Zukünftige Energie- und Industriesysteme
Die Stadt Mannheim kann spätestens bis zum Jahr 2050 vollständig klimaneutral werden und damit einen maßgeblichen Beitrag zur Umsetzung der Ziele des Pariser Klimaabkommens auf kommunaler Ebene leisten. Das ist das zentrale Ergebnis der vorliegenden "Energierahmenstudie Mannheim", die das Energieunternehmen MVV in Abstimmung mit der Stadt beim Wuppertal Institut in Auftrag gegeben hat. Die Studie untersucht und beschreibt die Handlungsmöglichkeiten und Umsetzungsvoraussetzungen in den Bereichen Strom, Wärme, Verkehr und Industrie.
Nicht erst seit dem Klimaabkommen von Paris, welches im Kern eine Begrenzung der menschengemachten globalen Erwärmung auf deutlich unter 2 °C gegenüber vorindustriellen Werten vorsieht, ist offensichtlich, dass eine umfassende Transformation der meisten Wirtschaftssektoren erforderlich ist, um die gesteckten Ziele zu erreichen. Die Transformation erfolgt dabei zum einen durch Steigerung der Energieeffizienz und zum anderen durch eine Dekarbonisierung der bestehenden Prozesse, bei denen heute noch ein hoher Anteil fossiler Energien eingesetzt wird - dies kann gelingen durch eine weitreichende Sektorkopplung, Flexibilisierung und Elektrifizierung bei vollständiger Nutzung Erneuerbarer Energien.
Letzteres stellt auch die Energieversorgung in Rheinland-Pfalz vor einen Paradigmenwechsel: Die schrittweise Transformation eines von konventionellen Energieträgern geprägten Versorgungsystems zu einem durch Erneuerbare Energien dominierten System. Als eines der ersten Bundesländer hat sich Rheinland-Pfalz bereits im Jahr 2014 ein eigenes Klimaschutzgesetz gegeben sowie erstmals im Jahr 2015 ein Landesklimaschutzkonzept (LKSK) erarbeitet, welches energiepolitische Leitplanken für den angestoßenen Transformationsprozess setzt. Die vorliegende Studie im Auftrag des Ministeriums für Umwelt, Energie, Ernährung und Forsten Rheinland-Pfalz beleuchtet die Auswirkungen eines weiteren Ausbaus der Erneuerbaren Energien in Rheinland-Pfalz und der damit verbundenen Flexibilisierung und Dekarbonisierung unterschiedlicher Anwendungsfelder, insbesondere in der Industrie aber auch im ÖPNV und zentraler Wärmeversorgung.
Der Oberbürgermeister der Stadt Wuppertal hat in seinem 100-Tage-Programm das Ziel ausgegeben, die Stadt bis 2035 auf den Weg Richtung Klimaneutralität zu bringen. Das Wuppertal Institut hat in einer Sondierungsstudie die zentralen Handlungsfelder zusammengestellt und hebt hervor, welche Herausforderungen damit verbunden sind. Deutlich wird: Wuppertal alleine kann das nicht schaffen. Es braucht dazu veränderte Rahmenbedingungen auch auf Landes- und Bundesebene, die dieses ambitionierte Ziel unterstützen. Doch bis dahin kann auch die Stadt selbst einiges anstoßen.
A clear understanding of socio-technical interdependencies and a structured vision are prerequisites for fostering and steering a transition to a fully renewables-based energy system. To facilitate such understanding, a phase model for the renewable energy (RE) transition in the Middle East and North Africa (MENA) countries has been developed and applied to the country case of Tunisia. It is designed to support the strategy development and governance of the energy transition and to serve as a guide for decision makers.
The analysis shows that Tunisia has already taken important steps towards a RE transition. According to the MENA phase model, Tunisia can be classified as being in the "Take-Off Renewables" phase. Nevertheless, natural gas still plays the dominant role in Tunisia's highly subsidised electricity generation. In addition to the elevated political uncertainty, there are numerous structural, political, social, and economic challenges within the energy sector that hinder progress in the transition to REs.
Strong support at all levels is needed to promote the breakthrough of RE. This includes more detailed long-term planning and improving the regulatory framework, as well as reducing offtaker risks to improve the bankability of RE projects in order to attract private investment. Furthermore, institutional buy-in needs to be increased and the engagement of key non-state stakeholders must be strengthened.
In light of the growing domestic energy demand and with the on-going global decarbonisation efforts in favour of sustainable fuels, Tunisia would be well advised to embark on a sustainable energy path sooner rather than later to seize economic opportunities that can arise from RE development.
By applying a phase model for the renewables-based energy transition in the MENA countries to Israel, the study provides a guiding vision to support the strategy development and steering of the energy transition process.
The transition towards a renewable-based energy system can reduce import dependencies and increase the energy security in Israel.
Key issues that need to be tackled in order to advance the energy transition in Israel are the expansion of flexibility options, discussion on the long-term role of natural gas, increasing participation and awareness, and exploring the future role of power-to-X in the energy system.
A clear understanding of socio-technical interdependencies and a structured vision are prerequisites for fostering and steering a transition to a fully renewables-based energy system. To facilitate such understanding, a phase model for the renewable energy transition in MENA countries has been developed and applied to the country case of Iraq. It is designed to support the strategy development and governance of the energy transition and to serve as a guide for decision makers.
The transition towards renewable energies is still at a very early stage in Iraq. Despite the drop in renewable technology costs over the last decade and the increasing deployment of renewables in the MENA region, the pathway towards renewable energies seems to be challenging for Iraq. This is attributable to the country's political instability and the dominant economic role played by the fossil fuel sector. The most pressing concern for Iraq's electricity sector is the need to secure a constant electricity supply. At operational level, Iraq's electricity infrastructure requires significant investment to rebuilt, retro-fit and expand its overall capacity and to improve efficiencies.
Yet, the need to rebuild the energy system after the war and the subsequent violent conflicts could offer an opportunity for a transition towards renewables that would benefit Iraq in the short term and also provide a long-term economic development perspective. To take advantage of this opportunity, Iraq needs to improve the framework conditions for renewable energies and raise awareness about the benefits it offers. Renewable energy regulations need to be introduced, market development supported, a realistic timeframe for the transition process established and an appropriate and reliable legal framework developed. The results of the analysis along the transition phase model towards 100% renewables are intended to stimulate and support the discussion about Iraq's future energy system by providing an overarching guiding vision for the energy transition and the development of appropriate policy strategies.
A clear understanding of socio-technical interdependencies and a structured vision are prerequisites for fostering and steering a transition to a fully renewables-based energy system. To facilitate such understanding, a phase model for the renewable energy transition in MENA countries has been developed and applied to the country case of Egypt. It is designed to support the strategy development and governance of the energy transition and to serve as a guide for decision makers.
Egypt, with its abundant solar and wind energy potential, has excellent preconditions to embark on the pathway towards a 100% renewable energy system. The country has successfully taken its first steps in this direction by attracting international finance and implementing several large-scale solar and wind projects. Yet, while Egypt has made significant progress, increased efforts are still required if the country aims to proceed towards a fully renewables-based system. The stronger system integration of renewable energies requires, for example, an alignment of regulations for the electricity, mobility and heat sectors. In this context, Egypt would be well advised to develop and implement an overall strategy for the energy transition that includes not only electricity generation but all sectors.
By placing a stronger focus on renewable energy, also to decarbonise the industrial sector, Egypt, as Africa's second most industrialised country, could seize the opportunity for economic development within a decarbonising global economy. The results of the analysis along the transition phase model towards 100% renewable energy are intended to stimulate and support the discussion on Egypt's future energy system by providing an overarching guiding vision for the energy transition and the development of appropriate policies.
A clear understanding of socio-technical interdependencies and a structured vision are prerequisites for fostering and steering a transition to a fully renewables-based energy system. To facilitate such understanding, a phase model for the renewable energy transition in MENA countries has been developed and applied to the country case of Algeria. It is designed to support the strategy development and governance of the energy transition and to serve as a guide for decision makers.
The analysis shows that Algeria has already taken first steps towards a renewable energy transition. According to the MENA phase model, Algeria can be classified as entering the "Take-Off Renewables" phase. Nevertheless, fossil fuels still play a dominant role in the Algerian energy sector and in the economy as a whole. To support the renewables take-off, strong support is therefore needed at all levels. Only then can the necessary framework conditions be created to encourage participation and to attract investment from the private sector. To this end, a long-term energy strategy should to be developed that takes into account the renewable energy potential to support an efficient transformation of the Algerian energy supply and enables a smooth transition.
A clear understanding of socio-technical interdependencies and a structured vision are prerequisites for fostering and steering a transition to a fully renewables-based energy system. To facilitate such understanding, a phase model for the renewable energy (RE) transition in the Middle East and North Africa (MENA) countries has been developed and applied to the country case of Jordan. It is designed to support the strategy development and to serve as a guide for decision-makers.
The analysis shows that Jordan has taken essential steps towards a RE transition. According to the MENA energy transition phase model, Jordan can be classified as being in a transitional stage between the first phase, "Take-Off Renewables", and the second phase, "System Integration". However, fossil fuels continue to play a dominant role in the Jordanian energy sector, and the fluctuating world market prices for fossil fuels impact the economy.
The expansion of domestically produced RE could significantly contribute to reducing Jordan's high imports of fossil fuels. This simultaneously increases energy security and reduces the trade deficit. To move towards a sustainable energy system, Jordan needs to embrace comprehensive flexibility measures. These include developing storage options, improving load management, upgrading the existing grid infrastructure, enhancing energy efficiency, exploring the electrification of end use sectors, and creating strong cooperation between stakeholders.
A clear understanding of socio-technical interdependencies and a structured vision are prerequisites for fostering and steering a transition to a fully renewables-based energy system. To facilitate such understanding, a phase model for the renewable energy (RE) transition in the Middle East and North Africa (MENA) countries has been developed and applied to the country case of Lebanon. It is designed to support the strategy development and governance of the energy transition and to serve as a guide for decision makers.
Lebanon's energy transition towards REs stands at a very early stage of the first transformation phase. Although abundant solar and wind energy potential does exist, the pathway towards a 100% renewables energy seems very challenging for Lebanon, as a consequence of highly unstable political conditions. The most pressing concern for Lebanon's electricity sector is combating the country's fiscal imbalance, while providing secure and reliable electricity supply. At the operational level, Lebanon's grid network requires significant investments to rebuild, retrofit, and expand the overall capacity and energy efficiency improvements.
The need to strengthen the energy system after the political turmoil of the civil war is likely to offer several long-term opportunities, such as developing the economy, reducing environmental pollution, and increasing the energy security. In order to move forward into the first phase, Lebanon needs to improve the framework conditions for REs and implement its visions. It needs to support the market development in a realistic timeframe, where structural reforms represent the highest priority.
The results of the analysis along the transition phase model towards 100% renewables energy are intended to stimulate and support the discussion on Lebanon's future energy system by providing an overarching guiding vision for the energy transition and the development of appropriate policies.
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.
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.
Transformation zur "Grünsten Industrieregion der Welt" - aufgezeigt für die Metropole Ruhr : Studie
(2021)
Industrieregionen stehen vor besonderen Herausforderungen für eine nachhaltige und klimagerechte Entwicklung, sie müssen zu "grünen Industrieregionen" werden. Doch was macht eine "grüne Industrieregion" überhaupt aus? Die vorliegende Studie des Wuppertal Instituts verdeutlicht, worauf es besonders ankommt, wie Fortschritte gemessen werden können und welche Maßnahmen die erforderliche Transformation beschleunigen können. Das Autorenteam schätzt die Vorreiterpotenziale der Metropole Ruhr für sieben Indikatoren ein, die besonders deutlich bei der Umweltwirtschaft und der Entwicklung der Grün- und Erholungsflächen herausstechen.
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.
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.
Smart Energy in Haushalten : Technologien, Geschäftsmodelle, Akzeptanz und Wirtschaftlichkeit
(2021)
Die Digitalisierung des deutschen Energiesystems wird als eine wichtige Voraussetzung für das Gelingen der Energiewende gesehen. Insbesondere im Bereich der Elektrizitätsversorgung kann Digitalisierung die Flexibilitätspotenziale, z. B. für das Verteilnetz, steigern. Dafür sollen klassische Energietechnologien (der Erzeugung, Speicherung und Verbraucher) mit Informations- und Kommunikationstechnologien (IKT) oder "Internet-of-Things"-Technologien (IoT) zusammenspielen. Auf diese Weise wandelt sich das Energieversorgungssystem beispielsweise im Elektrizitätsbereich von einem unidirektionalen Netz zu einem bidirektionalen Netzwerk, ein sogenanntes Smart Grid.
Sowohl Energie als auch energiebezogene Informationen können zwischen Verbrauchern, Netzbetreibern sowie zwischen Energieerzeugungsanlagen und Energiespeichern ausgetauscht werden. In diesem Zusammenhang entwickeln Unternehmen innovative smarte Produkte und Dienstleistungen für private Haushalte, z. B. Smart Home Systeme, Energiemanagementsysteme, Smart Meter, intelligente Beleuchtungssysteme oder sie bieten digitale Dienstleistungen wie z. B. die datenbasierte Fernwartung von Photovoltaik-Anlagen an.
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.