Professor Carsten Welsch
Lead Research Organisation:
University of Liverpool
Department Name: Physics
Abstract
In hadron beam therapy, knowledge of the detailed beam properties is essential to ensure effective dose delivery to the patient. Clinical settings currently implement interceptive ionization chambers which require daily calibration and suffer from slow response times. With new and emerging treatment techniques using ultra high dose rates, there is a demand for the development of novel beam monitors, which are fast, non-invasive and calibration-free.
Current methods to carry out this characterization require multiple systems each imparting a slight disturbance to the particle beam as it passes by. This disturbance can alter the intended transverse dose profile of the beam, ultimately creating slight deviations from a patient's treatment plan. QA methods are mostly disruptive measurements and do not allow treatment to take place at all whilst they are being conducted.
JetDose will develop a new in-vivo dosimetry system based on the re-application of technologies pioneered by the proposer's group. The underpinning technology was originally developed for use with low energy antiproton beams and most recently adapted for gas jet profiling for the high luminosity upgrade of the Large Hadron Collider at CERN. In this system, a supersonic gas jet is fired across the high intensity proton beam at the LHC. The gas molecules have little-to-no effect on the proton beam, however the proton beam excites the gas molecules; this excitation can be imaged, which is turn provides a complete non-invasive two-dimensional profile image of the proton beam.
JetDose will redirect this technology at the medical accelerator sector, by optimizing it for the different challenges found in a treatment facility. The non-invasive means of producing a profile image will allow the monitor to be run online alongside treatment operation. As the intensity in the images directly depends upon the beam intensity, and therefore the dose, an image collected with this system provides an in-vivo dose map of the beam being delivered to the patient.
The focus of the project will be the design, development, and testing of an optimized medical version of the system with established clinical and business partners. Testing and optimization will be done in close collaboration with long-standing research partners Clatterbridge Cancer Centre and Fondazione CNAO in Italy. The design, development, and future commercialization will be conducted in collaboration with the UK-based accelerator beam diagnostics company D-Beam Ltd, STFC CERN BIC graduate and recently identified as an STFC IAA success story. Commercialization plans will be progressed with leading OEM manufacturer IBA.
JetDose will produce a novel monitoring system which addresses the growing need for in-vivo dosimetry in medical facilities across the world. This technology also shows good promise for application at other high intensity, high energy particle accelerators and this wider market will be assessed as part of the business plan that will be developed.
Current methods to carry out this characterization require multiple systems each imparting a slight disturbance to the particle beam as it passes by. This disturbance can alter the intended transverse dose profile of the beam, ultimately creating slight deviations from a patient's treatment plan. QA methods are mostly disruptive measurements and do not allow treatment to take place at all whilst they are being conducted.
JetDose will develop a new in-vivo dosimetry system based on the re-application of technologies pioneered by the proposer's group. The underpinning technology was originally developed for use with low energy antiproton beams and most recently adapted for gas jet profiling for the high luminosity upgrade of the Large Hadron Collider at CERN. In this system, a supersonic gas jet is fired across the high intensity proton beam at the LHC. The gas molecules have little-to-no effect on the proton beam, however the proton beam excites the gas molecules; this excitation can be imaged, which is turn provides a complete non-invasive two-dimensional profile image of the proton beam.
JetDose will redirect this technology at the medical accelerator sector, by optimizing it for the different challenges found in a treatment facility. The non-invasive means of producing a profile image will allow the monitor to be run online alongside treatment operation. As the intensity in the images directly depends upon the beam intensity, and therefore the dose, an image collected with this system provides an in-vivo dose map of the beam being delivered to the patient.
The focus of the project will be the design, development, and testing of an optimized medical version of the system with established clinical and business partners. Testing and optimization will be done in close collaboration with long-standing research partners Clatterbridge Cancer Centre and Fondazione CNAO in Italy. The design, development, and future commercialization will be conducted in collaboration with the UK-based accelerator beam diagnostics company D-Beam Ltd, STFC CERN BIC graduate and recently identified as an STFC IAA success story. Commercialization plans will be progressed with leading OEM manufacturer IBA.
JetDose will produce a novel monitoring system which addresses the growing need for in-vivo dosimetry in medical facilities across the world. This technology also shows good promise for application at other high intensity, high energy particle accelerators and this wider market will be assessed as part of the business plan that will be developed.
Organisations
People |
ORCID iD |
| Carsten Welsch (Principal Investigator) | |
| Narender Kumar (Researcher) |
Publications
Kumar Narender (NK)
(2024)
Proc. IBIC2024
Kumar,Narender
(2024)
Gas jet dosimeter measurements at DCF for medical accelerator applications
M. Patel
(2024)
International Particle Accelerator Conference 2024
N. Kumar
(2024)
International Particle Accelerator Conference 2024
W. Butcher
(2024)
International Particle Accelerator Conference 2024
| Description | Faculty Impact Fund 2022/23 |
| Amount | £14,313 (GBP) |
| Organisation | University of Liverpool |
| Sector | Academic/University |
| Country | United Kingdom |
| Start | 12/2022 |
| End | 07/2023 |
| Description | Faculty Impact Fund 2023/24 |
| Amount | £7,972 (GBP) |
| Organisation | University of Liverpool |
| Sector | Academic/University |
| Country | United Kingdom |
| Start | 01/2024 |
| End | 06/2024 |
| Description | First proton beam measurements with gas jet in-vivo dosimeter for medical applications |
| Form Of Engagement Activity | A talk or presentation |
| Part Of Official Scheme? | No |
| Geographic Reach | National |
| Primary Audience | Professional Practitioners |
| Results and Impact | About 30 Pupils attended this talk as a part of "Particle Accelerators And Beams Annual Conference" held at University of Liverpool on 25th-26th July 2022. This talk led to discussion afterwards with representatives from one of the national accelerator laboratories for the possibility of carrying out experimental measurements at DCF, United Kingdom. |
| Year(s) Of Engagement Activity | 2022 |
| URL | https://www.iop.org/events/particle-accelerators-and-beams-annual-conference |
| Description | ITRF and LhARA 18 month review meeting |
| Form Of Engagement Activity | A formal working group, expert panel or dialogue |
| Part Of Official Scheme? | No |
| Geographic Reach | National |
| Primary Audience | Other audiences |
| Results and Impact | Two talks were given by the team members with titles: "Overview of the existing dosimetry techniques" and "Gas Jet Monitor as Medical Beam Instrumentation: DCF experiment overview". The talk lead to discussion for future upgrades and discussion on integration of the system with the end stations. |
| Year(s) Of Engagement Activity | 2024 |
| URL | https://indico.stfc.ac.uk/event/986/ |
| Description | ITRF and LhARA 24th Month Review |
| Form Of Engagement Activity | A formal working group, expert panel or dialogue |
| Part Of Official Scheme? | No |
| Geographic Reach | National |
| Primary Audience | Other audiences |
| Results and Impact | A talk was delivered by a team member to the progress made in the gas jet monitor and the experimental results for the experiments carried out the University of Birmingham in August 2024 were presented. A new approach was tested at University of Birmingham and audience has shown significant interest in the work |
| Year(s) Of Engagement Activity | 2024 |
| URL | https://indico.stfc.ac.uk/event/1060/ |
| Description | International Beam Instrumentation Conference, IBIC'24, Beijing, China |
| Form Of Engagement Activity | A talk or presentation |
| Part Of Official Scheme? | No |
| Geographic Reach | International |
| Primary Audience | Other audiences |
| Results and Impact | This was a contributed talk in IBIC'24 with the title "First proof-of-concept transverse beam profile measurements with gas jet in-vivo dose profiler for medical accelerators". The conference was held at Beijing, China and about 250 participants attended the conference. There were questions asked related to work and people showed interest in the design of the system. As a researcher, we have received a significant amount of good feedback. |
| Year(s) Of Engagement Activity | 2024 |
| URL | https://indico.jacow.org/event/80/contributions/5832/ |
| Description | Invited talk |
| Form Of Engagement Activity | A talk or presentation |
| Part Of Official Scheme? | No |
| Geographic Reach | National |
| Primary Audience | Professional Practitioners |
| Results and Impact | Invited talk at IOP Advancing Radiobiology Technology (ART) workshop on Tuesday Oct 24, 2023 in London, UK |
| Year(s) Of Engagement Activity | 2023 |
| Description | Medical Instrumentation |
| Form Of Engagement Activity | A talk or presentation |
| Part Of Official Scheme? | No |
| Geographic Reach | International |
| Primary Audience | Professional Practitioners |
| Results and Impact | About 50 Pupils attended this talk as a part of "Cockcroft Institute Science advisory committee (SAC) meeting" held at Cockcroft Institute on 09th-12th October 2022. This talk led to discussion afterwards with audience, followed by a Laboratory tour for our research activities in diagnostics development. Our work was appreciated by the committee members and work was recognized as highly innovative and world class work with new progress achieved in improving the performances and downsizing the gas jets and quantum gas jets (Fresnel Zone Plate) for application in hadron therapy (proton and carbon) beamlines in collaboration with industrial partners as D-beams or IBA, Clatterbridge Cancer Centre and academia such as Univ. of Birmingham. |
| Year(s) Of Engagement Activity | 2022 |
| Description | Physics and biology of proton beam therapy |
| Form Of Engagement Activity | A talk or presentation |
| Part Of Official Scheme? | No |
| Geographic Reach | National |
| Primary Audience | Professional Practitioners |
| Results and Impact | About 20 Pupils attended this talk as a part of "BSNR annual scientific meeting" held at Liverpool on 06th-07th October 2022. This talk led to discussion afterwards with audience regarding the advantages of Hadron medical accelerators for tumor treatment and how to improve the existing medical accelerator facilities. |
| Year(s) Of Engagement Activity | 2022 |
| URL | https://bsnr.org.uk/annual-meeting/ |