Zukünftige Energie- und Industriesysteme
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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.
In the energy sector, few topics, if any, are more hyped than hydrogen. Countries develop hydrogen strategies to provide a perspective for hydrogen production and use in order to meet climate-neutrality goals. However, in this topical field the role of water is less accentuated. Hence, in this study, we seek to map the interrelations between the water and wastewater sector on the one hand and the hydrogen sector on the other hand, before reflecting upon our findings in a country case study. We chose the Hashemite Kingdom of Jordan because (i) hydrogen is politically discussed not least due to its high potentials for solar PV, and (ii) Jordan is water stressed - definitely a bad precondition for water-splitting electrolyzers. This research is based on a project called the German-Jordanian Water-Hydrogen-Dialogue (GJWHD), which started with comprehensive desk research mostly to map the intersectoral relations and to scope the situation in Jordan. Then, we carried out two expert workshops in Wuppertal, Germany, and Amman, Jordan, in order to further discuss the nexus by inviting a diverse set of stakeholders. The mapping exercise shows various options for hydrogen production and opportunities for planning hydrogen projects in water-scarce contexts such as Jordan.
Do ngân sách các-bon còn lại trên toàn thế giới đang giảm nhanh chóng, các quốc gia trên toàn cầu đang tìm kiếm các giải pháp để hạn chế phát thải khí nhà kính. Ngành công nghiệp sản xuất và sử dụng than là một trong những ngành phát thải nhiều các-bon nhất, do vậy, các khu vực khai thác than sẽ bị ảnh hưởng đặc biệt bởi quá trình chuyển đổi sang hệ thống năng lượng và kinh tế trung hòa với khí hậu. Tại các khu vực thực hiện chuyển đổi, những thách thức không chỉ tồn tại trong lĩnh vực sản xuất năng lượng, bảo vệ môi trường, mà còn ở các lĩnh vực kinh tế và xã hội - thường được biết đến với khái niệm "Chuyển đổi Công bằng". Các cấp ra quyết định ở các khu vực khai thác than rất cần có các công cụ hỗ trợ giúp họ xác định các giải pháp chuyển đổi, vừa giúp đa dạng hóa nền kinh tế, vừa hỗ trợ người lao động và cộng đồng địa phương. Viện Wuppertal mong muốn hỗ trợ nâng cao năng lực cho các khu vực khai thác than trên toàn thế giới thông qua Bộ công cụ Chuyển dịch Công bằng – một tài liệu tổng quát, minh họa những thách thức và cơ hội của quá trình chuyển đổi bền vững. Bộ Công cụ này bao gồm kiến thức về xây dựng chiến lược, đưa ra các khuyến nghị về quản trị quá trình chuyển đổi, thúc đẩy việc làm bền vững, nêu bật các lựa chọn công nghệ và đề cập tới vấn đề phục hồi môi trường, tái sử dụng các cơ sở hạ tầng sản xuất than. Bộ Công cụ này được xây dựng dựa trên các nghiên cứu của Viện Wuppertal trong khuôn khổ “Sáng kiến của Liên Minh Châu Âu về chuyển dịch tại các khu vực khai thác than” và các kinh nghiệm thực tế của một số khu vực khai thác than trên toàn thế giới.
Wo werden zukünftig grüner Wasserstoff und synthetische Kraftstoffe produziert? Zu welchen Kosten können diese erzeugt werden? Und welchen Anteil hätte eine heimische Produktion daran? Die Ergebnisse der Studie MENA-Fuels zeigen, dass im Nahen Osten und Nordafrika langfristig sehr große kostengünstige Potenziale für grünen Strom, Wasserstoff und Synfuels bestehen. Die Berücksichtigung von Investitionsrisiken hat jedoch einen signifikanten Einfluss auf deren Kosten und damit auf die Wahl der potenziellen Exportländer.
Nigeria is Africa's top cement producer and could be on course to be one of the top producers globally. The goal of this study is to identify and critically examine the pathways available to Nigeria to meet its decarbonisation goals in the cement sector. Based on a literature review, the study assesses demand drivers and decarbonisation potentials for the sector. It then presents two different quantitative pathways for growth in production of cement by 2050, and three different pathways for decarbonisation of the sector. Using published data and a scenario analysis tool, the study calculates how the sector's emissions might evolve under each of these pathways. The results indicate that, in the most ambitious scenario, emissions from the sector can plateau by the late 2030s, resulting in an overall increase of 21% by 2050 (compared to 2015 levels). Achieving this scenario is necessary in order to put the sector on a path to net zero emissions beyond 2050. The scenario is driven by reductions in both energy-related and process emissions, as well as a small share of carbon capture and storage and demand management. A moderately ambitious scenario that relies mostly on savings on energy-related emissions results in an 84% increase in emissions by 2050. Finally, the Business-as-Usual scenario results in an almost tripling of emissions by 2050. The results indicate a strong potential for policies to drive improvements in energy efficiency and clinker-to-cement ratio. Critical areas of uncertainty within the assumptions include the production rates (including the evolution of the export market) and the fuel mix.
22 years are left until the German target for climate neutrality should be reached. For the industrial sector, this implies a fundamental change and an acceleration of emission reduction, as from 2000 to 2021 the sector has reduced its greenhouse gas (GHG) emissions by only 13% (ERK, 2022). For the large structures, plants and assets that are characteristic for the energy intensive industrial sectors, the timespan implies no room for delay. One sector facing particular challenges is the chemical industry. Here, fossil resources are used not only for energetic purposes but for feedstock as well, in the petrochemical industry in particular. The efforts made in the petrochemical sector thereby not only affects the sectors own emissions, but the chemicals value chain at large, including the management of end-of-life products. The dependency on energetic resources for material use also means that there is a particular connection from the chemical industry to the energy system at large, which also entails special consideration.
The chemical industry also has a particular relevance to the Antwerp-Rotterdam-Rhine-Ruhr-Area (ARRRA) which hosts several large petrochemical clusters in Germany as well as the Netherlands and Belgium, with complexly interlinked production chains. In reaching the climate targets, these regions especially face significant changes and may have the opportunity to position themselves as frontrunners for industrial transformation. That is, if a successful strategy can be found.
In the recent years, numerous scenario analyses and roadmaps have been released drawing out pathways for chemical industries to develop in line with national and international climate targets. This can entail mapping of technological options, important prerequisites, particular challenges as well as important opportunities and timeframes. This meta-analysis summarizes and compares the findings of some of the most recent previous works at the national, European and global level. As the goal is to investigate the various strategic options and development paths for Germany and the ARRRA, it has a particular focus on roadmaps for Germany, the Netherlands and Belgium. It takes a quantitative as well as qualitative approach, looking both at resource and production volumes, different emission reduction strategies relative importance, as well as policy recommendations and other important framework conditions. A particular focus is put on the use of non-fossil feedstocks to reduce emissions.
Die chemische Industrie ist auch für die Antwerpen-Rotterdam-Rhein-Ruhr-Region (engl. Antwerp-Rotterdam-Rhine-Ruhr-Area, kurz ARRRA) von besonderer Bedeutung, die mehrere große petrochemische Cluster in Deutschland, den Niederlanden und Belgien mit komplex vernetzten Produktionsketten beherbergt. Bei der Umsetzung der Klimaziele stehen diese Regionen vor bedeutenden Veränderungen und haben zugleich die Chance, sich als Vorreiter der Industrietransformation zu positionieren. Dafür müssen erfolgreiche Strategien für den Wandel identifiziert und angewendet werden.
In den letzten Jahren wurden zahlreiche Szenarioanalysen und Roadmaps veröffentlicht, in denen Entwicklungspfade für die chemische Industrie im Einklang mit nationalen und internationalen Klimazielen aufgezeigt werden. Diese können eine Darstellung von technologischen Optionen, wichtigen Voraussetzungen, besonderen Herausforderungen sowie bedeutsamen Chancen und zeitlichen Entwicklungen beinhalten. Die vorliegende Metaanalyse fasst die Ergebnisse einige der aktuellsten Arbeiten auf nationaler, europäischer und globaler Ebene zusammen und vergleicht diese kritisch miteinander. Da das Kernziel der vorliegenden Analyse darin besteht, die verschiedenen strategischen Optionen und Entwicklungspfade für Deutschland und die ARRRA zu untersuchen, liegt der Schwerpunkt der Arbeit auf Publikationen mit Fokus Deutschland, den Niederlanden und Belgien. Dabei wird sowohl ein quantitativer als auch ein qualitativer Ansatz verfolgt, der die Ressourcen- und Produktionsmengen, die relative Bedeutung verschiedener Emissionsminderungsstrategien sowie auch politische Empfehlungen und andere wichtige Rahmenbedingungen berücksichtigt. Der Fokus liegt dabei auf Strategien für den Einsatz alternativer nicht-fossiler Feedstocks und die Minderung damit verbundener Emissionen.