activity
20172022
most citedRadiation damage and thermal shock response of carbon-fiber-reinforced materials to intense high-energy proton beams

14 citations · 28 across the 3 of their papers we have counts for

collaborators

5 papers

physics.acc-ph20227 cited

Novel Materials and Concepts for Next-Generation High Power Target Applications

Kavin Ammigan, Sujit Bidhar, Frederique Pellemoine +36

Novel beam-intercepting materials and targetry concepts are essential to improve the performance, reliability and operation lifetimes of next generation multi-megawatt (multi-MW) a…

physics.ins-det2020

Tensile behavior of dual-phase titanium alloys under high-intensity proton beam exposure: radiation-induced omega phase transformation in Ti-6Al-4V

Taku Ishida, Eiichi Wakai, Shunsuke Makimura +17

A high-intensity proton beam exposure with 181 MeV energy has been conducted at Brookhaven Linac Isotope Producer facility on various material specimens for accelerator targetry ap…

physics.ins-det20197 cited

Radiation Damage Studies on Titanium Alloys as High Intensity Proton Accelerator Beam Window Materials

Taku Ishida, Eiichi Wakai, Shunsuke Makimura +12

A high-strength dual alpha+beta phase titanium alloy Ti-6Al-4V is utilized as a material for beam windows in several accelerator target facilities. However, relatively little is kn…

physics.acc-ph2018

Status and update of the RaDIATE Collaboration R&D Program

K. Ammigan, P. Hurh

The Radiation Damage In Accelerator Target Environments (RaDIATE) collaboration was founded in 2012 and currently consists of over 50 participants and 11 institutions globally. Due…

physics.acc-ph201714 cited

Radiation damage and thermal shock response of carbon-fiber-reinforced materials to intense high-energy proton beams

N. Simos, Z. Zhong, S. Ghose +14

A comprehensive study on the effects of energetic protons on carbon-fiber composites and compounds under consideration for use as low-Z pion production targets in future high-power…