ORNL is managed by UT-Battelle for the US Department of Energy Commissioning and Operation of the Horizontal Test Apparatus at SNS Presented at: CEC/ICMC.

Slides:



Advertisements
Similar presentations
Mar 13, Low-energy RHIC electron Cooler (LEReC) CRYOGENICS Mar 13, 2014.
Advertisements

February 17-18, 2010 R&D ERL Roberto Than R&D ERL Cryogenics Roberto Than February 17-18, 2010 CRYOGENICS.
Ram C. Dhuley Steven W. Van Sciver
ESS Cryogenic System Process Design Philipp Arnold Section Leader Cryogenics CEC – ICMC 2015 June 29, 2015.
12 GeV Upgrade of Cryogenics at Jefferson Laboratory (Jlab) Dana Arenius Engineering Division Cryogenic Systems ILC08 Nov This work is supported.
CASIPP Design of Cryogenic Distribution System for CFETR CS model coil Division of Cryogenic Engineering and Technical Institute of Plasma Physics Chinese.
ATLAS Intensity and Efficiency Upgrade ATLAS USERS MEETING Speaker: Mike Kelly Physics Division May 15, 2014.
Heat load study of cryomodule in STF
Internal Cryomodule Instrumentation ERL Main Linac Cryomodule 10/10/2015 Peter Quigley, MLC Design Review.
Accelerators for ADS March 2014 CERN Approach for a reliable cryogenic system T. Junquera (ACS) *Work supported by the EU, FP7 MAX contract number.
ORNL is managed by UT-Battelle for the US Department of Energy 2-K Pump Down Studies at SNS Presented at the CEC/ICMC 2015 – C3OrA Matthew Howell SCL Systems.
April, 2009 ERL SRF CRYO MODULES AND CRYOGENIC SYSTEM.
IHEP 1.3 GHz Cryomodule and Cryogenics IHEP Cryogenic group 2nd Workshop of the IHEP 1.3 GHz SRF R&D Project Dec 2 nd, 2009.
July LEReC Review July 2014 Low Energy RHIC electron Cooling Roberto Than CRYOGENICS SYSTEM.
CRYOGENICS FOR MLC Cryogenic Piping in the Module Eric Smith External Review of MLC October 03, October 2012Cryogenics for MLC1.
July LEReC Review July 2014 Low Energy RHIC electron Cooling Sergey Belomestnykh SRF and RF systems.
SNS Operating Modes and Reliability Studies Presented at the 4 th Open Collaboration Meeting on Superconducting Linacs for High Power Proton Beams (SLHiPP-4),
1 HIGH ENERGY ACCELERATOR RESEARCH ORGANIZATION KEKB Review Committee/ NAKAI Hirotaka KEK Crab Cavity - Cryogenics - KEKB Crab Cavity Group - presented.
Test plan for SPL short cryomodule O. Brunner, W. Weingarten WW 1SPL cryo-module meeting 19 October 2010.
Project X RD&D Plan Cryogenics Arkadiy Klebaner AAC Meeting February 3, 2009.
An Overview of the ILC Cryogenic System Tom Peterson, Fermilab LCFOA at SLAC 1 May 2006.
Shrikant_Pattalwar TTC 2015 Dec 1, 2015 SLAC 1 Horizontal Tests in a Vertical Cryostat Shrikant Pattalwar STFC Daresbury Laboratory UK.
9/17/07IRENG071 Cryogenic System for the ILC IR Magnets QD0 and QF1 K. C. Wu - BNL.
Process Definition of the Operation Modes for Super-FRS Magnet Testing CSCY - CrYogenic department in Common System, GSI, Darmstadt Y. Xiang, F. Wamers.
Performance analysis of cryogenic system and cryomodules for the complete superconducting linear accelerator at IUAC, New Delhi. T S Datta ( On behalf.
CRYOGENICS FOR MLC Cryogenic Principle of the Module Eric Smith External Review of MLC October 03, October 2012Cryogenics for MLC1.
The SNS Power Upgrade Project Building on the Success of the SNS Accelerator Deployment Kevin Jones Research Accelerator Division Director.
Cryogenic Summary - K. C. Wu Testing D2L102 in MAGCOOLJune, 02 Difference between D2L102 and D2L101 Operating Summary Cooldown to 100 K and 6 K Test Condition.
Date 2007/Sept./12-14 EDR kick-off-meeting Global Design Effort 1 Cryomodule Interface definition N. Ohuchi.
SPL cryomodule specification meeting, CERN 19th October 2010 SPL cryomodule specification: Goals of the meeting SPL cryomodule specification: Goals of.
PIP-II Cryogenics Arkadiy Klebaner and Jay Theilacker PIP-II Collaboration Meeting 9 November 2015.
NML Cryogenic System Arkadiy Klebaner Cryomodule One Commissioning June 3, 2011.
8/29/07K. C. Wu - Brookhaven National Lab1 Major Components in ILC IR Hall Interchangeable Detectors.
PXIE Cryogenics Concept Arkadiy Klebaner Session 5 / WG1 (CW Linac and PXIE) October 26 th, 2011.
CW Cryomodules for Project X Yuriy Orlov, Tom Nicol, and Tom Peterson Cryomodules for Project X, 14 June 2013Page 1.
Ralf Eichhorn CLASSE, Cornell University. I will not talk about: Cavities (Nick and Sam did this) HOM absorbers (did that yesterday) Power couplers (see.
Project X Workshop - Cryogenics1 Project X CRYOGENICS Arkadiy Klebaner.
Overview of the ESS Linac Cryogenic Distribution System
Spoke section of the ESS linac: - the Spoke cryomodules - the cryogenic distribution system P. DUTHIL (CNRS-IN2P3 IPN Orsay / Division Accélérateurs) on.
CRYOGENIC SYSTEM of RAON Chul Jin Choi, Ki Woong Lee Cryogenics and Control Team Accelerator Division 5/23/2013 Chul Jin Choi, Ki Woong Lee Cryogenics.
Development of Cryo-Module Test Stand (CMTS) for Fermi Lab (R.L.Suthar, Head,CDM, BARC) Cryo-Module Test stand (CMTS) is a very sophisticated equipment.
ESS Cryomodule Status Meeting – Introduction | | Christine Darve Introduction to Cryomodules for the ESS 2013 January, 9 th Christine Darve.
Cavities, Cryomodules, and Cryogenics Working Group 2 Summary Report Mark Champion, Sang-ho Kim Project X Collaboration Meeting April 12-14, 2011.
TDR Cryogenics Parameters Tom Peterson 28 September 2011.
October 7, 2010 HINS Test Cryostat 2 K Conversion Status October 7, 2010.
Vishy Ravindranath LCLS-II 2 K Cold Box FDR March 9, 2017
Final Design Cryogenic and mechanical configurations
LCLS-II Technical Requirements
Process Simulation for the LCLS-II Cryogenic Systems
Requirements for Efficient CW SRF Cryomodules
FRIB Cryogenic Support
at STFC Daresbury laboratory
Cryogenic Heater Controls in C100 Cryomodules
TTC Topical Workshop - CW SRF, Cornell 12th – 14th June 2013
N. Hasan1, P. Knudsen2 and V. Ganni2
Dana M. Arenius Jefferson Laboratory Cryogenics Dept Head
Hongyu Bai LCLS-II 2 K Cold Box FDR March 9, 2017
Cryogenic System Operation and the Progress of SSRF II
V. Veshcherevich Cornell University
ILC Experimental Hall Cryogenics An Overview
Strategy for operation and recovery of performance at SNS -Background -History of performance -What is our operational strategy -Performance recovery.
Performance Recovery at CEBAF
SNS Cryoplant Commissioning Past Experiences
SNS PPU Cryomodule Instrumentation
Cryomodule Assembly Plan
Cryomodules Challenges for PERLE
Status of plasma processing at SNS
Comparison between 4K and 2K operation performance of CEBAF injector cryomodules Grigory Eremeev Monday, August 19, 2019.
SNS Coupler Shipping Plans
SNS PPU Cryomodule Instrumentation
Presentation transcript:

ORNL is managed by UT-Battelle for the US Department of Energy Commissioning and Operation of the Horizontal Test Apparatus at SNS Presented at: CEC/ICMC 2015 – C1OrG Brian DeGraff Oak Ridge National Laboratory Spallation Neutron Source June 29th, 2015

2 CEC/ICMC 2015 – DeGraff HTA Presentation Overview Background Design & Fabrication Commissioning & Operation Current R&D using HTA Summary

3 CEC/ICMC 2015 – DeGraff HTA Presentation Background

4 CEC/ICMC 2015 – DeGraff HTA Presentation Motivation for HTA at SNS SNS in operation since 2006 –Highest average proton beam linac in the world, 1.4 MW demonstrated SCL: 81 SRF cavities in 23 cryomodules Cryoplant: 2.4 kW at 2.1 K –Excellent availability of SCL systems ~98% (including supporting sub-systems) –Linac output energy 940 MeV Limiting factor for SRF cavity performance –Electron activity (field emission, multipacting) resulting in end group quench –End groups made of reactor grade niobium with lower thermal conductivity Testing cavity performance in horizontal configuration –Aim to reach 1 GeV to provide margin for reliable 1.4 MW operation –Horizontal Test Apparatus for R&D in cryomodule-like environment Better understand limiting factors of SNS cavities R&D for performance improvement

5 CEC/ICMC 2015 – DeGraff HTA Presentation What is HTA? Multi purpose test vessel –Demountable cavity for rapid testing –Similar RF and cryogenic parameters as cryomodule –Cryogenic connection to operating CTF test system –Flexible instrumentation capability –Three cryogenic helium circuits: Primary liquid helium supply Coupler cooling at 5K Shield cooling

6 CEC/ICMC 2015 – DeGraff HTA Presentation HTA cooling block diagram HTA operates in conjunction with the CTF system:

7 CEC/ICMC 2015 – DeGraff HTA Presentation Design & Fabrication

8 CEC/ICMC 2015 – DeGraff HTA Presentation HTA main design features Vacuum vessel with two main doors & access ports Copper thermal shields cooled to K with helium Access ports to open/close cold manual valves Demountable support rails P and T instrumentation U-tube connections to CTF transfer line Fixed dewar for testing without cavity (redundant LL & heater) Primary and shield circuit pressure reliefs (1.68 atm & 9 atm) SNS coupler & RF connections

9 CEC/ICMC 2015 – DeGraff HTA Presentation HTA specific cooling features Movable primary helium supply bayonet –Single supply and return pipe to HTA Dewar –Movable bayonet on primary stinger to control flow path Demonstrated that cavity cooling is possible without adjustment Flanged helium connections within vessel –Minimizes turn around time Copper cooling blocks on cavity end flanges –Improves cooling for cavity end groups (~5 K additional cooling) –Shortens recovery time after quench

10 CEC/ICMC 2015 – DeGraff HTA Presentation Examples of HTA instrumentation Instrumentation box outside of HTA –Connected to the beam tube extension through the HTA door –Phosphorous screen and faraday cup to monitor e- activity –Camera with direct view of cavity volume Additional diodes –Monitoring of end-group temperatures –Help better understand their thermal behavior

11 CEC/ICMC 2015 – DeGraff HTA Presentation Commissioning & Operation

12 CEC/ICMC 2015 – DeGraff HTA Presentation First HTA cool down in June of 2014 Initial cryogenic commissioning successful –Cool down using the CTF cryogenic plant –Cooling all three helium circuits in parallel (primary, coupler & shield) –28 hours to build liquid helium in the HTA Dewar and cavity helium vessel –60 hours to reach thermal stability in end-groups without copper cooling blocks on cavity end flanges

13 CEC/ICMC 2015 – DeGraff HTA Presentation Second HTA cool down Copper cooling blocks installed on cavity end flanges for the second cool down –Provides additional cooling to end-groups –Shortens cool down time –Improves thermal stability of end groups –Thermal stability reached in 33 hours

14 CEC/ICMC 2015 – DeGraff HTA Presentation HTA cryogenic loads Static heat load –9.6 W static heat load to the cavity liquid helium bath calculated by measuring the liquid level drop with the primary JT valve closed –Static heat load to the shield circuit not determined as no flow meter is available Dynamic heat load –Cavity heat dissipation below CTF cooling capacity Liquefaction load to secondary He circuit –Circuit cooling the FPC & end-groups cooling blocks –Cooling flow measured with the outlet valve fully open 0.75 g/s in the range of 6 K to 10 K

15 CEC/ICMC 2015 – DeGraff HTA Presentation Current R&D using HTA

16 CEC/ICMC 2015 – DeGraff HTA Presentation Example of HTA use for R&D HTA used is the 2 nd step in the plasma R&D

17 CEC/ICMC 2015 – DeGraff HTA Presentation In-situ plasma processing using HTA Test of plasma processing on single dressed cavities prior to test on cryomodule Plasma processing hardware adjacent to HTA vesse l –Processing occurs with cavity at room temperature –Gas manifold to supply process gas (~100 mTorr) –RF plasma station to ignite, tune and monitor plasma Processing by-products monitored using RGA Two cavities successfully plasma processed in-situ and tested in the HTA

18 CEC/ICMC 2015 – DeGraff HTA Presentation Highlight of plasma processing result using HTA Before plasma processing –Measured field emission onset 12 MV/m –Peak gradient 15.2 MV/m After Plasma processing –Measured field emission onset 16 MV/m –Peak gradient 22 MV/m [M. Doleans, SNS 2015] In-situ plasma processing improves cavity performance

19 CEC/ICMC 2015 – DeGraff HTA Presentation Summary The HTA was successfully commissioned in 2014 It performed as desired over five cryogenic tests over the past two years Ideal platform for testing cavities and subsystems in a cryomodule like environment while providing great flexibility for instrumentation, for example –Two Cavities were successfully plasma processed in-situ and tested using the HTA Planned activities –Cold-test of cavity with high RRR end-groups –Test of 700 kW fundamental power coupler with a cavity –2 K HTA operation using Kinney system

20 CEC/ICMC 2015 – DeGraff HTA Presentation Acknowledgements THANKS! I would like to thank many colleagues and support groups at SNS and Ability Engineering for their assistance in performing the HTA testing described in this paper, especially personnel from controls, electrical, RF and water groups. This work was supported by SNS through UT-Battelle, LLC, under contract DE-AC05-00OR22725 for the U.S. DOE.

21 CEC/ICMC 2015 – DeGraff HTA Presentation Backup Slide HTA P&ID: