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In this paper three approaches on transitions pathways are combined to study the role of agricultural nature conservation in the Dutch land use domain for achieving internationally agreed climate and biodiversity targets. The three perspectives used are the Multilevel Perspective (MLP), Initiative Based Learning (IBL) and Integrated Assessment Modelling (IAM). The analysis provides insights in how the combination of different research approaches can lead to more comprehensive policy advice on how agricultural nature conservation could help to achieve internationally agreed sustainability goals related to climate change and biodiversity. IAM shows under which conditions agricultural nature conservation could be consistent with European and global long-term goals regarding food security, biodiversity and climate. MLP provides insight into the extent in which agricultural nature conservation has affected or changed the existing nature and agricultural regimes. IBL, finally, reveals the challenges of encouraging agricultural nature conservation with policy measures. Our analysis shows that a combined perspective provides a deeper understanding of the underlying processes, reasons and motives of agricultural nature conservation, leading to more comprehensive policy recommendations.
CICERONE aims to bring national, regional and local governments together to jointly tackle the circular economy transition needed to reach net-zero carbon emissions and meet the targets set in the Paris Agreement and EU Green Deal. This document represents one of the key outcomes of the project: a Strategic Research & Innovation Agenda (SRIA) for Europe, to support owners and funders of circular economy programmes in aligning priorities and approaching the circular economy transition in a systemic way.
Das Ende eines Mythos
(2020)
Wie lange können wir noch am Konzept der "Entwicklung" festhalten?
Schon lange haben die Folgen der Klimakrise, der wachsende Ressourcenmangel und eine immer größer werdende Schere zwischen Arm und Reich der schillernden Idee des Fortschritts ihren Glanz geraubt. Die Politik im Geiste der "Entwicklung" beruht nicht nur auf einem schwammigen Konzept, so der Autor, sondern sie ist auch nicht mit einem nachhaltigen Verständnis von globalem Zusammenleben vereinbar.
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.
Wissenschaft und Bildung sind zentrale Felder und ein Hebel für eine nachhaltige Entwicklung. Mit dem neu entwickelten studentischen Lehr- und Lernformat "Transformative Innovation Lab" - kurz TIL - sollen Studierende dazu befähigt werden, selbstständig transformativ zu forschen. Dazu entwickelten und testeten die Forschenden unter Leitung des Wuppertal Instituts im Projekt "Entwicklung, Erprobung und Verbreitung neuer Qualifizierungsangebote für "Change Agents" zu transformativem Lernen am Beispiel Reallabore" (EEVA) das neue Lernkonzept. Die detaillierten Ergebnisse und zahlreiche Tipps zur Umsetzung haben die Projektbeteiligten in dem vorliegenden Praxis-Handbuch zusammengefasst, das sich an Lehrpersonen sowie weitere Multiplikatorinnen und Multiplikatoren richtet.
Als Herausforderung der Verkehrswende werden häufig die möglicherweise wegfallenden Arbeitsplätze diskutiert. Denn die Beschäftigung der Automobilindustrie in Deutschland gilt als wichtiges Argument für einen sozialverträglichen Strukturwandel. Aber auch die Wirtschaftszweige des Umweltverbunds bieten viele Arbeitsplätze.
Vor diesem Hintergrund untersucht die vorliegende Studie des Wuppertal Instituts und des Instituts Arbeit und Technik der Westfälischen Hochschule die Beschäftigtenzahlen in Teilmärkten der Fahrradwirtschaft sowie deren Umsatzentwicklung.
Wie können Menschen befähigt werden, ihr Lebensumfeld entsprechend den eigenen Bedürfnissen und Wertvorstellungen zu gestalten? Das war die zugrunde liegende Fragestellung des Dortmunder Projekts "Psychologisches und kommunales Empowerment durch Partizipation im nachhaltigen Stadtumbau" (DoNaPart).
Im Zentrum des Projekts stand die Initiierung eines urbanen Reallabors in dem Soziale Stadt Programmgebiet Westerfilde/Bodelschwingh, innerhalb dessen ein nachhaltiger Transformationsprozess in den Bereichen Energie, Mobilität und Konsum entworfen und durchgeführt wurde.
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.