Zestaw obrazów 2019
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EUROfusion and Fusion for Energy (F4E) have signed a Memorandum of Understanding (MoU) to advance fusion research and development in Europe. This agreement reinforces cooperation in key areas such as Test Blanket Module systems, DEMO design, and the Broader Approach projects, including JT-60SA, IFMIF/EVEDA, and IFERC activities like computational simulation and remote experimentation.
The collaboration also extends to ITER operations, technology development, and the commissioning of critical equipment. By enhancing knowledge management and training, both organizations aim to share and preserve expertise crucial for future fusion advancements.
The strengthened partnership is expected to boost the efficiency and impact of European fusion research, contributing significantly to Europe’s fusion energy roadmap.
More information is available on the EUROfusion website.
Source: EUROfusion
John J. Hopfield and Geoffrey E. Hinton have been awarded the 2024 Nobel Prize in Physics "for foundational discoveries and inventions that enable machine learning with artificial neural networks."
The Nobel Laureates are recognized for their pioneering work in developing methods that have become the backbone of modern machine learning. Hopfield's associative memory network and Hinton's advances with the Boltzmann machine laid the groundwork for artificial neural networks, now widely used in various applications, from image recognition to new material discovery.
The Nobel Prize is worth 11 million Swedish kronor, to be shared equally between the laureates.
For more information, please visit:
Source: www.nobelprize.org
Illustration: The Nobel Prize in Physics 2024 ©Johan Jarnestad/The Royal Swedish Academy of Sciences
The Wendelstein 7-X, the world’s most advanced stellarator, is launching a new experimental campaign after a year of intensive maintenance and upgrades. This phase, known as OP2.2, begins on 10 September 2024 and marks a significant step forward in fusion research.
Building on its record-breaking plasma generation in February 2023, where it sustained plasma for 8 minutes and produced 1.3 gigajoules of energy, Wendelstein 7-X is now focused on achieving even higher performance. The primary goal of this campaign is to gradually increase plasma temperatures and energy throughput, moving closer to the conditions needed for a future fusion power plant. Unlike previous phases, the focus now shifts from setting duration records to maintaining high temperatures over extended periods, a crucial milestone in the journey toward practical nuclear fusion.
To support these ambitious goals, the stellarator has been equipped with cutting-edge technologies, including a new gyrotron heating system and a state-of-the-art steady-state pellet injector. The gyrotron, capable of delivering over 1.5 megawatts of power into the plasma, plays a critical role in achieving the high temperatures necessary for fusion. This powerful heating element, developed by leading research institutions, enhances the machine's ability to sustain plasmas at the required energy levels.
The new pellet injector, designed by the Oak Ridge National Laboratory, ensures a steady and efficient fuel supply by continuously delivering hydrogen pellets into the plasma. This innovation is key to maintaining the stability and consistency of the plasma during extended experiments, helping researchers better understand the complex behavior of particles and energy within the stellarator.
As part of the broader scientific goals, the Wendelstein 7-X team will focus on carefully testing the heat load limits of the machine's carbon walls and studying turbulence-controlled transport processes within the plasma. These efforts are critical for advancing the understanding of plasma physics and addressing the challenges associated with sustaining high-temperature plasmas over long periods.
The current experimental phase, OP2.2, will run until December 2024, followed by further phases extending into 2027. Each phase will build on the knowledge gained, bringing the research community closer to the ultimate goal of achieving controlled nuclear fusion.
For more details on this campaign, please visit the Max Planck Institute for Plasma Physics website: www.ipp.mpg.de
Photo: Wendelstein 7-X (Photo: MPI for Plasma Physics, Jan Michael Hosan)
On 3 July, ITER Director-General Pietro Barabaschi presented the new project baseline, under evaluation by the ITER Organization's governing body. This plan aims to ensure a robust start to scientific exploitation, marking a significant shift from the previous strategy established in 2016.
The original 2016 baseline focused on achieving "First Plasma" with a minimally equipped machine by 2025, followed by a multiyear assembly period. However, delays due to the COVID-19 pandemic and necessary repairs on key components led to a re-evaluation. The new plan, while introducing a delay, offers a more comprehensive and scientifically valuable start. The initial phase, termed Start of Research Operations (SRO), will feature hydrogen and deuterium-deuterium plasmas, culminating in long pulses at full magnetic energy and plasma current.
A significant change in the new baseline is the installation of critical components such as the divertor and blanket shield blocks before initiating operations. This approach contrasts with the previous plan, which would have started with a less complete machine. Barabaschi emphasized that the new strategy allows ITER to begin substantial research from the outset, providing better risk mitigation and compensating for previous delays.
The revised baseline includes more time for integrated commissioning, additional heating systems, and the availability of disruption mitigation tools. Importantly, the plasma-facing material for the first wall will be tungsten instead of beryllium, aligning ITER's design with future fusion reactors that will utilize tungsten for better relevance and performance.
Key milestones in the new plan are the achievement of full magnetic energy in 2036, three years later than initially planned, and the start of the deuterium-tritium operation phase in 2039, a four-year delay. Despite these shifts, the core mission elements remain unchanged: demonstrating the integration of systems for industrial-scale fusion, achieving a burning plasma with 500 MW of thermal fusion power for 50 MW input (Q≥10), and sustaining 400-second pulses to reach thermal equilibrium.
The new baseline's additional cost is projected at EUR 5 billion, still under review. ITER's financing complexities arise from in-kind contributions by its members, making precise cost estimations challenging.
ITER, the world's largest experimental fusion facility, aims to demonstrate the scientific and technological feasibility of fusion power, a potentially safe, abundant, and environmentally responsible energy source. The project, located in Saint-Paul-lez-Durance, France, is a global collaboration involving Europe, China, India, Japan, Korea, Russia, and the United States.
For more information on the ITER Project, visit: https://www.iter.org/
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| Photo: ITER Organization/EJF Riche, http://www.iter.org/ |
Source: ITER Organization
The ITER Council convened this week for its 34th meeting, where nearly 100 attendees reviewed significant updates to the project baseline. The proposed changes aim to optimize the overall project schedule, minimize delays in substantial research operations, and reduce technical and licensing risks.
Director-General Pietro Barabaschi, who took office in October 2022, spearheaded these reforms. They focus on streamlined project management, enhanced quality control, and improved reporting. The need for a revised baseline arose from delays due to the Covid-19 pandemic and technical challenges inherent in the novel components of the project.
The updated baseline was presented by the ITER Organization and the Domestic Agencies during the meeting on 19-20 June 2024. The proposal prioritizes the commencement of significant research operations as swiftly as possible. This includes consolidating tokamak assembly stages, enhancing pre-assembly testing, and mitigating risks in machine assembly and commissioning. The revised timeline foresees deuterium-deuterium fusion operation in 2035, followed by full magnetic energy and plasma current operations, setting a solid foundation for subsequent deuterium-tritium fusion.
The Council affirmed ITER's critical role in global fusion research and the importance of aligning the project with national fusion programs of its members. The proposed baseline will undergo further evaluation, including cost and schedule implications, before the Council reconvenes in November 2024.
Throughout the two-day meeting, the Council received updates on various aspects of the project, including progress in construction, manufacturing, assembly, and licensing. Notably, repairs on key components like the vacuum vessel sectors and thermal shield are underway. Manufacturing milestones include the completion of all toroidal and poloidal field coils, with a celebration planned for 1 July to mark this achievement. Additionally, significant progress has been made in the assembly of central solenoid modules and the installation of magnet feeders.
In response to a directive from November 2023, ITER has increased its engagement with private sector fusion initiatives. A recent workshop saw strong participation from global fusion start-ups, research institutes, and government agencies, reinforcing the importance of ITER’s mission as a complement to private sector efforts in fusion R&D.
The Council also welcomed Ms. DeLeah Lockridge as the new Head of the Engineering Services Department and endorsed ongoing efforts to enhance the department's structure in preparation for a fully matrixed organization by 2025.
Members of the Council reiterated their commitment to the ITER mission, emphasizing the project's value and their dedication to overcoming challenges. They also expressed support for integrating diversity, equity, and inclusion principles into the project’s work culture and hiring practices.
Looking ahead, Director-General Barabaschi will hold a hybrid press conference at 10:30 a.m. CET on 3 July 2024 to provide further details on the updated project baseline.
For more information, visit the ITER website.
Source: https://www.iter.org/
Photo: 34th ITER Council. Credit © ITER Organization, http://www.iter.org/
31-03-2026
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Research projects carried out at the IPPLM are funded by the Polish Ministry of Education and Science, the National Science Centre and by the European Commission within the framework of EUROfusion Consortium under grant agreement No 101052200. Financial support comes also from the International Atomic Energy Agency, European Space Agency and LaserLab Consortium as well as from the Fusion for Energy Agency.