Zukünftige Energie- und Industriesysteme
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On the pathway to climate neutrality, EU member states are obliged to submit national energy and climate plans (NECPs) with planned policies and measures for decarbonization until 2030 and long-term strategies (LTSs) for further decarbonization until 2050. We analysed the 27 NECPs and 15 LTSs submitted by October 2020 using an interrater method. This paper focuses on energy sufficiency policies and measures in the transport sector.
We found a total of 236 sufficiency policy measures with more than half of them (53 %) in the transport/mobility sector. Additionally, we found 41 measures that address two or more sectors (cross-sectoral measures). From the explicit sufficiency measures within the transport sector, 82 % aim at modal shift. A reduction of transport volumes is much less addressed. Countries plan to use mainly fiscal and economic instruments. Those are in many cases investments in infrastructure of low-carbon transport modes and taxation instruments. Plans on decarbonisation measures are also frequently mentioned. The majority of cross-sectoral measures are carbon taxes or tax reforms, also economic instruments.
On the one hand it is encouraging that Member States strongly emphasize the transport sector in their NECPs and LTSs - at least quantitatively and concerning sufficiency measures - because this sector has been the worst-performing in climate mitigation so far. On the other hand, the measures described seem not sufficient to reach ambitious climate targets, and we doubt that the presented set of policy instruments will get the transport sector on track to mitigate greenhouse gas emissions in the necessary extent.
Future of car-sharing in Germany : customer potential estimation, diffusion and ecological effect
(2007)
Die Digitalisierung ist längst gelebte Praxis. Jeden Tag werden Milliarden an "digitalen" Handlungen ausgeführt. Beispielsweise werden täglich 207 Mrd. E-Mails verschickt, 8,8 Mrd. YouTube-Videos angesehen und 36 Mio. Amazonkäufe getätigt. Dabei nimmt die Geschwindigkeit, mit der neue Anwendungen entwickelt und etabliert werden, kontinuierlich zu. Es stellt sich also die Frage, was im Energiesektor zu erwarten ist und wie die Entwicklung zielgerichtet genutzt werden kann.
The cement industry is one of the major energy consuming and CO2 emitting sectors in China. In 2010, 1,868 million tons of cement has been produced, which accounted for 56.1% of the world's total cement production. The 11th Five-Year Plan (FYP) (2006-2010) included policy measures for CO2 emission abatement in cement production. Based on the main governmental framework of CO2 mitigation policies at national level in the cement sector, key policies and technologies used during this period are identified and their effects on CO2 reduction are assessed. This paper calculates the reduction of CO2 emissions related to four main policies and technologies for efficient cement production in the 11th and the 12th FYP (2011-2015) with 2005 as a reference year. These are waste heat recovery, closing outdated facilities, substitution for clinker production and other technologies aiming to increase energy efficiency. Due to these measures, we estimate that a total CO2 emission reduction during the 11th FYP of 397 million tonnes could be saved, which is considerably different to 185.75 million tonnes estimated by Zeng (2008) and 303 million tonnes by the NDRC by using different calculation methods. Of the four technologies, the 4th group of energy efficiency increasing techniques was the most important policy and avoided the largest amount of CO2 emissions. Previous energy intensity reduction was mainly due to the outdated production closing and energy efficiency improving. Based on the assessment of technology performance, it appears that there is still a large emission reduction potential in cement production processes. The paper calculates this potential for the 12th FYP period (2011-2015) based on these four identified policy measures. The result is compared to the Chinese government targets in the 12th FYP and promising future CO2 mitigation policies and technologies are proposed, such as the use of alternative energy.
In dem Forschungsprojekt "Technologien für die Energiewende" (TF_Energiewende) bewertet ein Konsortium von drei Verbundpartnern und zehn Technologiepartnern unter der Federführung des Wuppertal Instituts seit Herbst 2016 den mittelfristigen Forschungs- und Entwicklungsbedarf für die zentralen Technologien, die im Rahmen der Energiewende derzeit und zukünftig benötigt werden.
Technological innovations in energy-intensive industries (EIIs) have traditionally emerged within the boundaries of a specific sector. Now that these industries are facing the challenges of deep decarbonisation and a significant reduction in greenhouse gas (GHG) emissions is expected to be achieved across sectors, cross-industry collaboration is becoming increasingly relevant for low-carbon innovation.
Accessing knowledge and other resources from other industrial sectors as well as co-developing innovative concepts around industrial symbiosis can be mutually beneficial in the search for fossil-free feedstocks and emissions reductions. In order to harness the potential of this type of innovation, it is important to understand not only the technical innovations themselves, but in particular the non-technical influencing factors that can drive the successful implementation of cross-industry collaborative innovation projects.
The scientific state of the art does not provide much insight into this particular area of research. Therefore, this paper builds on three separate strands of innovation theory (cross-industry innovation, low-carbon innovation and innovation in EIIs) and takes an explorative case-study approach to identify key influencing factors for cross-industry collaboration for low-carbon innovation in EIIs.
For this purpose, a broad empirical database built within the European joint research project REINVENT is analysed. The results from this project provide deep insights into the dynamics of low-carbon innovation projects of selected EIIs. Furthermore, the paper draws on insights from the research project SCI4Climate.NRW. This project serves as the scientific competence centre for IN4Climate.NRW, a unique initiative formed by politicians, industry and science to promote, among other activities, cross-industry collaboration for the implementation of a climate-neutral industry in the German federal state of North Rhine-Westphalia (NRW). Based on the results of the case study analysis, five key influencing factors are identified that drive the implementation of cross-industry collaboration for low-carbon innovation in EIIs: Cross-industry innovation projects benefit from institutionalised cross-industry exchange and professional project management and coordination. Identifying opportunities for regional integration as well as the mitigation of financial risk can also foster collaboration. Lastly, clear political framework conditions across industrial sectors are a key driver.
The role of gender concerns in the planning of small-scale energy projects in developing countries
(2014)
Das Ziel der Energiewende - ein sicheres, umweltverträgliches und ökonomisch erfolgreiches Energiesystem - birgt diverse Herausforderungen. Diese umfassen die Erreichung der Klimaneutralität, den Umstieg auf erneuerbare Energieträger in allen Sektoren (inkl. Schwerlast- und Flugverkehr sowie industrielle Prozesswärme) als auch deren gegenseitige Integration. Bioenergie kann hierzu einen multiplen Beitrag leisten, sowie negative Emissionen bereitstellen und darüber hinaus auch Beiträge jenseits des Energiesystems erbringen, wie Naturschutz, ländliche Entwicklung, oder die Bereitstellung von biogenem CO2 als Rohstoff für die chemische Industrie. Somit ist Bioenergie ein unverzichtbarer Bestandteil für die Lösung der Herausforderungen in der Transformation zu einem nachhaltigen Energiesystem.
Gegenwärtig stellt Bioenergie mit dem größten Anteil an erneuerbaren Energien im Primärenergieverbrauch (60 %) als auch im Endenergieverbrauch (53 %), mehr als alle anderen erneuerbaren Energieträger zusammen. Dabei bestehen Unterschiede zwischen den Endenergiesektoren: während Bioenergie in der Bruttostromerzeugung 24 % des erneuerbaren Stroms deckt, dominiert sie die erneuerbare Bereitstellung von Wärme mit 86 % als auch den erneuerbaren Endenergieverbrauch im Verkehrssektor mit 88 % in 2018. Aufgrund der Bedeutung von Bioenergie heute werden Beispiele vorgestellt, welche einen zukünftigen multipleren Systembeitrag von Bioenergie fokussieren.
Iran is one of the largest oil producers and natural gas owners globally. However, it has to struggle with domestic energy shortages, economic losses through energy subsidisation and inefficient energy infrastructures. Furthermore, GHG and other energy related emissions are rapidly increasing and posing a growing threat to local environment as well as global climate. With current trends prevailing, Iran may even become a net energy importer over the next decades. Resource allocation is therefore a crucial challenge for Iran: domestic consumption stands versus exports of energy.
The energy transformation sector clarifies Iran's dilemma: soaring electricity demand leads to blackouts, and power plant new builds are far from using most efficient technologies (e. g. CHP), therefore keeping energy intensive structures. But fossil fuels could be sold on international markets if spared by having more efficient energy infrastructures.
As shown by the high energy intensity of its economy, Iran has large potentials for energy saving and efficiency. In order to highlight and better identify this potential the paper contrasts a high efficiency scenario in all sectors of energy transformation and consumption with a possible "business as usual" development.
Using a bottom-up approach, the analysis provides a sector-by-sector perspective on energy saving potentials. These can be utilised on the demand side especially in the transport sector (fuels) and in households (electricity for appliances, natural gas for heating). Electricity generation bears efficiency potentials as well.
We conclude that Iran, but also the international community, would benefit on various levels from a more energy-efficient Iranian economy: Energy exports could increase, generating more foreign currency and reducing the pressures on international oil and gas prices; energy consumption would decrease, leading to lower needs for nuclear energy and for subsidies to Iranian people, as well as to a reduction of the high external costs entailed by fossil fuels combustion (smog in cities, environmental stress).
Als Beitrag zu einer fundierten Diskussion über adäquate Politikinstrumente in der Wärmewende hat der FVEE mit seinen Mitgliedsinstituten im September 2015 ein Positionspapier erstellt: "Erneuerbare Energien im Wärmesektor - Aufgaben, Empfehlungen und Perspektiven". Dieses gibt einen umfassenden Überblick über die Herausforderungen und Handlungsoptionen im Wärmesektor und bietet damit eine wichtige Orientierung bei der Gestaltung der Energiewende.
Um die Energiewende erfolgreich umzusetzen, plädiert der FVEE für eine deutliche Stärkung des Wärmesektors in der Energiepolitik und eine entschiedene und langfristig angelegte Politik der Wärmewende, die den besonderen Anforderungen des Wärmesektors gerecht wird. Im vorliegenden Beitrag werden ausgewählte Analyseergebnisse und Empfehlungen des Positionspapiers vorgestellt.
Eine zukünftige Herausforderung der Energiewende wird darin bestehen, zunehmende Stromnetzeinspeisungen von fluktuierenden erneuerbaren Energien (FEE) in das Energiesystem zu integrieren. Neben den Flexibilitäten im Stromsystem sollten dabei auch die Möglichkeiten des Wärmemarktes zur Stabilisierung des Strommarktes berücksichtigt werden. So können Kraft-Wärme-Kopplungs-Anlagen (KWK), Elektroheizer und Wärmepumpen als Verbindungstechnologien zwischen Strom- und Wärmemarkt abhängig vom FEE-Dargebot und damit auch den Preissignalen des Strommarktes zu- bzw. abgeschaltet werden. Dazu werden Wärmespeicher benötigt, da die Flexibilisierung nur möglich ist, wenn die Produktion von der Wärmenutzung entkoppelt werden kann. Eine besonders aussichtsreiche Kopplung von Strom- und Wärmemarkt ist im Bereich der Fernwärmesysteme möglich, da sich hier große Energiemengen in Fernwärmespeichern im Vergleich zu dezentralen Lösungen kostengünstiger und effizienter speichern lassen.
Converting electricity into heat offers the opportunity to make of use large scales of renewable (surplus) energy in the long run in order to reduce shut-downs of renewable power plants and to substitute fossil fuels. Electrification seems to be also very promising for industrial heat applications, as it enables high process temperatures to be achieved in a tailor-made and efficient way and enables the utilisation of other energy sources like waste heat, geothermal or ambient heat (via heat pumps). This article analyses theoretical and technical electrification potentials of Steam Generation and Other Process Heat Generation in the following energy-intensive branches: iron & steel, non-ferrous metal, iron foundries, refineries, base chemicals, glass, cement clinker and paper industry in Germany. Literature research, expert interviews as well as own modelling were conducted to determine potentials and their implementation barriers. Based on these methods, market potential to electrify industrial steam generation was estimated. On the basis of two climate protection scenarios, the effects of both a monovalent and a hybrid industrial power-to-heat strategy were quantified with regard to greenhouse gas reduction and energy efficiency (primary energy saving). The pathway towards electrification will be reflected by criteria such as path dependency, dependency of infrastructure and system compatibility. Recommendations for research and development as well as policies are derived from the overall analysis. The article shows that electrification can be an important option to achieving high CO2-savings in the industrial heating sector in a long-term perspective. However, the scenario calculations show that electrification does not in itself guarantee reduction of greenhouse gases or savings of primary energy. To reach these goals, it is essential to further develop industrial heat pumps and to map electrification and further development of renewable energy (including infrastructure such as power networks and storage facilities) in a concerted strategy.
Transformation in der Industrie : Herausforderungen und Lösungen für erneuerbare Prozesswärme
(2023)
Der Beitrag stellt Ergebnisse aus der "AG Industrielle Prozesswärme" des Thinktanks IN4climate.NRW in Zusammenarbeit mit dem wissenschaftlichen Kompetenzzentrum Sci4Climate.NRW vor. Hier wurde in einem mehrjährigen Stakeholder-Prozess unter Einbindung von Wissenschaft, Politik und Unternehmen der energieintensiven Industrie in NRW ein Diskussionspapier entwickelt, welches in einem "Vier-Stufen- Modell" eine aus gesamtsystemischer Sicht optimale Vorgehensweise zur Dekarbonisierung bzw. Defossilisierung industrieller Prozesswärme aufzeigt. Flankierend werden über die Koautor:innen Technologie-Beispiele innerhalb des "Vier-Stufen-Modells" aufgezeigt.
Erdgas - die Brücke ins regenerative Zeitalter : Hintergrundbericht im Auftrag von Greenpeace
(2011)
Ca. 50 % des Endenergiebedarfes in Deutschland, wie auch im Mittel in Europa, sind Wärme. Die Energiewende kann also nur mit einer Wärmewende gelingen. Eine klimaneutrale Wärmeversorgung zeitnah zu erreichen muss daher wesentliches Ziel der Gesellschaft und der Politik der kommenden Jahre sein. Dies spiegelt sich auch in den Sektorenzielen der Bundesregierung wider: sowohl im Gebäudesektor als auch im Industriesektor werden deutliche Einsparungen der CO2-Emissionen erwartet, die wesentlich auf eine Umstellung der Wärmebereitstellung abzielen.
In Jahr 2022 kamen zu dieser bereits bekannten Zielsetzung aus klimapolitischer Sicht durch den Krieg in der Ukraine weitere wesentliche Aspekte hinzu: In der öffentlichen Diskussion dominierte das Thema "Versorgungssicherheit" in der Wärmeversorgung von Gebäuden und Industrie. Gleichzeitig wurde Erdgas als billige und ausreichend zur Verfügung stehende "Brückentechnologie" in Frage gestellt und die hohen fossilen Energiepreise rückten einige bisher oft als zu aufwändig betrachtete nachhaltige Technologien schlagartig mehr ins Zentrum der Lösungen.
Somit war 2022 das Jahr, in dem das Thema klimaneutrale Wärme bisher unbekannte Aufmerksamkeit erfuhr.
Toothless tiger? : Is the EU action plan on energy efficiency sufficient to reach its target?
(2007)
Motivated by, inter alia, the increasing energy prices, the security of energy supply and climate change, the new EU "Action Plan for Energy Efficiency: Realising the Potential" (EEAP), sets out the policies and measures required to be implemented over the next six years to achieve the EU's goal of reducing annual primary energy consumption by about 20 % by 2020. By increasing energy efficiency, the security of energy supply and the reduction of carbon emissions are also improved.
The paper will analyse the 20 % target of the new EEAP for the energy demand side by comparison with different recent energy scenarios for the EU. It will therefore review the recommended policies and measures and examine, in which energy demand sectors energy efficiency may be increased and to which extend. The main focus is whether the recommended policies and actions will be sufficient and which additional measures may be useful, if additional measures are needed.
Die Forschung der FVEE-Institute zum Einsatz von klimaneutral erzeugtem Wasserstoff in der Industrie deckt sowohl technische Aspekte für einzelne Prozesse ab als auch systemanalytische Betrachtungen, die die Einsatzmöglichkeiten von Wasserstoff am einzelnen Standort oder für bestimmte Branchen in Deutschland bzw. Europa untersuchen.
Die Motivation zum Einsatz von Wasserstoff ergibt sich aus drei Gründen:
1. In der stofflichen Verwendung wird Wasserstoff als Molekül benötigt und kann deshalb auch nicht durch andere Energieträger substituiert werden. So wird Wasserstoff bereits heute in großen Mengen in der Ammoniaksynthese (Haber-Bosch-Verfahren) sowie in den Raffinerien benötigt.
2. Eine weitere Verwendungsart für Wasserstoff ergibt sich aus seiner Fähigkeit, Sauerstoff aus Eisenerz chemisch zu binden. Beim Einsatz in Direktreduktionsanlagen kann Wasserstoff als Reduktionsmittel eingesetzt werden, um Eisenerz zu Roheisen zu reduzieren.
3. Als dritte Option gerät die energetische Verwendung von Wasserstoff in der Industrie zunehmend in den Fokus der energiepolitischen Debatten. Hier steht Wasserstoff in einem klimaneutralen System direkt in Konkurrenz zu anderen Energieträgern wie Strom und Biomasse.
The paper describes quantitative scenarios on a possible evolution of the EU petrochemical industry towards climate neutrality. This industry will be one of the remaining sectors in a climate neutral economy still handling hydrocarbon material to manufacture polymers. Concepts of a climate neutral chemical industry stress the need to consider the potential end-of-life emissions of polymers produced from fossil feedstock and draft the vision of using renewable electricity to produce hydrogen and to use renewable (hydro)carbon feedstock. The latter could be biomass, CO2 from the air or recycled feedstock from plastic waste streams.
The cost-optimization model used to develop the scenarios describes at which sites investments of industry in the production stock could take place in the future. Around 50 types of products, the related production processes and the respective sites have been collected in a database. The processes included cover the production chain from platform chemicals via intermediates to polymers. Pipelines allowing for efficient exchange of feedstock and platform chemicals between sites are taken into account as well. The model draws on this data to simulate capacity change at individual plants as well as plant utilization. Thus, a future European production network for petrochemicals with flows between the different sites and steps of the value chain can be sketched.
The scenarios described in this paper reveal how an electrification strategy could be implemented by European industry over time with minimized societal costs. Today's existing assets as well as geographical variance of energy supply and the development of demand for different plastic sorts are the major model drivers.
Finally, implications for the chemical industry, the energy system and national or regional governments are discussed.
The German federal state of North Rhine-Westphalia (NRW) is home to important clusters of energy-intensive basic materials industries. 15% of the EU's primary steel as well as 15% of high-value base chemicals are produced here. Together with refinery fuels, cement, lime and paper production (also overrepresented in NRW) these are the most carbon-intensive production processes of the industrial metabolism. To achieve the ambitious regional and national climate goals without relocating these clusters, carbon-neutral production will have to become standard by mid-century. We develop and evaluate three conceptual long-term scenarios towards carbon-neutral industry systems for NRW for 2050 and beyond:
* a first scenario depending on carbon capture and storage or use for heavy industries (iCCS),
* a second scenario sketching the direct electrification of industrial processes (and transport) and
* a third scenario relying on the import of low carbon energies (e.g. biomass, and synthetic fuels (like methanol) for the use in industries and transport. All scenarios share the assumption that electricity generation will be CO2-neutral by 2050.
For all three scenarios energy efficiency, primary energy demand for energy services and feedstock as well as the carbon balance are quantified. We apply a spatial-explicit analysis of production sites to allow for discussion of infrastructure re-use and net investment needs. Possible symbiotic relations between sectors are also included. The robustness of the three conceptualised future carbon-neutral industry systems is then analysed using a multi-criteria approach, including e.g. energy security issues and lock-ins on the way to 2050.
Heat integration and industrial symbiosis have been identified as key strategies to foster energy efficient and low carbon manufacturing industries (see e.g. contribution of Working Group III in IPCC's 5th assessment report). As energy efficiency potentials through horizontal and vertical integration are highly specific by site and technology they are often not explicitly reflected in national energy strategies and GHG emission scenarios. One of the reasons is that the energy models used to formulate such macro-level scenarios lack either the necessary high technical or the spatial micro-level resolution or both. Due to this lack of adequate tools the assumed huge existing potentials for energy efficiency in the energy intensive industry cannot be appropriately appreciated by national or EU level policies. Due to this background our paper describes a recent approach for a combined micro-macro energy model for selected manufacturing industries. It combines national level technical scenario modelling with a micro-modelling approach analogous to total site analysis (TSA), a methodology used by companies to analyse energy integration potentials on the level of production sites. Current spatial structures are reproduced with capacity, technical and energy efficiency data on the level of single facilities (e.g. blast furnaces) using ETS data and other sources. Based on this, both, the investments in specific technologies and in production sites are modelled and the evolvement of future structures of (interconnected) industry sites are explored in scenarios under different conditions and with different objectives (microeconomic vs. energy efficiency optimization). We further present a preliminary scenario that explores the relevance of these potentials and developments for the German steel industry.
This paper draws upon an extensive transdisciplinary scenario development in the context of the stakeholder oriented preparation of the climate protection plan of the German federal state North Rhine-Westphalia, which is home to the most important heavy industry cluster in Europe. In that context we developed differentiated bottom up climate change mitigation strategies and scenarios for the major energy intensive industries aluminium, iron and steel, cement, lime, paper and steam cracker for olefin production together with representatives of industry as well as society.
Wärmewende im Quartier
(2016)
The Port of Rotterdam is an important industrial cluster mainly comprising of oil refining, chemical manufacturing and power and steam generation. In 2015, the area accounted for 18 % of the Netherlands' total CO2 emissions. The Port of Rotterdam Authority is aware that the port's economy is heavily exposed to future global and EU decarbonization policies, as the bulk of its activities focuses on trading, handling, converting and using fossil fuels. Based on a study for the Port Authority, our paper explores possible pathways of how the industrial cluster can keep its strong market position in Europe and still reduce its CO2 emissions by 98 % by 2050. The "Biomass and CCS" scenario assumes that large amounts of biomass can be supplied sustainably and will be used in the port for power generation as well as for feedstock for refineries and the chemical industry. Fischer-Tropsch fuel generation plays an important role in this scenario, allowing the port to become a key cluster for the production of synthetic fuels and feedstocks in Western Europe. The "Closed Carbon Cycle" scenario assumes that renewables-based electricity will be used at the port to supply heat and hydrogen for the synthetic generation of feedstock for the chemical industry. The carbon required for the chemicals will stem from recycled waste. Technologies particularly needed in this scenario are water electrolysis and gasification or pyrolysis to capture carbon from waste, as well as technologies for the production of base chemicals from syngas. The paper compares both scenarios with regard to their respective technological choices and infrastructural changes. The scenarios’ particular opportunities and challenges are also discussed. Using possible future pathways of a major European petrochemical cluster as an example, the paper illustrates options for deep decarbonisation of energy intensive industries in the EU and beyond.
Die Erkenntnisse der Klimaforschung sind eindeutig: Um das im Pariser Klimaabkommen vereinbarte Ziel der Begrenzung der Erderwärmung auf "deutlich unter 2 °C" noch einhalten zu können, müssen die globalen Treibhausgasemissionen umgehend ihren Scheitelpunkt erreichen und anschließend kontinuierlich und steil zurückgehen. Dies gilt umso mehr für die ebenfalls im Pariser Klimaabkommen vereinbarte Absicht, die Erwärmung möglichst sogar unter 1,5 °C zu halten. Durch eine entsprechende Begrenzung der Erderwärmung kann nach aktuellem Wissensstand die Gefahr des Auslösens gefährlicher Kipppunkte und einer sich selbst verstärkenden Erwärmung deutlich vermindert werden.
This paper analyses and compares industry sector transformation strategies as envisioned in recent German, European and global deep decarbonisation scenarios.
The first part of the paper identifies and categorises ten key strategies for deep emission reductions in the industry sector. These ten key strategies are energy efficiency, direct electrification, use of climateneutral hydrogen and/or synthetic fuels, use of biomass, use of CCS, use of CCU, increases in material efficiency, circular economy, material substitution and end-use demand reductions. The second part of the paper presents a meta-analysis of selected scenarios, focusing on the question of which scenario relies to what extent on the respective mitigation strategies.
The key findings of the meta-analysis are discussed, with an emphasis on identifying those strategies that are commonly pursued in all or the vast majority of the scenarios and those strategies that are only pursued in a limited number of the scenarios. Possible reasons for differences in the choice of strategies are investigated.
The paper concludes by deriving key insights from the analysis, including identifying the main uncertainties that are still apparent with regard to the future steps necessary to achieve deep emission reductions in the industry sector and how future research can address these uncertainties.
Die Transformation des Energieversorgungssystems zu einer dekarbonisierten Energiebereitstellung bedingt ein koordiniertes Zusammenspiel der Sektoren Strom, Wärme und Verkehr. Dabei ist die Kopplung des Stromsektors mit dem Wärmesektor eine der entscheidenden Maßnahmen bei der Transformation. Die Aufnahme von Wind- und Sonnenenergie in das Netz kann durch genaue Einspeiseprognosen optimiert werden, die Kopplung zum Wärmesektor mittels Wärmepumpen und Power-to-Heat (Heizstab) ermöglicht die weitere Flexibilisierung der Nachfrageseite. Diese Interaktion wird durch intelligente Lösungen der Systemtechnik für das Energie- und Netzmanagement ermöglicht. Die Entwicklung von entsprechenden Anreizsystemen, Marktmechanismen und Geschäftsmodellen ist ebenfalls erforderlich, um diese Kopplung auch wirtschaftlich erfolgreich zu gestalten. Der Beitrag stellt das im Forschungsvorhaben "Interaktion EE-Strom, Wärme und Verkehr" erstellte 80-Prozent-Szenario für das Jahr 2050 vor und zeigt anhand von Beispielen zukünftige Anforderungen und Entwicklungen zu dieser Thematik auf.
Solarthermische Kraftwerke
(2018)
Der Schutz des Klimas und die dafür erforderliche Umstellung der Energieversorgung auf erneuerbare Energien ist eine globale Herausforderung, welche nach maßgeschneiderten Lösungen für die unterschiedlichen Klimazonen und Märkte der Erde verlangt. Die verstärkte Solarenergienutzung spielt dabei eine maßgebliche Rolle. Die Rolle Deutschlands als Exportnation beschränkt sich hierbei nicht auf die Klimawende im eigenen Land, sondern beinhaltet auch den weltweiten Export erneuerbarer Energietechnologien.
Die Kosten der photovoltaischen Stromerzeugung (PV) und der Windkraft sind in den vergangenen Jahren erfreulicherweise deutlich gesunken, entsprechend wurden in vielen Ländern große Kapazitäten zugebaut. Die resultierende stark gestiegene Einspeisung fluktuierender Erzeuger stellt Netzbetreiber vor neue Herausforderungen, insbesondere durch die extremen Lastschwankungen für plan- und steuerbare, heute größtenteils fossil befeuerte konventionelle Kraftwerke.
Hier bieten solarthermische Kraftwerke Lösungen.
For some time, 3D printing has been a major buzzword of innovation in industrial production. It was considered a game changer concerning the way industrial goods are produced. There were early expectations that it might reduce the material, energy and transport intensity of value chains. However for quite a while, the main real world applications of additive manufacturing (AM) have been some rapid prototyping and the home-based production of toys made from plastics. On this limited basis, any hypotheses regarding likely impacts on industrial energy efficiency appeared to be premature. Notwithstanding the stark contrast between early hype and practical use, the diffusion of AM has evolved to an extent that at least for some applications allows for a preliminary assessment of its likely implications for energy efficiency.
Unlike many cross-cutting energy efficiency technologies, energy use of AM may vary substantially depending on industry considered and material used for processing. Moreover, AM may have much greater repercussions on other stages of value chains than conventional cross-cutting energy efficiency technologies. In case of AM with metals the following potential determinants of energy efficiency come to mind:
- A reduction of material required per unit of product and used during processing;
- Changes in the total number and spatial allocation of certain stages of the value chain; and
- End-use energy efficiency of final products.
At the same time, these various streams of impact on energy efficiency may be important drivers for the diffusion of AM with metals. This contribution takes stock of AM with metals concerning applications and processes used as well as early evidence on impacts on energy efficiency and combine this into a systematic overview. It builds on relevant literature and a case study on Wire Arc Additive Manufacturing performed within the REINVENT project.
Impacts of energy use on demand for freight transport : past development and future perspectives
(2005)
Im Rahmen der Energiewende haben sich erneuerbare Energien zur Stromerzeugung in Deutschland bereits etabliert. Um jedoch das volle Potenzial der Reduktion von fossilen Energien und Treibhausgasen (THG) auszuschöpfen, muss aus der Energiewende auch eine Wärmewende werden. Der Energieeinsatz für die Wärmebereitstellung der Industrie betrug im Jahr 2012 etwa 535 TWh (22 % des Endenergiebedarfs Deutschlands), hauptsächlich bereitgestellt durch Erdgas (48 %) und Steinkohle (17 %) 1. Damit wurden für die Wärmebereitstellung im Industriesektor rund 159 Mio. t CO2-äq emittiert, was 17 % der THG-Emissionen Deutschlands entspricht.
Aufgrund der Vielseitigkeit der einzelnen Branchen und Wärmeanwendungen im Industriesektor kann dieser Beitrag nur beispielhaft einzelne Komponenten für eine Wärmewende aufzeigen, die auch wiederum die Aktivitäten der einzelnen Autoren widerspiegeln. Ausgehend von einer nationalen Betrachtung und expliziten Modellierungsergebnissen für die energieintensive Industrie in NRW, werden einzelne Potenziale und Aktivitäten im Bereich der Wärmebereitstellung, -speicherung und -integration behandelt.
Das Energiesystem der Zukunft wird stark durch Elektrifizierung geprägt sein. Für die Langzeitspeicherung von Energie sowie für Bereiche, die sich nicht sinnvoll durch Strom defossilieren lassen, werden aber auch in Zukunft chemische Energieträger benötigt. Das Ziel der Klimaneutralität bedingt, dass diese Energieträger vollständig emissionsfrei aus erneuerbaren Energien (EE) hergestellt werden. Diese grünen Energieträger sind transportier- und handelbar, sodass sich ein internationaler Markt für grünen Wasserstoff und seine Folgeprodukte entwickeln wird.
Derzeit gibt es diesen Markt noch nicht. Grüner Wasserstoff ist preislich noch nicht konkurrenzfähig gegenüber fossilen Brennstoffen. Den größten Anteil am Wasserstoffpreis haben die Kosten für die Elektrolyseanlage sowie die Kosten für die Strombereitstellung. Die besten Bedingungen für die Wasserstoffproduktion bieten daher EE-Standorte und Technologien mit hohen Volllaststundenzahlen, an denen auch der Elektrolyseur bei wenig EE-Abregelung auf viele Betriebsstunden kommt.
Szenarien spielten und spielen eine zentrale Rolle für die Gestaltung der Energiewende. Sie beschreiben dabei auf konsistente Weise die mögliche zukünftige Entwicklung des Systems unter bestmöglicher Berücksichtigung des aktuellen Wissens bezüglich des Systems, d.h. der internen Abhängigkeiten und Wechselwirkungen der Systemkomponenten, aber auch die Abhängigkeit der Systementwicklung von äußeren Faktoren. Damit liefern Szenarien Leitplanken für zentrale technisch-strukturelle, energiepolitische, ökonomische und gesellschaftliche Weichenstellungen, die einen zielgerichteten Transformationsprozess flankieren müssen.
Conventional new buildings in OECD countries with a history of building codes save about 50 % of energy compared to average buildings in the building stock. This improvement, however, is not enough to create a building standard with low lifetime costs nor to reach long-term climate protection targets. Much higher energy savings can already be achieved through proven high-efficiency building concepts bringing net economic benefits among other advantages.
A strategic approach to integrated building design is the key to achieving these high-energy savings at low or no extra cost in residential buildings. In our paper we describe the "Easy Efficiency Approach", which can reduce primary energy consumption by 40 to 60 % compared to conventional new building standards, or by 70% to 80% when compared to the primary energy consumption of the existing building stock, and should be regarded as the minimum. This strategy focuses on low-cost options, mainly passive options. Although it can already significantly reduce energy consumption, this first step will not be sufficient to reach long-term climate protection goals. It is thus necessary to implement and support what we call an "Advanced Efficiency Approach", with savings up to 90% , as compared to new building standards, as soon as possible to avoid lock-in effects. Further improvements, especially through the active use of renewable energies, reduce the net primary energy demand to 0 % and beyond.
According to the chosen strategy clearly defined energy performance ranges, with reference to possible savings, for different climate zones worldwide are given. In verifying this approach simulations with BAT (Best Available Technologies) buildings of different types (single family, multi family, high rise) were carried out in close cooperation with project partners. This data has also been verified through an empirical database of built examples both for energy consumption as well their economic soundness.
The reduction of greenhouse gas (GHG) emissions by energyintensive industries to a net zero level is a very ambitious and complex but still feasible challenge, as recent studies show for the EU level. "Industrial Transformation 2050" by Material Economics (2019) is of particular relevance, as it shows how GHG-neutrality can be achieved in Europe for the sectors chemicals (plastics and ammonia), steel and cement, based on three main decarbonisation strategies. The study determines the resulting total demands for renewable electricity, hydrogen and for the capture and storage of CO2 (CCS). However, it analyses neither the regional demand patterns that are essential for the required infrastructure nor the needed infrastructure itself.
Against this background the present paper determines the regional distribution of the resulting additional demands for electricity, hydrogen and CCS in Europe in the case that the two most energy and CCS intensive decarbonisation strategies of the study above will be realised for the existing industry structure. It explores the future infrastructure needs and identifies and qualitatively assesses different infrastructure solutions for the largest industrial cluster in Europe, i.e. the triangle between Antwerp, Rotterdam and Rhine-Ruhr. In addition, the two industrial regions of Southern France and Poland are also roughly examined.
The paper shows that the increase in demand resulting from a green transformation of industry will require substantial adaptation and expansion of existing infrastructures. These have not yet been the subject of infrastructure planning. In particular, the strong regional concentration of additional industrial demand in clusters (hot spots) must be taken into account. Due to their distance from the high-yield but remote renewable power generation potentials (sweet spots), these clusters further increase the infrastructural challenges. This is also true for the more dispersed cement production sites in relation to the remote CO2 storage facilities. The existing infrastructure plans should therefore be immediately expanded to include decarbonisation strategies of the industrial sector.
Wasserelektrolyse und regenerative Gase als Schlüsselfaktoren für die Energiesystemtransformation
(2013)
The unprecedented challenge of reaching carbon neutrality before mid-century and a large share of it within 2030 in order to keep under the 1.5 or 2 °C carbon budgets, requires broad and deep changes in production and consumption patterns which, together with a shift to renewables and reinforced efficiency, need to be addressed through energy sufficiency. However, inadequate representations and obstacles to characterising and identifying sufficiency potentials often lead to an underrepresentation of sufficiency in models, scenarios and policies.
One way to tackle this issue is to work on the development of sufficiency assumptions at a concrete level where various implications such as social consequences, environmental co-benefits, conditions for implementation can be discussed. This approach has been developed as the backbone of a collaborative project, gathering partners in 20 European countries at present, aiming for the integration of harmonised national scenarios into an ambitious net-zero European vision.
The approach combines a qualitative discussion on the role of energy sufficiency in a "systemic" merit order for global sustainability, and a quantitative discussion of the level of sufficiency to be set to contribute to meeting 100 % renewables supply and net-zero emissions goals by 2050 at the latest. The latter is based on the use of a dashboard, which serves as a common descriptive framework for all national scenario trajectories and their comparison, with a view to harmonising and strengthening them through an iterative process.
A set of key sufficiency-related indicators have been selected to be included in the dashboard, while various interrelated infrastructural, economic, environmental, social or legal factors or drivers have been identified and mapped. This paves the way for strengthening assumptions through the elaboration of "sufficiency corridors" defining a convergent, acceptable and sustainable level of energy services in Europe. The process will eventually inform the potential for sufficiency policies through a better identification of leverages, impacts and co-benefits.
Ausgangspunkt einer Bewertung des Standes der Energiewende ist die Verständigung darüber, was sie konkret umfasst. Hier bietet sich die Zielmatrix des Energiekonzepts der Bundesregierung vom Herbst 2010 an, die allerdings um folgende Punkte zu erweitern ist: vollständiger Ausstieg aus der Atomenergie bis zum Jahr 2022; Steigerung des Anteils der Kraft-Wärme-Kopplung an der gesamten Stromerzeugung bis 2020 auf 25 Prozent.
Based on a comprehensive scenario analysis of the EU's GHG emissions by 2020, we show that the 20% energy savings target set in the Action Plan "Doing more with less" in 2006 is still the most significant and thus indispensable strategy element within an ambitious EU climate and energy strategy targeting at a 30% reduction of GHG emissions by 2020.
The scenario analysis provides a sector by sector projection of potential future energy use and GHG emissions, combined with a detailed policy analysis of the core policies on energy efficiency by the EU and its Member States taken from current research results by the authors and others.
Consequently the paper identifies and quantifies the current implementation deficit in the EU and shows that, despite of sufficient targets, implementation is still significantly lacking in almost all fields of energy efficiency. Some, e.g. transport sector and buildings, are still substantially far from receiving the necessary political impetus. The paper also demonstrates co-benefits of a strong energy efficiency strategy, e.g. the achievability of the targets of the RES directive, which crucially depends on a strong efficiency policy.
We conclude that the efforts of the energy efficiency policy of the EU and its Member States have to be significantly intensfied. As proposed by the EU in case that other developed and key developing countries take up comparable targets in order to fulfil its role in the climate and energy strategy. To achieve this, we offer an analysis of the current weaknesses of EU energy efficiency policy and derive recommendations on how the EU can still reach its targets for 2020.
Following the decisions of the Paris climate conference at the end of 2015 as well as similar announcements e.g. from the G7 in Elmau (Germany) in the summer of 2015, long-term strategies aiming at (almost) full decarbonisation of the energy systems increasingly move into the focus of climate and energy policy. Deep decarbonisation obviously requires a complete switch of energy supply towards zero GHG emission sources, such as renewable energy. A large number of both global as well as national climate change mitigation scenarios emphasize that energy efficiency will likewise play a key role in achieving deep decarbonization. However, the interdependencies between a transformation of energy supply on the one hand and the role of and prospects for energy efficiency on the other hand are rarely explored in detail.
This article explores these interdependencies based on a scenario for Germany that describes a future energy system relying entirely on renewable energy sources. Our analysis emphasizes that generally, considerable energy efficiency improvements on the demand side are required in order to have a realistic chance of transforming the German energy system towards 100 % renewables. Efficiency improvements are especially important if energy demand sectors will continue to require large amounts of liquid and gaseous fuels, as the production of these fuels are associated with considerable energy losses in a 100 % renewables future. Energy efficiency on the supply side will therefore differ considerably depending on how strongly the use of liquid and gaseous fuels in the various demand sectors can be substituted through the direct use of electricity. Apart from a general discussion of the role of energy efficiency in a 100 % renewable future, we also look at the role of and prospects for energy efficiency in each individual demand sector.
International consensus is growing that a transition towards a low carbon society (LCS) is needed over the next 40 years. The G8, the Major Economies Forum on Energy and Climate, as well as the Ad Hoc Working Group on Long-term Cooperative Action under the United Nations Framework Convention on Climate Change, have concluded that states should prepare their own Low-emission Plans or Low-emission Development Plans and such plans are in development in an increasing number of countries.
An analysis of recent long-term low emission scenarios for Germany shows that all scenarios rely heavily on a massive scale up of energy efficiency improvements based on past trends. However, in spite of the high potential that scenario developers assign to this strategy, huge uncertainty still exists in respect of where the efficiency potentials really lie, how and if they can be achieved and how much their successful implementation depends on more fundamental changes towards a more sustainable society (e.g. behavioural changes).
In order to come to a better understanding of this issue we specifically examine the potential for energy efficiency in relation to particular demand sectors. Our comparative analysis shows that despite general agreement about the high importance of energy efficiency (EE), the perception on where and how to achieve it differ between the analysed scenarios. It also shows that the close nexus between energy efficiency and non-technical behavioural aspects is still little understood. This leads us to the conclusion that in order to support energy policy decisions more research should be done on energy efficiency potential. A better understanding of its potential would help energy efficiency to fulfil its role in the transition towards a LCS.
Several low-carbon energy roadmaps and scenarios have recently been published by the European Commission and the International Energy Agency (IEA) as well as by various stakeholders such as Eurelectric, ECF and Greenpeace. Discussions of these studies mainly focus on technology options available on the electricity supply side and mostly omit the significant challenges that all of the scenarios impose on the energy demand side.
A comparison of 5 decarbonisation scenarios from 4 of the most relevant recent scenario studies for the EU shows that all of them imply significant efficiency improvements in traditional appliances, usually well above levels historically observed over longer periods of time. At the same time they assume substantial electrification of transportation and heating. The scenarios suggest that both of these challenges need to be tackled successfully for decarbonising the energy system.
With shares of renewable electricity reaching at least 60 % of supply in 2050 in almost all of the decarbonisation scenarios, the adaptation of demand to variable supply becomes increasingly important. This aspect of demand side management should therefore be part of any policy mix aiming for a low-carbon power system.
Based on a quantitative analysis of 5 decarbonisation scenarios and a comparison with historical evidence we derive the (implicit) new challenges posed by the current low-carbon roadmaps and develop recommendations for energy policy on the electricity demand side.
The EU aims to become the first climate neutral continent. To achieve this goal, the industry sector needs to reduce its GHG emissions to net zero or at least close to net zero. This is a particularly challenging task due to the high energy demand especially of primary materials production and the little potential to reduce this energy intensity when switching to other production processes based on electricity or hydrogen. In order to identify robust strategies for achieving a net-zero-compatible industry sector, the paper at hand analyses the transformation of the industry sector as described by a number of recent climate neutrality scenarios for Germany. Apart from overall industry, a focus is set on the sectors of steel, chemicals and cement. The analysed scenarios show very deep GHG emission reductions in industry and they appear to be techno-economically feasible by the mid of the century, without relying on offsets or on shifts from domestic production to imports. The scenarios agree on a suite of core strategies to achieve this, such as direct and indirect electrification, energy efficiency and recycling as well as new technological routes in steel making and cement. The scenarios differ, however, regarding the future mix of electricity, hydrogen and biomass and regarding the future relevance of domestic production of basic chemicals.
Under the framework of the UN framework convention on climate change (UNFCCC) and its Kyoto Protocol the targets and strategies for the second and third commitment period ("post-2012") have to be discussed and set in the near future. Regarding the substantial emission reductions that have to be shouldered by the industrialized nations over the next two decades it is evident that all available potentials to mitigate greenhouse gas (GHG) emissions have to be harnessed and that energy efficiency has to play a key role.
To substantiate this we developed a comprehensive scenario analysis of the EU 25s energy system and other greenhouse gas emissions until 2020. Our analysis shows which key potentials to mitigate greenhouse gas emissions are available, by which policies and measures they are attainable
and which will be benefits of greenhouse gas mitigation measures.
By this analysis we show the mayor role of energy efficiency in all sectors and all member states. We demonstrate that a reduction of EU 25 greenhouse gas emissions by more than 30 % by 2020 is feasible, reasonable and - to a large extent - cost effective. We also develop a comprehensive policy package necessary to achieve ambitious Post-Kyoto targets.
The scenario analysis results in a clear identification of the needed strategies, policies and measures and especially the relevance of energy efficiency to achieve the necessary ambitious greenhouse gas reduction targets. It also clearly shows the costs and the benefits of such a policy compared to a business as usual case.
Im Rahmen einer aktuellen Studie zur Transformation des Europäischen Energiesystems zur Klimaneutralität unter Berücksichtigung der Gaskrise entwickelte das Wuppertal Institut ein Szenario (EU27+UK) für die Transformation der europäischen Industrie inklusive Raffinerien und Kokereien, in dem die industriellen Treibhausgasemissionen bis zum Jahr 2050 um 99 % gegenüber 2018 gemindert werden. Der Endenergiebedarf der Industrie sinkt in diesem Szenario durch den Einsatz von Wärmepumpen, andere Energieeffizienzmaßnahmen sowie einen Rückgang der Produktion in Raffinerien bis 2040 deutlich und der Bedarf an fossilen Gasen kann zeitnah gemindert und bis 2045 auf nahezu Null gesenkt werden.
Im Rahmen dieses Szenarios erfolgte auch eine detaillierte Abbildung der Entwicklung der Prozesswärmebereitstellung in Deutschland. Die Bereit- stellung von Niedertemperaturwärme (< 150 °C) erfolgt im Szenario größtenteils über Wärmepumpen und Fernwärme. Solar- und Geothermie spielen eine (kleinere) Rolle. Für die Dampfbereitstellung (150 - 500 °C) werden vielfach hybride Strom/H2-Kessel eingesetzt, daneben Biomasse. In der Chemieindustrie spielen auch langfristig Reststoffe aus Steamcrackern eine wichtige Rolle.
Die Bereitstellung von Hochtemperaturwärme erfolgt prozessspezifisch je nach den technischen Gegebenheiten der Prozesse (z. B. H2 in den Direktreduktions- anlagen und Biomasse in den Walzwerken der Stahlindustrie, abfallbasierte Brennstoffe vor allem in den Klinkeröfen der Zementindustrie, Biomethan und Strom in der Glasindustrie, Strom für Primär- und Sekundäraluminium). Biogene Energieträger in Kombination mit CCS (BECCS) ermöglichen in der Stahlindustrie und in der mineralischen Industrie die Bereitstellung von Hochtemperaturwärme und gleichzeitig negative Emissionen zur Kompensation von Restemissionen.
Wind energy that can neither be fed into the grid nor be used regionally must be curtailed. This paper proposes different options to deal with such surplus wind energy amounts in a time horizon until 2020. It assesses their ability to handle the surplus energy in a sustainable way using a multi criteria analysis. The paper bases on a study that was prepared for the Ministry for Climate Protection, Environment, Agriculture, Nature Conservation and Consumer Protection of North Rhine-Westphalia between 2010 and 2012.
Die Wahrung der Systemsicherheit muss perspektivisch von konventionellen Kraftwerken auf regenerative Energien und Kraft-Wärme-Kopplungsanlagen (KWK) verlagert werden. Diese sollen zukünftig Systemdienstleistungen übernehmen, um in zunehmendem Maße fluktuierende erneuerbare Energien (FEE) zu integrieren. Deutschland strebt an, im Jahr 2020 ein Viertel der elektrischen Energie aus KWK-Anlagen zu erzeugen. Damit werden diese Anlagen einen wesentlichen Teil der regelbaren Stromerzeugung ausmachen. Insbesondere die Erzeugung in dezentralen Blockheizkraftwerken (BHKW) wird zunehmen. Vor diesem Hintergrund stellt sich die Frage, ob dezentrale Anlagen überhaupt nennenswert zur Systemstabilität beitragen können.
Energy systems with high shares of renewable electricity are feasible, but require balancing measures such as storage, grid exchange or demand-side management to maintain system stability. The demand for these balancing options cannot be assessed separately since they influence each other. Therefore, a model was developed to analyze these mutual dependencies by optimizing a concerted use of balancing technologies. This model is presented here. It covers the European electricity system in hourly resolution. Since this leads to a large optimization problem, several options for reducing system complexity are presented. The application of the model is illustrated with a case study outlining the effects of pumped hydro storage and controlled charging of electric vehicles in central Europe.
Es besteht Einvernehmen, dass die hohe Komplexität des Wärmesystems das zentrale Hindernis für die Wärmewende darstellt: Der Wärmebedarf im Industrie- und Gebäudesektor ist durch unterschiedliche Temperatur- und Nachfrageprofile aber auch durch verschiedene Geschäftsmodelle gekennzeichnet. Im Gebäudebereich sind darüber hinaus auch die vielfältigen Erwartungen und Präferenzen der Millionen von Investoren und Nutzern entscheidend, die über rein techno-ökonomische Überlegungen hinausgehen. Diese Systemkomplexität erschwert die Entwicklung von Strategien im Wärmesektor und hemmt unter anderem auch die Möglichkeiten für Technologieentwickler das Marktpotenzial ihrer Innovationen einzuschätzen.
Fragen der Akzeptanz müssen folglich auf mehreren Ebenen Berücksichtigung finden, von Fragestellungen der Gesamtsystemanalyse bis hin zu einzelnen Umsetzungsprojekten. Entsprechend vielfältig ist die Forschung zur gesellschaftlichen Akzeptanz der Wärmwende im FVEE. Sie umfasst sowohl die Analyse von Nutzerpräferenzen bis hin zur gemeinsamen Gestaltung von Energiewendeprojekten, um die Gelingensbedingungen zu verbessern.
Allen Ansätzen ist gemein, dass die vorherrschende technisch-ökonomische Betrachtung der Wärmewende erweitert wird: Es wird nach Faktoren geforscht, welche die Nutzer*innen beeinflussen und es werden gezielt Bereiche untersucht, welche das Potenzial für zukünftige Akzeptanzkonflikte haben. Des Weiteren gibt es Ansätze, die Akzeptanzfragen bereits im Entwicklungsprozess von Innovationen zu berücksichtigen. Abschließend, in Bezug auf die konkrete Umsetzung von Wärmetransformationsprojekten, werden verschiedene Methoden des Co-Designs entwickelt, erforscht und getestet. Im Folgenden werden einzelne Projekte aus den verschiedenen Bereichen vorgestellt.
Jordan's electricity system has and continues to experience considerable pressures for reform due to continuous increase of electricity demand combined with high dependency on imported fossil fuels and a partially subsidised electricity market. In this paper we use the transitions pathways to examine and analyse pressures on the regime in relation to plausible future developments of particular niches such as renewable energy technologies. Our analysis is methodologically distinct in that we explicitly identify mechanisms operating in the system and relate those to existing scenarios to assess future developments. Currently, we see future developments being sensitive to the actions of key regime actors.
Technologische Innovationen in den Bereichen erneuerbare Energien und Energieeffizienz bilden eine wesentliche Grundlage der weltweiten Energiesystemtransformation und wirken bei geeigneter Implementierung als Wertschöpfungsmotor. Die Größe und erhebliche Wachstumsdynamik der internationalen Märkte für Energietechnologien und -systeme macht die Positionierung deutscher Unternehmen auf diesen Märkten daher zu einem Thema von sehr weitreichender wirtschaftspolitischer Relevanz. Daraus ergibt sich die Frage, wie Deutschland von einer konsequenten Umsetzung der Energiewende und seiner damit verbundenen Vorreiterfunktion auf den internationalen Märkten für Energietechnologien profitieren kann.
There is an increasing pressure that enhanced and novel energy technologies are swiftly adopted by the market to ensure meeting the energy and climate targets. An important issue with such novel developments is their risk to be stuck in the "valley of death", i.e. that their transition to the market is delayed or unsuccessful. Publicly supported demonstration projects could help to bridge the valley of death by reducing barriers to the adoption caused by missing information and perceived risks. A challenge for technology demonstrations in the industrial context is their often high investments that are required to prove their real-world benefits. Given the magnitude of such investments, it becomes crucial that public funding focuses on the most promising demonstration proposals. Structured evaluation processes can help to facilitate the identification of promising proposals and to improve the quality and transparency of decisions. This paper deals with a corresponding multi-staged multi-criteria decision support system (DSS) suggested to the German Federal Ministry for Economic Affairs and Energy. It deals with the evaluation of demonstration proposals across three stages: The first stage represents a filtering stage to identify those proposals relevant for further considerations. The second stage comprises a multi-criteria scoring method drawing on an evaluation against nineteen criteria. The final third stage serves to critically review the need for public funding of well-scored proposals. This contribution outlines the development of the DSS and its design and thus provides insights on proposal evaluating in energy research.
Die Bundesrepublik Deutschland hat sich zum Ziel gesetzt, bis 2045 klimaneutral zu werden. Das kann nur funktionieren, wenn fossile Rohstoffe durch erneuerbare Energien ersetzt werden - insbesondere in den Bereichen Industrie und Verkehr. Ein wesentlicher Baustein in diesem Transformationsprozess ist die Errichtung einer Wasserstoffwirtschaft, innerhalb derer Strom aus erneuerbaren Energien in grünen Wasserstoff umgewandelt und dieser als Energieträger vor allem in den Bereichen Industrie und Verkehr angewendet wird.
Die Transformation des deutschen Energiesystems in Richtung signifikanter Reduktion energiebedingter CO2-Emissionen kann durch eine Abfolge verschiedener Phasen beschrieben werden. Phasenübergänge ergeben sich dabei aus strukturellen Erfordernissen im Gesamtsystem bei kontinuierlichem weiteren Ausbau erneuerbarer Energiewandler, insbesondere Sonne und Wind. Die anstehende zweite Phase der Transformation ist durch eine umfassende Systemintegration volatiler erneuerbarer Energien insbesondere im Bereich der Strombereitstellung geprägt. Dies erfordert sowohl eine flexible komplementäre Erzeugung als auch die Aktivierung von Flexibilitätsoptionen auf der Verbrauchsseite.
Welche Rolle spielt die Digitalisierung mit der Vielzahl ihrer Methoden und Anwendungen für die Energiewende - also für die Transformation unseres Energiesystems im Sinne der vereinbarten Klimaschutzziele? Ist sie notwendige Voraussetzung für den Systemumbau und ermöglicht beispielsweise erst den Übergang auf ein nahezu vollständig erneuerbares Energiesystem (Enabler) oder ist sie lediglich ein nützliches, den Umbau beschleunigendes Hilfsmittel (Facilitator)? Welche Veränderungen sind durch die Ziele der Energiewende getrieben und welche durch die Verbreitung von Techniken der Digitalisierung? All dies waren Fragen, die im Rahmen der Jahrestagung 2018 des Forschungsverbunds Erneuerbare Energien unter dem Titel "Die Energiewende - smart und digital" behandelt wurden. Dieser einführende Beitrag versucht einige Anhaltspunkte zur Beantwortung dieser Fragen zu liefern und in das Thema einzuführen.
Der Klimawandel stellt uns vor die globale Herausforderung, auf fossile Energieträger zu verzichten. Die erfolgreiche Transformation des Energiesystems ist eine wesentliche Voraussetzung für eine vollständige Reduktion der Treibhausgase. Eine solche Transformation kann nur gelingen, wenn der fundamental neue Charakter des Systems erfasst und im abgeleiteten Rückschluss daraus der passende Pfad eingeschlagen wird. Im Kern lässt sich dieser neue Charakter als ein defossilisiertes, auf regenerativen Energien basierendes Energiesystem beschreiben.
Der schnell fortschreitende Digitalisierungs- und Automatisierungsprozess ist heute schon ein wichtiger Wegbegleiter für die Transformation des aktuellen Energiesystems. Im vorliegenden Beitrag werden sechs Anwendungsbeispiele vorgestellt, die deutlich machen, dass die Energiewende ohne Digitalisierung nicht denkbar ist.
Contemporary combined heat and power (CHP) systems are often based on fossil fuels, such as natural gas or heating oil. Thereby, small-scale cogeneration systems are intended to replace or complement traditional heating equipment in residential buildings. In addition to space heating or domestic hot water supply, electricity is generated for the own consumption of the building or to be sold to the electric power grid.
The adaptation of CHP-systems to renewable energy sources, such as solid biomass applications is challenging, because of feedstock composition and heat integration. Nevertheless, in particular smallscale CHP technologies based on biomass gasification and solid oxide fuel cells (SOFCs) offer significant potentials, also regarding important co-benefits, such as security of energy supply as well as emission reductions in terms of greenhouse gases or air pollutants. Besides emission or air quality regulations, the development of CHP technologies for clean on-site small-scale power generation is also strongly incentivised by energy efficiency policies for residential appliances, such as e.g. Ecodesign and Energy Labelling in the European Union (EU). Furthermore, solid residual biomass as renewable local energy source is best suited for decentralised operations such as micro-grids, also to reduce long-haul fuel transports. By this means such distributed energy resource technology can become an essential part of a forward-looking strategy for net zero energy or even smart plus energy buildings.
In this context, this paper presents preliminary impact assessment results and most recent environmental considerations from the EU Horizon 2020 project "FlexiFuel-SOFC" (Grant Agreement no. 641229), which aims at the development of a novel CHP system, consisting of a fuel flexible smallscale fixed-bed updraft gasifier technology, a compact gas cleaning concept and an SOFC for electricity generation. Besides sole system efficiencies, in particular resource and emission aspects of solid fuel combustion and net electricity effects need to be considered. The latter means that vastly less emission intensive gasifier-fuel cell CHP technologies cause significant less fuel related emissions than traditional heating systems, an effect which is further strengthened by avoided emissions from more emission intensive traditional grid electricity generation. As promising result, operation "net" emissions of such on-site generation installations may be virtually zero or even negative. Additionally, this paper scopes central regulatory instruments for small-scale CHP systems in the EU to discuss ways to improve the framework for system deployment.
De-industrialization, climate and demographic changes are only a few key words that indicate the challenge of urban development in many industrialized countries for the coming decades. A fundamental transformation of infrastructure and the built environment is expected to adjust to future needs. Numerous concepts of integrating efficiency and renewable energy sources into urban planning were elaborated in recent years. Energy sufficiency in the meaning of voluntary demand reduction of energy intensive goods and services is the third and mostly forgotten pillar of sustainable development. However, organizational and spatial measures are needed to support behavior modification. This paper presents results of a transdisciplinary research design with local stakeholders and scientific experts to develop an understanding of what energy sufficiency might contribute to sustainable urban development. Based on the Multi-Level-Perspective of the transition research approach, it analyzes how stakeholders and experts define energy sufficiency structures for the shrinking district of Vohwinkel (Germany). The paper also shows a compilation and evaluation of measures which facilitate energy sufficient behavior in the fields of space heating and passenger transport on a local level. The methodological concept comprises expert interviews, thought experiments with stakeholders to develop a vision of an "energy sufficient Vohwinkel 2050" as well as a stakeholder workshop to discuss the results. A shrinking population is seen as a chance to actively adapt the built environment to foster energy sufficiency.