ICF-relevant Laser Plasma Interaction Studies with Exotic Pulses

Find Similar History 12 Claim Ownership Request Data Change Add Favourite

Title
ICF-relevant Laser Plasma Interaction Studies with Exotic Pulses

CoPED ID
a53f51c5-5e29-45ad-a38d-da4297e17c2c

Status
Active


Value
No funds listed.

Start Date
Sept. 30, 2021

End Date
Sept. 30, 2025

Description

More Like This


I have recently completed the MSc in fusion energy at York and after a long break from physics it was great to stretch my brain to learn plasma physics and in particular laser plasma physics. I discovered a great research community in the york plasma institute and had the privilege to do my masters thesis under Professor Chris Ridgers simulating laser stimulated magnetic fields in gas jets.

Now as part of the Fusion CDT I will be working with Dr Chris Murphy on ICF relevant laser plasma interactions with exotic pulses. These exotic pulses are shaped to give orbital angular momentum to the wavefront which opens rich opportunities to study their effect on laser plasma instabilities and x-ray production from Laser-Wakefield electron acceleration. I will be using state of the art simulation tech simulation techniques alongside experiments at international laser facilities in order to better understand the potential benefits of these exotic pulses.


More Information

Potential Impact:
Identifying a sustainable energy supply is one of the biggest challenges facing humanity. Fusion energy has great potential to make a major contribution to the baseload supply - it produces no greenhouse gases, has abundant fuel and limited waste. Furthermore, the UK is amongst the world leaders in the endeavour to commercialise fusion, with a rapidly growing fusion technology and physics programme undertaken at UKAEA within the Culham Centre for Fusion Energy (CCFE). With the construction of ITER - the 15Bn Euro international fusion energy research facility - expected to be completed in the middle of the 2020's, we are taking a huge step towards fusion power. ITER is designed to address all the science and many of the technology issues required to inform the design of the first demonstration reactors, called DEMO. It is also providing a vehicle to upskill industry through the multi-million pound high-tech contracts it places, including in the UK.
ITER embodies the magnetic confinement approach to fusion (MCF). An alternative approach is inertial fusion energy (IFE), where small pellets of fuel are compressed and heated to fusion conditions by an intense driver, typically high-power lasers. While ignition was anticipated on the world's most advanced laser fusion facility, NIF (US), it did not happen; the research effort is now focused on understanding why not and the consequences for IFE, as well as alternative IFE schemes to that employed on NIF.

Our CDT is designed to ensure that the UK is well positioned to exploit ITER and next generation laser facilities to maximise their benefit to the UK and indeed international fusion effort. There are a number of beneficiaries to our training programme: (1) CCFE and the national fusion programme will benefit by employing our trained students who will be well- equipped to play leading roles in the international exploitation of ITER and DEMO design; (2) industry will be able to recruit our students, providing companies with fusion experience as part of the evolution necessary to prepare to build the first demonstration power plants; (3) Government will benefit from a cadre of fusion experts to advise on its role in the international fusion programme, as well as to deliver that programme; (4) the UK requires laser plasma physicists to understand why NIF has not achieved ignition and identify a pathway to inertial fusion energy.

As well as these core fusion impacts, there are impacts in related disciplines. (1) Some of our students will be trained in low temperature plasmas, which also have technological applications in a wide range of sectors including advanced manufacturing and spacecraft/satellite propulsion; (2) our training in materials science has close synergies with the advances in the fission programme and so has impacts there; (3) AWE require expertise in materials science and high energy density plasma physics as part of the national security and non-proliferation strategy; (4) the students we train in socio-economic aspects of fusion will be in a position to help guide policy across a range of areas that fusion science and technology touches; (5) those students involved in inertial fusion will be equipped to advance basic science understanding across a range of applications involving extreme states of matter, such as laboratory astrophysics and equations of state at extreme pressures, positioning the UK to win time on the emerging next generation of international laser facilities; (6) our training in advanced instrumentation and control impacts many sectors in industry as well as academia (eg astrophysics); (7) finally, high performance computing underpins much of our plasma and materials science, and our students' skills in advanced software are valued by many companies in sectors such as nuclear, fluid dynamics and finance.

University of York LEAD_ORG
First Light Fusion Ltd STUDENT_PP_ORG

Christopher Murphy SUPER_PER

Subjects by relevance
  1. Nuclear fusion
  2. Lasers
  3. Plasma physics
  4. Nuclear reactions
  5. Fusion energy
  6. Nuclear energy
  7. Applications (computer programmes)
  8. Greenhouse gases
  9. Materials (matter)
  10. Energy
  11. Nuclear physics

Extracted key phrases
  1. ICF relevant laser plasma interaction
  2. Euro international fusion energy research facility
  3. Relevant Laser Plasma Interaction Studies
  4. Advanced laser fusion facility
  5. High energy density plasma physics
  6. Particular laser plasma physic
  7. Inertial fusion energy
  8. International fusion programme
  9. Laser plasma instability
  10. Laser plasma physicist
  11. International fusion effort
  12. Fusion science
  13. International laser facility
  14. Core fusion impact
  15. Fusion power

Related Pages

UKRI project entry

UK Project Locations