Historical transitions of Western Australia’s electricity system, 1880-2016
Tài liệu tham khảo
AEMO, 2016
AEMO, 2016
AEMO, 2018, 2018 wholesale energy Market statement of opportunities
AEMO, 2018
AEMO, 2018
AEMO, 2018
AEMO, 2018
AEMO, 2019
AEMO, 2019, Integrating utility-scale renewables and distributed energy resources in the SWIS
AEMO, 2019, Technical integration of distributed energy resources: improving DER capabilities to benefit consumers and the power system
Ahlstrom, 2015, The evolution of the market: designing a market for high levels of variable generation, Ieee Power Energy Mag., 13, 60, 10.1109/MPE.2015.2458755
Andersson, 2018, Shaping factors in the emergence of technological innovations: the case of tidal kite technology, Technol. Forecast. Soc. Change, 132, 191, 10.1016/j.techfore.2018.01.034
Arapostathis, 2013, Governing transitions: cases and insights from two periods in the history of the UK gas industry, Energy Policy, 52, 25, 10.1016/j.enpol.2012.08.016
Australian PV Institute, 2019
Bakke, 2016
Bennett, 2012, Using past transitions to inform scenarios for the future of renewable raw materials in the UK, Energy Policy, 50, 95, 10.1016/j.enpol.2012.03.073
Bennett, 2009, From petrochemical complexes to biorefineries? The past and prospective co-evolution of liquid fuels and chemicals production in the UK, Chem. Eng. Res. Des., 87, 1120, 10.1016/j.cherd.2009.02.008
Bergek, 2015, Technological innovation systems in contexts: conceptualizing contextual structures and interaction dynamics, Environ. Innov. Soc. Transit., 16, 51, 10.1016/j.eist.2015.07.003
Berkers, 2011, System innovation through stepwise reconfiguration: the case of technological transitions in Dutch greenhouse horticulture (1930–1980), Technol. Anal. Strateg. Manag., 23, 227, 10.1080/09537325.2011.550392
Biggs, 2016, A resource-based view of opportunities to transform Australia’s electricity sector, J. Clean. Prod., 123, 203, 10.1016/j.jclepro.2015.12.006
Bodycoat, 1994, 59
Booth, 2003
Booth, 1980, 178
Boylen, 1994
Bragg, 2014
Bulbeck, 2011, Electrifying the home, 209
Chandrashekeran, 2016, Multidimensionality and the multilevel perspective: territory, scale, and networks in a failed demand-side energy transition in Australia, Environ. Planning A: Econ. Space, 48, 1636, 10.1177/0308518X16643728
Coenen, 2012, Toward a spatial perspective on sustainability transitions, Res. Policy, 41, 968, 10.1016/j.respol.2012.02.014
Edmonds, 2000
ERA, 2017
Essletzbichler, 2012, Renewable energy technology and path creation: a multi-scalar approach to energy transition in the UK, Eur. Plan. Stud., 20, 791, 10.1080/09654313.2012.667926
Foxon, 2013, Transition pathways for a UK low carbon electricity future, Energy Policy, 52, 10, 10.1016/j.enpol.2012.04.001
Foxon, 2013, Branching points for transition pathways: assessing responses of actors to challenges on pathways to a low carbon future, Energy Policy, 52, 146, 10.1016/j.enpol.2012.04.030
Geels, 2002, Technological transitions as evolutionary reconfiguration processes: a multi-level perspective and a case-study, Res. Policy, 31, 1257, 10.1016/S0048-7333(02)00062-8
Geels, 2004, From sectoral systems of innovation to socio-technical systems, Res. Policy, 33, 897, 10.1016/j.respol.2004.01.015
Geels, 2011, The multi-level perspective on sustainability transitions: responses to seven criticisms, Environ. Innov. Soc. Transit., 1, 24, 10.1016/j.eist.2011.02.002
Geels, 2018, Disruption and low-carbon system transformation: progress and new challenges in socio-technical transitions research and the Multi-Level Perspective, Energy Res. Soc. Sci., 37, 224, 10.1016/j.erss.2017.10.010
Geels, 2007, Typology of sociotechnical transition pathways, Res. Policy, 36, 399, 10.1016/j.respol.2007.01.003
Geels, 2014, Regime resistance against low-carbon transitions: introducing politics and power into the multi-level perspective, Theory Cult. Soc., 31, 21, 10.1177/0263276414531627
Green, 2017, Citizen utilities: the emerging power paradigm, Energy Policy, 105, 283, 10.1016/j.enpol.2017.02.004
Gregory, 2011, Electrifying the City, 185
Gui, 2018, Typology of future clean energy communities: an exploratory structure, opportunities, and challenges, Energy Res. Soc. Sci., 35, 94, 10.1016/j.erss.2017.10.019
Hall, 2016, Business model innovation in electricity supply markets: the role of complex value in the United Kingdom, Energy Policy, 92, 286, 10.1016/j.enpol.2016.02.019
Hansen, 2015, The geography of sustainability transitions: review, synthesis and reflections on an emergent research field, Environ. Innov. Soc. Transit., 17, 92, 10.1016/j.eist.2014.11.001
Harman, 2011, Supplying power to an expanding network, 236
Henney, 1987
Hess, 2016, The politics of niche-regime conflicts: distributed solar energy in the United States, Environ. Innov. Soc. Transit., 19, 42, 10.1016/j.eist.2015.09.002
Hojčková, 2018, Three electricity futures: monitoring the emergence of alternative system architectures, Futures, 98, 72, 10.1016/j.futures.2017.12.004
Kern, 2016, Analysing energy transitions: combining insights from transition studies and International political economy, 291
Kivimaa, 2016, Creative destruction or mere niche support? Innovation policy mixes for sustainability transitions, Res. Policy, 45, 205, 10.1016/j.respol.2015.09.008
Köhler, 2019, An agenda for sustainability transitions research: state of the art and future directions, Environ. Innov. Soc. Transit., 31, 1, 10.1016/j.eist.2019.01.004
Kuzemko, 2016, Governing for sustainable energy system change: politics, contexts and contingency, Energy Res. Soc. Sci., 12, 96, 10.1016/j.erss.2015.12.022
Latour, 1997, On actor-network theory: a few clarifications. Soziale Welt, 47. Jahrg., H, 4, 369
Lawhon, 2011, Socio-technical regimes and sustainability transitions: insights from political ecology, Prog. Hum. Geogr., 36, 354, 10.1177/0309132511427960
Liamputtong, 2005
Macintosh, 2010
Markard, 2018, The next phase of the energy transition and its implications for research and policy, Nat. Energy, 3, 628, 10.1038/s41560-018-0171-7
McConnell, 2016
Meadowcroft, 2009, What about the politics? Sustainable development, transition management, and long term energy transitions, Policy Sci., 42, 323, 10.1007/s11077-009-9097-z
Meadowcroft, 2011, Engaging with the politics of sustainability transitions, Environ. Innov. Soc. Transit., 1, 70, 10.1016/j.eist.2011.02.003
Miller, 2013
Moran, 2013, 571
Nelson, 2016, Climate and electricity policy integration: Is the South Australian electricity market the canary in the coalmine?, Electr. J., 29, 1, 10.1016/j.tej.2016.04.007
Nelson, 2015, Energy-only markets and renewable energy targets: Complementary policy or policy collision?, Econ. Anal. Policy, 46, 25, 10.1016/j.eap.2015.04.001
Pierson, 2000, Increasing returns, path dependence, and the study of politics, Am. Polit. Sci. Rev., 94, 251, 10.2307/2586011
Public Utilities Office, 2014
Public Utilities Office, 2016
Quezada, 2013, The challenge of adapting centralised electricity systems: peak demand and maladaptation in South East Queensland, Australia. Regional Environ. Change, 14, 463, 10.1007/s10113-013-0480-0
Riesz, 2015, Frequency control ancillary service market design: insights from the australian national electricity market, Electr. J., 28, 86, 10.1016/j.tej.2015.03.006
Riesz, 2013
Riesz, 2015, Designing electricity markets for a high penetration of variable renewables, Wiley Interdiscip. Rev. Energy Environ., 4, 279, 10.1002/wene.137
Riesz, 2016
Rip, 1998, 327
Rochlin, 2016, Distributed renewable resources and the utility business model, Electr. J., 29, 7, 10.1016/j.tej.2015.12.001
Rosenbloom, 2017, Pathways: an emerging concept for the theory and governance of low-carbon transitions, Glob. Environ. Chang. Part A, 43, 37, 10.1016/j.gloenvcha.2016.12.011
Rosenbloom, 2018, Critical choices and the politics of decarbonization pathways: Exploring branching points surrounding low-carbon transitions in Canadian electricity systems, Energy Res. Soc. Sci., 37, 22, 10.1016/j.erss.2017.09.022
Schot, 2016, The roles of users in shaping transitions to new energy systems, Nat. Energy, 1, 10.1038/nenergy.2016.54
Shackley, 2007, A conceptual framework for exploring transitions to decarbonised energy systems in the United Kingdom, Energy, 32, 221, 10.1016/j.energy.2006.04.010
Shove, 2014, What is energy for? Social practice and energy demand, Theory Cult. Soc., 31, 41, 10.1177/0263276414536746
Simpson, 2017, Network operators and the transition to decentralised electricity: an Australian socio-technical case study, Energy Policy, 110, 422, 10.1016/j.enpol.2017.08.042
Simshauser, 2014, From first place to last: the national electricity market’s policy-induced ‘Energy market death spiral’, Aust. Econ. Rev., 47, 540, 10.1111/1467-8462.12091
Smith, 2010, Innovation studies and sustainability transitions: the allure of the multi-level perspective and its challenges, Res. Policy, 39, 435, 10.1016/j.respol.2010.01.023
Sovacool, 2017, Ordering theories: typologies and conceptual frameworks for sociotechnical change, Soc. Stud. Sci., 47, 703, 10.1177/0306312717709363
Strauss, 1998
System Controllers, 2016
Tayal, 2016, Disruptive forces on the electricity industry: a changing landscape for utilities, Electr. J., 29, 13, 10.1016/j.tej.2016.08.004
Tayal, 2017, Future business models for Western Australian electricity utilities, Sustain. Energy Technol. Assess., 19, 59
Turnheim, 2013, The destabilisation of existing regimes: confronting a multi-dimensional framework with a case study of the British coal industry (1913–1967), Res. Policy, 42, 1749, 10.1016/j.respol.2013.04.009
Verbong, 2010, Exploring sustainability transitions in the electricity sector with socio-technical pathways, Technol. Forecast. Soc. Change, 77, 1214, 10.1016/j.techfore.2010.04.008
Vorrath, 2016
Warburton, 2014
Wells, 2015, Spontaneous emergence versus technology management in sustainable mobility transitions: electric bicycles in China, Transp. Res. Part A Policy Pract., 78, 371, 10.1016/j.tra.2015.05.022
Wilkenfeld, 2004
Wilkinson, 2018, Enablers of an electricity system transition, 464
