Investigating carbon footprints of the Malawi University of Science and Technology

Authors

  • Precious Douglas Maulana Malawi University of Science and Technology (MUST), P.O. Box 5196, Limbe, Malawi
  • Hope Baxter Nqcube Chamdimba Malawi University of Science and Technology (MUST), P.O. Box 5196, Limbe, Malawi
  • Malazi Mkandawire Malawi University of Science and Technology (MUST), P.O. Box 5196, Limbe, Malawi
  • Mapereka Francis Chagunda Malawi University of Science and Technology (MUST), P.O. Box 5196, Limbe, Malawi

DOI:

https://doi.org/10.61511/icese.v2i1.2024.786

Keywords:

carbon footprint, climate change, energy consumption, global warming, greenhouse gas emissions

Abstract

Background: Increasing greenhouse gasses concentration in the atmosphere is perturbing the environment to cause grievous global warming and associated consequences. Following the rule that only measurable is manageable, mensuration of greenhouse gas intensiveness of different products, bodies, and processes is going on worldwide, expressed as their carbon footprints (CF). Methods: The methodologies for carbon footprint calculations are still evolving and it is emerging as an important tool for greenhouse gas management. The purpose of this paper was to determine the CF of the Malawi University of Science and Technology (MUST) campus and identify the stressors. The greenhouse gasses (GHG) protocol separates emissions into three scopes which include scope 1 of direct emissions, scope 2 which is indirect emissions, and scope 3 of other indirect emissions. Findings: The estimation of CF from transportation measured 930670.2 kgCO2e, and from electricity measured 2824243.2 kgCO2e while from the use of charcoal fuel measured 30804 kgCO2e. Results showed that emissions generated by gen-sets and transportation produced the highest contribution of 669124.8 kgCO2e and 238991.4 kgCO2e respectively to the MUST campus in the year 2018-2019 as compared to previous years (2015-2017). Conclusion: The study strongly suggested that for the whole 5 years period the use of gen-sets in the campus was the main stressor and this was due to frequent blackouts. Second was transport and as the university grows, the demand for transportation will also increase hence more emissions from transport. Therefore the study recommends that the university should be more considerate of these carbon dioxide sources so as it is trying to meet its needs and demand from these activities, it should also consider reducing the carbon footprint of the campus. Novelty/Originality of this Study: In a pioneering effort for Malawian higher education institutions, this study quantifies the carbon footprint of the Malawi University of Science and Technology campus, paving the way for targeted greenhouse gas management strategies in academic settings.

References

Abbood, K., & Meszaros, F. (2023). Carbon Footprint Analysis of the Freight Transport Sector Using a Multi-Region Input–Output Model (MRIO) from 2000 to 2014: Evidence from Industrial Countries. Sustainability, 15(10), 7787. https://doi.org/10.3390/su15107787

Abdallah, L., & El-Shennawy, T. (2013). Reducing carbon dioxide emissions from electricity sector using smart electric grid applications. Journal of Engineering, 2013(1), 845051. https://doi.org/10.1155/2013/845051

Ali, W., Nasir, M. S., Nasir, A., Rashid, H., Ayub, I., Gillani, S. H., & Latif, M. J. (2018). Assessment of carbon footprints in terms of CO2 of diesel generator, Pakistan. Earth Sciences Pakistan (ESP), 2(1), 15-17.https://doi.org/10.26480/esp.01.2018.15.17

Bailis, R., Rujanavech, C., Dwivedi, P., de Oliveira Vilela, A., Chang, H., & de Miranda, R. C. (2013). Innovation in charcoal production: A comparative life-cycle assessment of two kiln technologies in Brazil. Energy for Sustainable Development, 17(2), 189–200. https://doi.org/10.1016/j.esd.2012.10.008

Bhandari, K., Parida, P., & Singh, P. (2013). Estimation of Carbon Footprint of Fuel Loss Due to Idling of Vehicles at Signalised Intersection in Delhi. Procedia - Social and Behavioral Sciences, 104, 1168–1177. https://doi.org/10.1016/j.sbspro.2013.11.213

Bhattacharya, S. C., Albina, D. O., & Salam, P. A. (2002). Emission factors of wood and charcoal-fired cookstoves. Biomass and bioenergy, 23(6), 453-469. https://doi.org/10.1016/S0961-9534(02)00072-7

Chen, Q., Lai, X., Gu, H., Tang, X., Gao, F., Han, X., & Zheng, Y. (2022). Investigating carbon footprint and carbon reduction potential using a cradle-to-cradle LCA approach on lithium-ion batteries for electric vehicles in China. Journal of Cleaner Production, 369(July), 133342. https://doi.org/10.1016/j.jclepro.2022.133342

Da Silva, L. F., Arantes, M. D. C., Marcelino, R. A. G., Mendes Castro, A. F. N., Ataíde, G. D. M., Castro, R. V. O., ... & Colen, F. (2024). Kiln-Furnace System: Validation of a Technology for Producing Charcoal with Less Environmental Impact in Brazil. Forests, 15(4), 645. https://doi.org/10.3390/f15040645

Department for Business, Energy & Industrial Strategy. (2019). 2019 Government greenhouse gas conversion factors for company reporting Methodology paper for emission factors. https://www.gov.uk/government/publications/greenhouse-gas-reporting-conversion-factors-2019

Ericson, S. J., & Olis, D. R. (2019). A comparison of fuel choice for backup generators (No. NREL/TP-6A50-72509). National Renewable Energy Lab.(NREL), Golden, CO (United States). https://www.osti.gov/biblio/1505554

Hasanuzzaman, M., Zubir, U. S., Ilham, N. I., & Seng Che, H. (2017). Global electricity demand, generation, grid system, and renewable energy polices: a review. Wiley Interdisciplinary Reviews: Energy and Environment, 6(3), e222. https://doi.org/10.1002/wene.222

Heinemann, G., Banzer, F., Dumitrescu, R., Hirschhausen, C. V., Neuhoff, M. E., & Ogechi Nwadiaru, V. (2022). Transforming electricity access by replacing back-up generators with solar systems: Recent trends and evidence from Nigeria. Renewable and Sustainable Energy Reviews, 157(February), 111751. https://doi.org/10.1016/j.rser.2021.111751

Hu, J., Wood, R., Tukker, A., Boonman, H., & de Boer, B. (2019). Global transport emissions in the Swedish carbon footprint. Journal of Cleaner Production, 226, 210–220. https://doi.org/10.1016/j.jclepro.2019.03.263

Hu, W., Dong, J., Hwang, B. gang, Ren, R., Chen, Y., & Chen, Z. (2020). Using system dynamics to analyze the development of urban freight transportation system based on rail transit: A case study of Beijing. Sustainable Cities and Society, 53(October 2019), 101923. https://doi.org/10.1016/j.scs.2019.101923

Hwang, S., Tongsopit, S., & Kittner, N. (2023). Transitioning from diesel backup generators to PV-plus-storage microgrids in California public buildings. Sustainable Production and Consumption, 38(April), 252–265. https://doi.org/10.1016/j.spc.2023.04.001

Jakhrani, A. Q., Rigit, A. R. H., Othman, A. K., Samo, S. R., & Kamboh, S. A. (2012, July). Estimation of carbon footprints from diesel generator emissions. In 2012 International Conference on Green and Ubiquitous Technology (pp. 78-81). IEEE. https://doi.org/10.1109/GUT.2012.6344193

Khan, M. R. (2015). Polluter-pays-principle: The cardinal instrument for addressing climate change. Laws, 4(3), 638-653. https://doi.org/10.3390/laws4030638

Kweku, D. W., Bismark, O., Maxwell, A., Desmond, K. A., Danso, K. B., Oti-Mensah, E. A., ... & Adormaa, B. B. (2018). Greenhouse effect: greenhouse gases and their impact on global warming. Journal of Scientific research and reports, 17(6), 1-9. https://doi.org/10.9734/JSRR/2017/39630

Loyarte-López, E., Barral, M., & Morla, J. C. (2020). Methodology for carbon footprint calculation towards sustainable innovation in intangible assets. Sustainability, 12(4), 1629. https://doi.org/10.3390/su12041629

Ma, B., Bashir, M. F., Peng, X., Strielkowski, W., & Kirikkaleli, D. (2023). Analyzing research trends of universities’ carbon footprint: An integrated review. Gondwana Research, 121, 259–275. https://doi.org/10.1016/j.gr.2023.05.008

Ministry of Transport and Highways. (2009). Ministry of Transportation and Civil Aviation National Transport Policy Draft Inviting for Public Views and Suggestions. https://transport.gov.lk/

Naderipour, A., Abdul-Malek, Z., Arshad, R. N., Kamyab, H., Chelliapan, S., Ashokkumar, V., & Tavalaei, J. (2021). Assessment of carbon footprint from transportation, electricity, water, and waste generation: towards utilisation of renewable energy sources. Clean Technologies and Environmental Policy, 23(1), 183–201. https://doi.org/10.1007/s10098-020-02017-4

Nkem, J. N., & Gicheru, M. N. (2016). Transforming Africa’s Transport Sector with the Implementation of Intended Nationally Determined Contributions. United Nations. Economic Commission for Africa. https://repository.uneca.org/handle/10855/23728

Pojani, D., & Stead, D. (2015). Sustainable urban transport in the developing world: Beyond megacities. Sustainability (Switzerland), 7(6), 7784–7805. https://doi.org/10.3390/su7067784

Shahzad, U. (2015). Global warming: Causes, effects and solutions. Durreesamin Journal, 1(4), 1-7.

Sharma, A. (2007). India and Energy Security. Asian Affairs, 38(2), 158–172. https://doi.org/10.1080/03068370701349110

Streimikiene, D., Baležentis, T., & Baležentiene, L. (2013). Comparative assessment of road transport technologies. Renewable and Sustainable Energy Reviews, 20, 611–618. https://doi.org/10.1016/j.rser.2012.12.021

Sumba, C., Owiny, A. A., Ouma, K., Matakala, N., Monde, C., Chirwa, P. W., & Syampungani, S. (2020). Ecofootprint of Charcoal Production and Its Economic Contribution Towards Rural Livelihoods in Sub-Saharan Africa. Agroecological Footprints Management for Sustainable Food System, 445–472. https://doi.org/10.1007/978-981-15-9496-0_15

Wheeler, K. R., Wicks, A. L., & Southward, S. C. (2017). Efficient Operation of Diesel Generator Sets in Remote Environments. http://hdl.handle.net/10919/78374

Yañez, P., Sinha, A., & Vásquez, M. (2019). Carbon footprint estimation in a university campus: Evaluation and insights. Sustainability, 12(1), 181. https://doi.org/10.3390/su12010181

Yoro, K. O., & Daramola, M. O. (2020). CO2 emission sources, greenhouse gases, and the global warming effect. In Advances in carbon capture (pp. 3-28). Woodhead Publishing. https://doi.org/10.1016/B978-0-12-819657-1.00001-3

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Published

2024-07-31

How to Cite

Maulana, P. D., Chamdimba, H. B. N., Mkandawire, M., & Chagunda, M. F. (2024). Investigating carbon footprints of the Malawi University of Science and Technology . Interaction, Community Engagement, and Social Environment , 2(1), 54–74. https://doi.org/10.61511/icese.v2i1.2024.786

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