B. Biskup
CERN
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Featured researches published by B. Biskup.
Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2016
E. Gschwendtner; E. Adli; L. D. Amorim; Robert Apsimon; R. Assmann; A.M. Bachmann; F. Batsch; J. Bauche; V. K. Berglyd Olsen; M. Bernardini; R. Bingham; B. Biskup; T. Bohl; C. Bracco; Philip Burrows; Graeme Burt; B. Buttenschön; A. Butterworth; A. Caldwell; M. Cascella; Eric Chevallay; S. Cipiccia; H. Damerau; L. Deacon; P. Dirksen; S. Doebert; Ulrich Dorda; J. Farmer; Valentin Fedosseev; Eduard Feldbaumer
The Advanced Proton Driven Plasma Wakefield Acceleration Experiment (AWAKE) aims at studying plasma wakefield generation and electron acceleration driven by proton bunches. It is a proof-of-principle R&D experiment at CERN and the world׳s first proton driven plasma wakefield acceleration experiment. The AWAKE experiment will be installed in the former CNGS facility and uses the 400 GeV/c proton beam bunches from the SPS. The first experiments will focus on the self-modulation instability of the long (rms ~12 cm) proton bunch in the plasma. These experiments are planned for the end of 2016. Later, in 2017/2018, low energy (~15 MeV) electrons will be externally injected into the sample wakefields and be accelerated beyond 1 GeV. The main goals of the experiment will be summarized. A summary of the AWAKE design and construction status will be presented.
Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2016
Marlene Turner; Alexey Petrenko; B. Biskup; S. Burger; E. Gschwendtner; K. V. Lotov; Stefano Mazzoni; H. Vincke
Abstract AWAKE, the Advanced Proton-Driven Plasma Wakefield Acceleration Experiment, is a proof-of-principle R&D experiment at CERN using a 400 GeV / c proton beam from the CERN SPS (longitudinal beam size σ z = 12 cm ) which will be sent into a 10 m long plasma section with a nominal density of ≈ 7 × 10 14 atoms / cm 3 (plasma wavelength λ p = 1.2 mm ). In this paper we show that by measuring the time integrated transverse profile of the proton bunch at two locations downstream of the AWAKE plasma, information about the occurrence of the self-modulation instability (SMI) can be inferred. In particular we show that measuring defocused protons with an angle of 1 mrad corresponds to having electric fields in the order of GV/m and fully developed self-modulation of the proton bunch. Additionally, by measuring the defocused beam edge of the self-modulated bunch, information about the growth rate of the instability can be extracted. If hosing instability occurs, it could be detected by measuring a non-uniform defocused beam shape with changing radius. Using a 1 mm thick Chromox scintillation screen for imaging of the self-modulated proton bunch, an edge resolution of 0.6 mm and hence an SMI saturation point resolution of 1.2 m can be achieved.
Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2017
Marlene Turner; B. Biskup; S. Burger; E. Gschwendtner; Stefano Mazzoni; Alexey Petrenko
The goal of the first phase of the AWAKE [1]xa0; xa0[2] experiment at CERN is to measure the self-modulation [3] of the σz=12cm long SPS proton bunch into microbunches after traversing 10m of plasma with a plasma density of npe=7×1014electrons/cm3. The two screen measurement setup [4] is a proton beam diagnostic that can indirectly prove the successful development of the self-modulation of the proton beam by imaging protons that got defocused by the transverse plasma wakefields after passing through the plasma, at two locations downstream the end of the plasma. This article describes the design and realization of the two screen measurement setup integrated in the AWAKE experiment. We discuss the performance and background response of the system based on measurements performed with an unmodulated Gaussian SPS proton bunch during the AWAKE beam commissioning in September and October 2016. We show that the system is fully commissioned and adapted to eventually image the full profile of a self-modulated SPS proton bunch in a single shot measurement during the first phase of the AWAKE experiment.
Archive | 2015
Janet Schmidt; Owain Rhodri Jones; P. Muggli; Matthew Fraser; L. Jensen; B. Biskup; E. Gschwendtner; E. Bravin; Alexey Vorozhtsov; Chiara Bracco; Alexey Petrenko; J. Bauche; Brennan Goddard; Steffen Döbert; Francesco Velotti; Stefano Mazzoni; V. Verzilov; Lia Merminga; Malika Meddahi; Ulrich Dorda
In: (Proceedings) 6th International Particle Accelerator Conference (IPAC2015). (2015) | 2015
L. Deacon; Alexey Petrenko; B. Biskup; E. Bravin; M. Wing; F. Keeble; S. Jolly
In: Petit-Jean-Genaz, C and Kim, DE and Kim, KS and Ko, IS and Schaa, VRW, (eds.) IPAC2016: Proceedings of the 7th International Particle Accelerator Conference. Joint Accelerator Conferences Website (JACoW): Geneva, Switzerland. (2016) | 2016
L. Deacon; B. Biskup; A. Goldblatt; S. Jolly; F. Keeble; Stefano Mazzoni; Alexey Petrenko; M. Wing
Archive | 2017
S. Burger; B. Biskup; Stefano Mazzoni; Marlene Turner
Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2016
Janet Schmidt; J. Bauche; B. Biskup; Chiara Bracco; S. Doebert; B. Goddard; E. Gschwendtner; L.K. Jensen; Owain Rhodri Jones; Stefano Mazzoni; Malika Meddahi; K. Pepitone; Alexey Petrenko; Francesco Velotti; A. Vorozhtsov
7th Int. Particle Accelerator Conf. (IPAC'16), Busan, Korea, May 8-13, 2016 | 2016
Janet Schmidt; B. Biskup; Chiara Bracco; B. Goddard; Roman Gorbonosov; Marine Gourber-Pace; E. Gschwendtner; L. Jensen; Owain Rhodri Jones; V. Kain; Stefano Mazzoni; Malika Meddahi