FP6Индивидуална стипендия2005–2006

CAMIAMEUJP · Long range Projection of the EU energy supply: the case of fuel cell-cogeneration adoption to mitigate green house gases

6РП — Действия „Мария Кюри“

Период
2005-01-01 → 2006-12-31
Финансиране от ЕС
155 644 €
Участници
1
Схема
EIF

Линиите свързват координатора с партньорите.

Накратко на български

Внедряването на когенераторни системи в заводите и горивната ефективност на автомобилите в Обединеното кралство и Нидерландия са в центъра на анализа. Това помага за разбирането на инвестициите в енергетиката и мерките за намаляване на парниковите газове.

Този кратък обзор е генериран от изкуствен интелект

Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.

Резултати накратко

Final Activity Report Summary - CAMIAMEUJP (Long range Projection of the EU energy supply: the case of fuel cell-cogeneration adoption to mitigate green house gases)

Following the literature review and based on data availability we started by examining the adoption process of Combined heat and power plants (CHP) installations in manufacturing sectors in the United Kingdom and the Netherlands. This provided increased understanding of the issues involved in cogeneration investment and in cases where potential for new policy measures existed. The work was European in nature; however the empirical part was based on the British and Dutch experiences and data. The overall research objective and question, i.e. the adoption of cogeneration in manufacturing sectors in the European Union, was eventually modified. In the advanced stage of the project the work was extended to include analysis of the transport-energy axis of the United Kingdom freight and passenger vehicle sector. Following the literature review, and based on data availability, we started by examining the historical trend in fuel economy of new cars and on-road fuel economy in the United Kingdom gasoline and diesel vehicle stocks, as well as car sales of both gasoline and diesel cars. This provided more understanding of the issues involved in improving fuel efficiency of the transportation sector and policy measures. Among the most important project achievements were the following: 1. building an econometric model of CHP adoption for the British and Dutch manufacturing sectors; 2. examining the historical level of investment in CHP plants in 12 Dutch manufacturing sectors; 3. examining the historical level of investment in CHP plants in six United Kingdom manufacturing sectors; 4. building an econometric model of fuel consumption of new cars for the United Kingdom case; 5. building an econometric model of fuel consumption of new diesel and gasoline cars for the United Kingdom case; 6. building an econometric model of fuel consumption of on-road cars for the United Kingdom case; 7. building a freight transport model for the United Kingdom case; 8. analysis of freight transport carbon dioxide emissions in the last 40 years including policy measures; 9. assessing carbon mitigation policy (European Union voluntary agreement on cars until 2009) and tools targeting surface transport; 10. policy evaluation of United Kingdom freight transport agenda, including decarbonising freight transport activity. For the first part of the project, three tasks were undertaken, namely an extensive literature review, data collection and model building for best econometric models. In the second year of the project, while focussing on surface transport energy demand, the following tasks were undertaken: 1. literature review on econometric models, including panel, time series and cross sectional; 2. data collection; and 3. selection of econometric models to estimate elasticity of private transport with respect to fuel costs, vehicle capital costs etc.

Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз

Цел на проекта

Following the Kyoto protocol, the EU (15 members) must cut GHG by 8% by the year 2008-2012 and the region is responsible for 24% of industrialised countries' GHG. The largest sources of GHG emissions are the production of power, heat and transportation. Energy forecasting models do not accurately account for the role of fuel cells. Further research is required to improve the accuracy of predicting the shape of future of fuel cell based energy systems. The author undertakes a study on the market and technological adoption of fuel cell technology within the manufacturing, power generation and transportation sectors.There are two reasons that justify further research:1) the need to improve energy system wide conversion efficiency and industrial energy efficiency;2) need to achieve the Kyoto protocol agreed GHG emission targets and3) the need to reduce fossil fuel dependency.We aim to answer whether:1) fuel cells will be adopted;2) if adopted how much will they reduce GHG emissions.3) The role of techno logical spillover from one sector to another will be significant.The project proposed involves the design of a model to forecast pollution intensities, energy, heat and power demands of the manufacturing sector as well as of other sectors within the next 10 50 years. The model shall predict how fuel cells mitigate GHG into the future and its market impediments. The project shall provide guidance on how to achieve a low cost GHG policy. Fuel cells have the potential to provide twice the energy conversion efficiency of conventional combustion engines. Potential markets include the manufacturing industry (fuel cell CHP), buildings and transportation (hybrid car). Fuel cell-CHP is a promising option for GHG mitigation, with wide job creating effects and positi ve environmental outcomes. The objective of the project is closely related to the European Union's policy on sustainable energy systems and to its commitment to carbon emissions reduction policy.

Оригинален текст от CORDIS (на английски).

Участници

Връзки

Данни: CORDIS, © Европейски съюз