NPSS Climate Workshop on Nuclear and Plasma Solutions for Energy and Society

US/Eastern
Cinzia Da Via (University of Manchester (GB) and Stony Brook University, USA), Alberto Del Guerra
Description

For Remote Connection: Zoom Link - click here

 

1 Day event in hybrid mode at the NSS-MIC RTSD 2024 in Tampa

While there are undoubtedly natural forces at work that contribute to the changing climate, there is no doubt now that we humans are accelerating these changes by releasing excessive amounts of greenhouse gases into the atmosphere. This induces a steady increase of the planet’s temperature. Before we can reverse this trend, slowing its growth is the first goal. For this to happen there must be a massive change in the human behaviour, including the use of energy sources that do not exhaust carbon dioxide or other greenhouse gases. Among these are the new generation of nuclear and plasma technical solutions for energy, but also for environmental monitoring, energy storage, waste management, simulations, sustainable societal challenges in medicine and more. NPSS created an initiative to explore these possible contributions.

Workshop Structure

The workshop will span over 1 days divided into four sessions:

  1. Understanding Climate Change:
    An introductory session covering the basics of climate change and its impact.
  2. Science and Applications of Nuclear Fusion and Nuclear Fission:
    to expose participants to the science and application of nuclear technology and the key role they could play for energy sustainability, together with action plans to identify opportunities for collective action with other communities.
  3. Science and Applications of Plasma and Accelerators technologies and solutions:
    to discuss with participants the science and applicazion of plasma science and accelerators technologies and their applications to energy and society, together with action plans to identify opportunities for collective action with other communities.
  4. Science and Applications of Ultra Low Power Electronics, Big Data and Simulation:
    to identify how low power electronics could change the IoT and remote monitoring and how big data and simulation could help defining future strategies in Climate Monitoring and Adaptation.

Contact

Cinzia DaVià and Alberto Del Guerra

on behalf of the NPSS Climate Change Initiative

https://ieee-npss.org/climate-change-initiative/

 

 

Registration
Participant registration
Participants
    • 08:30 09:00
      Opening 30m
    • 09:00 09:10
      Welcome and Introduction 10m
      Speakers: Alberto Del Guerra, Cinzia Da Via (University of Manchester (GB))
    • 09:10 10:00
      A Glaciological Perspective on Climate Change 50m

      Climate represents the main driver controlling the growth and demise of Earth’s ice masses, which in turn play a major role in many physical and biological processes, including sea level, ocean currents, ecosystems, and climate itself, not to mention human activities. Thus, it is no surprise that shrinking and disappearing glaciers are often referred to as amongst the most dramatic evidence of recent, increased warming. Climate, and hence glaciers, have changed often in historical and geological times. The past evolution of glaciers, and history of glaciations, can therefore be used as a wat to decipher past climate changes, essential to contextualise current climatic trends and scenarios, and to refine future predictions. In this talk, Prof. Matteo Spagnolo will use evidence of past glaciations (landforms and sediments), ice cores and other geological climate proxies to present a fascinating historical (hundreds to thousands of years) and geological (10s of thousands to millions of years) overview of what we know about the Earth’s climate of the past.

      Speaker: Prof. Matteo Spagnolo (Scottish Alliance for Geoscience, Environment and SocietyThe University of Aberdeen)
    • 10:00 10:50
      Nuclear Fission: Present Status, Challenges and Advanced Reactors 50m

      Electricity is the foundation of modern society. New technologies such as electrified vehicles, AI, data centers, and cryptocurrency are driving electricity demand at a rate far exceeding the supply. A mix of energy sources is needed to meet this demand. While renewable energy sources like solar and wind are fast growing, nuclear energy offers unique features that make it a crucial part of the solution. Small Modular Reactors (SMRs) and Microreactors represent an emerging class of nuclear reactors designed for construction on a smaller scale compared to traditional reactors, with current designs capable of generating 50 - 450 MWe and 1 - 25 MWe, respectively. These reactors are highly adaptable and offer numerous advantages for various applications, including data centers, especially when land use and the cost of transmission infrastructure place other energy sources at a disadvantage. Enhanced safety features, such as passive cooling systems and below-ground construction, further bolster their safety profile. Additionally, their smaller size and modularity make them ideal for integration with data centers and microgrid, ensuring a stable and reliable power source, thereby reducing dependence on traditional energy grids and enhancing sustainability. A surge in investment and development in nuclear power production is being observed not only in the USA but also internationally. This talk will begin with a brief review of the history of nuclear power centered on light water reactors, introduce the concept of advanced reactors, and survey the current demands from data centers for microreactors.

      Speaker: Prof. Raymond Cao (Ohio State University)
    • 10:50 11:10
      Coffee 20m
    • 11:10 12:00
      The impact of fusion energy on the climate change landscape: are we there yet? 50m
      Speaker: Prof. Martin Nieto-Perez (Penn State University)
    • 12:00 12:50
      Low temperature plasma solutions to climate change: renewable energy, cleaning environment, smart agriculture, and better health 50m

      Low temperature plasmas (LTPs) are plasmas with relatively low plasma density and energy (typically <10 eV) have been playing critical roles in technology advancement in microfabrication, light sources, and other established industrial applications. With the versatility and relative low capital cost in the technology development, LTPs present a myriad of opportunities to technology innovation and advancement in identifying solutions to climate change. The research activities that showcase these LTP-based technology developments are categorized as four areas: renewable energy, cleaning environment, smart agriculture, and better health, and are sampled from the LTP community and discussed here.

      Speaker: Prof. Chunqi Jiang (Old Dominion University)
    • 12:50 14:00
      Lunch 1h 10m
    • 14:00 14:50
      Accelerators Based Solutions – from Subcritical Reactors to Hadron Therapy & Isotopes 50m

      Particle Accelerators for Applications from Medicine to Sub-Critical Reactors

      Nuclear power has the benefit of being a carbon-free energy source but generates long-lived radioactive waste and has the potential for impactful accidents. Particle accelerators were developed as scientific instruments but are also being used in industry and medicine. Hadron accelerators are increasingly being used to generate isotopes for nuclear medicine and hadron therapy. In the future, similar accelerators could be used to transmute nuclear waste and drive sub-critical nuclear reactors. Such applications could reduce the probability of severe accidents at nuclear power plants and reduce the long-term impact of the nuclear fuel cycle. This talk will explore the technologies and challenges associated with such applications and will consider some opportunities for future development.

      Speaker: Prof. Tor Raubenheimer (Stanford University)
    • 14:50 15:40
      Sustainable Computing at Scale 50m

      Organizations across the globe are facing growing pressure to address climate change, and companies providing at scale computing services are no exception. The existing cloud services combined with the more recent growth in machine intelligence are rapidly increasing the demand for compute resources and outpacing hardware efficiency improvements. This talk covers carbon emissions from a computer architecture perspective. It examines the emissions associated with at-scale computing -- from the manufacturing of the devices to the grids used to power data centers -- and provides insight into architectural solutions that may address carbon emissions. The talk concludes with a discussion of upcoming challenges facing the computing industry as sustainable solutions such as renewable energy intersect with an ever-growing power demand from data centers.

      Srilatha (Bobbie) Manne is a Senior Fellow in the Research and Advanced Development group at Advanced Micro Devices (AMD). She received her PhD from the University of Colorado, Boulder, and has worked on low-power/high-performance architecture for over two decades in both industrial research labs and product teams at companies such as Microsoft, Meta, Cavium and Intel. More recently, she has investigated efficiency and sustainability in hardware design and at scale computing. She has over 30 publications and is the recipient of the International Symposium on Computer Architecture “Test of Time” award which recognizes papers that had the most impact on the field. She is also a co-inventor on nearly 40 patents pending or granted.

      Speaker: Dr Shrilatha (Bobbie) Manne (AMD)
    • 15:40 16:00
      Coffee 20m
    • 16:00 16:50
      Big Data and High Performing Computing 50m

      Continuous advances in electronics technology have finally brought us into the age of “Exascale” computing. One of the next big challenges is the management of the deluge of data that is now being generated in scientific research, observation and simulation. Whether it is the ever expanding study or our Earth’s rapidly changing climate and biology or probing the fundamental structure of matter itself, data are being collected and generated at unprecedented rates.

      The US Department of Energy (Office of Science) has begun implementation of a new initiative to integrate the vast research and computational resources under the DOE umbrella to help tackle this data wave and to enhance and accelerate discovery and innovation in order to advance a new open science ecosystem.

      Jefferson Lab, in Newport News, Virginia, is a US Department of Energy (DOE) funded national laboratory focused on the study of the basic building blocks of matter (quarks and gluons) and the forces that bind them. JLab is playing a significant role in the new DOE Integrated research Initiative (IRI). Details of this initiative as well as several of the programs under development there will be presented.

      David Abbott is a staff scientist at JLab. He has spent the majority of his career in the development of data acquisition systems for nuclear physics research.

      Speaker: Prof. David Abbott (Jefferson Lab)
    • 16:50 18:00
      Q/A Discussion 1h 10m