engn, Batna, Algeria
[4] Univ Batna, Dept Sci, Batna, Algeria
来源
XXVIII INTERNATIONAL HORTICULTURAL CONGRESS ON SCIENCE AND HORTICULTURE FOR PEOPLE (IHC2010): INTERNATIONAL SYMPOSIUM ON GREENHOUSE 2010 AND SOILLESS CULTIVATION | 2012年 / 927卷
关键词
semi-arid; indoor climate; view factors; cover temperature; transmittivity; global model; TRNSYS; PERFORMANCE;
D O I
10.17660/ActaHortic.2012.927.78
中图分类号
S6 [园艺];
学科分类号
0902 ;
摘要
Semi-arid regions are frequently subject to major temperature changes during a 24 h period, which may drastically affect greenhouse indoor climates. In order to improve energy management of these buildings, numerical tools have been developed to predict the evolution of the inside climatic conditions. However, most of the available models neither take account of the transmittivity variation through the day nor of differences between wall temperatures. In the present paper, a model for predicting the thermal and water behaviour inside an unheated agricultural greenhouse is presented. The energy balance method is applied to each element: cover, indoor air and soil surface. Specific modules have been developed to calculate heat transfer coefficients for the cover of the greenhouse as well as heat transfer through the subsoil. These modules have been integrated in the TRNSYS environment. Radiative transfers and view factors were also calculated. The simulations predict two main parameters under transient conditions: the indoor air temperature and the indoor humidity in response to the outside conditions. These parameters were validated with fair agreement from experiments conducted in a monospan greenhouse located in Batna (6.11 degrees E, 35.33 degrees N). Based upon the results of the simulations and the measurements it was also concluded that firstly, the transmittivity was not constant in time and varied with surface orientation; and secondly, vertical surface temperatures were different during the daytime while the temperature difference between roof surfaces remained insignificant. The evolution of humidity was not correctly reproduced by the model, probably because the effects of condensation and variation of soil water content were not properly included in the equations. http://www.actahort.org/members/showpdf?booknrarnr=927_78
引用
收藏
页码:635 / 642
页数:8
相关论文
共 11 条
[1]   DYNAMIC SIMULATION OF THE PERFORMANCE OF AN INFLATABLE GREENHOUSE IN THE SOUTHERN PART OF ALBERTA .1. ANALYSIS AND AVERAGE WINTER CONDITIONS [J].
AHMADI, G ;
GLOCKNER, PG .
AGRICULTURAL METEOROLOGY, 1982, 27 (3-4) :155-180
[2]   Analysis of numerical methods and simulation time step effects on the prediction of building thermal performance [J].
dos Santos, GH ;
Mendes, N .
APPLIED THERMAL ENGINEERING, 2004, 24 (8-9) :1129-1142
[3]  
Duffie J.A., 1991, Solar Engineering of Thermal Processes, Vsecond
[4]   SIMULATION OF ENERGY BALANCE OF A GREENHOUSE [J].
KIMBALL, BA .
AGRICULTURAL METEOROLOGY, 1973, 11 (02) :243-260
[5]   Influence of covering material and shading on the spectral distribution of light in greenhouses [J].
Kittas, C ;
Baille, A ;
Giaglaras, P .
JOURNAL OF AGRICULTURAL ENGINEERING RESEARCH, 1999, 73 (04) :341-351
[6]  
Klein S., 2004, TRNSYS 16: A TRaNsient System Simulation Program, User Manual
[7]   Development of an intelligent indoor environment and energy management system for greenhouses [J].
Kolokotsa, D. ;
Saridakis, G. ;
Dalamagkidis, K. ;
Dolianitis, S. ;
Kaliakatsos, I. .
ENERGY CONVERSION AND MANAGEMENT, 2010, 51 (01) :155-168
[8]   On estimating soil surface temperature profiles [J].
Mihalakakou, G .
ENERGY AND BUILDINGS, 2002, 34 (03) :251-259
[9]   ENERGETICAL MODEL FOR GREENHOUSES [J].
MONTEIL, C ;
ISSANCHOU, G ;
AMOUROUX, M .
JOURNAL DE PHYSIQUE III, 1991, 1 (03) :429-454
[10]   Modelling solar energy input in greenhouses [J].
Pieters, JG ;
Deltour, JM .
SOLAR ENERGY, 1999, 67 (1-3) :119-130