Some notes about liquid Hydrogen target 1.How it operates 2.Modification 2007 3.Target length, empty mode 4.Status.

Slides:



Advertisements
Similar presentations
Basic Refrigeration, Its Components, and Its Cycle
Advertisements

Automotive A/C systems
COE RAC SECTOR ITI UTTARSANDA
Air Conditioners and Heaters
ACADs (08-006) Covered Keywords Chilled Water System Description Supporting Material
1 Ann Van Lysebetten CO 2 cooling experience in the LHCb Vertex Locator Vertex 2007 Lake Placid 24/09/2007.
The Home Inspection Book: A Guide for Professionals By Marcia Darvin Spada Copyright, Thomson/South-Western, 2003, Revised, 2006.
Student CD for Commercial Refrigeration for A/C Technicians
Basic Refrigeration Cycle
Operated by the Southeastern Universities Research Association for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility Page 1.
The Use of Small Coolers for Hydrogen and Helium Liquefaction
1 Cooling the Hydrogen (Helium) Absorbers with Small Coolers Michael A. Green University of Oxford Department of Physics Oxford OX1 3RH, UK MICE Video.
Tests of the LH2 target at GSI 2 nd -4 th april 2014 T. Hennino, C. Commeaux (IPN Orsay) T. Heinz, E. Schwab (GSI) The LH2 target.
Is it possible to transfer heat to a substance and it not increase in temperature? Yes, during a phase change.
MICE collaboration meeting RAL 28 October 2004 Absorber R & D Plan by Wing Lau – Oxford University.
ESS Cryogenic System Process Design Philipp Arnold Section Leader Cryogenics CEC – ICMC 2015 June 29, 2015.
MICE hydrogen review System modifications. Relief circuit repair During leak testing of R&D tests, the insulating vacuum would not go lower than
William Notardonato 1, Adam Swanger 1, Wesley Johnson 2, and Thomas Tomsik 2 1 -NASA Kennedy Space Center 2- NASA Glenn Research Center Ground Operations.
Fcal upgrade for sLHC: Cryogenics modifications – TE-CRG/ C.Fabre 1 ATLAS FCal Upgrade for sLHC: Modifications to the Calorimeter Cryogenic.
Air-Source Heat Pumps I North Seattle Community College HVAC Program Instructor – Mark T. Weber, M.Ed. Airsource Heat Pump 1.
Phase Change Heat Pumps Josh MacCaull Objective: To impart a knowledge of the principles behind phase change heat pumps and their applications.
 Air conditioning Category: 1. Refrigeration cycle 2. Heat pump 3. Evaporative cooling  Refrigerants  Air conditioning system configurations  Refrigeration.
Air Conditioning Heating Refrigeration
HEAT PUMP Hassan Sarwar ME100 4M-10C Nov 1st, 2005.
Refrigeration Basics 101.
The Refrigeration Process
David Garvin Product Manager EarthDirEX Geothermal Copyright © 2015 Nortek Inc. All rights reserved.
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.
HD target.
Hydrogen system R&D. R&D programme – general points Hydrogen absorber system incorporates 2 novel aspects Hydrogen storage using a hydride bed Hydrogen.
Hydrogen Pre-Operation Safety Review 4 th October 2011 Results from Helium Commissioning M Hills.
Spectrometer Solenoids MICO 214 Steve Virostek LBNL February 6, 2013.
Reser- Voir Turbo Pump 1 Five- Fold Turbo Pump 2 Scroll Pump1 Scroll Pump2 Tgt. Cham- ber N2N2 H2H2 P2 P1 P3 P4 P5 P6 Panel Tgt. Cell V2V1 V3 V0 E0 E1.
Agenda – Basics of cavity integration into CAST Introduction (M Davenport) Information exchange 2016 – Vacuum in cold bore – 2 cavities Cooling RF Cavities.
The Water Cycle. On the next slide… 1.Use the pictures and move them around the create an accurate diagram of the water cycle. 2.Move the words to identify.
Cooling plant upgrade Jose Botelho Direito, Michele Battistin, Stephane Berry, Sebastien Roussee 2 nd SPD Cooling Workshop 30/11/201112nd SPD.
Johan Bremer, 22th-26th September 2008 Cryogenics Operations 2008, CERN, Geneva, Switzerland 1 CRYOGENICS OPERATIONS 2008 Organized by CERN Safety aspects.
9/17/07IRENG071 Cryogenic System for the ILC IR Magnets QD0 and QF1 K. C. Wu - BNL.
1 Small Coolers for MICE Michael A. Green University of Oxford Department of Physics Oxford OX1 3RH, UK MICE Collaboration Meeting RAL.
1 Liquid Hydrogen R&D test report CM34 – 17/10/12 S Watson P Warburton M Courthold.
Date 2007/Sept./12-14 EDR kick-off-meeting Global Design Effort 1 Cryomodule Interface definition N. Ohuchi.
8/29/07K. C. Wu - Brookhaven National Lab1 Major Components in ILC IR Hall Interchangeable Detectors.
Refrigeration What's Refrigerated? What makes up a system?
Refrigeration Systems
© 2012 MITSUBISHI HEAVY INDUSTRIES – MAHAJAK AIR CONDITIONERS CO., LTD. All Rights Reserved. 5 August 2014.
Vapour Compression Cycle You will Learn: 1 Vapour Compression Cycle Actual Vapour Compression Cycle Components in a Vapour Compression Plant Multistage.
VAPOUR ABSORPTION REFRIGERATION SYSTEM
Air condition installation
Replacing hydride bed with bottle Advantages No risk of diminished bed capacity Following jobs no longer necessary – Move pressure gauge – Replace cracked.
Understanding the system.
SIS 100 Vacuum chamber Recooler String system Components
Heat Transfer and Refrigeration Cycle
ILC Cryogenics: Study of Emergency Action and Recovery - in progress -
He Plant, LN2 Systems and Commissioing
Process Simulation for the LCLS-II Cryogenic Systems
Automotive Air Conditioners
Design of the thermosiphon Test Facilities 2nd Thermosiphon Workshop
ARAC/H/F Air-cooled water chillers, free-cooling chillers and heat pumps Range: kW.
Heat Transfer and Refrigeration Cycle
Gas Liquefaction Nick Kretschmar.
Refrigeration Basics By: Mohamed Iqbal Pallipurath.
Cryogenic System Commissioning Summary Report
Cryogenics – The Basics
Powered By-
Cryogenics – The Basics
The Heat Pump-pumps heat from a cold area to a warmer area.
Presentation transcript:

Some notes about liquid Hydrogen target 1.How it operates 2.Modification Target length, empty mode 4.Status

The full liquid H2/D2 target system consist of : 1. The H2 /D2 gas storage tank of 1.0 m3, located in the vicinity of tagger. 2. The helium-4 gas compressor, in a blue painted box located close to the liquefier and it is connected to it. 3. The liquefier, it is a rectangular aluminium box located about 1.8 meters upstream from the centre of the Crystal Ball. It had the “cold-head” and the storage reservoir (“condenser”) for the liquid H2. 4. The liquid H2 transfer line which connects the condenser with the target cell. 5. The target cell, located in the centre of the CB.

Compressor V18 Cold-head condenser Target cell 16 K P targ =1400 /1080 mbar heaters P vac =5x10-7mbar 1 Storage tank

The transfer line and the target cell are located in the beam pipe, which must have good vacuum, about 3x10-7 mbar. The five components of the liquid H2 /D2 target form a closed system. At the start, all hydrogen is gaseous, a pressure is typically 1400 mbar. When in operation, about 25% of this is liquefied and the pressure in the system drops to typically 1080 mbar. The temperature (pressure, density) of the liquid H2 /D2 is maintained by the delicate balance of cooling by addition of cold liquid and evaporation by two heaters which are turned on and off by the pressure and temperature control system. One heater is located on the condenser and the other on the target cell. Monitoring of the temperature and pressure at various places is done by a dedicated computer which is presently located in the tagger vicinity.

Target Modifications in 2007 After successful operation of our new Helium3/Helium4 target the heat exchangers for the Joule Thompson circuit were removed (see picture below). Due to the reduced heat capacity the time for cooling down the target could be made shorter by a factor of 2 (36hours to 18 hours).The heat contact on between condensor and cold head was improved.

The material length at the beam axis for 21K is: 47.6mm+-0.3mm

Ordinary “empty target” procedure

Advantage – we don’t interrupt the measurement and can continue it with full target in a few minutes any moment as we need. Disadvantage – inside “empty target” hydrogen density in ~50 times less then for “full target”.

Filling process after “empty target”

uid/ T (K) P (mbar) Density*10 3 d (g/cm 3 ) PhaseDensity ratio d gas/ d liq Method liquid gas2*10-2 Ordinary “Empty target” gas2*10-4 “real empty target” gas1.3*10-3

In order to pump target we should interrupt measurement for 1 hour, expert should be duty during “empty run” and we can continue to work with full target only in hours. Therefore this method will be able to use at the end of run if we need “real empty target”.

Status The liquid H2/D2 target worked for 6068 hours on the MAMI beam with CB and TAPS for A2 experiments during (2004,1/2 of 2005, 2007). > 70 cycles “cooling down – warming”, every cycle is stress for target cell. Now we have “cold leak” and should find and fix it.