Nathaniel Garceau, Wei Guo, Thomas Dodamead

Slides:



Advertisements
Similar presentations
Thermal Conductivity Characterization for Cryogenic Applications
Advertisements

D1 and MCBXC pressurized superfluid helium channels sizing for heat extraction Rob van Weelderen
Lesson 25 TWO-PHASE FLUID FLOW
Analysis of Simple Cases in Heat Transfer P M V Subbarao Professor Mechanical Engineering Department I I T Delhi Gaining Experience !!!
Second Sound in Superfluid Helium. Superfluids “Superfluid” describes a phase of matter. In this phase, a liquid has no viscosity and may exhibit several.
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
Update on Various Target Issues Presented by Ron Petzoldt D. Goodin, E. Valmianski, N. Alexander, J. Hoffer Livermore HAPL meeting June 20-21, 2005.
Compressible Flow.
Progress on the MuCool and MICE Coupling Coils * L. Wang a, X. K Liu a, F. Y. Xu a, A. B. Chen a, H. Pan a, H. Wu a, X. L. Guo a, S. X Zheng a, D. Summers.
23 Jan 2007 LASA Cryogenics Global Group 1 ILC Cryomodule piping L. Tavian for the cryogenics global group.
Workshop on Beam losses, heat deposition and quench levels for LHC magnets, Geneva, 3-4 March 2005 Liquid helium heat transfer in superconducting cable.
Heat in the CH 15 Prentice Hall p CH 15 Prentice Hall p At ppt Atmosphere.
Cryomodule Helium Vessel Pressure -- a Few Additional Comments Tom Peterson 18 November 2007.
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.
Senior Design Team #18 Lacey Ednoff Brianna Beconovich Jarimy Passmore Jesse Poorman.
Thermodynamics. Thermodynamics is the branch of Physics that deals with the conversion of heat into other forms of energy, or other forms of energy into.
1 Superfluidity in Liquid Helium PHYS 4315 R. S. Rubins, Fall 2009.
Safety Requirements and Regulations 10/3/20121Safety Requirements & Regulations James Sears.
CRYOGENICS FOR MLC Cryogenic Piping in the Module Eric Smith External Review of MLC October 03, October 2012Cryogenics for MLC1.
/18 Cryogenic thermometry for refrigerant distribution system of JT-60SA Kyohei NATSUME, Haruyuki MURAKAMI, Kaname KIZU, Kiyoshi YOSHIDA, Yoshihiko KOIDE.
ERL: G-5/e-Gun Cryogenic & Pressure Safety Committee Review ERL G-5/e-gun Beam Line Vacuum Failure Analysis April 24, 2009.
REDUCING SCALE DEPOSITION BY PHYSICAL TREATMENT Sungmin Youn and Professor X. Si, Calvin College REDUCING SCALE DEPOSITION BY PHYSICAL TREATMENT Sungmin.
56 MHz SRF Cavity Thermal Analysis and Vacuum Chamber Strength C. Pai
SEPTEMBER 2002 Pixel Support Tube A. Smith LBNL 1 ATLAS Pixel Detector Heater Panel Testing Alexis Smith September 17, 2002.
Matter Intermolecular Forces  Are the forces between neighboring molecules.
4/27/06 1 US LHC ACCELERATOR RESEARCH PROGRAM brookhaven - fermilab – berkeley - slac US LARP Inner Triplet Cryogenics and Heat Transfer LARP Collaboration.
1 Small Coolers for MICE Michael A. Green University of Oxford Department of Physics Oxford OX1 3RH, UK MICE Collaboration Meeting RAL.
CRYOGENICS FOR MLC Cryogenic Principle of the Module Eric Smith External Review of MLC October 03, October 2012Cryogenics for MLC1.
Cryogenic scheme, pipes and valves dimensions U.Wagner CERN TE-CRG.
Date 2007/Sept./12-14 EDR kick-off-meeting Global Design Effort 1 Cryomodule Interface definition N. Ohuchi.
Simulation of heat load at JHF decay pipe and beam dump KEK Yoshinari Hayato.
CHAPTER 6 THERMAL ENERGY. PS 7 a-c 1. I can illustrate and explain the addition and subtraction of heat on the motion of molecules. 2. I can distinguish.
Convection Heat Transfer in Manufacturing Processes P M V Subbarao Professor Mechanical Engineering Department I I T Delhi Mode of Heat Transfer due to.
Investigation One.  The term used to describe the total of all the energy within a substance.  Heat is also known as thermal energy.  Includes both.
STEADY HEAT CONDUCTION IN PLANE WALLS, Ch.3
Heat Transfer by Convection
CONVECTION : An Activity at Solid Boundary P M V Subbarao Associate Professor Mechanical Engineering Department IIT Delhi Identify and Compute Gradients.
Heat. Nature of Heat Heat is the transfer of energy (every in transit) from one body to another due to the temperature difference between the two bodies.
J. Polinski, B. Baudouy -The NED heat transfer program at CEA CEA Saclay, January 11th NED heat transfer program at CEA NED heat transfer program.
Thermal Energy That’s so hot.. All matter is made of tiny little particles (atoms and molecules) All matter is made of tiny little particles (atoms and.
Heat Transfer Su Yongkang School of Mechanical Engineering # 1 HEAT TRANSFER CHAPTER 8 Internal flow.
325 MHz Superconducting Spoke Cavity Coupler status. T. Khabiboulline Power Coupler design for Superconducting Spoke cavities. Originally.
Michael A. Green and Heng Pan
Thermally managing high power devices using heat pipe assemblies
Final Design Cryogenic and mechanical configurations
Optical Fiber Sensors for Cryogenic applications Presented by: Daniele Inaudi, CTO SMARTEC
THERMAL ENERGY.
Hervé Allain, R. van Weelderen (CERN)
Cryogenic Heater Controls in C100 Cryomodules
超臨界CO2在增強型地熱系統儲集層中取熱之研究-子計畫三 CO2在增強型地熱系統取熱模型之建構及效能分析
Hervé Allain, R. van Weelderen (CERN)
Xiaomin Pang, Yanyan Chen, Xiaotao Wang, Wei Dai, Ercang Luo
Influence on the performance of cryogenic counter-flow heat exchangers due to longitudinal conduction, heat in-leak and property variations Qingfeng Jiang.
March 10, 2016 | International Cryogenic Engineering Conference-26, New Delhi, India Nitrogen gas propagation following a sudden vacuum loss in a tube.
Goddard Space Flight Center
Hervé Allain, R. van Weelderen (CERN)
Small Coolers for MICE MICE Collaboration Meeting RAL Michael A. Green
Leonard Vasiliev, Alexander Zhuravlyov and Alexander Shapovalov
Wolfgang Anders, BESSY, Berlin
Cryostat design Mechanical design: Thermal screens: Specifications:
Dan Schick M.S. Graduate Student Mechanical Engineering Room: 1335 ERB Hometown: Oconomowoc, WI Thesis: Exploring the geometry.
YouTube Video Heat &Thermal Energy YouTube Video
KINEMATICS 1. A nozzle is so shaped that the velocity of flow along the centre line changes linearly from 1.5 m/s to 15 m/s in a distance of m. Determine.
Operation experience of cryogenic system and cryomodules for the superconducting linear accelerator at IUAC, New Delhi. T S Datta ( On behalf of Cryogenics.
States of Matter and Heat
SNS PPU Cryomodule Instrumentation
Matthias Liepe Zachary Conway CLASSE, Cornell University June 1, 2009
Aleksander Kopczyński
Thermal Energy.
Presentation transcript:

Gas propagation following a sudden loss of vacuum in a pipe cooled by He I and He II. Nathaniel Garceau, Wei Guo, Thomas Dodamead Cryogenics Group, National High Magnetic Field Laboratory – Tallahassee FL 32310 FAMU-FSU College of Engineering, Florida State University – Tallahassee FL 32310 Abstract The experiments in this study were designed to simulate the sudden vacuum break in the beam-line pipe of a liquid helium cooled superconducting particle accelerator. This paper expands previous research conducted at the National High Magnetic Field Laboratory and evaluates the differences between normal helium (He I) and superfluid helium (He II). For the experiments, a strait pipe and was evacuated and immersed in liquid helium at 4.2 K and below 2.17 K. Preliminary results suggested that the speed of the gas front through the experiment decreased exponentially along the tube for both normal liquid helium and super-fluid helium. The system was modified to a helical pipe system to increase propagation length. Testing and analysis on these two systems revealed there was minor difference between He I and He II front propagation despite the difference between the two distinct helium phases heat transfer mechanisms: convection vs thermal counterflow. Furthermore, the results indicated that the temperature of the tube wall above the LHe bath also plays a significant role in the initial front propagation. More systematic measurements are planned in with the helical tube system to further verify the results. Experiment Results Figure 7. Strait tube temperature sensor data showing noise level in He II. Figure 8. Helical tube temperature sensor data showing reduced noise level noise level in He II. Figure 2. Strait vacuum tube system diagram. Figure 3. Helical vacuum tube system diagram. Introduction Particle accelerator systems are cryogenic systems are composed of multiple segments called cryomodules which contain SRF niobium cavities, liquid baths of He II, sensors and other machinery. Cryomodules contain two vacuum spaces. The first vacuum space is the insulation space for the He II bath which immerses the niobium cavity. The second vacuum space is in the center niobium beam tube where the accelerated particles travel. The second vacuum space is an interconnected void between all cryomodules of the system. If there is a sudden rupture of this second vacuum space then there is potential that the entire system could become affected. Previous research at the National High Magnetic Field Lab attempted to quantify and model the propagation of the gas front in the beam tube in the event of a catastrophic loss of vacuum [1-3]. To simulate the air propagation in the system, a pipe was immersed in liquid helium (LHe) and nitrogen was allowed to rush in. The propagation in the cryogenic system is order of magnitudes slower than at room temperature due to the air freezing to the tube walls. Illustration of a vacuum break in a tube system is illustrated in figure 1 below. Strait tube system Helical tube system Pipe length (m) 1.5 5.75 Pipe inner diameter (mm) 32.1 25.4 Wall thickness (mm) 3 1.25 Coil diameter (mm) - 229 Coil pitch (mm) 51 Number of temperature sensors 8 Distance between sensors (mm) 127 (254) 719 Nitrogen reservoir tank (L) 86 757 Figure 9. Rise time vs position graph of Helical tube setup for both He I and He II analyzed based on actual liquid present in the system. Figure 10. Rise time vs position graph of Helical tube setup for both He I and He II. Data of He II shifted based on maximum fill height before vacuum pumping. Conclusion System improved and noise in data reduced when moving to helical system. Inlet velocities matched when shifting He II data to the maximum filling height before vacuum pumping. Minimal difference between He I and He II propagation front arrival time with new analysis method. Tube wall temperature above liquid level plays a role in determining front propagation. Previous proposed model is incomplete. Equipment and instrumentation 8 Epoxy encapsulated Lakeshore Cernox diodes 4 DT9824 ISO-Channel Data Acquisition Boxes (4800 Hz) Edwards D145 cold cathode gague (range 10-3 to 10-7 torr) MKS Batatron 626 (1000 Torr gauge) Venturi tube to choke flow providing constant mass flow LHe (I or II) High Vacuum Air Air propagation front Start of deposition of air on pipe surface Tube walls (copper or niobium) Tube heated by gas Convection/Thermal counter flow/Boiling Solid air Figure 1. Air propagation following a vacuum tube in a tube surrounded by liquid helium. Acknowledgments This work is supported by U.S. Department of Energy grant DE-FG02-96ER40952. The experiments were conducted at the National High Magnetic Field Laboratory, which is supported by NSF DMR-1157490 and the State of Florida. References [1] R. Dhuley, S.W. Van Sciver. Propagation of nitrogen gas in a liquid heium cooled vacuum tube following sudden vacuum loss – Part 1: Experimental investigations and analytical modeling. J. of Heat and Mass Transfer, V96, 2016, pp573-581 [2] R. Dhuley, S.W. Van Sciver. Propagation of nitrogen gas in a liquid heium cooled vacuum tube following sudden vacuum loss – Part 2: Analysis of the propagation speed. J. of Heat and Mass Transfer, V98, 2016 pp728-737, 2016 [3] R. Dhuley, S.W. Van Sciver. Epoxy encapsulation of Cernox SD thermometer for measuring the temperature of surface in liquid helium. Cryogenics, V77, 2016, pp 49-52 Slowing front Figure 5. Epoxy encapsulated surface mounted sensor mounted with idium foil N-grease and G-varnish. [3] Figure 6. Helical tube internal assembly.