D. Zanni, A. Righi, T. Dalla, F. Peron, L. T. Wong et al., A multivariate-logistic model for acceptance of indoor environmental quality (IEQ) in offices, Building and Environment Energy efficiency versus indoor environmental quality in different Romanian countryside schools, Energy and Buildings Energy consumption in schools ? A review paper, Renewable and Sustainable Energy Reviews Ordoumpozanis, Energy, comfort and indoor air quality in nursery and elementary school buildings in the cold climatic zone of Greece, Energy Procedia9] D.F. Motta Cabrera, H. Zareipour, Data association mining for identifying lighting energy waste patterns in educational institutes, Energy and Buildings, pp.526-532, 2008.

L. Lan, P. Wargocki, and Z. Lian, Quantitative measurement of productivity loss due to thermal discomfort, Energy and Buildings, pp.1057-1062, 2011.

M. J. Mendell, W. J. Fisk, K. Kreiss, H. Levin, D. Alexander et al., Improving the Health of Workers in Indoor Environments: Priority Research Needs for a National Occupational Research Agenda, American Journal of Public Health, vol.92, issue.9, pp.1430-1470, 2002.
DOI : 10.2105/AJPH.92.9.1430

P. Wargocki and O. Seppänen, Indoor climate and productivity in offices, REHVA Guidebook NO 6, 2006.

M. Asmar, A. Chokor, and I. Srour, Are building occupants satisfied with indoor environmental quality of higher education facilities?, Energy Procedia, 2014.

M. Raatikainen, J. Skön, K. Leiviskä, and M. Kolehmainen, Intelligent analysis of energy consumption in school buildings, Applied Energy, pp.165-2016

M. N. Salleh, M. Z. Kandar, and S. R. Sakip, Benchmarking for Energy Efficiency on School Buildings Design: A Review, Procedia - Social and Behavioral Sciences, vol.222, 2016.
DOI : 10.1016/j.sbspro.2016.05.149

URL : http://doi.org/10.1016/j.sbspro.2016.05.149

P. Mairie-de, Direction des Espaces Verts et de l'Environnement-Agence d'Ecologie Urbaine-Division Climat-Energie, pp.1-2, 2014.

A. Thewes, S. Maas, F. Scholzen, D. Waldmann, and A. , Zürbes, Field study on the energy consumption of school buildings in Luxembourg, Energy and Buildings, vol.68, 2014.

V. Butala and P. Novak, Energy consumption and potential energy savings in old school buildings, Energy and Buildings, vol.29, issue.3, pp.241-246, 1999.
DOI : 10.1016/S0378-7788(98)00062-0

E. G. Dascalaki and V. G. Sermpetzoglou, Energy performance and indoor environmental quality in Hellenic schools, Energy and Buildings, vol.43, issue.2-3, pp.718-727, 2011.
DOI : 10.1016/j.enbuild.2010.11.017

D. Agdas, R. S. Srinivasan, K. Frost, and F. J. Masters, Energy use assessment of educational buildings: Toward a campus-wide sustainable energy policy, Sustainable Cities and Society, 2015.

V. I. Deshko and O. M. Shevchenko, University campuses energy performance estimation in Ukraine based on measurable approach, Energy and Buildings, 2013.
DOI : 10.1615/ichmt.2012.sebua-12.150

M. Turunen, O. Toyinbo, T. Putus, A. Nevalainen, R. Shaughnessy et al., Indoor environmental quality in school buildings, and the health and wellbeing of students, International Journal of Hygiene and Environmental Health, vol.217, issue.7, pp.733-739, 2014.
DOI : 10.1016/j.ijheh.2014.03.002

M. C. Lee, K. W. Mui, L. T. Wong, W. Y. Chan, E. W. Lee et al., Student learning performance and indoor environmental quality (IEQ) in air-conditioned university teaching rooms, Building and Environment, pp.238-244, 2012.
DOI : 10.1016/j.buildenv.2011.10.001

P. Wargocki and D. P. Wyon, Providing better thermal and air quality conditions in school classrooms would be cost-effective, Building and Environment, 2013.
DOI : 10.1016/j.buildenv.2012.10.007

R. Becker, I. Goldberger, and M. Paciuk, Improving energy performance of school buildings while ensuring indoor air quality ventilation, Building and Environment, pp.3261-3276, 2007.
DOI : 10.1016/j.buildenv.2006.08.016

G. J. Besler and M. Besler, Towards healthy microclimate of closed spaces and habitats, Environment Protection Engineering, vol.26, pp.23-38, 2000.

O. Seppänen, W. Fisk, and Q. Lei, Effect of Temperature on Task Performance in Office Environment, 2006.

M. Mankibi, Indoor air quality control in case of scheduled or intermittent occupancy based building: Development of a scale model, Building and Environment, vol.44, issue.7, 2009.
DOI : 10.1016/j.buildenv.2008.06.003

D. H. Mudarri, Potential correction factors for interpreting CO2 measurements in buildings, ASHRAE Transactions, vol.103, issue.2, pp.244-255, 1997.

U. Satish, M. J. Mendell, K. Shekhar, T. Hotchi, D. Sullivan et al., Is CO2 an Indoor Pollutant? Direct Effects of Low-to-Moderate CO2 Concentrations on Human Decision-Making Performance, Environmental Health Perspectives, vol.120, pp.1671-1677, 2012.
DOI : 10.1289/ehp.1104789

P. O. Fanger and B. , Berg-Munch, Ventilation and body odour, Proceedings of Enclosed Spaces Conference, pp.45-50, 1983.

G. Clausen, Sensory evaluation of emission and indoor air quality, Proceedings of Healthy Buildings, pp.1-53, 2000.

Z. Bakó-biró, D. J. Clements-croome, N. Kochhar, H. B. Awbi, and M. J. Williams, Ventilation rates in schools and pupils' performance, Building and Environment, 2012.

D. Teli, M. F. Jentsch, and P. A. James, Naturally ventilated classrooms: An assessment of existing comfort models for predicting the thermal sensation and preference of primary school children, Energy and Buildings, vol.53, pp.166-182, 2012.
DOI : 10.1016/j.enbuild.2012.06.022

D. Mumovic, J. Palmer, M. Davies, M. Orme, I. Ridley et al., Winter indoor air quality, thermal comfort and acoustic performance of newly built secondary schools in England, Building and Environment, pp.1466-1477, 2009.

S. P. Corgnati, R. Ansaldi, and M. Filippi, Thermal comfort in Italian classrooms under free running conditions during mid seasons: Assessment through objective and subjective approaches, Building and Environment, vol.44, issue.4, pp.785-792, 2009.
DOI : 10.1016/j.buildenv.2008.05.023

P. Wargocki, Ventilation, indoor air quality and learning in schools, Proceedings of the 36th AIVC conference, 2015.

G. Smedje and D. Norbäck, New Ventilation Systems at Select Schools in Sweden???Effects on Asthma and Exposure, Archives of Environmental Health: An International Journal, vol.1, issue.1, pp.18-25, 2000.
DOI : 10.1016/0091-6749(93)90018-B

I. Sarbu and C. Pacurar, Experimental and numerical research to assess indoor environment quality and schoolwork performance in university classrooms, Building and Environment, 2015.
DOI : 10.1016/j.buildenv.2015.06.022

S. B. Riffat and K. W. Cheong, Estimation of zone effective-volume using tracer-gas techniques, Applied Energy, pp.327-33410, 1993.

A. and A. E741, 11 Standard Test Method for Determining Air Change in a Single Zone by Means of a Tracer Gas Dilution, pp.1-18, 2011.

M. H. Sherman, Tracer-gas techniques for measuring ventilation in a single zone, Building and Environment, pp.365-374, 1990.

M. Sandberg, What is ventilation efficiency?, Building and Environment, pp.123-135, 1981.
DOI : 10.1016/0360-1323(81)90028-7

N. Vvs, Building Ventilation air: Local mean age, 1988.

H. Han, Ventilation effectiveness measurements using tracer gas technique, Fluid Dynamics, Computational Modeling and Applications, pp.41-66, 2012.
DOI : 10.5772/26294

URL : http://www.intechopen.com/download/pdf/28967

H. Chappells and E. Shove, Debating the future of comfort: environmental sustainability, energy consumption and the indoor environment, Building Research & Information, vol.19, issue.1, pp.32-40, 2005.
DOI : 10.1177/014362449801900110

H. Wilhite, E. Shove, L. Lutzenhiser, and W. Kempton, Twenty years of energy demand management: we know more about individual behavior but how much do we really know about demand, ACEEE Summer Study on Energy Efficiency in Buildings, pp.435-453, 2000.

F. Nicol, M. Humphreys, and E. S. Roaf, Adaptive Thermal Comfort: Principles and Practice

M. Humphreys, F. Nicol, and E. S. Roaf, Adaptive Thermal Comfort: Foundations and Analysis, 2015.

R. F. Rupp, N. G. Vasquez, and R. Lamberts, A review of human thermal comfort in the built environment, Energy and Buildings, 2015.

J. Malchaire, Human thermal environments: The effects of hot, moderate and cold environments on human health???comfort and performance: The principles and the practice, Safety Science, vol.18, issue.1, pp.67-68, 1994.
DOI : 10.1016/0925-7535(94)90046-9

A. Lenoir, S. Cory, M. Donn, and F. Garde, Users' behavior and energy performances of net zero energy buildings, Proceedings of Building Simulation, pp.14-16, 2011.

J. Toftum, R. V. Andersen, and K. L. Jensen, Occupant performance and building energy consumption with different philosophies of determining acceptable thermal conditions, Building and Environment, 2009.

M. Pellegrino, M. Simonetti, and G. Chiesa, Reducing thermal discomfort and energy consumption of Indian residential buildings: Model validation by in-field measurements and simulation of low-cost interventions, Energy and Buildings, vol.113, 2016.
DOI : 10.1016/j.enbuild.2015.12.015

URL : https://hal.archives-ouvertes.fr/hal-01301688

N. En, Critères d'ambiance intérieure pour la conception et évaluation de la performance énergétique des bâtiments couvrant la qualité de l'air intérieur, la thermique, l'éclairage et l'acoustique, p.15251, 2007.

B. S. Iso, Ergonomics of the thermal environment ? Estimation of thermal insulation and water vapor resistance of a clothing ensemble, ISO, vol.9920, 2007.

N. En and . Iso, Ergonomie des ambiances thermiques -Détermination analytique et interprétation du confort thermique par le calcul des indices PMV et PPD et par des critères de confort thermique local, pp.35-203, 2006.

I. Standard, ISO 7726 Ergonomics of the thermal environment ? Instruments for measuring physical quantities, ISO Standard, pp.1-56, 1998.

N. En-iso-10551, Ergonomie des ambiances thermiques -Evaluation de l'influence des ambiances thermiques à l'aide d'échelles de jugements subjectifs Ce d, p.10551, 2001.