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Dive into the research topics where E. Gschwendtner is active.

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Featured researches published by E. Gschwendtner.


Plasma Physics and Controlled Fusion | 2014

Proton-driven plasma wakefield acceleration: a path to the future of high-energy particle physics

R. Assmann; R. Bingham; T. Bohl; C. Bracco; B. Buttenschön; A. Butterworth; A. Caldwell; S. Chattopadhyay; S. Cipiccia; Eduard Feldbaumer; Ricardo Fonseca; B. Goddard; M. Gross; O. Grulke; E. Gschwendtner; J. Holloway; C. Huang; D. A. Jaroszynski; S. Jolly; P. Kempkes; Nelson Lopes; K. V. Lotov; J. Machacek; S. Mandry; J. W. McKenzie; M. Meddahi; B. L. Militsyn; N. Moschuering; P. Muggli; Z. Najmudin

New acceleration technology is mandatory for the future elucidation of fundamental particles and their interactions. A promising approach is to exploit the properties of plasmas. Past research has focused on creating large-amplitude plasma waves by injecting an intense laser pulse or an electron bunch into the plasma. However, the maximum energy gain of electrons accelerated in a single plasma stage is limited by the energy of the driver. Proton bunches are the most promising drivers of wakefields to accelerate electrons to the TeV energy scale in a single stage. An experimental program at CERN—the AWAKE experiment—has been launched to study in detail the important physical processes and to demonstrate the power of proton-driven plasma wakefield acceleration. Here we review the physical principles and some experimental considerations for a future proton-driven plasma wakefield accelerator.


ieee nuclear science symposium | 2005

Beam loss monitoring system for the LHC

Eva Barbara Holzer; B. Dehning; Ewald Effinger; Jonathan Emery; G. Ferioli; José Luis Gonzalez; E. Gschwendtner; Gianluca Guaglio; Michael Hodgson; D. Kramer; R. Leitner; L. Ponce; V. Prieto; M. Stockner; Christos Zamantzas

One of the most critical elements for the protection of CERNs Large Hadron Collider (LHC) is its beam loss monitoring (BLM) system. It must prevent the superconducting magnets from quenching and protect the machine components from damages, as a result of critical beam losses. By measuring the loss pattern, the BLM system helps to identify the loss mechanism. Special monitors will be used for the setup and control of the collimators. The specification for the BLM system includes a very high reliability (tolerable failure rate of 10/sup -7/ per hour) and a high dynamic range of 10/sup 8/ (10/sup 13/ at certain locations) of the particle fluencies to be measured. In addition, a wide range of integration times (40 /spl mu/s to 84 s) and a fast (one turn) trigger generation for the dump signal are required. This paper describes the complete design of the BLM system, including the monitor types (ionization chambers and secondary emission monitors), the design of the analogue and digital readout electronics as well as the data links and the trigger decision logic.


Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2016

AWAKE, The Advanced Proton Driven Plasma Wakefield Acceleration Experiment at CERN

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.


Physics of Plasmas | 2014

Electron trapping and acceleration by the plasma wakefield of a self-modulating proton beam

K. V. Lotov; A. P. Sosedkin; Alexey Petrenko; L. D. Amorim; Jorge Vieira; Ricardo Fonseca; L. O. Silva; E. Gschwendtner; P. Muggli

It is shown that co-linear injection of electrons or positrons into the wakefield of the self-modulating particle beam is possible and ensures high energy gain. The witness beam must co-propagate with the tail part of the driver, since the plasma wave phase velocity there can exceed the light velocity, which is necessary for efficient acceleration. If the witness beam is many wakefield periods long, then the trapped charge is limited by beam loading effects. The initial trapping is better for positrons, but at the acceleration stage a considerable fraction of positrons is lost from the wave. For efficient trapping of electrons, the plasma boundary must be sharp, with the density transition region shorter than several centimeters. Positrons are not susceptible to the initial plasma density gradient.


Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2002

Response of a BGO detector to photon and neutron sources : simulations and measurements

H. Vincke; E. Gschwendtner; C. Fabjan; Th. Otto

Abstract In this paper Monte Carlo simulations (FLUKA) and measurements of the response of a BGO detector are reported. For the measurements three low-energy photon emitters ( 60 Co, 54 Mn, 137 Cs) were used to irradiate the BGO from various distances and angles. The neutron response was measured with an Am–Be neutron source. Simulations of the experimental irradiations were carried out. Our study can also be considered as a benchmark for FLUKA in terms of its reliability to predict the detector response of a BGO scintillator.


BEAM INSTRUMENTATION WORKSHOP 2002: Tenth Workshop | 2003

LHC beam loss monitor system design

B. Dehning; G. Ferioli; W. Friesenbichler; E. Gschwendtner; J. Koopman

At the LHC a beam loss system will be installed for continuous surveillance of particle losses. The system is designed to prevent hardware destructions, to avoid magnet coil quenches and to provide quantitative loss values. Over 3000 ionization chambers will be used to initiate the beam abort if the loss rates exceed the quench levels. The time and beam energy dependent quench levels require the acquisition of chamber currents in the range from 50 pA to 0.5 mA and an update of the values every 89 μs. The acquisition and control electronics will consist of a front end electronics near (< 400 m) to the ionization chambers and a threshold controller in the surface buildings. The front end will include a charge balance converter, a counter and multiplexer part. The charge balance converter is most suiteable to cover the large dynamic range. The introduced error is smaller than few % in the required dynamic range. Six channels will be transmitted over one cable of up to 3 km length. The threshold controller wi...


Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2016

Indirect Self-Modulation Instability Measurement Concept for the AWAKE Proton Beam

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.


ieee particle accelerator conference | 2007

Cern Neutrinos to Gran Sasso (CNGS): results from commissioning

M. Meddahi; K. Cornells; K. Elsener; E. Gschwendtner; Werner Herr; V. Kain; M. Lamont; J. Wenninger

The CNGS project (CERN Neutrinos to Gran Sasso) aims at directly detecting vmu - vtau oscillations. An intense vmu beam is generated at CERN and directed towards LNGS (Laboratori Nazionali del Gran Sasso) in Italy where vtau will be detected in large and complex detectors. An overview of the CNGS beam facility is given. Results from the primary and secondary beam line commissioning performed in summer 2006 are presented. Measurements of proton beam parameters are compared with expectations.


ieee nuclear science symposium | 2001

Fast polycrystalline-CdTe detectors for LHC luminosity measurements

E. Rossa; E. Gschwendtner; M. Placidi; H. Schmickler; A. Brambilla; F. Mongellaz; L. Verger; V. Cindro; M. Mikuz; P. Moritz

Beam diagnostics in future high-energy accelerators will require long lived instrumentation in highly hostile radiation environments. A research program aiming at individuating new solutions and testing them under extreme operational conditions has been launched at CERN in the framework of developments for LHC instrumentation. Its outcome might be used in future accelerator projects, in industry or in physics applications. The detectors which will be adopted for the LHC luminosity monitoring and optimization will be installed close to or inside copper absorbers specifically designed for radiation protection of the accelerator magnetic elements in the interaction regions. These detectors will have to withstand extreme radiation levels and their long-term operation has to be assured without requiring human intervention. Polycrystalline-CdTe detectors have demonstrated their radiation hardness against extreme doses of X-ray exposure in the LEP collider and are considered as good candidates for LHC luminosity monitoring applications. After recalling a series of measurements obtained on CdTe samples exposed to different sources to study their time response and sensitivity we present results on their performance after irradiation at doses of 10/sup 16/ neutrons/cm/sup 2/. This is a preliminary step in the program intended to test the samples during and after irradiation up to levels of 10/sup 18/ neutrons/cm/sup 2/ and 10/sup 16/ protons/cm/sup 2/ comparable to those anticipated at the detector locations over ten years of operation of the accelerator.


Nature | 2018

Acceleration of electrons in the plasma wakefield of a proton bunch

E. Adli; A. Ahuja; O. Apsimon; Robert Apsimon; A.-M. Bachmann; D. Barrientos; F. Batsch; J. Bauche; V. K. Berglyd Olsen; M. Bernardini; T. Bohl; Chiara Bracco; F. Braunmüller; Graeme Burt; B. Buttenschön; A. Caldwell; M. Cascella; J. Chappell; Eric Chevallay; M. Chung; D. Cooke; H. Damerau; L. Deacon; L.H. Deubner; Amos Dexter; S. Doebert; J. Farmer; V. N. Fedosseev; R. Fiorito; Ricardo Fonseca

High-energy particle accelerators have been crucial in providing a deeper understanding of fundamental particles and the forces that govern their interactions. To increase the energy of the particles or to reduce the size of the accelerator, new acceleration schemes need to be developed. Plasma wakefield acceleration1–5, in which the electrons in a plasma are excited, leading to strong electric fields (so called ‘wakefields’), is one such promising acceleration technique. Experiments have shown that an intense laser pulse6–9 or electron bunch10,11 traversing a plasma can drive electric fields of tens of gigavolts per metre and above—well beyond those achieved in conventional radio-frequency accelerators (about 0.1 gigavolt per metre). However, the low stored energy of laser pulses and electron bunches means that multiple acceleration stages are needed to reach very high particle energies5,12. The use of proton bunches is compelling because they have the potential to drive wakefields and to accelerate electrons to high energy in a single acceleration stage13. Long, thin proton bunches can be used because they undergo a process called self-modulation14–16, a particle–plasma interaction that splits the bunch longitudinally into a series of high-density microbunches, which then act resonantly to create large wakefields. The Advanced Wakefield (AWAKE) experiment at CERN17–19 uses high-intensity proton bunches—in which each proton has an energy of 400 gigaelectronvolts, resulting in a total bunch energy of 19 kilojoules—to drive a wakefield in a ten-metre-long plasma. Electron bunches are then injected into this wakefield. Here we present measurements of electrons accelerated up to two gigaelectronvolts at the AWAKE experiment, in a demonstration of proton-driven plasma wakefield acceleration. Measurements were conducted under various plasma conditions and the acceleration was found to be consistent and reliable. The potential for this scheme to produce very high-energy electron bunches in a single accelerating stage20 means that our results are an important step towards the development of future high-energy particle accelerators21,22.Electron acceleration to very high energies is achieved in a single step by injecting electrons into a ‘wake’ of charge created in a 10-metre-long plasma by speeding long proton bunches.

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K. V. Lotov

Budker Institute of Nuclear Physics

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