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Facing an ever-increasing global consumption of natural resources and related environmental as well as socioeconomic challenges, the transition towards a circular economy will be of crucial importance. The issue is high on the political agenda, especially since the European Commission published its Circular Economy Action Plan in December 2015. Apparently different stakeholders have very different perceptions of the concept as well as different expectations for its implementation. During a workshop series by the Friedrich Ebert Stiftung, experts from policy, science, administration, industry and unions discussed key issues for the circular economy: What's the status quo in Germany? How can the circular economy be implemented in a comprehensive and efficient way? Which instruments are available? Is the legal framework on EU and national level sufficient for the evolvement of a circular economy? What is the role of the consumer? What are the economic potentials especially with regard to job creation? How can research and innovation policy contribute to this process? This paper aims to summarise the different discussions.
Stepping up waste prevention : challenges and opportunities for national waste prevention programmes
(2017)
To minimize the impact of end-of life vehicles on the environment they have to be managed in accordance with the legal requirements. Against this background it is important to comprehend the whereabouts of permanently decommissioned passenger cars. From the available statistical sources it was only possible to account for the whereabouts in parts for the last years. The subject-matter of the research project was the closure of this "statistical gap" to the maximum extent possible. The objectives of the project were the identification of the possible reasons underlying the "statistical gap", the determination, itemisation and, to the maximum extent possible, quantification of information on the actual whereabouts of permanently decommissioned vehicles and the development of measures and instruments that can be used to permanently improve the data situation.
Altfahrzeuge enthalten sowohl Schadstoffe als auch Wertstoffe und sind daher nach den Vorgaben der Altfahrzeugverordnung ordnungsgemäß zu behandeln und zu verwerten. Gefahren für die Umwelt können so vermieden und Wertstoffe zurückgewonnen werden. Dementsprechend ist es wichtig, dass die ordnungsgemäße Behandlung und Verwertung von Altfahrzeugen auch belegt werden kann. Grundlegend ist vor diesem Hintergrund, dass nachvollziehbar ist, wo Fahrzeuge verbleiben, die außer Betrieb gesetzt und in Deutschland nicht wieder zum Straßenverkehr zugelassen werden. Mit den vorliegenden statistischen Angaben war dies in den letzten Jahren nur teilweise möglich. Beispielsweise war vor Projektbeginn für das Jahr 2013 der Verbleib von 1,18 Millionen Fahrzeugen nicht aufklärbar. Ziel des Vorhabens war es daher, den Verbleib von außer Betrieb gesetzten Fahrzeugen möglichst lückenlos aufzuklären. Darauf aufbauend erarbeiteten die Autoren Vorschläge, um die Datenlage dauerhaft zu verbessern.
Renewable energy targets in the European Union (EU) have raised the demand for timber and are expected to increase dependence on imports. However, EU timber consumption levels are already disproportionally high compared to the rest of the world. The question is, how much timber is available for the EU to sustainably harvest and import, in particular considering sustainable forest management practices, a safe operating space for land-system change, and the global distribution of "common good" resources. This article approaches this question from a supply angle to develop a reference value range for the current as well as future sustainable supply of timber at the EU-27 and global levels. For current supply estimates, national-level data on forest area available for wood supply, productivity in that area, as well as the rate available for harvest were collected and aggregated into three potential supply scenarios. For future supply estimates, a safe operating space scenario halting land use change, a sensitivity analysis, and a literature review were performed. To provide both a comparison of global versus EU sustainable supply capacities and to develop a benchmark toward evaluating and comparing levels of consumption to sustainable supply capacities, per capita calculations were made. Results revealed that the per capita sustainable supply potential of EU forests is estimated to be around three times higher than the global average in 2050. Whether a global or EU reference value is more appropriate for EU policy orientation, considering both strengthened economic and cultural ties to the forest in forest-rich countries as well as the need to prevent problem shifting associated with exporting land demands abroad, is discussed. Further research is needed to strengthen and harmonize data, improve methods for modeling future scenarios and incorporate interdisciplinary and multi-stakeholder perspectives toward the development of robust and politically relevant reference values for sustainable consumption levels.
The contribution of the EU bioeconomy to sustainable development depends on how it is implemented. A high innovation potential is accompanied by considerable risks, in particular regarding the exacerbation of global land use conflicts. This article argues that a systemic monitoring system capable of connecting human-environment interactions and multiple scales of analysis in a dynamic way is needed to ensure that the EU bioeconomy transition meets overarching goals, like the Sustainable Development Goals. The monitoring should be centered around a dashboard of key indicators and targets covering environmental, economic, and social aspects of the bioeconomy. With a focus on the land dimension, this article examines the strengths and weakness of different economic, environmental and integrated models and methods for monitoring and forecasting the development of the EU bioeconomy. The state of research on key indicators and targets, as well as research needs to integrate these aspects into existing modeling approaches, are assessed. The article concludes with key criteria for a systemic bioeconomy monitoring system.