Magnet Options for Magnetic Intervention SC Wire Characteristics (Critical Current Density: Jc) With the advent of cusp geometry for diverting ions into.

Slides:



Advertisements
Similar presentations
Superconducting and Conventional Machines A.M.Campbell IRC in Superconductivity Cambridge.
Advertisements

1 BROOKHAVEN SCIENCE ASSOCIATES NSLS-II Insertion Device R&Ds Toshi Tanabe George Rakowsky, John Skaritka and Susila Ramamoorthy NSLS-II Experimental Facilities.
The Reversed Field Pinch: on the path to fusion energy S.C. Prager September, 2006 FPA Symposium.
September 24-25, 2003 HAPL meeting, UW, Madison 1 Armor Configuration & Thermal Analysis 1.Parametric analysis in support of system studies 2.Preliminary.
Superconducting Solenoid Punch Team Supercool Andy Lin Chris Kinney Naomi Kohen David Schoen.
New World Record for Superconducting Coil Performance PI: Gregory S. Boebinger, Director National High Magnetic Field Laboratory Supported by NSF (No.
DC Field Facilities 2013 and beyond Scott Hannahs NHMFL External Advisory Committee August 2010.
March 21-22, 2006 HAPL meeting, ORNL 1 Status of Chamber and Blanket Effort A. René Raffray UCSD With contributions from: M. Sawan B. Robson G. Sviatoslavsky.
Study on supporting structures of magnets and blankets for a heliotron-type fusion reactors Study on supporting structures of magnets and blankets for.
Update on Self Pinch Transport of Heavy Ion Beams for Chamber Transport D. V. Rose, D. R. Welch, Mission Research Corp. S. S. Yu, Lawrence Berkeley National.
1 The Genoa Tracker Solenoids and their Contribution toward a New Design Michael A. Green Lawrence Berkeley National Laboratory and Pasquale Fabbricatore.
Stellarator magnets L. Bromberg J.H. Schultz MIT Plasma Science and Fusion Center ARIES meeting March 8-9, 2004.
Design of Standing-Wave Accelerator Structure
Impact of Magnetic Diversion on Laser IFE Reactor Design and Performance A. R. Raffray 1, J. Blanchard 2, A. E. Robson 5, D. V. Rose 4, M. Sawan 2, J.
1 Radiation Environment at Final Optics of HAPL Mohamed Sawan Fusion Technology Institute University of Wisconsin, Madison, WI HAPL GIMM Conference Call.
Stellarator magnet conductors L. Bromberg J. Schultz MIT Plasma Science and Fusion Center Cambridge MA Aries Meeting, Georgia Tech September 3, 2003.
49th Annual Meeting of the Division of Plasma Physics, November , 2007, Orlando, Florida Ion Temperature Measurements and Impurity Radiation in.
Hybrid QD0 Studies M. Modena CERN Acknowledgments: CERN TE-MSC CLIC Magnets Study Team: A.Aloev, E. Solodko, P.Thonet, A.Vorozhtsov “CLIC/ILC QD0” Meeting.
Thin Films for Superconducting Cavities HZB. Outline Introduction to Superconducting Cavities The Quadrupole Resonator Commissioning Outlook 2.
Status and Highlights of the DC Field User Program as of summer 2010, mid-point in current award period Graphene – in distinct PIs, 9 of them.
DC Magnet User Program Eric Palm Director, DC User Program Scott Hannahs Director, DC Field Facilities and Instrumentation Magnets Instrumentation People.
MCTF Alexander Zlobin MUTAC Meeting 8-10 April MCTF Magnet and HTS Conductor R&D.
Power Extraction Research Using a Full Fusion Nuclear Environment G. L. Yoder, Jr. Y. K. M. Peng Oak Ridge National Laboratory Oak Ridge, TN Presentation.
Analysis of a Helium Brayton Power Cycle for a Direct-Drive IFE Power Reactor 19 th High Average Power Laser Program Workshop, October 22 nd -23 rd, 2008,
Neutrino Factory Workshop UK Magnet Manufacturing Capability Elwyn Baynham CCLRC Rutherford Appleton Laboratory, UK Elwyn Baynham UKNF Oct 2003.
MCTF Michael Lamm MUTAC 5-Year Plan Review 22 August Magnet R&D for Muon Accelerator R&D Program Goals Proposed Studies Preliminary Effort and Cost.
1 M. Modena for the CLIC MDI magnet study Team (A. Aloev, P. Thonet, E. Solodko, A. Vorozhtsov) CLIC MDI Meeting,16 January 2015.
Today’s agenda: Electric Current. You must know the definition of current, and be able to use it in solving problems. Current Density. You must understand.
Superconducting R&D – Now Strand and Cable R&D FERMILAB Magnet Systems Department – Now SC Materials Department (TD) HTS Insert Coil Test in External Solenoid.
Aug 9, 2008S. Kahn -- HCC Magnet Plans1 HCC Magnet Future Plans Steve Kahn Aug 9, 2008 NFMCC Friday Meeting.
Options for Final Focusing Quadrupoles Michele Modena CERN TE-MSC Many thanks for the contributions of: J. Garcia Perez, H. Gerwig, C. Lopez, C. Petrone,
M. Modena, A. Aloev CERN, Geneva, CH “An alternative Super-ferric design for ILC QD0” “LCWS14, 6-10 October 2014 Belgrade.
NSTX-U NSTX-U PAC-31 Response to Questions – Day 1 Summary of Answers Q: Maximum pulse length at 1MA, 0.75T, 1 st year parameters? –A1: Full 5 seconds.
Permanent Magnet Quadrupoles for the CLIC Drive Beam Jim Clarke, Norbert Collomb, Neil Marks, James Richmond, and Ben Shepherd STFC Daresbury Laboratory,
Characterization of core and edge turbulence in L- and H-mode Alcator C-Mod plasmas Outline: Alcator C-Mod tokamak Fluctuation diagnostics Low to high.
1 1 by Dr. John Parmentola Senior Vice President Energy and Advanced Concepts Presented at the American Security Project Fusion Event June 5, 2012 The.
UCRL-PRES Magnet Design Considerations & Efficiency Advantages of Magnetic Diversion Concept W. Meier & N. Martovetsky LLNL HAPL Program Meeting.
August 9, 2006 Design, Fabrication and Maintenance Considerations of Blanket Options for Magnetic Intervention G. Sviatoslavsky, I.N. Sviatoslavsky, M.
Harold G. Kirk Brookhaven National Laboratory High-Field Solenoids for a MC Final Cooling System AAC 2012 Austin, Texas June 11-15, 2012.
Limiting Effects of Conductance on Pumping Speeds: For molecular flow through a circular cross-section, the pumping speed is controlled by the conductance.
Magnet design issues & concepts for the new injector P.Fabbricatore INFN-Genova Magnet design issues & concepts for the new injector P.Fabbricatore INFN-Genova,
FET-OPEN proposal for a HTS fast cycled magnet for Energy Efficiency and Operational Flexibility Motivations SC magnets are the choice of reference to.
1 Computational Modeling of Magnetic Intervention D. V. Rose* Voss Scientific, LLC A. E. Robson, J. D. Sethian, and J. L. Giuliani Naval Research Laboratory.
Maxime Matras J. Jiang, N. C. Craig, P. Chen, F. Kametani, P. J. Lee, U. P. Trociewitz, H. Kandel, C. Scheuerlein *, E. E. Hellstrom, and D. C. Larbalestier.
1 Computational Modeling in Support of the Magnetic Intervention Concept D. V. Rose,* T. C. Genoni, R. E. Clark, D. R. Welch, and T. P. Hughes Voss Scientific,
CERN Accelerator School Superconductivity for Accelerators Case study 3 Paolo Ferracin ( ) European Organization for Nuclear Research.
December 13, 2006 Blanket and Shield Design Considerations for Magnetic Intervention G. Sviatoslavsky, I.N. Sviatoslavsky, M. Sawan (UW), A.R. Raffray.
CLIC Stabilisation Day’08 18 th March 2008 Thomas Zickler AT/MCS/MNC/tz 1 CLIC Quadrupoles Th. Zickler CERN.
HTS for Upgrades: overview of test requirements Amalia Ballarino, CERN Review of superconductors and magnet laboratories, A. Ballarino.
Task 6: Short Period Nb3Sn Superconducting Helical Undulator George Ellwood
The Business of Science ® Page 1 © Oxford Instruments 2012 CONFIDENTIAL Bi-2212 Round Wire Performance Continuous Improvement OST, EUcard2 CERN, June 14,
E. Todesco, Milano Bicocca January-February 2016 Appendix C: A digression on costs and applications in superconductivity Ezio Todesco European Organization.
Magnet R&D for Large Volume Magnetization A.V. Zlobin Fermilab Fifth IDS-NF Plenary Meeting 8-10 April 2010 at Fermilab.
1 Radiation Environment at Final Optics of HAPL Mohamed Sawan Fusion Technology Institute University of Wisconsin, Madison, WI HAPL Meeting ORNL March.
Prototyping of Superconducting Magnets for RAON ECR IS S. J. Choi Institute for Basic Science S. J. Choi Institute for Basic Science.
Breaking the 30 T Superconducting Magnet Barrier Gregory S. Boebinger, Florida State University, DMR Applied Superconductivity Center and Magnet.
Nb3Sn wiggler development
Magnetization, AC Loss, and Quench in YBCO Cables”
Challenges of vacuum chambers with adjustable gap for SC undulators
RESISTIVE MAGNETS Maintenance, Upgrades
Electrical Engineering Department, SGSITS, Indore, INDIA
Compact and Low Consumption Magnet Design The DESY Experience
EuCARD2 WP 10.2 HTS Conductor
Design and Optimization of Force-Reduced Superconducting Magnets
Targeted Physics Optimization in HSX
Fabrication and Test of ϕ35mm Iron Base Superconductor Solenoid
LIQHYSMES: A novel hybrid energy storage option
Qingjin XU Institute of High Energy Physics (IHEP),
Analysis on Solenoidal High Temperature Superconducting Magnet using COMSOL MultiPhysics® Abhinav Kumar Department of Mechanical Engineering, Lovely Professional.
S. Bettoni on behalf of the whole team
Presentation transcript:

Magnet Options for Magnetic Intervention SC Wire Characteristics (Critical Current Density: Jc) With the advent of cusp geometry for diverting ions into external dumps, the necessity of high field magnets around the reactor chamber becomes a requirement. Given the current HAPL ‘tulip’ cusp configuration, magnets approximately 2.7 meters in diameter operating in the range of 10 to 20 Tesla are needed to provide these required fields. This study will review the state-of-the-art in high field magnet research, regarding design feasibility as well as reliability, in support of HAPL’s operational parameters. Motivation Magnetic Intervention Geometry “Evolution” 4-coil Ring Cusp Octacusp (Multiple point cusps) “Tulip” Design Magnetic field guided ion trajectory of Tulip shape A review of existing magnet technology, including conversations with staff at the Plasma Sciences and Fusion Center at MIT, has shown that while it is possible to build magnets capable of sustaining the basic operating parameters required by HAPL’s cusp configuration, it needs to be demonstrated that these magnets can perform reliably within HAPL’s proposed duty cycle. Today’s knowledge indicates that for the magnet size and fields required by HAPL, both the cyclic frequency and length of service for these magnets will be a challenging engineering endeavor. These conclusions encompass a study of superconducting, normal and hybrid magnet technologies. Further study, additional analysis and prototype development are strongly recommended actions that will further advance the feasibility of this concept. By working within realistic parameters, there is optimism that a designable magnetic intervention concept may be achieved. Conclusion Current High Field Superconducting Magnets T 900MHz NMR magnet by NHMFL (National High Magnetic Field Lab): 105 mm bore T magnet by Oxford instruments: 52 mm bore T/750 MHz Spectrometer in McKnight Brain Institute, Univ. of Florida (manufacturer: Bruker): 89 cm bore T/600 MHz NMR Spectrometer in McKnight Brain Institute, Univ. of Florida: 51 mm bore. 5. Oxford 21.1T magnet (Varian INOVA 900): 63 mm warm bore. 6. Oxford 11.7T magnet (Varian 500 wide Bore): 89 mm warm bore T/500 MHz (Bruker Avance 500 Wide Bore): 89 mm warm bore. To build a 20T magnet with min coil pack diameter of 2.7m and coil pack current of 27.5E6 A-turns is still challenging. A possible solution may be using HTS (e.g. BSCCO) at LHe temperature. Also some future work can be done to seek for an optimal magnet design to minimize coil pack current but producing same ion trajectory. Overview of SC capability by Oxford Instruments 8-coil magnetic intervention design with max B=~20T and coil pack i=27.5E6 A-turns For reference 1,2, the 45 Tesla hybrid magnet at the National High Field Magnet Lab (NHMFL) in Florida is only a few inches in size and consumes up to 33MW during operation. If scaled up to the dimensions required for the HAPL cusp design, not only would the power consumption be significant, but the high forces and stresses associated with such a magnet would require a major support structure. Note that the NHMFL outsert is being operated at 11T and the resistive magnet at 34T, with a power consumption of the resistive insert much larger than 20MW 1. 1 The Projected 45T Hybrid Magnet System at the Nijmegen High Field Magnet Laboratory; J. Perenboom, S. Wiegers, et. al., IEEE Transactions on Applied Superconductivity, Vol. 18, No. 2, June National High Magnetic Field Lab 45 Tesla Hybrid Magnet I. Zatz, H. Zhang, C. Priniski, T. Dodson, C. Gentile Princeton Plasma Physics Laboratory ANSYS Analysis of 8 Coil Configuration 19 th High Average Power Laser Program Workshop, October 22nd-23rd, 2008, University of Wisconsin, Madison, WI