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    net zero plastics – mean feedstock shares (%) across 10 scenarios from 7 reports.png – graphic (png) (copy)

    Net-Zero Chemical Industry – Mean Feedstock Shares (%) Across 16 Scenarios From 9 Reports – Graphic (PNG)

    Markets & Economy, Policy, Sustainability & Health

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    2024-11

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    The graph illustrates the mean feedstock shares projected for the 2050 net-zero chemical industry, based on 16 scenarios across 9 reports. The chart shows a diverse mix of feedstocks, with CCU (33%) and recycling (20%) playing significant roles alongside biomass (22%), while fossil & CCS still account for 24% of the feedstock share.

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    alternatives naphtha – den kreislauf für kunststoffe und reifen schließen: pyrolyseöl als chemischer rohstoff (gastbeitrag teil 3) (pdf)

    Alternatives Naphtha – Den Kreislauf für Kunststoffe und Reifen schließen: Pyrolyseöl als chemischer Rohstoff (Gastbeitrag Teil 3) (PDF)

    Markets & Economy, Technology

    1 Page
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    2024-11

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    In den beiden vorangegangenen Artikeln dieser Serie wurde das Konzept des alternativen Naphthas als Ersatz für fossile Rohstoffe in Raffinerien und Steamcrackern vorgestellt. In diesem dritten Artikel konzentriert sich die Diskussion auf Pyrolyseöl, das durch chemisches Recycling von Kunststoffabfällen und Reifen gewonnen wird, und warum dies ein wichtiges „alternatives Naphtha“ für Raffinerien und Steamcracker ist.

    Relevante Anteile erneuerbarer Chemikalien und Polymere sind ohne „alternatives Naphtha“ nicht möglich. Ohne eine Abkehr von fossilem Naphtha wird es keine signifikante Defossilisierung des Chemiesektors geben.

    Dieser Artikel ist im Rahmen einer Serie von Gastbeiträgen im CHEManager erschienen. Es handelt sich um „Alternatives Naphtha Teil 3“ – aus CHEManager 11/2024.

    Hier finden sie den Artikel auch bei CHEManager.

     

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    alternatives naphtha – herstellung und nutzung – wie erneuerbare rohstoffe zu naphtha verarbeitet werden (gastbeitrag teil 2) (pdf)

    Alternatives Naphtha – Herstellung und Nutzung – Wie erneuerbare Rohstoffe zu Naphtha verarbeitet werden (Gastbeitrag Teil 2) (PDF)

    Markets & Economy, Technology

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    2024-10

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    Im ersten Artikel dieser dreiteiligen Serie wurde das Konzept „Alternatives Naphtha“ als Ersatz für fossile Rohstoffe in Raffinerien und Steamcrackern vorgestellt. Relevante Mengen erneuerbarer Chemikalien und Polymere sind ohne alternatives Naphtha nicht realisierbar, eine signifikante Defossilisierung des Chemiesektors erfordert den Verzicht auf fossiles Naphtha. Im zweiten Artikel wird die Herstellung und Nutzung von alternativem Naphtha genauer beleuchtet.

    Biobasierte Rohstoffe wie Fette, Öle und Schmierstoffe (Triglyceride) können fossile Erdölrohstoffe ersetzen und in bestehenden Raffinerien mitverarbeitet werden. Dies ist attraktiv, da Raffinerien ohne große Investitionen Biokraftstoffe und biobasierte Grundchemikalien produzieren können. Eine Vorbehandlung der Rohstoffe kann dabei erforderlich sein.

    Dieser Artikel ist im Rahmen einer Serie von Gastbeiträgen im CHEManager erschienen. Es handelt sich um „Alternatives Naphtha Teil 2“ – aus CHEManager 10/2024.

    Hier finden sie den Artikel auch bei CHEManager.

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    innovative bio based products for a clean transition (pdf)

    Forest-Based Biorefineries: Innovative Bio-Based Products for a clean Transition (PDF)

    Markets & Economy, Policy, Technology

    8 Pages
    387 Downloads

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    2024-10

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    A new study conducted by the nova-Institute and commissioned by the Confederation of European Paper Industries (Cepi) unveils a significant surge in the European biorefinery sector, with forest-based biorefineries more than doubling their turnover to €6 billion since 2020. This remarkable growth underscores the rising demand for sustainable, bio-based alternatives to fossil-based products.

    The research, focused on the pulp and paper industry that produce additional bio-based products which land on the market beyond pulp and paper, identifies a total of 143 biorefineries across Europe, with 126 currently operational and 17 in development. The largest number of biorefineries is in Sweden, Finland, Germany, Portugal and Austria. The study points to a bright future for biorefineries, with projected annual growth rates of up to 5% until 2050.
    The products of these biorefineries provide sustainable solutions across various industries, from aviation to fashion, offering alternatives in materials, chemicals, fuels, food, and pharmaceuticals. Importantly, biorefineries contribute to Europe’s climate targets, with bio-based products already substituting over 3.1 megatons of CO2 emissions that would have been produced by fossil-based industries.

    The study emphasises that these advancements are not replacing traditional pulp and paper-making activities but are creating new revenue streams and increasing resource efficiency, providing a pathway to sustainable economic growth.

    Source: https://www.cepi.org/report-pulp-and-paper-biorefineries-in-europe-innovative-bio-based-products-for-a-clean-transition

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    nova paper #17: science based definition of natural polymers (pdf)

    nova-paper #17: Science-based Definition of Natural Polymers (PDF)

    Markets & Economy, Policy, Sustainability & Health

    22 Pages
    750 Downloads

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    2024-09

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    European policy has defined „natural polymers“ in a way that has caused much concern and debate among scientists and industry, and has created a barrier to innovation. The authors of this report have carried out a comprehensive scientific evaluation of how the scientific literature defines „natural polymers“, and the result is: The European policy definition is partly in clear contrast to the scientific definitions.

    „Occurring in nature“ is the basis for every definition of „natural polymers“ in the scientific literature and in policy. All scientific definitions include biotechnological processes for the production of natural polymers. Not a single definition mentions the place of polymerisation as a criterion – in clear contrast to European policy. Industrial practice confirms this finding: A long list of widely accepted natural polymers includes biotechnologically processed polymers and the place of polymerisation is not a criterion.

    Conclusion: A policy definition of „natural polymers“ that is at odds with almost all scientific definitions and at odds with business reality, and which is a major barrier to innovation, green investment and lower carbon footprints, needs to be revised.
    The essence of the scientific definitions evaluated in this report is simple and leads to the following proposed definition: „Natural polymers are those that occur in nature, are produced in and extracted from nature, or can be produced identically using biotechnological processes“.

    DOI No.: https://doi.org/10.52548/UGBZ5516

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    european bioeconomy in figures 2014–2021 (pdf)

    European Bioeconomy in Figures 2014–2021 (PDF)

    Markets & Economy, Policy, Sustainability & Health

    29 Pages
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    2024-09

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    The bioeconomy in the European Union is a strong contributor to the overall economy and accounts for over 16 million employees and more than 2.3 trillion Euro in turnover across all 27 Member States. In terms of turnover almost half of the 2.3 trillion Euro can be attributed to the food and feed industries, which remain a large part of the EU bioeconomy. Adding to this are the agriculture and forestry sectors providing primary biomass to bioeconomic processes. However, the sectors processing these feedstocks and manufacturing intermediate and end-use products, collectively referred to as the bio-based industries, find themselves contributing on a stable level to the overall bioeconomy and account for almost a third of the overall turnover.

     

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    alternatives naphtha – Artikel 1 im CHEManager

    Alternatives Naphtha – Erneuerbare Kohlenstoffquellen sollen der Defossilisierung der Chemieindustrie einen Schub verleihen (Gastbeitrag Teil 1) (PDF)

    Markets & Economy, Technology

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    Für die Defossilisierung der chemischen Industrie ist es entscheidend, Alternativen zu fossilem Naphtha zu finden. Relevante Anteile erneuerbarer Chemikalien und Polymere sind ohne „alternatives Naphtha“ nicht möglich.

    Das Konzept „alternatives Naphtha“ nutzt die bestehende Raffinerie-, Steamcracker- und Chemieindustrieinfrastruktur, in der ein Teil der fossilen Rohstoffe – Rohöl oder fossiles Naphtha – durch erneuerbare Kohlenstoffalternativen ersetzt werden kann, die aus den drei Quellen Biomasse, CO2 und Recycling stammen.

    Dieser Artikel ist im Rahmen einer Serie von Gastbeiträgen im CHEManager erschienen. Es handelt sich um „Alternatives Naphtha Teil 1“ – aus CHEManager 09/2024.

    Hier finden sie den Artikel auch bei CHEManager.

     

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    swift implementation of eu biotech and biomanufacturing initiative is key to strengthen eu competitiveness and accelerate defossilisation (pdf)

    RCI’s position paper: “Swift implementation of EU biotech and biomanufacturing initiative is key to strengthen EU competitiveness and accelerate defossilisation (PDF)”

    Markets & Economy, Policy, Sustainability & Health

    3 Pages
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    2024-09

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    The Renewable Carbon Initiative’s position paper emphasizes that the EU must swiftly implement its biotechnology and biomanufacturing initiative to accelerate the shift from fossil carbon to renewable sources and boost competitiveness. The Renewable Carbon Initiative (RCI) highlights three key actions:

    1.) Align with Circular Economy Policies: Ensure consistency across EU initiatives to promote renewable carbon from biomass, recycling, and CCU.

    2.) Boost Market Demand: Address the lack of demand for renewable feedstocks by implementing policies to make fossil alternatives less competitive.

    3.) Enable Fossil-to-Renewable Transition: Repurposing current fossil-based manufacturing to use renewable feedstocks. Clear sustainability criteria, access to various biomass sources, and broader definitions of biomanufacturing processes are essential to achieving this transition.

    These actions are vital for achieving net-zero goals and strengthening EU industry.

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    alternative naphtha – technologies and market, status and outlook (pdf)

    Alternative Naphtha – Technologies and Market, Status and Outlook (PDF)

    Markets & Economy, Technology

    188 Pages

     

    2024-07

    2,500 € – 9,000 €Price range: 2,500 € through 9,000 € ex. tax

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    For the defossilisation of the chemical industry, it is crucial to find alternatives to fossil-based naphtha. The “alternative naphtha” concept makes use of existing refinery, steam cracking and chemical industry infrastructure where a proportion of fossil-based feedstocks – crude oil or fossil-based naphthas can be replaced by renewable carbon alternatives derived from the three sources of renewable carbon: CO2, biomass and recycling.

    This new report by nova-Institute presents an analysis of the routes, associated technologies, market players and volumes by which renewable carbon can be introduced to refinery and steam cracking operations as replacement for fossil based feedstocks.

    With 188 pages, 22 tables and illustrated by 48 graphics the report provides a comprehensive view on the growth in capacity for these alternative sources of naphtha as chemical industry feedstock, production routes and the need for “upgrading”, key companies and partnerships and the regulatory environment.

    DOI No.: https://doi.org/10.52548/JICP8041

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    alternative naphtha – technologies and market, status and outlook (pdf)

    Alternative Naphtha – Technologies and Market, Status and Outlook (PDF) – Short Version

    Markets & Economy, Technology

    20 Pages
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    2024-07

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    For the defossilisation of the chemical industry, it is crucial to find alternatives to fossil-based naphtha. The “alternative naphtha” concept makes use of existing refinery, steam cracking and chemical industry infrastructure where a proportion of fossil-based feedstocks – crude oil or fossil-based naphthas can be replaced by renewable carbon alternatives derived from the three sources of renewable carbon: CO2, biomass and recycling.

    This new report by nova-Institute presents an analysis of the routes, associated technologies, market players and volumes by which renewable carbon can be introduced to refinery and steam cracking operations as replacement for fossil based feedstocks.

    With 188 pages, 22 tables and illustrated by 48 graphics the report provides a comprehensive view on the growth in capacity for these alternative sources of naphtha as chemical industry feedstock, production routes and the need for “upgrading”, key companies and partnerships and the regulatory environment.

    DOI No.: https://doi.org/10.52548/JICP8041

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    towards an ambitious industrial carbon management for the eu – a call for speedy and coherent implementation of policy measures (pdf)

    RCI’s position paper: “Towards an ambitious Industrial Carbon Management for the EU – A Call for Speedy and Coherent Implementation of Policy Measures (PDF)”

    Markets & Economy, Policy, Sustainability & Health

    3 Pages
    496 Downloads

    496 Downloads  

    2024-07

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    The Renewable Carbon Initiative’s position paper emphasizes the need for a comprehensive industrial carbon management strategy in the EU that goes beyond CO2 emissions to include all carbon sources, promoting the use of renewable carbon from biomass, CCU, and recycling. It calls for the establishment of a regulatory framework with specific sub-targets and incentives by 2025 to accelerate the adoption of circular carbon technologies and reduce dependence on fossil feedstocks. The paper argues that recognising carbon as a raw material is essential for achieving sustainable carbon cycles and meeting the EU’s climate neutrality goals by 2050.

     

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    24-06-25_Joint-Statement-Biogenic-Carbon-Modelling-PEF-TAB_thumbnail.

    Joint Statement PEF TAB – biogenic carbon modelling (PDF)

    Markets & Economy, Policy, Sustainability & Health

    4 Pages
    499 Downloads

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    2024-06

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    The RCI along with the organisations APAG Oleochemicals Europe, Bio-based Industries Consortium, BioChem Europe, EuropaBio, GO!PHA, IKT Kunststofftechnik Stuttgart and Plastics Europe submitted this Joint Statement to the members of the Technical Advisory Boyard of the Product Environmental Footprint (PEF TAB). The purpose of this submission is to address the ongoing discussions on carbon modelling in the EF, which have been frequently discussed in recent PEF TAB meetings. With this joint statement we advocate for enabling -1/+1 accounting of biogenic and atmospheric carbon in the LCA methodology.

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    Renewable Materials Conference 2024 (Proceedings, PDF) [Digital]

    Renewable Materials Conference 2024 (Proceedings, PDF)

    Markets & Economy, Policy, Sustainability & Health, Technology

     

    2024-06

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    The proceedings of the Renewable Materials Conference 2024 (11-13 June 2024, https://renewable-materials.eu) contain all released presentations, the conference journal, and the press release of the three winners of the Innovation Award “Renewable Material of the Year 2024″.

    Program (PDF)

    Download Conference journal (PDF)

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    Ein Plädoyer für Carbon Capture and Utilisation – Carbon Capture and Utilisation ist viel mehr als nur eine Technologie zur Entnahme von Kohlenstoffdioxid (PDF)

    Markets & Economy, Policy, Sustainability & Health

    4 Pages
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    400 Downloads  

    2024-06

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    Zur Eindämmung des Klimawandels ist eine drastische Reduzierung fossiler Kohlenstoffemissionen erforderlich. Während Energie- und Verkehrssysteme dekarbonisiert werden können, benötigen Chemie- und Werkstoffsektoren Kohlenstoff als Rohstoff. Diese Sektoren sollten auf erneuerbaren Kohlenstoff aus Biomasse, CCU und Recycling umsteigen, wie von der Renewable Carbon Initiative (RCI) gefördert.

    CCU bietet zahlreiche Vorteile, darunter die Defossilisierung der Industrie und die Reduzierung der Treibhausgasemissionen.

    Trotz ihrer Bedeutung wird CCU politisch noch nicht ausreichend anerkannt. Eine stärkere Unterstützung und der Einsatz erneuerbarer Energien sind notwendig, um CCU als Schlüssel- technologie für eine nachhaltige Zukunft zu etablieren.

    Weitere Informationen:

    https://www.chemanager-online.com/news/ein-plaedoyer-fuer-carbon-capture-and-utilisation

     

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    breaking news – milestone for the transition to sustainable carbon in the european chemical industry (pdf)

    Call for Member States to support an EU Sustainable Carbon Policy Package as a part of a future green EU Industrial Deal (PDF)

    Markets & Economy, Policy, Sustainability & Health

    2 Pages
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    2024-05

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    The signatories of this proposal urge Member States to support the EU Sustainable Carbon Policy Package for the 2024-2029 term of the European Commission.

    The Netherlands, the Czech Republic, France, and Ireland are advocating for an EU Sustainable Carbon Policy Package to transition the chemicals sector from fossil carbon to sustainable sources. This proposal, to be discussed at the Competitiveness Council on May 24, aims to enhance EU competitiveness, achieve climate targets, and secure raw material supplies by developing sustainable carbon markets and promoting innovative technologies. The initiative aligns with the Antwerp Declaration, the Enrico Letta Report, and the European Council Conclusions, and seeks to support job creation, industry growth, and climate neutrality.

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     short version (pdf) (copy)

    Bio-based and Biodegradable Plastics Industries in China (PDF)

    Markets & Economy, Policy, Sustainability & Health

    71 Pages

     

    2024-05

    1,500 € – 8,000 €Price range: 1,500 € through 8,000 € ex. tax

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    China has emerged as a global leader in strategic technologies such as 5G, renewable energy, and electric vehicles in the past two decades. This dominance may leave European companies impressed and concerned about competition while also sparking curiosity about China’s leapfrogging advancement in these areas.

    Paving the way to a net-zero chemical industry in 2060, using renewable biomass to produce bio-based chemicals has been one of the promising transitional solutions for the global chemical industry. As China and Europe strive to follow this path, a similar question may exist within the European chemical industry: What is the status of the bio-based industry in China? Can China and Europe find a cooperative and win-win way to develop this industry?

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    Bioplastics-Production-Capacity-in-China-2019–2026

    Bioplastics Production Capacity in China 2019–2026 – Graphic (PNG)

    Markets & Economy, Policy, Sustainability & Health

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    2024-05

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    biodegradable plastics pla and pbat production capacity 2021 2025 graphic (png)

    Biodegradable Plastics PLA and PBAT Production Capacity 2021-2025 – Graphic (PNG)

    Markets & Economy, Policy, Sustainability & Health

    1 Page
    39 Downloads

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    2024-05

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     short version (pdf) (copy)

    Bio-based and Biodegradable Plastics Industries in China – Short Version (PDF)

    Markets & Economy, Policy, Sustainability & Health

    14 Pages
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    2024-05

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    China has emerged as a global leader in strategic technologies such as 5G, renewable energy, and electric vehicles in the past two decades. This dominance may leave European companies impressed and concerned about competition while also sparking curiosity about China’s leapfrogging advancement in these areas.

    Paving the way to a net-zero chemical industry in 2060, using renewable biomass to produce bio-based chemicals has been one of the promising transitional solutions for the global chemical industry. As China and Europe strive to follow this path, a similar question may exist within the European chemical industry: What is the status of the bio-based industry in China? Can China and Europe find a cooperative and win-win way to develop this industry?

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    renewable carbon initiative (rci) webinar slides – april 2024 (pdf)

    Renewable Carbon Initiative (RCI) Webinar slides – April 2024 (PDF)

    Markets & Economy, Policy, Technology

    43 Pages
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    This document contains a generic set of slides to introduce the concept of renewable carbon and the Renewable Carbon Initiative. The focus of this webinar was the upcoming position paper on Chemical and Physical Recycling.

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