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Scenarios for the transition to a sustainable and climate protecting energy system in Germany
(2004)
Integration ist der Schlüssel : erneuerbare Energien und Energieeffizienz auf der Renewables 2004
(2004)
Angewandte Systemanalyse
(2008)
In der vorliegenden Screening-Studie werden zum Thema "Einführung synthetischer Kraftstoffe in Nordrhein-Westfalen" relevante Entscheidungsgrößen auf verschiedenen Ebenen der Energie-, Klima- und Industriepolitik in NRW aufgearbeitet und bewertet. Das Projekt im Auftrag des Ministeriums für Wirtschaft, Mittelstand und Energie (MWME) des Landes Nordrhein-Westfalen leistet damit einen Beitrag zur Einschätzung des Potenzials und der Effekte, die durch GTL in und für NRW erzielt werden können.
Carbon capture and storage
(2009)
CO2-capture and geological storage as a climate policy option : technologies, concepts, perspectives
(2007)
The idea of removing carbon dioxide from flue gas and industrial gas flows and putting it into suitable long-term storage sites is referred to as Carbon Capture and Storage (CCS). This publication provides a close look at this new line of technologies, describing its current status and outlining the prospects for development. The approach is both diagnostic and analytical, identifying the questions a technology assessment poses and showing the steps that need to be taken to implement CCS.
CCS is currently moving to the centre of climate policy discussion. Nonetheless this line of technologies is still the subject of controversial discussion. On the one hand there is a clear hope that these technologies will open up opportunities to use fossil fuels without harming the climate and thus make it possible to continue using oil, natural gas and above all coal even under a stricter climate regime. Accordingly, numerous R&D projects have been initiated all over the world, and various demonstration projects are at the planning or implementation stage. On the other hand, CCS (especially the storage part) has given rise to considerable scepticism from an ecological point of view.
The paper reviews the current knowledge on the use of biomass for non-food purposes, critically discusses its environmental sustainability implications, and describes the needs for further research, thus enabling a more balanced policy approach. The life-cylce wide impacts of the use of biomass for energy and material purposes derived from either direct crop harvest or residuals indicate that biomass based substitutes have a different, not always superior environmental performance than comparable fossil based products. Cascading use, i.e. when biomass is used for material products first and the energy content is recovered from the end-of-life products, tends to provide a higher environmental benefit than primary use as fuel. Due to limited global land resources, non-food biomass may only substitute for a certain share of non-renewables. If the demand for non-food biomass, especially fuel crops and its derivates, continues to grow this will inevitably lead to an expansion of global arable land at the expense of natural ecosystems such as savannas and tropical rain forests. Whereas the current aspirations and incentives to increase the use of non-food biomass are intended to counteract climate change and environmental degradation, they are thus bound to a high risk of problem shifting and may even lead to a global deterioration of the environment. Although the "balanced approach" of the European Union's biomass strategy may be deemed a good principle, the concrete targets and implementation measures in the Union and countries like Germany should be revisited. Likewise, countries like Brazil and Indonesia may revisit their strategies to use their natural resources for export or domestic purposes. Further research is needed to optimize the use of biomass within and between regions.
The Russian natural gas industry is the world's largest producer and transporter of natural gas. This paper aims to characterize the methane emissions from Russian natural gas transmission operations, to explain projects to reduce these emissions, and to characterize the role of emissions reduction within the context of current GHG policy. It draws on the most recent independent measurements at all parts of the Russian long distance transport system made by the Wuppertal Institute in 2003 and combines these results with the findings from the US Natural Gas STAR Program on GHG mitigation options and economics.
With this background the paper concludes that the methane emissions from the Russian natural gas long distance network are approximately 0.6% of the natural gas delivered. Mitigating these emissions can create new revenue streams for the operator in the form of reduced costs, increased gas throughput and sales, and earned carbon credits. Specific emissions sources that have cost-effective mitigation solutions are also opportunities for outside investment for the Joint Implementation Kyoto Protocol flexibility mechanism or other carbon markets.
Der Ölpreis wird von zahlreichen Faktoren beeinflusst. Die OPEC spielt bei der Preisbildung derzeit nur eine geringe Rolle. Ein Peak Oil wird die Ölpreise stark beeinflussen und zahlreiche Ausweichdynamiken in Gang setzen, die in ihrer Struktur und Quantität bisher jedoch meist unverstanden sind. Ein ökonomischer Ansatz zu deren Bewertung greift aufgrund vorliegender nicht-ökonomischer Hemmnisse zu kurz. Eine Folge von Rohstoffverknappungen ist eine steigende Energieunsicherheit auf globaler Ebene. Daher ist ein grundsätzlicher Umbau der heutigen Versorgungsstrukturen geboten, um in Zukunft besser gegen strukturelle Unsicherheiten gerüstet zu sein.
Die Vision einer klimafreundlichen zukünftigen energetischen Nutzung von Wasserstoff ist untrennbar mit dessen Erzeugung auf der Basis von regenerativer Energie verknüpft. Für einen Übergangszeitraum kann der Rückgriff auf anderweitig in Industrieprozessen erzeugten Wasserstoff einschließlich vorhandener Infrastrukturelemente sinnvoll sein. Nordrhein-Westfalen bietet hierfür mit dem Rhein-Ruhr-Raum besonders günstige Voraussetzungen und verfügt über zahlreiche Standorte, die sich für energetische Pioniernutzungen von Wasserstoff anbieten. Der Beitrag verknüpft die Erhebung der verfügbaren Wasserstoffmengen in NRW mit der Modellierung des Aufbaus einer Wasserstoffinfrastruktur in NRW und stellt dabei die besondere Ausgangslage des Bundeslandes heraus.
Considering the traditional coal-based energy infrastructure in the German state North Rhine-Westphalia the question arises how to face the needs of embanking climate change. To reduce greenhouse gas intensive electricity generation in the Ruhr area, the introduction of carbon capture and storage (CCS) is an option of particular relevance. The paper investigates and discusses possibilities of setting up a CCS infrastructure in NRW. It shall clarify whether, and possibly how, highly efficient conventional fossil fired power plants could be refitted with CO2 capture to flexibly react to potentially changing climate policy conditions and to keep up with the market.
Im Auftrag des BMZ werden innovative Technologieentwicklungen in Deutschland und Europa eruiert und bewertet. Ziel ist es, Entwicklungen frühzeitig zu erkennen, die für Entwicklungsländer und die internationale Zusammenarbeit wichtig sein können. Der inhaltliche Schwerpunkt liegt hierbei in den Bereichen Trinkwasser- und Energiebereitstellung. Die Untersuchung gliedert sich in drei Elemente. Zunächst besteht die Aufgabe darin, eine Screening-Methodik inklusive Kriterien/Indikatoren auszuarbeiten, anhand derer potenziell interessante Ansätze ermittelt werden können. Im zweiten Schritt wird mit Hilfe dieser Methodik eine Vorauswahl für viel versprechende Projekte vorgenommen. In dieser Auswahl ist bereits eine erste Einschätzung hinsichtlich der möglichen Umsetzbarkeit der Ansätze im Sinne von nachhaltiger Entwicklung, also unter Beachtung ökologischer, ökonomischer und sozialer Kriterien, enthalten. Im dritten Schritt wird eine zusammenfassende Bewertung der einzelnen Technologien vorgenommen. Da es sich hier um die Betrachtung neuer, innovativer Technologien handelt, für die der Informationsstand häufig vergleichsweise gering ist, muss die vorgenommene Bewertung vor diesem Hintergrund gesehen werden und kann allenfalls als eine Art grundsätzliche Einschätzung verstanden werden. Nach Rückkopplung mit dem Auftraggeber wird das Thema "Algen" näher hinterfragt und in die Arbeit integriert.
Using natural gas for fuel releases less carbon dioxide per unit of energy produced than burning oil or coal, but its production and transport are accompanied by emissions of methane, which is a much more potent greenhouse gas than carbon dioxide in the short term. This calls into question whether climate forcing could be reduced by switching from coal and oil to natural gas. We have made measurements in Russia along the world's largest gas-transport system and find that methane leakage is in the region of 1.4%, which is considerably less than expected and comparable to that from systems in the United States. Our calculations indicate that using natural gas in preference to other fossil fuels could be useful in the short term for mitigating climate change.
Der Verkehrssektor ist keineswegs der einzige, jedoch ein wesentlicher Verursacher der Klimaprobleme. Der Automobilverkehr als traditioneller Hauptbelaster im Verkehrsbereich zeigt zwar vergleichsweise positive Tendenzen, trotzdem ist auch hier noch erheblicher weiterer Handlungsbedarf gegeben. Das Wuppertal Institut hat hier in übersichtlicher und systematischer Form Stand und Perspektiven zusammengetragen. Nach einer ausführlichen Einbettung in den Klimadiskurs erfolgt die schrittweise Konzentration auf den PKW-Verkehr Deutschlands. Für diesen Bereich werden im Detail die denkbaren technischen Ansätze und die möglichen Umsetzungsmaßnahmen erörtert.
Das Ende des Öls
(2006)
Based on different current long-term energy scenarios the paper discusses the future perspectives of hydrogen in the German energy system as a representative example for the development of sustainable energy systems. The scenario analysis offers varying outlines of the future energy system that determine the possible role of hydrogen. The paper discusses the possibilities of expanding the share of renewable energy and the resulting prospects for establishing clean hydrogen production from renewable energy sources. Emphasis is given to the questions of an ecologically efficient allocation of limited renewable energy resources that can only be assessed from asystems analysis perspective. Findings from recent studies for Germany reveal a strong competition between the direct input into the electricity system and an indirect use as fuel in the transport sector. Moreover, the analysis underlines the paramount importance of reducing energy demand as the inevitable prerequisite for any renewable energy system.
Mit Inkrafttreten des Kyoto-Protokolls am 16.2.2005 gelten für Deutschland und die meisten anderen Industrieländer völkerrechtlich bindende Minderungsziele für die 6 im Kyoto-Protokoll erfassten Treibhausgase. Damit erlangt eine durchaus kontrovers diskutierte Klimaschutzstrategie, die auf eine stärkere Umstellung der Energienutzung von Öl und Kohle auf mehr Erdgas setzt, zusätzlich an Bedeutung. Der nachfolgende Beitrag setzt sich mit der Klimabilanz des Erdgases unter Berücksichtigung der gesamten Prozesskette auseinander. Insbesondere werden neue Messergebnisse aus Russland dargestellt (Wuppertal Institut 2004), die zeigen, dass die dem Export von russischem Erdgas nach Deutschland zuzuordnenden indirekten Emissionen nur etwa ein Viertel der bei der Erdgasverbrennung entstehenden direkten Emissionen betragen. Damit bleibt Erdgas auch unter Berücksichtigung der indirekten Emissionen in Russland der fossile Energieträger mit den mit Abstand geringsten Treibhausgasemissionen.
The role of hydrogen in long run sustainable energy scenarios for the world and for the case of Germany is analysed, based on key criteria for sustainable energy systems. The possible range of hydrogen within long-term energy scenarios is broad and uncertain depending on assumptions on used primary energy, technology mix, rate of energy efficiency increase and costs degression ("learning effects"). In any case, sustainable energy strategies must give energy efficiency highest priority combined with an accelerated market introduction of renewables ("integrated strategy"). Under these conditions hydrogen will play a major role not before 2030 using natural gas as a bridge to renewable hydrogen. Against the background of an ambitious CO2-reduction goal which is under discussion in Germany the potentials for efficiency increase, the necessary structural change of the power plant system (corresponding to the decision to phase out nuclear energy, the transformation of the transportation sector and the market implementation order of renewable energies ("following efficiency guidelines first for electricity generation purposes, than for heat generation and than for the transportation sector")) are analysed based on latest sustainable energy scenarios.
Renewables and off-grid rural electrification in developing countries : dimensions and trends
(2005)
Because of high efficiency, low environmental impacts and a potential role in transforming our energy system into a hydrogen economy, fuel cells are often considered as a key technology for a sustainable energy supply. However, the future framing conditions under which stationary fuel cells have to prove their technical and economic competitiveness are most likely characterised by a reduced demand for space heating, and a growing contribution of renewable energy sources to heat and electricity supply, which both directly limit the potential for combined heat and power generation, and thus also for fuelcells. Taking Germany as a case study, this paper explores the market potential of stationaryfuelcells under the structural changes of the energy demand and supply system required to achieve asustainable energy supply. Results indicate that among the scenarios analysed it is in particular a strategy oriented towards ambitious CO2-reduction targets, which due to its changes in the supply structure is in a position to mobilise a market potential that might be large enough for a successful fuel cell commercialisation. However, under the conditions of a business-as-usual trajectory the sales targets of fuel cell manufacturers cannot be met.
For the option of “carbon capture and storage”, an integrated assessment in the form of a life cycle analysis and a cost assessment combined with a systematic comparison with renewable energies regarding future conditions in the power plant market for the situation in Germany is done. The calculations along the whole process chain show that CCS technologies emit per kWh more than generally assumed in clean-coal concepts (total CO2 reduction by 72-90% and total greenhouse gas reduction by 65-79%) and considerable more if compared with renewable electricity. Nevertheless, CCS could lead to a significant absolute reduction of GHG-emissions within the electricity supply system. Furthermore, depending on the growth rates and the market development, renewables could develop faster and could be in the long term cheaper than CCS based plants. Especially, in Germany, CCS as a climate protection option is phasing a specific problem as a huge amount of fossil power plant has to be substituted in the next 15 years where CCS technologies might be not yet available. For a considerable contribution of CCS to climate protection, the energy structure in Germany requires the integration of capture ready plants into the current renewal programs. If CCS retrofit technologies could be applied at least from 2020, this would strongly decrease the expected CO2 emissions and would give a chance to reach the climate protection goal of minus 80% including the renewed fossil-fired power plants.
Die vorliegende Broschüre setzt sich mit der Technologie der CO2-Abtrennung und Speicherung (CCS: Carbon Capture and Storage) auseinander. Sie bereitet den heute verfügbaren Sachstand auf und beschreibt die Entwicklungsperspektiven und Potenziale. Sie geht dabei sowohl diagnostisch als auch analytisch vor und zeigt die noch offenen Fragen für die Bewertung dieser Technologielinie sowie die noch notwendigen Handlungsschritte für ihre Umsetzung auf.
It is now widely recognized that effective communication and demand-side policies for alternative energy require sound knowledge of preferences and determinants of demand of the public and consumers. To date, public attitudes towards new transport technologies have been studied under very different conceptual frameworks. This paper gives an overview of the various conceptual frameworks and methodologies used, where four main approaches can be distinguished: general attitudinal surveys, risk perception studies, non-market economic valuation studies, and other approaches such as those based on semiotic theory. We then review the findings of the recent literature on acceptance, attitudes and preferences for hydrogen and fuelcell end-use technologies, focusing on vehicles. These studies are then contrasted with related research into alternative fuel vehicles. The paper finally discusses the main trends in research and avenues for further work in this field. We recommend, among other things, the use of approaches that build knowledge and familiarity with the technology prior to the exploration of attitudes, and the set up of studies that take a whole-systems perspective of hydrogen technologies and that look at hydrogen in the context of other competing clean technologies.
This paper presents the results of a collaborative project on public acceptance of Carbon Capture and Storage (CCS) in Germany, commissioned by the German Federal Ministry of Economics and Technology (BMWi). The project "Socio-economic Research on Acceptance of CCS" (April 2006 to March 2008) analyzed various aspects of public acceptance of CCS mainly in the national context of Germany. It was the first project to handle this subject matter. Public acceptance is one of the crucial factors for the implementation of CCS in the future.
Renewable energy can become the major energy supply option in low-carbon energy economies. Disruptive transformations in all energy systems are necessary for tapping widely available renewable energy resources. Organizing the energy transition from non-sustainable to renewable energy is often described as the major challenge of the first half of the 21st century. Technological innovation, the economy (costs and prices) and policies have to be aligned to achieve full renewable energy potentials, and barriers impeding that growth need to be removed. These issues are also covered by IPCC's special report on renewable energy and climate change to be completed in 2010. This article focuses on the interrelations among the drivers. It clarifies definitions of costs and prices, and of barriers. After reviewing how the third and fourth assessment reports of IPCC cover mitigation potentials and commenting on definitions of renewable energy potentials in the literature, we propose a consistent set of potentials of renewable energy supplies.