Zukünftige Energie- und Industriesysteme
Geschäftsmodelle zur Einbindung dezentraler Anlagen auf Haushaltsebene in Virtuelle Kraftwerke
(2019)
Virtuelle Kraftwerke (VKW) bieten die Möglichkeit, den steigenden Flexibilitätsbedarf des Stromsystems durch die Bündelung dezentraler Erzeugungsanlagen, Speicher und steuerbarer Verbraucher zu decken. Insbesondere die Hebung noch unerschlossener dezentraler Flexibilitätspotenziale auf Haushaltsebene, die durch die Digitalisierung und die Verfügbakeit smarter Technologien ermöglicht wird, eröffnet voraussichtlich zukünftige Geschäftsfelder. In diesem Artikel werden die zu erwartenden technologischen und ökonomischen Entwicklungen skizziert und darauf aufbauend ein Analyserahmen für Geschäftsmodelle Virtueller Kraftwerke vorgestellt.
Research on sustainability transitions has expanded rapidly in the last ten years, diversified in terms of topics and geographical applications, and deepened with respect to theories and methods. This article provides an extensive review and an updated research agenda for the field, classified into nine main themes: understanding transitions; power, agency and politics; governing transitions; civil society, culture and social movements; businesses and industries; transitions in practice and everyday life; geography of transitions; ethical aspects; and methodologies. The review shows that the scope of sustainability transitions research has broadened and connections to established disciplines have grown stronger. At the same time, we see that the grand challenges related to sustainability remain unsolved, calling for continued efforts and an acceleration of ongoing transitions. Transition studies can play a key role in this regard by creating new perspectives, approaches and understanding and helping to move society in the direction of sustainability.
In recent years, most countries in the Middle East and North Africa (MENA), including Jordan, Morocco and Tunisia, have rolled out national policies with the goal of decarbonising their economies. Energy policy goals in these countries have been characterised by expanding the deployment of renewable energy technologies in the electricity mix in the medium term (i.e., until 2030). This tacitly signals a transformation of socio-technical systems by 2030 and beyond. Nevertheless, how these policy objectives actually translate into future scenarios that can also take into account a long-term perspective up to 2050 and correspond to local preferences remains largely understudied. This paper aims to fill this gap by identifying the most widely preferred long-term electricity scenarios for Jordan, Morocco and Tunisia. During a series of two-day workshops (one in each country), the research team, along with local stakeholders, adopted a participatory approach to develop multiple 2050 electricity scenarios, which enabled electricity pathways to be modelled using Renewable Energy Pathway Simulation System GIS (renpassG!S). We subsequently used the Analytical Hierarchy Process (AHP) within a Multi-Criteria Analysis (MCA) to capture local preferences. The empirical findings show that local stakeholders in all three countries preferred electricity scenarios mainly or even exclusively based on renewables. The findings demonstrate a clear preference for renewable energies and show that useful insights can be generated using participatory approaches to energy planning.
Die Diskussion um die Gestaltung der Energiewende dreht sich in der politischen und gesellschaftlichen Debatte heute maßgeblich um die Stromversorgung der Zukunft. Ausstieg aus der Kohleverstromung und Ausbau bzw. Optimierung von Stromtransport- und verteilnetz sind nur zwei Beispiele dafür. Zu wenig Beachtung wird dagegen den Gasinfrastrukturen geschenkt und dabei insbesondere den Gas(import-)infrastrukturen, die mit Blick auf die Energiewende eine signifikante Rolle spielen (können).
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).
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.
Urban energy systems have been commonly considered to be socio-technical systems within the boundaries of an urban area. However, recent literature challenges this notion in that it urges researchers to look at the wider interactions and influences of urban energy systems wherein the socio-technical sphere is expanded to political, environmental and economic realms as well. In addition to the inter-sectoral linkages, the diverse agents and multilevel governance trends of energy sustainability in the dynamic environment of cities make the urban energy landscape a complex one. There is a strong case then for establishing a new conceptualisation of urban energy systems that builds upon these contemporary understandings of such systems. We argue that the complex systems approach can be suitable for this. In this paper, we propose a pilot framework for understanding urban energy systems using complex systems theory as an integrating plane. We review the multiple streams of urban energy literature to identify the contemporary discussions and construct this framework that can serve as a common ontological understanding for the different scholarships studying urban energy systems. We conclude the paper by highlighting the ways in which the framework can serve some of the relevant communities.
The Port of Rotterdam is an important industrial cluster, comprising mainly oil refining, chemical production and power generation. In 2016, the port's industry accounted for 19% of the Netherlands' total CO2 emissions. The Port of Rotterdam Authority is aware that the cluster is heavily exposed to future decarbonisation policies, as most of its activities focus on trading, handling, converting and using fossil fuels. Based on a study for the Port Authority using a mixture of qualitative and quantitative methods, our article explores three pathways whereby the port's industry can maintain its strong position while significantly reducing its CO2 emissions and related risks by 2050. The pathways differ in terms of the EU's assumed climate change mitigation ambitions and the key technological choices made by the cluster's companies. The focus of the paper is on identifying key risks associated with each scenario and ways in which these could be mitigated.
Prepaid-Strom per Smartphone
(2020)
Prepaid-Stromzähler sind in Deutschland noch selten, bieten jedoch zukünftig einen interessanten Markt. Vor allem kleinere Anbieter, aber auch erste Regionalversorger kombinieren die Megatrends Digitalisierung und Energiewende und kreieren daraus neue Dienstleistungen. Zusammen mit IT-Firmen entwickeln sie daraus neue Geschäftsideen, die auch hinsichtlich sozialer Aspekte hohen Anforderungen genügen. Der Rollout von Smart Metering-Lösungen eröffnet zukünftig noch größere Chancen, durch Echtzeit-Datenerfassung den Energieverbrauch und damit auch Einsparpotenziale transparent zu machen. Hochaufgelöste Daten ermöglichen innovative Dienstleistungen und bringen die Kundenbeziehung auf eine neue Ebene.
Das Ziel der Klimaneutralität ist eine große Herausforderung, insbesondere für die Industrie. Dieser Artikel analysiert und vergleicht verschiedene Strategien zur Transformation des Industriesektors, wie sie in aktuellen deutschen, europäischen und globalen Klimaschutzszenarien beschrieben werden. Zunächst werden zehn Schlüsselstrategien für weitgehende Treibhausgasemissionsreduktionen im Industriesektor identifiziert. Anschließend wird in einer Szenario-Metaanalyse untersucht, in welchem Maße verschiedene Szenarien jeweils auf die einzelnen Strategien setzen. Dabei zeigt sich, dass es zwischen den Szenarien teilweise erhebliche Unterschiede bezüglich der verfolgten Strategien gibt.