Assessing transition pathways to low-carbon electricity generation in Kenya: A hybrid approach using backcasting, socio-technical scenarios and energy system modelling

被引:0
|
作者
Kehbila, Anderson Gwanyebit [1 ,2 ]
Masumbuko, Robert Karisa [1 ]
Ogeya, Mbeo [1 ]
Osano, Philip [1 ]
机构
[1] Stockholm Environment Institute (SEI), Nairobi, Kenya
[2] EcoXergy Solutions, Vancouver, Canada
关键词
Air pollution - Cost benefit analysis - Electric power generation - Electric power utilization - Gas emissions - Greenhouse gases - Health;
D O I
暂无
中图分类号
学科分类号
摘要
This paper establishes a bottom-up LEAP-Kenya-Centralized-Electricity model to simulate the mitigation potential of chief atmospheric pollutants and greenhouse gas (GHG) emissions from 2010-2040 under different scenarios: Business as Usual (BAU), Vision 2030+Least Cost Power Development Plan (VLCPDP), and four low-carbon scenarios spanning Full Renewables (FRE), UN Agenda 2030 SDGS (SDGs) and AU Agenda 2063 (AU). A comparative analysis of the alternative generation scenarios is presented and assesses multiple indicators including electricity demand, technology stocks, air pollution, greenhouse gas emissions, marginal abatement costs, and air pollution health impacts. Total electricity demand is projected to reach 57.4 thousand gigawatts-hours by 2040 under VLCPDP and the low-carbon scenarios; 11.8% greater than the BAU scenario. Total GHG emissions under SDGs and AU will be 99.7% and 97.6% lower than VLCPDP whose GHG emissions will be 14.7% greater than BAU. PM2.5 concentration in both BAU and VLCPDP will increase by 0.54µg/m3 by 2040. Besides, renewable energies will account for 99% of total electricity generation capacity under SDGs 2 in 2040; 26.7% and 20.9% higher than BAU and VLCPDP respectively. Importantly, FRE and SDGs 2 emerged as the most promising scenarios for achieving the highest greenhouse gas abatement potential and least impacts on human health at least costs. © 2021
引用
收藏
相关论文
共 19 条
  • [1] Exploring possible transition pathways for hydrogen energy: A hybrid approach using socio-technical scenarios and energy system modelling
    McDowall, Will
    [J]. FUTURES, 2014, 63 : 1 - 14
  • [2] Transformative policy mixes in socio-technical scenarios: The case of the low-carbon transition of the German electricity system (2010-2050)
    Rogge, Karoline S.
    Pfluger, Benjamin
    Geels, Frank W.
    [J]. TECHNOLOGICAL FORECASTING AND SOCIAL CHANGE, 2020, 151
  • [3] Low-carbon scenarios for Russia's energy system: A participative backcasting approach
    Sharmina, Maria
    [J]. ENERGY POLICY, 2017, 104 : 303 - 315
  • [4] Reaching a 1.5°C target: socio-technical challenges for a rapid transition to low-carbon electricity systems
    Eyre, Nick
    Darby, Sarah J.
    Grunewald, Philipp
    McKenna, Eoghan
    Ford, Rebecca
    [J]. PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY A-MATHEMATICAL PHYSICAL AND ENGINEERING SCIENCES, 2018, 376 (2119):
  • [5] Aligning integrated assessment modelling with socio-technical transition insights: An application to low-carbon energy scenario analysis in Europe
    van Sluisveld, Mariesse A. E.
    Hof, Andries F.
    Carrara, Samuel
    Geels, Frank W.
    Nilsson, Mans
    Rogge, Karoline
    Turnheim, Bruno
    van Vuuren, Detlef P.
    [J]. TECHNOLOGICAL FORECASTING AND SOCIAL CHANGE, 2020, 151
  • [6] Towards low-carbon district heating: Investigating the socio-technical challenges of the urban energy transition
    Reda, Francesco
    Ruggiero, Salvatore
    Auvinen, Karoliina
    Temmes, Armi
    [J]. SMART ENERGY, 2021, 4
  • [7] Transition pathways for a UK low-carbon electricity system: Comparing scenarios and technology implications
    Barton, John
    Davies, Lloyd
    Dooley, Ben
    Foxon, Timothy J.
    Galloway, Stuart
    Hammond, Geoffrey P.
    O'Grady, Aine
    Robertson, Elizabeth
    Thomson, Murray
    [J]. RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2018, 82 : 2779 - 2790
  • [8] Diffusion of demand-side low-carbon innovations and socio-technical energy system change
    Hoicka, Christina E.
    Zhao, Yuxu
    McMaster, Maria-Louise
    Das, Runa R.
    [J]. Renewable and Sustainable Energy Transition, 2022, 2
  • [9] Socio-technical analysis of the electricity sector of Mexico: Its historical evolution and implications for a transition towards low-carbon development
    Jano-Ito, Marco A.
    Crawford-Brown, Douglas
    [J]. RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2016, 55 : 567 - 590
  • [10] A clash of socio-technical systems: Exploring actor interactions around electrification and electricity trade in unfolding low-carbon pathways for Ontario
    Rosenbloom, Daniel
    [J]. ENERGY RESEARCH & SOCIAL SCIENCE, 2019, 49 : 219 - 232