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Increasing urbanisation and climate change belong to the greatest challenges of the 21st century. A high share of global greenhouse gas emissions are estimated to originate in urban areas (40 % to 78 % according to UN Habitat 2010). Therefore, low carbon city strategies and concepts implicate large greenhouse gas (GHG) mitigation potentials. At the same time, with high population and infrastructure densities as well as concentrated economic activities, cities are particularly vulnerable to the impacts of climate change and need to adapt. Scarce natural resources further constrain the leeway for long-term, sustainable urban development. The Low Carbon Future Cities (LCFC) project aims at tapping this three-dimensional challenge and will develop an integrated strategy / roadmap, balancing low carbon development, gains in resource efficiency and adaptation to climate change. The study focuses on two pilot regions - one in China (Wuxi) and one in Germany (Düsseldorf+) - and is conducted by a German-Chinese research team supported by the German Stiftung Mercator. The paper gives an overview of first outcomes of the analysis of the status quo and assessment of the most likely developments regarding GHG emissions, climate impacts and resource use in Wuxi. The project developed an emission inventory for Wuxi to identify key sectors for further analysis and low carbon scenarios. The future development of energy demand and related CO2 emissions in 2030 were simulated in the current policy scenario (CPS), using five different sub-models. Selected aspects of Wuxi's current material and water flows were analysed and modelled for energy transformation and the building sector. Current and future climate impacts and vulnerability were investigated. Recent climatic changes and resulting damages were analysed, expected changes in temperature and precipitation in the coming four decades were projected using ensembles of three General Circulation Models. Although Wuxi's government started a path to implement a low carbon plan, the first results show that more ambitious efforts are needed to overcome the challenges faced.
The Low Carbon Future Cities (LCFC) project aims at facing a three dimensional challenge by developing an integrated city roadmap balancing: low carbon development, gains in resource efficiency and adaptation to climate change. The paper gives an overview of the first outcomes of the analysis of the status quo and assessment of the most likely developments regarding GHG emissions, climate impacts and resource use in Wuxi - the Chinese pilot city for the LCFC project. As a first step, a detailed emission inventory following the IPCC guidelines for Wuxi has been carried out. In a second step, the future development of energy demand and related CO2 emissions in 2050 were simulated in a current policy scenario (CPS). In parallel, selected aspects of material and water flows for the energy and the building sector were analyzed and modeled. In addition, recent and future climate impacts and vulnerability were investigated. Based on these findings, nine key sectors with high relevance to the three dimensions could be identified. Although Wuxi's government has started a path to implement a low carbon plan, the first results show that, for the shift towards a sustainable low carbon development, more ambitious steps need to be taken in order to overcome the challenges faced.
Die Herstellung petrochemischer Grundstoffe ist sowohl energetisch als auch stofflich in Deutschland für rund 20 % der Nachfrage nach Mineralölprodukten verantwortlich. Das Gros fließt in die Produktion von Olefinen und Aromaten, welche als sogenannte Plattformchemikalien wiederum die Ausgangsbasis für die Herstellung von Polymeren und Kunststoffen darstellen. Letztgenannte sind von größter Relevanz für die Branche: Von den knapp 60 Milliarden Euro Umsatz, welche die deutsche petrochemische Industrie im Jahr 2021 generierte, entfiel gut die Hälfte auf das Marktsegment der Polymere. Daraus resultieren jedoch über die gesamte Wertschöpfungskette CO2-Emissionen von rund 50 Millionen Tonnen jährlich.
Eine Transformation der heutigen auf fossilen Rohstoffen basierenden petrochemischen Industrie hin zu einem auf erneuerbaren Rohstoffen basierenden zirkulären System kann somit einen bedeutenden Beitrag zu einer primärenergetisch effizienten und klimaneutralen Wirtschaftsweise leisten. Das vom Wuppertal Institut geleitete Forschungsprojekt GreenFeed exploriert gemeinsam mit den Verbundpartnern Karlsruher Institut für Technologie und Deutsches Biomasseforschungszentrum mögliche Pfade hin zu einem solchen System.
Vor diesem Hintergrund wird im vorliegenden Papier zunächst das heutige System der ökonomischen und stofflichen Synergiebeziehungen zwischen den Raffinerien und der chemischen Industrie analysiert. Im geografischen Fokus stehen dabei Deutschland und der ARRRA-Raum als bedeutendste Chemie-Region innerhalb Europas sowie inhaltlich der sehr relevante Teilbereich der Polymer-Produktion. Die Kerninhalte des Papiers sind:
1) Charakterisierung des petrochemischen Metabolismus in Deutschland, einschließlich Produktions-, Energie-, Feedstock- und Kohlenstoffbilanz sowie Infrastruktur- und Transport-Verflechtungen innerhalb dieses Systems und
2) regionale Vertiefungen in Form von insgesamt acht Steckbriefen über alle petrochemischen Kunststoff-Regionen in Deutschland sowie des Antwerpener und Rotterdamer Clusters.
The paper describes quantitative scenarios on a possible evolution of the EU petrochemical industry towards climate neutrality. This industry will be one of the remaining sectors in a climate neutral economy still handling hydrocarbon material to manufacture polymers. Concepts of a climate neutral chemical industry stress the need to consider the potential end-of-life emissions of polymers produced from fossil feedstock and draft the vision of using renewable electricity to produce hydrogen and to use renewable (hydro)carbon feedstock. The latter could be biomass, CO2 from the air or recycled feedstock from plastic waste streams.
The cost-optimization model used to develop the scenarios describes at which sites investments of industry in the production stock could take place in the future. Around 50 types of products, the related production processes and the respective sites have been collected in a database. The processes included cover the production chain from platform chemicals via intermediates to polymers. Pipelines allowing for efficient exchange of feedstock and platform chemicals between sites are taken into account as well. The model draws on this data to simulate capacity change at individual plants as well as plant utilization. Thus, a future European production network for petrochemicals with flows between the different sites and steps of the value chain can be sketched.
The scenarios described in this paper reveal how an electrification strategy could be implemented by European industry over time with minimized societal costs. Today's existing assets as well as geographical variance of energy supply and the development of demand for different plastic sorts are the major model drivers.
Finally, implications for the chemical industry, the energy system and national or regional governments are discussed.
Treibhausgasneutralität in Deutschland bis 2045 : ein Szenario aus dem Projekt SCI4climate.NRW
(2023)
Die klimapolitischen Ziele Deutschlands und der EU machen eine sehr schnelle und tiefgreifende Transformation sowohl der Energieversorgung als auch der energieverbrauchenden Sektoren notwendig. Diese Transformationsherausforderung betrifft nicht zuletzt die energieintensive Industrie in Deutschland, die vor grundlegenden technologischen Veränderungen wichtiger Produktionsprozesse steht. Die Herausforderungen für die Industrie werden durch die aktuelle Energiekrise weiter verschärft.
Vor diesem Hintergrund stellt das hier vorgestellte Klimaschutzszenario "SCI4climate.NRW-Klimaneutralität" (S4C-KN), das im Rahmen des vom Land NRW finanzierten Forschungsprojekts "SCI4climate.NRW" entwickelt wurde, die möglichen künftigen Entwicklungen in der energieintensiven Industrie in den Mittelpunkt der Analyse. Das Szenario analysiert diese Entwicklungen im Kontext eines gesamtwirtschaftlichen Transformationspfads hin zu einem klimaneutralen Deutschland im Jahr 2045.