ALICE SRF SYSTEM COMMISSIONING EXPERIENCE A. Wheelhouse ASTeC, STFC Daresbury Laboratory

Similar documents
Commissioning of the ALICE SRF Systems at Daresbury Laboratory Alan Wheelhouse, ASTeC, STFC Daresbury Laboratory ESLS RF 1 st 2 nd October 2008

ERLP Status. Mike Dykes

Status of Projects using TESLA Cavities. Mike Dykes, ASTeC, Head of RF.

FLASH at DESY. FLASH. Free-Electron Laser in Hamburg. The first soft X-ray FEL operating two undulator beamlines simultaneously

Low-Level RF. S. Simrock, DESY. MAC mtg, May 05 Stefan Simrock DESY

R.Bachimanchi, IPAC, May 2015, Richmond, VA

INSTRUMENTATION AND CONTROL SYSTEM FOR THE INTERNATIONAL ERL CRYOMODULE

C100 Cryomodule. Seven cell Cavity, 0.7 m long (high Q L ) 8 Cavities per Cryomodule Fits the existing Cryomodule footprint

RF STATUS OF SUPERCONDUCTING MODULE DEVELOPMENT SUITABLE FOR CW OPERATION: ELBE CRYOSTATS

Drive Beam Photo-injector Option for the CTF3 Nominal Phase

REVIEW ON SUPERCONDUCTING RF GUNS

RF System LSD Work. William Merz

CEBAF waveguide absorbers. R. Rimmer for JLab SRF Institute

Status of berlinpro and BESSY II Installation of SSA. Helmholtz-Zentrum Berlin for materials and energy (HZB)

Overview of ERL Projects: SRF Issues and Challenges. Matthias Liepe Cornell University

ASSEMBLY PREPARATIONS FOR THE INTERNATIONAL ERL CRYOMODULE AT DARESBURY LABORATORY

4GLS and the Daresbury ERL Prototype. Mike Dykes, ASTeC, Head of RF.

Motivation: ERL based e linac for LHeC

Status of superconducting module development suitable for cw operation: ELBE cryostats

Niowave s Growth and the Role of STTR in its Development

Does the short pulse mode need energy recovery?

THE CRYOGENIC SYSTEM OF TESLA

TECHNICAL CHALLENGES OF THE LCLS-II CW X-RAY FEL *

Energy Recovering Linac Issues

Review on Progress in RF Control Systems. Cornell University. Matthias Liepe. M. Liepe, Cornell U. SRF 2005, July 14

Thermionic Bunched Electron Sources for High-Energy Electron Cooling

FLASH. FLASH Training: RF Gun. FLASH: the first soft X-ray FEL operating two undulator beamlines simultaneously. Siegfried Schreiber, DESY

REVIEW OF HIGH POWER CW COUPLERS FOR SC CAVITIES. S. Belomestnykh

Status of the ESS Accelerator Workpackage

Beam Diagnostics, Low Level RF and Feedback for Room Temperature FELs. Josef Frisch Pohang, March 14, 2011

Current Industrial SRF Capabilities and Future Plans

TESLA RF POWER COUPLERS DEVELOPMENT AT DESY.

Demonstration of exponential growth and saturation at VUV wavelengths at the TESLA Test Facility Free-Electron Laser. P. Castro for the TTF-FEL team

OVERVIEW OF INPUT POWER COUPLER DEVELOPMENTS, PULSED AND CW*

System Integration of the TPS. J.R. Chen NSRRC, Hsinchu

A Design Study of a 100-MHz Thermionic RF Gun for the ANL XFEL-O Injector

Acceleration of High-Intensity Protons in the J-PARC Synchrotrons. KEK/J-PARC M. Yoshii

Superconducting RF cavities activities for the MAX project

The low level radio frequency control system for DC-SRF. photo-injector at Peking University *

HIGH POWER COUPLER FOR THE TESLA TEST FACILITY

XFEL Cryo System. Project X Collaboration Meeting, FNAL September 8-9, 2010 Bernd Petersen DESY MKS (XFEL WP10 & WP13) 1 st stage. Possible extension

Advance on High Power Couplers for SC Accelerators

HIGHER ORDER MODES FOR BEAM DIAGNOSTICS IN THIRD HARMONIC 3.9 GHZ ACCELERATING MODULES *

Status and Future Perspective of the HIE-ISOLDE Project

Status of the APEX Project at LBNL

INSTALLATION AND FIRST COMMISSIONING OF THE LLRF SYSTEM

Borut Baricevic. Libera LLRF. 17 September 2009

Compact Radio Frequency Technology for Applications in Cargo and Global

FREIA Facility for Research Instrumentation and Accelerator Development Infrastructure and Control Architecture

BCS UPDATE. j. welch 2/9/17

High Repetition Rate Inverse Compton Scattering Source

RF design studies of 1300 MHz CW buncher for European X-FEL. Shankar Lal PITZ DESY-Zeuthen

Operation Status of KEK Accelerator Cryogenic Systems

Dark current Monitor for the European XFEL D. Lipka, W. Kleen, J. Lund-Nielsen, D. Nölle, S. Vilcins, V. Vogel; DESY Hamburg

H. Weise, Deutsches Elektronen-Synchrotron, Hamburg, Germany for the XFEL Group

CEBAF Overview June 4, 2010

DESIGN AND BEAM DYNAMICS STUDIES OF A MULTI-ION LINAC INJECTOR FOR THE JLEIC ION COMPLEX

Jørgen S. Nielsen Institute for Storage Ring Facilities, Aarhus, University of Aarhus Denmark

Performance of the TTF Photoinjector Laser System

Synchronization Overview

HIGH POWER INPUT COUPLERS FOR THE STF BASELINE CAVITY SYSTEM AT KEK

Tutorial on Design of RF system for Indus Accelerator. Maherdra Lad Head, Radio Frequency Systems Division RRCAT, Indore

Normal-conducting high-gradient rf systems

2008 JINST 3 S The RF systems and beam feedback. Chapter Introduction

ESS RF Development at Uppsala University. Roger Ruber for the FREIA team Uppsala University

Behavior of the TTF2 RF Gun with long pulses and high repetition rates

Energy Recovery Linac

The TESLA Linear Collider. Winfried Decking (DESY) for the TESLA Collaboration

SwissFEL Design and Status

KEK ERL CRYOMODULE DEVELOPMENT

RECORD QUALITY FACTOR PERFORMANCE OF THE PROTOTYPE CORNELL ERL MAIN LINAC CAVITY IN THE HORIZONTAL TEST CRYOMODULE

Slide Title. Bulleted Text

Status, perspectives, and lessons from FLASH and European XFEL

Beam Instability Investigations at DELTA

J. Jacob: Status of the ESRF RF upgrade

INTRODUCTION. METHODS Cavity Preparation and Cryomodule Assembly

LC Technology Hans Weise / DESY

Couplers for Project X. S. Kazakov, T. Khabiboulline

FUTURE LIGHT SOURCES: INTEGRATION OF LASERS, FELS AND ACCELERATORS AT 4GLS

Physics Requirements Document Document Title: SCRF 1.3 GHz Cryomodule Document Number: LCLSII-4.1-PR-0146-R0 Page 1 of 7

Engineering Challenges and Solutions for MeRHIC. Andrew Burrill for the MeRHIC Team

Uppsala, June 17 th - 19 th, 2013

LLRF Operation and Performance of the European XFEL. An overview

Coupler Electromagnetic Design

Performance of Superconducting Cavities for the European XFEL. Detlef Reschke DESY for the EU-XFEL Accelerator Consortium

SRF EXPERIENCE WITH THE CORNELL HIGH-CURRENT ERL INJECTOR PROTOTYPE

ALICE, EMMA & Future Directions for Accelerator Daresbury. Susan Smith ASTeC Director STFC DESY Dec 2011

3 General layout of the XFEL Facility

200 MHz 350 MHz 750 MHz Linac2 RFQ2 202 MHz 0.5 MeV /m Weight : 1000 kg/m Ext. diameter : 45 cm

X-Ray Detection Using SOI Monolithic Sensors at a Compact High-Brightness X-Ray Source Based on Inverse Compton Scattering

Progress in High Gradient Accelerator Research at MIT

High Power Couplers for TTF - FEL

HIGH Q CAVITIES FOR THE CORNELL ERL MAIN LINAC

Status of the European XFEL Accelerator Construction Project. Reinhard Brinkmann, DESY

Superstructures; First Cold Test and Future Applications

High acceleration gradient. Critical applications: Linear colliders e.g. ILC X-ray FELs e.g. DESY XFEL

DEVELOPMENTS OF HORIZONTAL HIGH PRESSURE RINSING FOR SUPERKEKB SRF CAVITIES

THE ORION PHOTOINJECTOR: STATUS and RESULTS

LARGE SCALE TESTING OF SRF CAVITIES AND MODULES

Cornell Laboratory for Accelerator-based ScienceS and Education (CLASSE) ERL R&D Update. Ivan Bazarov. Cornell University

Transcription:

ALICE SRF SYSTEM COMMISSIONING EXPERIENCE A. Wheelhouse ASTeC, STFC Daresbury Laboratory ERL 09 8 th 12 th June 2009

ALICE Accelerators and Lasers In Combined Experiments Brief Description ALICE Superconducting RF Modules RF Sources Cavity Commissioning Experience Past and Present Operational Experience Future Plans Short and Long Term Summary

Technical Priorities for ALICE Operation of a superconducting linac module. Produce and maintain bright electron bunches from a photo-injector. Produce short electron bunches from a compressor. Demonstrate energy recovery. Demonstrate energy recovery (with an insertion device that significantly disrupts the electron beam). Have a FEL activity that is suitable for the synchronisation needs. Produce simultaneous photon pulses from a laser and a photon source of the ERL Prototype that are synchronised at or below the 1 ps level.

The ALICE Complex Booster Gun Linac Parameter Units Nominal Gun Energy 350 kev Injector Energy 8.35 MeV Circulating Beam Energy 35 MeV RF Frequency 1.3 GHz Bunch Repetition Rate 81.25 MHz Nominal Bunch Charge 80 pc Maximum Train Length 100 µs Maximum Train Repetition Rate 20 Hz Maximum Average Current 13 µa

SRF Modules 2 x Stanford/Rossendorf cryo-modules 1 Booster and 1 Main LINAC. Fabricated by ACCEL. Booster module: 4 MV/m gradient. 52 kw RF power. Main LINAC module: 13.5 MV/m gradient. 13 kw RF power.

RF System Specifications Booster ERL Linac Cavity 1 Cavity 2 Cavity 1 Cavity 2 Gradient (MV/m) 5 3 13.5 13.5 Q o 5 x 10 9 5 x 10 9 5 x 10 9 5 x 10 9 Q e 3 x 10 6 3 x 10 6 7 x 10 6 7 x 10 6 Power (kw) 32 20 6.7 6.7 Power Source 2 x e2v CPI e2v Thales 0.1ms bunch trains @ 20 Hz repetition rate

SRF Modules (Cont)

IOT RF Power Sources CPI K51320W e2v IOT116LS Thales TH713 Parameters CPI e2v Thales Units K51320W IOT116LS TH713 Frequency 1.3 1.3 1.3 GHz Max CW Power 30 16 20 kw Gain 21 >20 20.9 db Beam Voltage 34 25 25 kv Bandwidth 4.5 >4 >5 MHz Efficiency 63.8 >60 60.4 %

Cavity Vertical Tests at DESY Booster Cavity1 Linac Cavity1 Booster Cavity2 Linac Cavity2 Specification Jul Dec 2005

High Power Tests Booster Linac Cavity 1 Cavity 2 Cavity 1 Cavity 2 Vertical Tests at DESY (Jul Dec 2005) E acc (MV/m) 18.9 20.8 17.1 20.4 Q o 5 x 10 9 5 x 10 9 5 x 10 9 5 x 10 9 Module Acceptance Tests at Daresbury (May Sept 2007) Max E acc (MV/m) 10.8 13.5 16.4 12.8 3.5 x 10 9 @ 1.3 x 10 9 @ 1.9 x 10 9 @ 7.0 x 10 9 @ Q o 8.2 MV/m 11 MV/m 14.8 MV/m 9.8 MV/m Limitation FE Quench FE Quench RF Power FE Quench

Booster Commissioning

Linac Commissioning

Predicted LLRF Electronics Lifetime at 9 MV/m

Further Cavity Conditioning Booster Cavity 1 E acc = 9.4 MV/m Conditioned for 7:10 hrs Cavity 2 E acc = 8.8 MV/m Conditioned for 7:30 hrs Conditioning 18mS pulse width at 10Hz Some CW conditioning at low power levels. Isolation vacuum events at around 1.5kW Linac (+ 100mm lead wall) Cavity 1 E acc = 10.7 MV/m Conditioned for 10:50hrs Cavity 2 E acc = 10.8 MV/m Conditioned for 7:10 hrs Conditioning 18mS pulse width at 10Hz Some conditioning at narrower pulse widths 1.6mS Isolation vacuum events at around 1.5kW Radiation level reduced to 5mSv/h @ 9MV/m Lifetime of LLRF electronics > 10,000hrs

Further Booster Cavity Commissioning

Further Linac Cavity Commissioning

Operational Reliability Issues Investigations into accelerating gradients postponed Numerous ancillary power supplier failures Grid, filament and ion pump supplies Single HVPS Stored energy issues under fault conditions due to long HV cable runs (~60m) Various types of IOTs had different requirements Filament settings Ion pump reference (cathode and body) Wiring not standardised

Power Supply Testing Extensive crowbar testing of the HV system Individual IOTs and complete system Earthing issue discovered Reliable operation with Grid and heater supplies referenced at the HVPS Spare HV cable along with ultra fast diodes used to control energy discharge In house grid supplies were installed Improved output isolation to protect against reverse voltages Grid protection diodes added at the power supply and IOT Spark gaps added between cathode and grid at the IOT

Isolation Window Failure Booster Cavity 1

Window Failure Analysis

Inspection And Clean Up Process Booster fully inspected and cleaned No obvious failure mechanism discovered Failure similar to one at Rossendorf CW Arc marks noted on inner and outer conductor Isolation vacuum events seen at low RF power levels - ~1.5kW Linac inspected Improvements made to isolation vacuum interlocks Broadband RF detectors added to the reflected power monitoring

Booster Cavity Operation

Linac Cavity Operation

Beam Loading Issues Initially beam loading seen at 6pC on Booster Booster 1: Q ext 2.48x10 6 5.20x10 5 Booster 2: Q 6 8.97x10 5 ext 2.61x10 Further beam loading Train lengths > 50µS Bunch charges > 10pC Plans to improve LLRF feedback response times Optimisation of Q ext Feed forward investigations No beam loading Beam loading

Energy Recovery 20.8MeV

Future Plans Short Term Cavity commissioning for ALICE operation Analysis of quench points External Qs to be adjusted for 80pC operations Investigation of LLRF limitations Improvement to response times of feedback loops Feed forward Long Term Installation of a new 7-cell cryomodule Resolve high levels of field emission induced radiation

Summary Life of LLRF electronics extended by 100mm lead wall Reliability of HVPS and ancillary systems improved RF protection systems improved Energy Recovery achieved Beam loading seen for long pulse trains and high bunch charges Investigations on going