Reducing Carbon Emissions: Strathmore University Contributions Towards Sustainable Development in Kenya

  • Lilian Njeri Munene Strathmore University
Keywords: Sustainability, Carbon Emissions, Solar PV Power, Inclusive Development

Abstract

Strathmore University is the first educational institution in sub-Saharan Africa to achieve a zero-carbon footprint. With 2,400 panels located on the roofs of six buildings, it is the largest rooftop solar installation in the region. Kenya sits on the equator and enjoys year-round insulation. Taking advantage of a green line of financial support created by the French Government, Strathmore embarked on a project to install a 600kW roof-top, grid-connected solar photovoltaic power system to cater for its electricity needs. The system is designed to produce more than the required self-consumption, hence the extra power is sold to the utility via a power purchase agreement. This investment in renewable energy confirms that universities can demonstrate leadership in the area of environment and energy. This paper describes the economic and social impact created by a university through greening its sources of energy.

References

Adenle, A. et al., 2017. Managing Climate Change Risks in Africa-A Global Perspective. Ecological Economics, Volume 141, pp. 190-201.

Altan, H., 2010. Energy efficiency interventions in UK higher education institutions. Energy Policy, 38(12), pp. 7722-7731.

Avila, N., Carvallo, J., Shaw, B. & Kammen, D., 2017. The energy challenge in sub-Saharan Africa: A guide for advocates and policy makers, s.l.: OXFAM.

Bazilian, M. et al., 2012. Energy access scenarios to 2030 for the power sector in sub-Saharan Africa. Utilities Policy, 20(1), pp. 1-16.

Da Silva, I., Ronoh, G., Ouma, C. & Jerono, C., 2015. Reducing carbon emissions in a third level educational institution in Sub-Sahara Africa. In Transformative Approaches to Sustainable Development at Universities, pp. 513-524.

Da Silva, I. & Ssekulima, E., 2011. Energy Efficient Building Designs for Institutional Buildings In East Africa, s.l.: s.n.

Deichmann, U., Meisner, C., Murray, S. & Wheeler, D., 2011. The economics of renewable energy expansion in rural Sub-Saharan Africa. Energy Policy, 39(1), pp. 215-227.

Government of Kenya, National Climate Change Action Plan , 2013. National Climate Change Action Plan 2013-2017, Nairobi: Government of Kenya.

Hogarth, J. R., Caroline, H. & Shelagh, W., 2015. Low-carbon development in sub-saharan Africa: 20 cross-sector transitions, s.l.: German Development Institute.

International Energy Agency, 2014. Africa energy outlook: A focus onenergy prospects in sub-Saharan Africa, Paris: International Energy Agency.

International Energy Agency, 2016. World energy outlook, Paris: International Energy Agency.

Nhamo, G. & Ntombela, N., 2014. Higher education institutions and carbon management: cases from the UK and South Africa, s.l.: s.n.

Shum, K. & Watanabe, C., 2009. An innovation management approach for renewable energy deployment—the case of solar photovoltaic (PV) technology. Energy Policy, 37(9), pp. 3535-3544.

Uhl, C. & Anderson, A., 2001. Green destiny: Universities leading the way to a sustainable future. AIBS Bulletin, 51(1), pp. 36-42.

World Bank, 2016. CO2 emissions (metric tons per capita) in Sub-Saharan Africa. [Online]

Available at: http://data.worldbank.org/indicator/EN.ATM.CO2E.PC?locations=ZG

[Accessed 29 06 2017].

Published
2019-07-22
Section
Articles