• Allocca, C., Chen, Q., Glicksman, L.R., 2003. Design analysis of single-sided natural ventilation. Energy Build. 35, 785–795. doi:10.1016/S0378-7788(02)00239-6
• Bakó-Biró, Z., Clements-Croome, D., 2012. Ventilation rates in schools and pupils’ performance. Build. Environ. 48, 215–223. doi:10.1016/j.buildenv.2011.08.018
• Barlow, J., Coceal, O., 2009. A review of urban roughness sublayer turbulence: U.K Met Office Technical Report No. 527, Met Office Research and Development. Reading.
• Barlow, J.F., Dobre, A., Smalley, R.J., Arnold, S.J., Tomlin, A.S., Belcher, S.E., 2009. Referencing of street-level flows measured during the DAPPLE 2004 campaign. Atmos. Environ. 43, 5536–5544. doi:10.1016/j.atmosenv.2009.05.021
• Barlow, J.F., Halios, C.H., Lane, S.E., Wood, C.R., 2014. Observations of urban boundary layer structure during a strong urban heat island event. Environ. Fluid Mech. 15, 373–398. doi:10.1007/s10652-014-9335-6
• Blocken, B., 2014. 50 years of Computational Wind Engineering: Past, present and future. J. Wind Eng. Ind. Aerodyn. 129, 69–102. doi:10.1016/j.jweia.2014.03.008
• Boddy, J.W.D., Smalley, R.J., Dixon, N.S., Tate, J.E., Tomlin, A.S., 2005. The spatial variability in concentrations of a traffic-related pollutant in two street canyons in York, UK - Part I: The influence of background winds. Atmos. Environ. 39, 3147–3161. doi:10.1016/j.atmosenv.2005.01.043
• Cheng, H., Hayden, P., Robins, A., Castro, I., 2007. Flow over cube arrays of different packing densities. J. Wind Eng. Ind. Aerodyn. 95, 715–740. doi:10.1016/j.jweia.2007.01.004
• Cheng, V., Ng, E., Chan, C., Givoni, B., 2012. Outdoor thermal comfort study in a sub-tropical climate: a longitudinal study based in Hong Kong. Int. J. Biometeorol. 56, 43–56. doi:10.1007/s00484-010-0396-z
• Choinière, Y., Tanaka, H., Munroe, J.A., Suchorski-Tremblay, A., 1992. Prediction of wind-induced ventilation for livestock housing. J. Wind Eng. Ind. Aerodyn. 44, 2563–2574. doi:10.1016/0167-6105(92)90048-F
• CIBSE (Chartered Institute of Building Services Engineers), 2006. Guide A- Environmental design. London.
• CIBSE, The Chartered Institution of Building Services Engineers, 1997. Natural ventilation in non-domestic buildings, Applications Manual AM10.
• Coceal, O., Dobre, a., Thomas, T.G., Belcher, S.E., 2007. Structure of turbulent flow over regular arrays of cubical roughness. J. Fluid Mech. 589, 375–409. doi:10.1017/S002211200700794X
• Demmers, T.G.M., Phillips, V.R., Short, L.S., Burgess, L.R., Hoxey, R.P., Wathes, C.M., 2001. Validation of ventilation rate measurement methods and the ammonia emission from naturally ventilated dairy and beef buildings in the United Kingdom. J. Agric. Eng. Res. 79, 107–116. doi:10.1006/jaer.2000.0678
• Dobre, a, Arnold, S., Smalley, R., Boddy, J., Barlow, J., Tomlin, a, Belcher, S., 2005. Flow field measurements in the proximity of an urban intersection in London, UK. Atmos. Environ. 39, 4647–4657. doi:10.1016/j.atmosenv.2005.04.015
• Gailis, R.M., Hill, A., 2006. A Wind-Tunnel Simulation of Plume Dispersion Within a Large Array of Obstacles. Boundary-Layer Meteorol. 119, 289–338. doi:10.1007/s10546-005-9029-1
• Gilkeson, C.A., Camargo-Valero, M.A., Pickin, L.E., Noakes, C.J., 2013. Measurement of ventilation and airborne infection risk in large naturally ventilated hospital wards. Build. Environ. 65, 35–48. doi:10.1016/j.buildenv.2013.03.006
• Gough, H., 2017. Effects of meteorological conditions on building natural ventilation in idealised urban settings. PhD thesis. University of Reading, Department of Meteorology.
• Grimmond, C.S.B., 2013. Observing London: Weather data needed for London to thrive, London Climate Change Partnership Executive Summary. London.
• Grimmond, C.S.B., Blackett, M., Best, M.J., Barlow, J., Baik, J.J., Belcher, S.E., Bohnenstengel, S.I., Calmet, I., Chen, F., Dandou, A., Fortuniak, K., Gouvea, M.L., Hamdi, R., Hendry, M., Kawai, T., Kawamoto, Y., Kondo, H., Krayenhoff, E.S., Lee, S.H., Loridan, T., Martilli, A., Masson, V., Miao, S., Oleson, K., Pigeon, G., Porson, A., Ryu, Y.H., Salamanca, F., Shashua-Bar, L., Steeneveld, G.J., Tombrou, M., Voogt, J., Young, D., Zhang, N., 2010. The international urban energy balance models comparison project: First results from phase 1. J. Appl. Meteorol. Climatol. 49, 1268–1292. doi:10.1175/2010JAMC2354.1
• Hall, D.J., Spanton, A.M., 2012. ADMLC Report 7 Annex A: Ingress of External Contaminants into Buildings – A Review. London.
• Hens, H., Sanders, C., Kumaran, M.K., Hagentoft, C.E., 1996. Heat, air and moisture transfer through new and retrofitted insulated envelope parts (Hamtie): IEA annex 24, 1st ed. Laboratorium Bouwfysica, Department Burgerlijke Bouwkunde, Leuven.
• Hummelgaard, J., Juhl, P., Sæbjörnsson, K.O., Clausen, G., Toftum, J., Langkilde, G., 2007. Indoor air quality and occupant satisfaction in five mechanically and four naturally ventilated open-plan office buildings. Build. Environ. 42, 4051–4058. doi:http://dx.doi.org/10.1016/j.buildenv.2006.07.042
• Inagaki, A., Castillo, M.C.L., Yamashita, Y., Kanda, M., Takimoto, H., 2012. Large-Eddy Simulation of Coherent Flow Structures within a Cubical Canopy. Boundary-Layer Meteorol. 142, 207–222. doi:10.1007/s10546-011-9671-8
• Inagaki, A., Kanda, M., 2010. Organized structure of active turbulence over an array of cubes within the logarithmic layer of atmospheric flow. Boundary-layer Meteorol. 135, 209–228.
• Jiang, Y., Chen, Q., 2002. Effect of fluctuating wind direction on cross natural ventilation in buildings from large eddy simulation. Build. Environ. 37, 379–386.
• Kaimal, J.C., Finnigan, J.J., 1993. Atmospheric Boundary Layer Flows : Their Structure and Measurement: Their Structure and Measurement. Oxford University Press.
• Kanda, M., 2007. Progress in Urban Meteorology :A Review. J. Meteorol. Soc. Japan 85B, 363–383. doi:10.2151/jmsj.85B.363
• Karava, P., Stathopoulos, T., Athienitis, a. K., 2011. Airflow assessment in cross-ventilated buildings with operable façade elements. Build. Environ. 46, 266–279. doi:10.1016/j.buildenv.2010.07.022
• King, M.-F., Gough, H.L., Halios, C., Barlow, J.F., Robertson, A., Hoxey, R., Noakes, C.J., n.d. Investigating the influence of neighbouring structures on natural ventilation potential of a full-scale cubical building using time-dependent CFD (accepted). J. Wind Eng. Ind. Aerodyn. 169, 265–279. doi:10.1016/j.jweia.2017.07.020
• King, M.-F., Khan, A., Delbosc, N., Gough, H.L., Halios, C., Barlow, J.F., Noakes, C.J., 2017. Modelling urban airflow and natural ventilation using a GPU-based lattice-Boltzmann method. Build. Environ. 125, 273–284. doi:10.1016/j.buildenv.2017.08.048
• Kolokotroni, M., Ren, X., Davies, M., Mavrogianni, A., 2012. London’s urban heat island: Impact on current and future energy consumption in office buildings. Energy Build. 47, 302–311. doi:10.1016/J.ENBUILD.2011.12.019
• Kolokotroni, M., Tassou, S.A., Gowreesunker, B.L., 2015. Energy aspects and ventilation of food retail buildings. Adv. Build. Energy Res. 9, 1–19. doi:10.1080/17512549.2014.897252
• Liddament, M., 1996. A Guide to Energy Efficient Ventilation. Coventry U.K.
• Macdonald, R., Griffiths, R., Hall, D., 1998. A comparison of results from scaled field and wind tunnel modelling of dispersion in arrays of obstacles. Atmos. Environ. 32, 3845–3862.
• Mavrogianni, A., Davies, M., Batty, M., Belcher, S.E., Bohnenstengel, S.I., Carruthers, D., Chalabi, Z., Croxford, B., Demanuele, C., Evans, S., Giridharan, R., Hacker, J.N., Hamilton, I., Hogg, C., Hunt, J., Kolokotroni, M., Martin, C., Milner, J., Rajapaksha, I., Ridley, I., Steadman, J.P., Stocker, J., Wilkinson, P., Ye, Z., 2011. The comfort, energy and health implications of London’s urban heat island. Build. Serv. Eng. Res. Technol. 32, 35–52. doi:10.1177/0143624410394530
• Nelson, M.A., Pardyjak, E.R., Klewicki, J.C., Pol, S.U., Brown, M.J., 2007. Properties of the wind field within the Oklahoma City Park Avenue Street Canyon. Part I: Mean flow and turbulence statistics. J. Appl. Meteorol. Climatol. 46, 2038–2054. doi:10.1175/2006JAMC1427.1
• Ogink, N.W.M., Mosquera, J., Calvet, S., Zhang, G., 2013. Methods for measuring gas emissions from naturally ventilated livestock buildings: Developments over the last decade and perspectives for improvement. Biosyst. Eng. 116, 297–308. doi:10.1016/j.biosystemseng.2012.10.005
• Richards, P., Hoxey, R., 2007. Wind-tunnel modelling of the Silsoe Cube. J. Wind Eng. Ind. Aerodyn. 95, 1384–1399. doi:10.1016/j.jweia.2007.02.005
• Richards, P., Hoxey, R., Short, L., 2001. Wind pressures on a 6m cube. J. Wind Eng. Ind. Aerodyn. 89, 1553–1564.
• Richards, P.J., Hoxey, R.P., 2012. Pressures on a cubic building-Part 2: Quasi-steady and other processes. J. Wind Eng. Ind. Aerodyn. 102, 87–96. doi:10.1016/j.jweia.2011.11.003
• Richards, P.J., Hoxey, R.P., 2012. Pressures on a cubic building—Part 1: Full-scale results. J. Wind Eng. Ind. Aerodyn. 102, 72–86. doi:10.1016/j.jweia.2011.11.004
• Richards, P.J., Hoxey, R.P., 2008. Wind loads on the roof of a 6m cube. J. Wind Eng. Ind. Aerodyn. 96, 984–993. doi:10.1016/j.jweia.2007.06.032
• Richards, P.J., Hoxey, R.P., 2002. Unsteady flow on the sides of a 6m cube. J. Wind Eng. Ind. Aerodyn. 90, 1855–1866. doi:10.1016/S0167-6105(02)00293-3
• Samer, M., Berg, W., Muller, H.-J., Fiedler, M., Glaser, M., Ammon, C., Sanftleben, P., Brunsch, R., 2011. Radioactive 85Kr and CO 2 balance for ventilation rate measurements and gaseous emissions quantification through naturally ventilated barns. Trans. ASABE 54, 1137–1148. doi:10.13031/2013.37105
• Santamouris, M., Papanikolaou, N., Livada, I., Koronakis, I., Georgakis, C., Argiriou, a, Assimakopoulos, D.., 2001. On the impact of urban climate on the energy consumption of buildings. Sol. Energy 70, 201–216. doi:10.1016/S0038-092X(00)00095-5
• Sato, A., Michioka, T., Takimoto, H., Kanda, M., 2010. Field and wind tunnel experiments about flow and dispersion within street canyons, in: Proceedings of the Fifth International Symposium on Computational Wind Engineering (CWE2010), Chapel Hill, NC, USA.
• Short, C.A., Lomas, K.J., Woods, A., 2004. Design strategy for low-energy ventilation and cooling within an urban heat island. Build. Res. Inf. 32, 187–206. doi:10.1080/09613210410001679875
• Straw, M., 2000. Computation and measurement of wind induced ventilation. PhD thesis. University of Nottingham.
• Straw, M., Baker, C., Robertson, A., 2000. Experimental measurements and computations of the wind-induced ventilation of a cubic structure. J. Wind Eng. Ind. Aerodyn. 88, 213–230. doi:10.1016/S0167-6105(00)00050-7
• van Hooff, T., Blocken, B., 2010. On the effect of wind direction and urban surroundings on natural ventilation of a large semi-enclosed stadium. Comput. Fluids 39, 1146–1155. doi:10.1016/j.compfluid.2010.02.004
• Wilczak, J.M., Oncley, S.P., Stage, S.A., 2001. Sonic anemometer tilt correction algorithms 127–150.
• Wood, C.R., Lacser, A., Barlow, J.F., Padhra, A., Belcher, S.E., Nemitz, E., Helfter, C., Famulari, D., Grimmond, C.S.B., 2010. Turbulent flow at 190 m height above London during 2006--2008: a climatology and the applicability of similarity theory. Boundary-layer Meteorol. 137, 77–96.
• Yang, T., Wright, N., Etheridge, D., Quinn, A., 2006. A comparison of CFD and full-scale measurements for analysis of natural ventilation. Int. J. Vent. 4, 337–348.
• Yuan, C., Ng, E., 2012. Building porosity for better urban ventilation in high-density cities – A computational parametric study. Build. Environ. 50, 176–189. doi:10.1016/j.buildenv.2011.10.023
• Zaki, S., Hagishima, A., Tanimoto, J., Ikegaya, N., 2010. Wind tunnel measurement of aerodynamic parameters of urban building arrays with random geometries, in: Proceedings of the Fifth International Symposium on Computational Wind Engineering (CWE2010), Chapel Hill, NC, USA.