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An Exploration of the Effects of Urban Block Design on the Outdoor Thermal Environment in Tropical Savannah Climate: Case Study of Nyamirambo Neighborhood of Kigali

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Towards Implementation of Sustainability Concepts in Developing Countries

Abstract

Urbanization is known to alter the microclimate, thus accelerating the effect of climate change. The built environment can have a positive and negative impact on local microclimates and especially at the neighborhood level. Microclimates at this level are created by items such as building form and geometry, street width, surface material types, soil types, trees, and vegetation types which represent urban block design characteristics. At street level, urban block settings have an impact on the overall air temperature, the surface temperature, the wind distribution, and on the solar radiation, and this will influence the outdoor thermal comfort. In this paper, we explore the impact of urban block design on the microclimate and its impact on the outdoor thermal environment by simulating the microclimate using ENVI-met and by assessing urban thermal comfort using UTCI in a carefully selected urban block fabric of the Nyamirambo neighborhood, which is one of the oldest mixed-used neighborhoods in Kigali presenting a particularly dense urban fabric in the fast-growing city of Kigali. While the region has been experiencing extensively high temperatures during the dry season in the recent past years, this paper tends to highlight urban block design strategies that can help to ease the effects of global warming by providing pedestrians with thermally comfortable conditions. We simulated the microclimate at street level of an urban block model in ENVI-met and analyzed its impact on Ta, Va, MRT, and UTCI at the current state and after introducing urban morphological techniques that have proved to enhance thermal conditions outdoors such as adding trees on the roadside, replacing dark and used concrete pavement with a light concrete pavement with a high albedo, and the creation of a small park to offset the positive impact of cool materials. We also analyzed the results based on the impact of the urban block’s building geometry represented by SVF and street orientation. Both strategies proved to have satisfactory results when treated separately. The addition of trees alone led to a reduction of Ta by 3.89 °C and MRT reduction by 1.1 °C at noon. Results of simulations based on SVF and street orientation impact on Ta, and MRT did not show a big difference in this particular urban fabric; however, SVF and street orientation proved to play an important role in the distribution of wind velocity. The best results, however, were obtained in the combination of all the mentioned strategies where the UTCI went from the state of “moderate thermal heat stress” to a state of “no thermal heat stress;” the highest MRT which corresponds to the high-angle sun between 12:00 and 13:00 went from 68 °C to 60.35 °C, especially in the area with added trees and regardless of the street orientation and SVF.

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Abbreviations

H:

Height of buildings

SVF:

Sky view factor

Ta:

Air temperature

Tmrt:

Mean radiant temperature

UTCI:

Universal thermal climate index

Va:

Wind speed

GHG:

Greenhouse gases

UHI:

Urban heat island

References

  • Achour-Younsi, S., & Kharrat, F. (2016). Outdoor thermal comfort: Impact of the geometry of an urban street canyon in a Mediterranean subtropical climate-Case study Tunis, Tunisia. Procedia-Social and Behavioral Sciences, 216, 689–700.

    Article  Google Scholar 

  • Adolphe, L. (2001). Modeling the link between the built environment and urban climate: Towards simplified indicators of the city environment. In Building simulations, proceedings of IBPSA (International Building Performance Simulation Association).

    Google Scholar 

  • Ait-Ameur, K. (2002). Characterization of the microclimate in urban spaces through the validation of a “morpho-climatic” indicator system. In Proceedings of PLEA 2002—The 19th conference on passive and low energy architecture. Toulouse.

    Google Scholar 

  • Ali-Toudert, F., & Mayer, H. (2006). Numerical study on the effects of aspect ratio and orientation of an urban street canyon on outdoor thermal comfort in hot and dry climate. Building and Environment, 41(2), 94–108.

    Article  Google Scholar 

  • Auliciems, A., & Szokolay, S. V. (1997). Thermal comfort. PLEA with Department of Architecture, University of Queensland.

    Google Scholar 

  • Baffoe, G., Malonza, J., Manirakiza, V., & Mugabe, L. (2020). Understanding the concept of neighborhood in Kigali city, Rwanda. Sustainability.

    Google Scholar 

  • Brode, P., Fiala, D., Blazejczyk, K., Holmer, I., Jendritzsky, G., Kampmann, B., Tinz, G., & Havenith, G. (2012). Deriving the operational procedure for the universal thermal climate index(UTCI). International Journal of Biometeorology, 56(3), 481–494.

    Article  ADS  Google Scholar 

  • Brown, M., Grimmond, S., & Ratti, C. (2001). Comparison of methodologies for computing sky view factor in urban environments. In International society of environmental hydraulics conference.

    Google Scholar 

  • Chatzinikolaou, E., Chalkias, C., & Dimopoulou, E. (2018). Urban microclimate improvement using ENVImet climate model. In The international archives of the photogrammetry.

    Google Scholar 

  • Chen, H., Ooka, R., Huang, H., & Tsuchiya, T. (2009). Study on mitigation measures for outdoor thermal environment on present urban blocks in Tokyo using coupled simulation. Building and Environment, 2290–2299.

    Google Scholar 

  • Chen, L., Ng, E., An, X., Ren, C., Lee, M., Wang, U., He, Z. (2010). Sky view factor analysis of street canyons and its implications for daytime intra-urban air temperature differentials in high-rise, high-density urban areas of Hong Kong: a GIS-based simulation approach. International Journal of Climatology, 121–136.

    Google Scholar 

  • Correa, C. (1989). The new landscape: Urbanisation in the third world. Architectural Press.

    Google Scholar 

  • Elwy, I., Ibrahim, Y., Fahmy, M., Mahdy, M. (2018). Outdoor microclimatic validation for hybrid simulation workflow in hot arid climates against ENVI-met and field measurements, 29–34.

    Google Scholar 

  • Emmanuel, R., Rosenlund, H., & Johansson, E. (2007). Urban shading—a design option for the tropics? A study in Colombo, Sri Lanka. International Journal of Climatology, 1995–2004.

    Google Scholar 

  • Fange, P. O. (1970). Thermal comfort: Analysis and applications in environmental engineering. Danish Technical Press.

    Google Scholar 

  • Hoeppe, P. (1999). The physiological equivalent temperature—a universal index for the biometeorological assessment of the thermal environment. International Journal of Biometeorology, 43, 71–75.

    Article  ADS  Google Scholar 

  • Manirakiza, V. (2014). Promoting inclusive approaches to address urbanization challenges in Kigali. African Review of Economics and Finance, 161–180.

    Google Scholar 

  • Mestayer, P., & Anquentin, S. (1994). Climatology of cities, diffusion, and transport of pollutants in atmospheric mesoscale flow fields. Kluwer Academic Publishers.

    Google Scholar 

  • Middel, A., Hab, K., Brazel, J. A., Martin, A. M., & Guhathakurta, S. (2014). Impact of urban form and design on mid-afternoon microclimate in Phoenix local climate zones. Landscape and Urban Planning.

    Google Scholar 

  • Nichol, J. (1996). Analysis of the urban thermal environment with LANDSAT data. Environment and Planning B: Urban Analytics and City Science.

    Google Scholar 

  • Oke, T., Johnson, G., Steyn, D., & Watson, I. (1991). Simulation of nocturnal surface urban heat islands under ‘ideal’ conditions: Part 2 Diagnosis of causation. Boundary layer meteorology, 56.

    Google Scholar 

  • Parsons, K. (2003). Human thermal environment. Taylor & Francis.

    Google Scholar 

  • Potter, S., Cabbage, M., & McCarthy, L. (2017, August 7). National aeronautics and space administration. Retrieved January 23, 2019, from https://www.nasa.gov/press-release/nasa-noaa-data-show-2016-warmest-year-on-record-globally

  • Rizwan, A., Leung, Y., & Chumbo, L. (2008). A review on the generation, determination, and mitigation of urban heat island. Journal of Environmental Sciences, 20.

    Google Scholar 

  • Salka, M. (2014). Sustainably localized urbanisms: The role of emerging technology in developing Kigali, Rwanda. Spring.

    Google Scholar 

  • Strategic Foresight Group. (2013). Blue peace for the Nile.

    Google Scholar 

  • Tsoka, S. (2017). Investigating the relationship between urban spaces morphology and local microclimate: A study for Thessaloniki. Procedia Environmental Sciences.

    Google Scholar 

  • Wang, Y., Berardi, U., & Akbari, H. (2015). Comparing the effects of urban heat island mitigation strategies for Toronto, Canada. Energy and Buildings.

    Google Scholar 

  • Wong, N., Chen, Y., Ong, C. L., & Sia, S. (2003). Investigation of thermal benefits of rooftop gardens in the tropical environment. Building and Environment, 261–270.

    Google Scholar 

  • Yahia, M. W., Johansson, E., Thorsson, S., Lindberg, F., & Rasmussen, M. I. (2018). Effect of urban design on microclimate and thermal comfort outdoors in warm-humid Dar es Salaam, Tanzania. International Journal of Biometeorology, 62, 373–385.

    Article  ADS  Google Scholar 

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de la Joie Horimbere, E., Chen, H., Makvandi, M. (2021). An Exploration of the Effects of Urban Block Design on the Outdoor Thermal Environment in Tropical Savannah Climate: Case Study of Nyamirambo Neighborhood of Kigali. In: Alalouch, C., Piselli, C., Cappa, F. (eds) Towards Implementation of Sustainability Concepts in Developing Countries. Advances in Science, Technology & Innovation. Springer, Cham. https://doi.org/10.1007/978-3-030-74349-9_2

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