Modelling sustainable energy futures for the UK
Bibliographic Data
| ID | 9846273 |
|---|---|
| Authors | Peter Allen (0000-0001-8329-0426), Peter M Allen (0000-0002-4536-7215, Cranfield University, corresponding author), Liz Varga (0000-0001-6955-478X, Cranfield University) |
| Year | 2014 |
| Volume | 57 |
| Pages | 28-40 |
| Publication date | 2014-03-01 |
| Peer Reviewed | Yes |
| Open Access | Yes |
| Type | ARTICLE |
| Venue | Futures (JOURNAL) |
| Journal identifiers | ISSN: 0016-3287 • E-ISSN: 1873-6378 |
| Publisher | Elsevier BV (PUBLISHER) |
| DOI | 10.1016/j.futures.2014.01.005 |
| OpenAlex | W1968558523 |
| Language | EN |
| Citations received | 3 |
| References cited | 20 |
As a result of signing the Kyoto Agreement the UK will need to reduce carbon emissions to 20% of their 1990 value by 2050. This will require a complete change in power generation over the next 40 years. The system involved is immensely complex, with multiple agents, levels of description, new technologies and new policies and actions. However, here we develop a relatively simple spatial, dynamic model representing a basic part of the problem – the changing geographical distribution of electrical generation capacity in the UK. It runs from 2010 until 2050 and allows the exploration of the different pattern of investments in, and closures of, generation capacity. It was develop as part of the CASCADE project on Smart Grids to provide scenarios for annual changes in generating capacity. It provides generation scenarios for much more complex, multi-agent models, such as that developed in the CASCADE project, that represent the short-term (30 min time step) dynamics of the wholesale and retail energy markets. The model allows us to explore different possible pathways to 2050 and the difficulty of the overall endeavour. In order to increase electricity production but reduce CO2 emissions, we shall need to close our current coal/gas generating plants and make a vast investment in new low carbon generating capacity. The model allows us to rapidly the possible consequences of innovations in technologies, and to re-shape plans in the light of as new opportunities and circumstances
Business · Economics · Electricity · Electricity generation · Environmental economics · Futures contract · Investment (military · Operations research · Order (exchange · Power (physics · Climate Change Policy and Economics · Computer Science · demographic modeling and climate adaptation · Engineering · Sustainability and Climate Change Governance
Understanding the Complexity of Economic, Ecological, and Social Systems
Capitalism, Socialism and Democracy
Capitalism, Socialism and Democracy
The impact of R&D on innovation for wind energy in Denmark, Germany and the United Kingdom
A model of technological breakthrough in the renewable energy sector
Coherence, chaos and evolution in the social context
A post-carbon aviation future
Welcome to postnormal times
Carbon capture, utilisation and storage scenarios for the Gulf Cooperation Council region
Strategies for shifting technological systems
Transitions
The practice of transition management
Toward a new macrohistory
Sustainability-guided promotion of renewable electricity generation
Environmental Factors Influencing the Spread of the Highly Pathogenic Avian Influenza H5N1 Virus in wild birds in Europe
Realizing water transitions
| Unique citing works | 3 |
|---|---|
| Citations per year | 0,27 |
| Citation span | 2015 - 2020 (6) |
| Citation velocity | historical |
| Highly cited | No |
| Citation types | Neutral: 3 |