Zukünftige Energie- und Industriesysteme
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The target of zero emissions sets a new standard for industry and industrial policy. Industrial policy in the twenty-first century must aim to achieve zero emissions in the energy and emissions intensive industries. Sectors such as steel, cement, and chemicals have so far largely been sheltered from the effects of climate policy. A major shift is needed, from contemporary industrial policy that mainly protects industry to policy strategies that transform the industry. For this purpose, we draw on a wide range of literatures including engineering, economics, policy, governance, and innovation studies to propose a comprehensive industrial policy framework. The policy framework relies on six pillars: directionality, knowledge creation and innovation, creating and reshaping markets, building capacity for governance and change, international coherence, and sensitivity to socio-economic implications of phase-outs. Complementary solutions relying on technological, organizational, and behavioural change must be pursued in parallel and throughout whole value chains. Current policy is limited to supporting mainly some options, e.g. energy efficiency and recycling, with some regions also adopting carbon pricing, although most often exempting the energy and emissions intensive industries. An extended range of options, such as demand management, materials efficiency, and electrification, must also be pursued to reach zero emissions. New policy research and evaluation approaches are needed to support and assess progress as these industries have hitherto largely been overlooked in domestic climate policy as well as international negotiations.
Roadmaps for India's energy future foresee that coal power will continue to play a considerable role until the middle of the 21st century. Among other options, carbon capture and storage (CCS) is being considered as a potential technology for decarbonising the power sector. Consequently, it is important to quantify the relative benefits and trade-offs of coal-CCS in comparison to its competing renewable power sources from multiple sustainability perspectives. In this paper, we assess coal-CCS pathways in India up to 2050 and compare coal-CCS with conventional coal, solar PV and wind power sources through an integrated assessment approach coupled with a nexus perspective (energy-cost-climate-water nexus). Our levelized costs assessment reveals that coal-CCS is expensive and significant cost reductions would be needed for CCS to compete in the Indian power market. In addition, although carbon pricing could make coal-CCS competitive in relation to conventional coal power plants, it cannot influence the lack of competitiveness of coal-CCS with respect to renewables. From a climate perspective, CCS can significantly reduce the life cycle GHG emissions of conventional coal power plants, but renewables are better positioned than coal-CCS if the goal is ambitious climate change mitigation. Our water footprint assessment reveals that coal-CCS consumes an enormous volume of water resources in comparison to conventional coal and, in particular, to renewables. To conclude, our findings highlight that coal-CCS not only suffers from typical new technology development related challenges - such as a lack of technical potential assessments and necessary support infrastructure, and high costs - but also from severe resource constraints (especially water) in an era of global warming and the competition from outperforming renewable power sources. Our study, therefore, adds a considerable level of techno-economic and environmental nexus specificity to the current debate about coal-based large-scale CCS and the low carbon energy transition in emerging and developing economies in the Global South.
Aufbruch zur strategischen Autonomie der EU in der Kriegsführung mit Mitteln wirtschaftlichen Zwangs
(2021)
Die geopolitische Situation ist im Umbruch. Wir sind im Übergang zu einer multipolaren Situation, die Hegemonialkonkurrenten organisieren sich in Blöcken. Die Stratifizierung des Raumes der Wirtschaft, "Globalisierung" genannt, verliert ihre Basis, die strikte Trennung von der Politik der Hegemonialkonkurrenten. Wirtschaft wird nun in Dienst genommen für politische Ziele. Das erfordert Aufrüstung in Mitteln der Wirtschaftskriegsführung. China und die USA sind darin weit vorangegangen. Die EU hat entschieden, ihrerseits nachzurüsten, um auf Augenhöhe zu kommen.
Der Regionalverband Ruhr (RVR) legte nach 2017 zum zweiten Mal seinen "Bericht zur Lage der Umwelt in der Metropole Ruhr" vor. Die aktuelle Analyse, die das Wuppertal Institut erstellte, beschreibt die Umwelt- und Lebenssituation im Ruhrgebiet anhand von 20 ausgewählten Indikatoren. Das Fazit der Wissenschaftlerinnen und Wissenschaftler: Es wurde bereits viel erreicht, jedoch nehmen der globale Klimawandel und seine Auswirkungen exponentiell an Tempo zu und betreffen alle Bereiche des menschlichen Lebens. Extreme Trockenperioden, Hitzewellen oder anhaltende Starkregenereignisse mit Überflutungen in bisher nicht gekannten Ausmaßen stellen auch das Ruhrgebiet vor neue und akute Herausforderungen.
Deutschlands Klimaschutzstrategie baut auf den Einsatz von grünem Wasserstoff aus erneuerbaren Energien. Doch wo soll der Wasserstoff herkommen, aus heimischer Produktion oder importiert aus dem Ausland? Eine Studie des Wuppertal Instituts und DIW Econ schafft einen Überblick über die aktuelle Datenlage und ermittelt Wertschöpfungs- und Beschäftigungseffekte beider Strategien. Das Resümee: Es trifft nicht zu, dass importierter Wasserstoff allgemein günstiger ist, entscheidend sind je nach Herkunftsland die tatsächlich realisierbaren Strom- und Transportkosten. Wird der grüne Wasserstoff stattdessen im eigenen Land produziert, wird dies zudem eine positive Beschäftigungswirkung und Wertschöpfung entfalten. Mit der Erreichung der Klimaziele 2050 betrüge die zusätzliche Wertschöpfung bei einer stark auf die heimische Erzeugung ausgerichtete Strategie bis zu 30 Milliarden Euro im Jahr 2050 und es könnten bis zu 800.000 Arbeitsplätze geschaffen werden.
The basic materials industries are a cornerstone of Europe's economic prosperity, increasing gross value added and providing around 2 million high-quality jobs. But they are also a major source of greenhouse gas emissions. Despite efficiency improvements, emissions from these industries were mostly constant for several years prior to the Covid-19 crisis and today account for 20 per cent of the EU's total greenhouse gas emissions.
A central question is therefore: How can the basic material industries in the EU become climate-neutral by 2050 while maintaining a strong position in a highly competitive global market? And how can these industries help the EU reach the higher 2030 climate target - a reduction of greenhouse gas emissions of at least 55 per cent relative to 1990 levels?
In the EU policy debate on the European Green Deal, many suppose that the basic materials industries can do little to achieve deep cuts in emissions by 2030. Beyond improvements to the efficiency of existing technologies, they assume that no further innovations will be feasible within that period. This study takes a different view. It shows that a more ambitious approach involving the early implementation of key low-carbon technologies and a Clean Industry Package is not just possible, but in fact necessary to safeguard global competitiveness.
Das vorliegende Papier zeigt, welche Weichen die Politik stellen muss, um den Gebäudebestand bis 2045 klimaneutral zu machen. Im Fokus stehen höhere Effizienzanforderungen für Bestands- und Neubauten, ein schnellerer Ausstieg aus Gas- und Ölheizungen, gleichzeitig aber auch höhere Anreize und bessere Unterstützung für Gebäudebesitzende sowie warmmietenneutrale Sanierungen, um Mietende vor einer Überlastung zu schützen.
Dabei müssen bestehende Gebäude so renoviert werden, dass sie ähnlich wie Neubauten kaum noch Energie verbrauchen. Gleichzeitig müssen Heizenergie und Stromversorgung komplett auf erneuerbare Energien umgestellt werden. Zudem muss durch intelligentere Nutzungskonzepte der Anstieg der Gebäudeflächen gebremst werden. Die kommende Legislaturperiode ist somit entscheidend, damit Klimaneutralität im Gebäudesektor bis spätestens 2045 erreicht werden kann.
Dieser Zukunftsimpuls schlägt daher ein 14 Maßnahmen umfassendes und konsistentes Politikpaket vor. Neben den oben genannten Maßnahmen des Förderns und Forderns gehören dazu insbesondere klare Vorgaben für eine bessere energetische Sanierung und ein deutliches Ziel für den Ausstieg aus fossilen Gas- und Ölheizungen, die allen Beteiligten Sicherheit geben. Individuelle Sanierungsfahrpläne für alle heute noch nicht effizienten Gebäude bis spätestens 2028 und kommunale Wärmepläne helfen den Gebäudebesitzenden bei der technischen Entwicklung ihrer Gebäude und der Investitionsplanung. Häufig sind es die nicht-monetären Hemmnisse, die maßgeblich für die geringe Sanierungsrate sind. One-Stop-Shops verringern die Hemmschwelle Maßnahmen umzusetzen. Darüber hinaus wirkt Quartiersmanagement unterstützend und hilft Kräfte zu bündeln.
Especially in the arid areas of the Middle East and North Africa (MENA), water availability plays an important role in the expansion planning of industrial-scale solar power plants. Although power plants may account for only a very small portion of local water demand, competition for water with other sectors is expected to increase when water resources are insufficient for meeting local needs. This can lead to conflicts between different users (such as communities, farmers, tourism, businesses and utilities). Despite the increasing attention on the water-energy nexus, comprehensive studies analysing the interdependencies and potential conflicts between energy and water at the local level are absent.
To examine the linkages between water resources and energy technologies at the local level, this case study was selected because Morocco is one of the countries most affected by water scarcity and, at the same time, it is also one of the most promising countries in North Africa for the development of renewable energies and offers excellent conditions for solar and wind power plants. Nevertheless, the country's electricity system is still largely based on conventional energy sources, and the country is more than 95% dependent on energy imports. To strengthen the country's energy security and reduce the financial burden associated with energy imports, Morocco is pursuing an ambitious renewable energy expansion strategy: by 2020, around 42% of the national electricity demand should be met by renewable energies. In view of Morocco's ambitious plans, it is particularly important to identify the potential conflicts and synergies resulting from the expansion of renewable energies in relation to the water sector.
This report was prepared by the Wuppertal Institute in cooperation with the German Economic Institute as part of the SCI4climate.NRW project. The report aims to shed light on the possible phenomenon that the availability and costs of "green" energy sources may become a relevant location factor for basic materials produced in a climate-neutral manner in the future.
For this purpose, we introduce the term "Renewables Pull". We define Renewables Pull as the initially hypothetical phenomenon of a shift of industrial production from one region to another as a result of different marginal costs of renewable energies (or of secondary energy sources or feedstocks based on renewable energies).
Shifts in industrial production in the sense of Renewables Pull can in principle be caused by differences in the stringency of climate policies in different countries, as in the case of Carbon Leakage. Unlike Carbon Leakage, however, Renewables Pull can also occur if similarly ambitious climate policies are implemented in different countries. This is because Renewables Pull is primarily determined by differences in the costs and availability of renewable energies. In addition, Renewables Pull can also be triggered by cost reductions of renewable energies and by changing preferences on the demand side towards climate-friendly products. Another important difference to Carbon Leakage is that the Renewables Pull effect does not necessarily counteract climate policy.
Similar to Carbon Leakage, it is to be expected that Renewables Pull could become relevant primarily for very energy-intensive products in basic materials industries. In these sectors (e.g. in the steel or chemical industry), there is also the possibility that relocations of specific energy-intensive parts of the production process could trigger domino effects. As a result, large parts of the value chains previously existing in a country or region could also be subjected to an (indirect) Renewables Pull effect.
For the federal state of NRW, in which the basic materials industry plays an important role, the possible emergence of Renewables Pull is associated with significant challenges as climate policy in Germany, the EU and also worldwide is expected to become more ambitious in the future.
This report aims to enable and initiate a deeper analysis of the potential future developments and challenges associated with the Renewables Pull effect. Thus, in the final chapter of the report, several research questions are formulated that can be answered in the further course of the SCI4climate.NRW project as well as in other research projects.
The number of input-output assessments focused on energy has grown considerably in the last years. Many of these assessments combine data from multi-regional input-output (MRIO) databases with energy extensions that completely or partially depict the different stages through which energy products are supplied or used in the economy.
The improper use of some energy extensions can lead to double accounting of some energy flows, but the frequency with which this happens and the potential impact on the results are unknown. Based on a literature review, we estimate that around a quarter of the MRIO-based energy assessments reviewed incurred into double accounting. Using the EXIOBASE MRIO database, we also analyse the effects of double accounting in the absolute values and rankings of different countries' and products' energy footprints.
Building on the insights provided by our analysis, we offer a set of key recommendations to MRIO users to avoid the double accounting problem in the future. Likewise, we conclude that the harmonisation of the energy data across MRIO databases led by experts could simplify the choices of the data users until the provision of official energy extensions by statistical offices becomes a widespread practice.
Energy sufficiency is one of the three energy sustainability strategies, next to energy efficiency and renewable energies. We analyse to what extent European governments follow this strategy, by conducting a systematic document analysis of all available European National Energy and Climate Plans (NECPs) and Long-Term Strategies (LTSs). We collect and categorise a total of 230 sufficiency-related policy measures, finding large differences between countries. We find most sufficiency policies in the transport sector, when classifying also modal shift policies to change the service quality of transport as sufficiency policies. Types of sufficiency policy instruments vary considerably from sector to sector, for instance the focus on financial incentives and fiscal instruments in the mobility sector, information in the building sector, and financial incentive/tax instruments in cross-sectoral application. Regulatory instruments currently play a minor role for sufficiency policy in the national energy and climate plans of EU member states. Similar to energy efficiency in recent decades, sufficiency still largely referred to as micro-level individual behaviour change or necessary exogenous trends that will need to take place. It is not treated yet as a genuine field of policy action to provide the necessary framework for enabling societal change.
Eine erfolgreiche Energiewende setzt nicht nur Innovationen voraus, sondern erfordert auch eine aktive Exnovation der fossilen Energieerzeugung. Die vorliegende Masterarbeit zielt deshalb darauf ab, Herausforderungen und Ansatzpunkte für eine Verständigung zwischen Gewerkschaften und Umweltverbänden zur der Zukunft Kohleenergie zu untersuchen. Leitend sind zwei Fragen: Erstens und empirisch: Welche Argumente vertreten Umweltverbände und Gewerkschaften hinsichtlich eines Kohleausstiegs? Zweitens und verbunden mit der gewählten theoretischen Perspektive der Sozialen Ökologie: Welche Bezogenheiten und Trennungen werden zwischen den jeweiligen Verständnissen von Natur, Gesellschaft und Ökonomie in den Argumenten der Akteure sichtbar?
Dafür wurde im theoretischen Teil der Arbeit eine sozial-ökologische Perspektive auf die energetische Kohlenutzung und das sogenannte Jobs versus Environment Dilemma erarbeitet. Im empirischen Teil werden mittels einer qualitativen Inhaltsanalyse über 100 Veröffentlichungen verschiedener Gewerkschaften und Umweltverbände aus dem Zeitraum von Ende 2014 (erster politischer Vorstoß zur Reduzierung der Kohleverstromung) bis Anfang 2019 (Ende der Kommission "Wachstum, Strukturwandel und Beschäftigung") ausgewertet.
Als Ergebnis legt die Arbeit die Argumente der Akteure vergleichend dar, zeigt auf, wie sich diese im Verlauf des Untersuchungszeitraums verändern und welche Gemeinsamkeiten und Unterschiede, Annäherungen und Distanzierungen zwischen den einzelnen Akteuren und Akteursgruppen bestehen. Darauf aufbauend wird der Umgang der Akteure mit dem Jobs versus Environment Dilemma aus der Perspektive der Sozialen Ökologie diskutiert und verglichen.
Die Erkenntnisse der Forschungsarbeit legen nahe, dass der gewerkschaftliche Ansatz von Just Transition bzw. "gerechtem" Strukturwandel mit Klima- und Umweltgerechtigkeitskonzepten verknüpft werden muss, um einen umfassenden inter- und intragenerationellen Gerechtigkeitsanspruch zu erfüllen. Damit der Kohleausstieg und weitere Exnovationsprozesse als sozial-ökologische Transformation gestaltet werden können, ist es notwendig, sowohl die aktuelle ökonomische Abhängigkeit von Arbeitenden in betroffenen Branchen zu verstehen als auch den Klimawandel nicht nur als ökologische, sondern auch als soziale und ökonomische Frage anzuerkennen.
In the Paris Accord to the UN Climate Change Conference COP21 in 2015, the international community agreed to "make every effort" to reach a significant reduction in greenhouse gas (GHG) emissions and to limit global average temperature rise to preferably 1.5°C by 2100 (UNFCC 2018). A transition to a climate-friendly energy supply, however, would come largely at the expense of coal - a fossil fuel with large global reserves that are also widely dispersed regionally. Therefore, especially since the turn of the millennium, the question has been raised as to how coal could be used in a climate-friendly way in the future. So far, the only way to do this is to apply CCS technology or CCU. CCS involves the capture of carbon dioxide (CO2) emissions from fossil fuel-fired power plants or industrial sources and its storage underground, such as in deep saline aquifers or in depleted oil and natural gas fields, or their use for enhanced oil or gas recovery (EOR/EGR). When carbon capture and utilisation (CCU) is applied, the CO2 is further used, for example as feedstock for the production of durable plastics. Due to the relatively low potential of CCU compared to CCS (IPCC 2005), only CCS is considered in this thesis.
The majority of studies and roadmaps have discussed CCS as a technology option that could make a significant contribution to achieving the objective of decreasing GHG emissions for many years (IPCC 2014a, 2018). Particularly in the power sector, however, these expectations have not yet been met. As of November 2019, worldwide only two small base-load power plants, capturing a total of 2.4 Mt CO2/year and mainly using it for EOR, are in operation, together with a few pilots in industrial applications and, in particular, natural gas processing (in total 30 Mt CO2/year) (Global CCS Institute 2019).
Early on, it became clear that the predicted high deployment targets and their underlying studies should be critically questioned for various reasons. Particularly due to the lack of a systems-analytical evaluation of this technology (which was relatively new at the time), no reliable answers could be given about the ecological, economic, social and structural effects of its large-scale application. Such analyses are, however, a pre-condition for comprehensively classifying the contribution of a new technology as a promising option for a sustainable energy supply system and assessing it in comparison to other technologies.
To address these challenges, several studies, most of which initiated by the author, were conducted on this topic between 2004 and 2018. The resulting papers became the basis for this thesis.
The development of digital technologies is accelerating, enabling increasingly profound changes in increasingly short time periods. The changes affect almost all areas of the economy as well as society. The energy sector has already seen some effects of digitalization, but more drastic changes are expected in the next decades. Besides the very positive impacts on costs, system stability, and environmental effects, potential obstacles and risks need to be addressed to ensure that advantages can be exploited while adverse effects are avoided. A good understanding of available and future digital applications from different stakeholders' perspectives is necessary. This study proposes a framework for the holistic evaluation of digital applications in the energy sector. The framework consists of a combination of well-established methods, namely the multi-criteria analysis (MCA), the life cycle assessment (LCA), and expert interviews. The objective is to create transparency on benefits, obstacles, and risks as a basis for societal and political discussions and to supply the necessary information for the sustainable development and implementation of digital applications. The novelty of the proposed framework is the specific combination of the three methods and its setup to enable sound applicability to the wide variety of digital applications in the energy sector. The framework is tested subsequently on the example of the German smart meter roll-out. The results reveal that, on the one hand, the smart meter roll-out clearly offers the potential to increase the system stability and decrease the carbon emission intensity of the energy system. Therefore, the overall evaluation from an environmental perspective is positive. However, on the other hand, close attention needs to be paid to the required implementation and operational effort, the IT (information technology) and data security, the added value for the user, the social acceptance, and the realization of energy savings. Therefore, the energy utility perspective in particular results in an overall negative evaluation. Several areas with a need for action are identified. Overall, the proposed framework proves to be suitable for the holistic evaluation of this digital application.
We conduct a systematic, interdisciplinary review of empirical literature assessing evidence on induced innovation in energy and related technologies. We explore links between demand-drivers (both market-wide and targeted); indicators of innovation (principally, patents); and outcomes (cost reduction, efficiency, and multi-sector/macro consequences). We build on existing reviews in different fields and assess over 200 papers containing original data analysis. Papers linking drivers to patents, and indicators of cumulative capacity to cost reductions (experience curves), dominate the literature. The former does not directly link patents to outcomes; the latter does not directly test for the causal impact of on cost reductions). Diverse other literatures provide additional evidence concerning the links between deployment, innovation activities, and outcomes. We derive three main conclusions. (1) Demand-pull forces enhance patenting; econometric studies find positive impacts in industry, electricity and transport sectors in all but a few specific cases. This applies to all drivers - general energy prices, carbon prices, and targeted interventions that build markets. (2) Technology costs decline with cumulative investment for almost every technology studied across all time periods, when controlled for other factors. Numerous lines of evidence point to dominant causality from at-scale deployment (prior to self-sustaining diffusion) to cost reduction in this relationship. (3) Overall Innovation is cumulative, multi-faceted, and self-reinforcing in its direction (path-dependent). We conclude with brief observations on implications for modeling and policy. In interpreting these results, we suggest distinguishing the economics of active deployment, from more passive diffusion processes, and draw the following implications. There is a role for policy diversity and experimentation, with evaluation of potential gains from innovation in the broadest sense. Consequently, endogenising innovation in large-scale models is important for deriving policy-relevant conclusions. Finally, seeking to relate quantitative economic evaluation to the qualitative socio-technical transitions literatures could be a fruitful area for future research.
Das Klimaabkommen von Paris ist ein Abkommen der Vereinten Nationen. Mit Artikel 4.1 wurde die Treibhausgasneutralität zum Ziel aller globalen Klimapolitik gemacht. Die Begriffe Klimaneutralität und Treibhausgasneutralität werden vom Klimasekretariat der Vereinten Nationen in der öffentlichen Kommunikation synonym verwendet. Die Europäische Kommission hat sich bisher im Zuge der Umsetzung ebenfalls für die synonyme Verwendung entschieden. In Deutschland ist es anders - da herrscht begriffliches Chaos.
Klimasteuern in Deutschland (eingebunden in die EU) : Nutzen für die Entwicklungszusammenarbeit
(2021)
Die Publikation soll es Fachleuten aus Drittstaaten ermöglichen, aus den Erfahrungen, die in Deutschland mit "Klimasteuern" gemacht worden sind, Anregungen für die eigene Steuerpolitik mitzunehmen.
"Klima-Steuern" sollen Preisrelationen für Wirtschaftssubjekte so ändern, dass klimafreundliche Optionen profitabler werden. Dabei wird ein sehr weites Verständnis von "Klimasteuern" zugrunde gelegt. Nach methodischen und begrifflichen Vorüberlegungen wird eine Art "Architektur" für mögliche Ansatzpunkte solcher Steuern bereitgestellt. Exemplifiziert wird dieses moderne Verständnis von "Klimasteuern" in den Sektoren Transport, Gebäude, Elektrizität (Verbrauch und Herstellung) sowie Landwirtschaft.
Water availability plays an important role in the expansion planning of utility-scale solar power plants, especially in the arid regions of the Middle East and North Africa. Although these power plants usually account for only a small fraction of local water demand, competition for water resources between communities, farmers, companies, and power suppliers is already emerging and is likely to intensify in future. Despite this, to date there has been a lack of comprehensive studies analyzing interdependencies and potential conflicts between energy and water at local level. This study addresses this research gap and examines the linkages between water resources and energy technologies at local level based on a case study conducted in Ouarzazate, Morocco, where one of the largest solar power complexes in the world was recently completed. To better understand the challenges faced by the region in light of increased water demand and diminishing water supply, a mixed-method research design was applied to integrate the knowledge of local stakeholders through a series of workshops. In a first step, regional socio-economic water demand scenarios were developed and, in a second step, water saving measures to avoid critical development pathways were systematically evaluated using a participatory multi-criteria evaluation approach. The results are a set of water demand scenarios for the region and a preferential ranking of water saving measures that could be drawn upon to support decision-making relating to energy and water development in the region.
The energy sector today accounts for about 10% to 15% of global freshwater withdrawal. Most water in the energy sector is used for generating electricity, especially for cooling processes in thermal power plants. At the same time the demand for electricity is expected to increase significantly due to population growth and economic development in emerging and developing economies. Growing demand is also driven by electrification strategies pursued by industrialized countries to decarbonize their economies. With the global demand for electricity expected to increase significantly in the coming decades also the water demand in the power sector is expected to rise. However, due to the on-going global energy transition, the future structure of the power supply - and hence future water demand for power generation - is subject to high levels of uncertainty because the volume of water required for electricity generation varies significantly depending on both the generation technology and cooling system. In light of these challenges the objective of this analysis is to provide more systematic and robust answers in terms of the impacts of different decarbonization strategies in the electricity sector on water demand at global and regional level. The focus is on operational water use for electricity generation.
Minderungspfade
(2021)