Zukünftige Energie- und Industriesysteme
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Der heutige energetische Sanierungsbedarf des Gebäudebestands in Deutschland ist ein über Jahrzehnte qua irregeleiteter Auslegung produzierter. Inzwischen hat der technische Fortschritt erreicht, was zu erwarten war: Das Null-Energie-Haus, sogar das Plus-Energie-Haus sind heute möglich geworden. Beide sind auch "wirtschaftlich" - sofern man neu baut. Und selbstverständlich nur bei einem geklärten Verständnis von "wirtschaftlich", insbesondere im anstehenden Gebäude-Energie-Gesetz (GEG).
Was ist synthetisches Gas?
(2019)
Um den ungebremst fortschreitenden Klimawandel zu begrenzen, ist eine stufenweise Dekarbonisierung des Energiesystems notwendig, die bereits bis zur Mitte dieses Jahrhunderts schon weitgehend erreicht sein muss. Neben Unsicherheiten gehen von der Energiewende gleichzeitig Investitionsimpulse für Innovationen aus, wobei Systeminnovationen eine zentrale Treiberfunktion zur Dekarbonisierung des Energiesystems einnehmen.
Diese Arbeit fokussiert die Rolle von Innovationskaskaden in der Energiewende und analysiert die Überführung von Systeminnovationen in strategische Geschäftsmodellinnovationen vor dem Hintergrund der Frage, wie die Dekarbonisierung des Energiesystems für Unternehmen der Energiewirtschaft und THG-intensiven Industrie rentabel ausgestaltet werden kann.
Die Dissertation leistet einen substanziellen Beitrag zur Entscheidungsfindung im strategischen (Innovations-)Management für Unternehmen der Energiewirtschaft und der THG-intensiven Sektoren - Bereiche, die von einem erheblichen Transformationsdruck gekennzeichnet sind. Insbesondere für Unternehmen, die bedingt durch den Wandel des Energiesystems großen Herausforderungen gegenüberstehen, leistet diese Arbeit einen Beitrag zur Ableitung neuer, nachhaltiger und ökonomisch tragfähiger Geschäftsmodelle. Im Mittelpunkt stehen die Systeminnovationen Power-to-Gas (P2G) und Algae-to-X (A2X). Dabei wird der Begriff Algae-to-X erstmalig in die wissenschaftliche und praktische Diskussion eingeführt und konzeptionell fundiert. Mit einer ganzheitlichen Untersuchung der Innovationsprozesse, den damit verbundenen Chancen, Potenzialen, Unsicherheiten, Hemmnissen und visionären Zukunftsbildern von Power-to-Gas und Algae-to-X werden konkrete Handlungsansätze zur Förderung von Systeminnovationen und der Überführung in Geschäftsmodellinnovationen im window of opportunity der Energiewende herausgearbeitet.
Diese Forschungsarbeit trägt zur Weiterentwicklung der wirtschafts-wissenschaftlichen Theoriebasis in den Disziplinen des strategischen Managements und des strategischen Innovationsmanagements bei: Aufbauend auf einer breiten und tiefgreifenden Analyse bestehender Ansätze wird die Bedeutung von Systeminnovationen und Geschäftsmodellinnovationen herausgestellt und die tragende Rolle des in der Theorie noch relativ jungen Konzepts der Innovationskaskaden für die Umsetzung des systemischen Transformationsprozesses der Energiewende theoretisch fundiert und empirisch gestützt. Hervorzuheben ist, dass die Unsicherheiten, die mit der Entwicklung von tragfähigen Geschäftsmodellinnovationen einhergehen, ökonomisch fundiert sind, in den Beispielen in Abhängigkeit des Neuigkeitsgrades und damit der Entwicklungsstufe der Innovationskaskade aber technologisch (A2X) bzw. regulatorisch (P2G) bedingt sind. Bei der Überführung von Systeminnovationen in strategische Geschäftsmodellinnovationen über die Ableitung von Innovationskaskaden stellt diese Arbeit zwei neue, theoretisch fundierte und empirisch überprüfte innovationsauslösende Stimuli vor: Die systeminduzierten Impulse des system-push und des system-pull.
Germany and Japan have both gained substantial experience with hydrogen production and applications, albeit with focus on different sectors. They also share similar drivers for hydrogen development and, of course, similar technical and economic opportunities and challenges. However, there also are relevant differences in the policy priorities and approaches.
Notwithstanding differing emphases and patterns, the two countries share three main drivers for hydrogen development and deployment: climate mitigation and other environmental goals, energy supply diversification, and technological leadership. In this context, hydrogen has been identified by the German and the Japanese governments during the Energy Policy Dialogue as having potential for closer cooperation.
The authors of this study provide an overview of demand-side deployment by sector (residential, transport, industry, power generation and power-to-x) for both countries, as well as of their hydrogen policy debates, key institutions, R&D programs and demonstration projects. They also present a short survey on relevant international platforms and initiatives in which Japan and Germany participate.
On the basis of a meta-analysis of the role of hydrogen in 18 long-term energy system scenarios for Germany and 12 scenarios for Japan, this study draws conclusions on the possible role of hydrogen in the long term energy policy debates of both countries. Subsequently, the authors discuss sustainability criteria and certification schemes for clean hydrogen, compare the greenhouse gas intensity of different hydrogen supply chains and provide a data-based analysis to identify countries which could become important suppliers of clean hydrogen.
A significant reduction in greenhouse gas emissions will be necessary in the coming decades to enable the global community to avoid the most dangerous consequences of man-made global warming. This fact is reflected in Germany's 7th Federal Energy Research Program (EFP), which was adopted in 2018. Direct Air Capture (DAC) technologies used to absorb carbon dioxide (CO2) from the atmosphere comprise one way to achieve these reductions in greenhouse gases. DAC has been identified as a technology (group) for which there are still major technology gaps. The intention of this article is to explore the potential role of DAC for the EFP by using a multi-dimensional analysis showing the technology's possible contributions to the German government's energy and climate policy goals and to German industry's global reputation in the field of modern energy technologies, as well as the possibilities of integrating DAC into the existing energy system. The results show that the future role of DAC is affected by a variety of uncertainty factors. The technology is still in an early stage of development and has yet to prove its large-scale technical feasibility, as well as its economic viability. The results of the multi-dimensional evaluation, as well as the need for further technological development, integrated assessment, and systems-level analyses, justify the inclusion of DAC technology in national energy research programs like the EFP.
Diese Studie untersucht Notwendigkeiten und Möglichkeiten, Wasserstoff und Strom zu nutzen, um den Verkehrssektor in Deutschland perspektivisch zu dekarbonisieren. Basis der Untersuchung ist das Dekarbonisierungsszenario des Wuppertal Instituts von 2017, welches den Verkehrssektor Deutschlands unter der Maßgabe dekarbonisiert, dass Deutschland einen adäquaten Beitrag dazu leistet, den Klimawandel auf 1,5 °C mittlere Temperaturerhöhung gegenüber dem vorindustriellen Zeitalter zu begrenzen.
Das Dekarbonisierungsszenario nimmt eine ambitionierte Verkehrswende an, um dieses Politikziel zu erreichen. Es zeichnet sich durch eine besonders effiziente Mobilität aus, indem es umfangreiche Vermeidungs- und Verlagerungsmaßnahmen vorsieht und dadurch der Energieverbrauch besonders gering bleiben kann. Dennoch werden selbst in diesem Klimaschutzszenario signifikante Mengen erneuerbaren Stroms für den Verkehrssektor benötigt.
Es findet eine möglichst "direkte Elektrifizierung" statt, also ein Strombezug von batterie-elektrischen Pkw aus dem Netz, sowie über Oberleitungen für die Schiene und für große Lkw auf Bundesautobahnen. Es ist aber auch eine "indirekte Elektrifizierung" nötig, indem aus erneuerbarem Strom unter der Hinnahme von Wirkungsgradverlusten Wasserstoff (H2) und als Folgeprodukt auch synthetische Kraftstoffe hergestellt werden. Diese strombasierten Produkte werden im Dekarbonisierungsszenario für große Pkw und Lkw verwendet.
Die vorliegende Studie berechnet zusätzlich den H2- bzw. PtX-Bedarf des internationalen Flug- und Seeverkehrs. Sie bestimmt außerdem das Lastprofil für eine ungesteuerte Ladung von Elektro-Pkw im Zieljahr. Die Berechnungen verdeutlichen, dass die Dekarbonisierung des Verkehrssektors in Zukunft sehr viel stärker mit dem Stromsystem wechselwirkt. Für Klimaschutz im Verkehr bedarf es neben einer drastischen Energieverbrauchssenkung und einem beschleunigten Ausbau erneuerbarer Energien auch die Infrastruktur für Strom und strombasierte Produkte.
Many countries are increasingly investing in renewable energy technologies to meet growing energy demands and increase the security of their energy supply. This development is also evident in the Middle East and North Africa (MENA) region, where renewable energy targets and policies have evolved rapidly in recent years. There is a steady increase in both the number of planned and implemented solar photovoltaic (PV) but also of solar thermal projects in form of Concentrating Solar Power (CSP) plants. Many of these installations are designed as large utility-scale systems. Despite the fact that these types of large-scale projects can have significant effects on local communities and their livelihoods, the existing research into the social impacts of such large-scale renewable energy infrastructures at local level is limited. However, assessing and managing these impacts is becoming increasingly important to reduce risks to both the affected communities and to the project and businesses activities. In order to provide more robust evidence on the local effects, this research study reviews the social impacts of large-scale renewable energy infrastructure in the MENA region based on a case study of the NOORo I CSP plant in Ouarzazate, Morocco. Data collected during two empirical field studies, in combination with expert interviews and secondary data analysis, provides detailed evidence on the type and significance of livelihood impacts of the NOORo I CSP plant. The analysis results in a consolidated list of 30 impacts and their significance levels for different stakeholder groups including farmers, young people, women, community representatives and owners of small and medium enterprises. The results show that, overall, the infrastructure development was received positively. The review also indicates that factors identified as having effects on the sustainability of local livelihoods are mainly related to information management and benefit distribution, rather than physical or material aspects.
This doctoral research is located in the branch of sustainability sciences that has the realisation of sustainable development as its core subject of research. The most broadly accepted notion of sustainable development is that which evolves along the resolutions, declarations, and reports from international processes in the framework of the United Nations (UN). The consensual outputs from such processes feature global-generalised and context-free perspectives. However, implementation requires action at diverse and context-rich local levels as well. Moreover, while in such UN processes national states are the only contractual parties, it is increasingly recognised that other ("nonstate") actors are crucial to sustainability. The research presented here places the attention on bottom-up initiatives that are advancing innovative ways to tackle universal access to clean energy and to strengthen small-scale family farmers. This means, the focus is on bottom-up initiatives advancing local implementation of global sustainability targets, more precisely, targets that make part of the Sustainable Development Goals two and seven (SDG 2 and SDG7). The research asks how such bottom-up initiatives can contribute to the diffusion of sustainability innovations, thereby also contributing to social change.
Digitalization is a transformation process which has already affected many parts of industry and society and is expected to yet increase its transformative speed and impact. In the energy sector, many digital applications have already been implemented. However, a more drastic change is expected during the next decades. Good understanding of which digital applications are possible and what are the associated benefits as well as risks from the different perspectives of the impacted stakeholders is of high importance. On the one hand, it is the basis for a broad societal and political discussion about general targets and guidelines of digitalization. On the other hand, it is an important piece of information for companies in order to develop and sustainably implement digital applications. This article provides a structured overview of potential digital applications in the German energy (electricity) sector, including the associated benefits and the impacted stakeholders on the basis of a literature review. Furthermore, as an outlook, a methodology to holistically analyze digital applications is suggested. The intended purpose of the suggested methodology is to provide a complexity-reduced fact base as input for societal and political discussions and for the development of new digital products, services, or business models. While the methodology is outlined in this article, in a follow-up article the application of the methodology will be presented and the use of the approach reflected.
Phasing out coal in the German energy sector : interdependencies, challenges and potential solutions
(2019)
Relevant aspects of the options and requirements for reducing and phasing out coal-fired power generation have been under debate for several years. This process has produced a range of strategies, analyses and arguments, outlining how coal use in the energy sector could be reduced and phased out in the planned time frame, and determining structural policy measures suitable to support this. This Coal Report studies the existing analyses and provides an overview of the state of debate. It is intended to provide information on facts and contexts, present the advantages and disadvantages of individual courses of action, and reveal the respective scientific backgrounds. It strives to take a scientific and independent approach, and present facts in concise language, making it easy to follow for readers who are not experts in the field, without excessive abridgements or provocative statements.