File:Proposed Mechainism for Wiffle Ball Confinement.png
Original file (3,812 × 2,436 pixels, file size: 1.02 MB, MIME type: image/png)
This is a file from the Wikimedia Commons. Information from its description page there is shown below. Commons is a freely licensed media file repository. You can help. |
Summary
DescriptionProposed Mechainism for Wiffle Ball Confinement.png |
English: This figure shows the development of the proposed “waffle ball” confinement concept [6]. Three rows of figures are shown: the magnetic field, the electron motion and the plasma density inside the polywell. (A) At low beta, the field is the superposition of six rings in a box [2]. In the center is a null point - a zone of no magnetic field. The plasma is magnetized, meaning that the plasma and magnetic field intermix [7]. The electrons and ions feel a Lorentz force [11]. This makes them corkscrew along the magnetic field lines; while their charges interact with one another [10]. The radius of this corkscrew is the gyroradius. The plasma density is low, making the resulting plasma pressure (density*temp*boltzmann) also low. This means the beta ratio is also low. (B) As plasma is injected, the density rises. The plasma puts more pressure on the surrounding magnetic field, increasing the beta ratio. (C) As the beta ratio reaches and exceeds 1, the plasma pressure overpowers the magnetic field pressure. This pushes the cloud outward, starting from the central null point [1, 3, 6]. As the plasma presses outwards, the density of the surrounding magnetic field rises [10]. This tightens the corkscrewing motion of the particles outsides the center. They move with a smaller gyroradius. A sharp boundary is formed [3]. A skin current is predicted to form on this boundary layer [4, 5, 8]. This may cause the plasma to go diamagnetic, rejecting the external field [4, 5, 8, 9, 12, 6]. (D) If the pressures find equilibrium at a beta of one, this determines the shape of the plasma cloud. The tightening field also shrinks the space available for escaping plasma, forming the “wiffle ball” confinement [6, 12]. (E) In the center, there is no magnetic field from the rings. This means that its motion inside the field free radius should be relatively straight or ballistic [2]. This forms two regions: adiabatic and non-adiabatic plasma [2, 8].
Sources:
1. Presentation “Measurement of Enhanced Cusp Confinement at High Beta” Dr. Jaeyoung Park, University of Wisconsin-Madison Madison Wisconsin. June 2014
2. Carr, Matthew, and David Gummersall. "Low Beta Confinement in a Polywell Modeled with Conventional Point Cusp Theories." Physics of Plasmas 18.112501 (2011): n. page. Print
3. Park, Jaeyoung, Nicholas A. Krall, and Paul E. Sieck. "High Energy Electron Confinement in a Magnetic Cusp Configuration." In Submission (2014): 1-12. https://arxiv.org. Web. 13 June 2014.
4. Tuck, James L. "A New Plasma Confinement Geometry." Nature 187.4740 (1960): 863-64. Nature Publishing Group. Web. 13 June 2014.
5. Berkowitz, J., K. Friedrichs, H. Goertzel, H. Grad, J. Killeen, and E. Rubin. "Cusped Geometries." Journal of Nuclear Energy (1954) 7.3-4 (1958): 292-93. Web. 16 June 2014.
6.“The Advent of Clean Nuclear Fusion: Superperformance Space Power and Propulsion” Bussard R, W. 57th International Astronautical Congress (IAC 2006), Valencia, Spain - October 2006
7. Tuszewski, M. "Field Reversed Configurations." Nuclear Fusion 28.11 (1988): 2033-092.
8. Containment in a cusped Plasma System, Dr. Harold Grad, NYO-9496
9. Rogers, Joel. "Steady State Polywell Fusion Device Designed Using 2D Simulation." The 10th Annual US-Japan IEC Conference. Kyoto University, 4 Dec. 2008. Web. 04 Jan. 2014.
10. "Ephi - the Simple Physics Simulator." www.mare.ee. Indrek Mandre, 2007. Web. 08 Apr. 2012.
11. Jackson, John David. Classical Electrodynamics. 2nd ed. N.p.: Jones & Bartlett, n.d. Print.
12. Should Google Go Nuclear? Clean, Cheap, Nuclear Power. 24 minutes, 18 seconds. Perf. Dr. Robert Bussard. Google Tech Talks. YouTube, 9 Nov. 2206. Web. 15 Sept. 2010. http://video.google.com/videoplay?docid=1996321846673788606#.
This figure shows the development of the proposed “waffle ball” confinement concept [6]. Three rows of figures are shown: the magnetic field, the electron motion and the plasma density inside the polywell. (A) At low beta, the field is the superposition of six rings in a box [2]. In the center is a null point - a zone of no magnetic field. The plasma is magnetized, meaning that the plasma and magnetic field intermix [7]. The electrons and ions feel a Lorentz force [11]. This makes them corkscrew along the magnetic field lines; while their charges interact with one another [10]. The radius of this corkscrew is the gyroradius. The plasma density is low, making the resulting plasma pressure (density*temp*boltzmann) also low. This means the beta ratio is also low. (B) As plasma is injected, the density rises. The plasma puts more pressure on the surrounding magnetic field, increasing the beta ratio. (C) As the beta ratio reaches and exceeds 1, the plasma pressure overpowers the magnetic field pressure. This pushes the cloud outward, starting from the central null point [1, 3, 6]. As the plasma presses outwards, the density of the surrounding magnetic field rises [10]. This tightens the corkscrewing motion of the particles outsides the center. They move with a smaller gyroradius. A sharp boundary is formed [3]. A skin current is predicted to form on this boundary layer [4, 5, 8]. This may cause the plasma to go diamagnetic, rejecting the external field [4, 5, 8, 9, 12, 6]. (D) If the pressures find equilibrium at a beta of one, this determines the shape of the plasma cloud. The tightening field also shrinks the space available for escaping plasma, forming the “wiffle ball” confinement [6, 12]. (E) In the center, there is no magnetic field from the rings. This means that its motion inside the field free radius should be relatively straight or ballistic [2]. This forms two regions: adiabatic and non-adiabatic plasma [2, 8]. Sources: 1. Presentation “Measurement of Enhanced Cusp Confinement at High Beta” Dr. Jaeyoung Park, University of Wisconsin-Madison Madison Wisconsin. June 2014 2. Carr, Matthew, and David Gummersall. "Low Beta Confinement in a Polywell Modeled with Conventional Point Cusp Theories." Physics of Plasmas 18.112501 (2011): n. page. Print 3. Park, Jaeyoung, Nicholas A. Krall, and Paul E. Sieck. "High Energy Electron Confinement in a Magnetic Cusp Configuration." In Submission (2014): 1-12. https://arxiv.org. Web. 13 June 2014. 4. Tuck, James L. "A New Plasma Confinement Geometry." Nature 187.4740 (1960): 863-64. Nature Publishing Group. Web. 13 June 2014. 5. Berkowitz, J., K. Friedrichs, H. Goertzel, H. Grad, J. Killeen, and E. Rubin. "Cusped Geometries." Journal of Nuclear Energy (1954) 7.3-4 (1958): 292-93. Web. 16 June 2014. 6.“The Advent of Clean Nuclear Fusion: Superperformance Space Power and Propulsion” Bussard R, W. 57th International Astronautical Congress (IAC 2006), Valencia, Spain - October 2006 7. Tuszewski, M. "Field Reversed Configurations." Nuclear Fusion 28.11 (1988): 2033-092. 8. Containment in a cusped Plasma System, Dr. Harold Grad, NYO-9496 9. Rogers, Joel. "Steady State Polywell Fusion Device Designed Using 2D Simulation." The 10th Annual US-Japan IEC Conference. Kyoto University, 4 Dec. 2008. Web. 04 Jan. 2014. 10. "Ephi - the Simple Physics Simulator." www.mare.ee. Indrek Mandre, 2007. Web. 08 Apr. 2012. 11. Jackson, John David. Classical Electrodynamics. 2nd ed. N.p.: Jones & Bartlett, n.d. Print. 12. Should Google Go Nuclear? Clean, Cheap, Nuclear Power. 24 minutes, 18 seconds. Perf. Dr. Robert Bussard. Google Tech Talks. YouTube, 9 Nov. 2206. Web. 15 Sept. 2010. http://video.google.com/videoplay?docid=1996321846673788606#. |
Date | |
Source | I made this figure |
Author | WikiHelper2134 |
Licensing
Permission is granted to copy, distribute and/or modify this document under the terms of the GNU Free Documentation License, Version 1.2 or any later version published by the Free Software Foundation; with no Invariant Sections, no Front-Cover Texts, and no Back-Cover Texts. A copy of the license is included in the section entitled GNU Free Documentation License.http://www.gnu.org/copyleft/fdl.htmlGFDLGNU Free Documentation Licensetruetrue |
- You are free:
- to share – to copy, distribute and transmit the work
- to remix – to adapt the work
- Under the following conditions:
- attribution – You must give appropriate credit, provide a link to the license, and indicate if changes were made. You may do so in any reasonable manner, but not in any way that suggests the licensor endorses you or your use.
- share alike – If you remix, transform, or build upon the material, you must distribute your contributions under the same or compatible license as the original.
Original upload log
Date/Time | Dimensions | User | Comment |
---|---|---|---|
2015-01-07 19:08 | 3812×2436× (1074296 bytes) | WikiHelper2134 | Uploading a self-made file using [[Wikipedia:File_Upload_Wizard|File Upload Wizard]] |
Elements representats en aquest fitxer
depicts
7 January 2015
File history
Click on a date/time to view the file as it appeared at that time.
Date/Time | Thumbnail | Dimensions | User | Comment | |
---|---|---|---|---|---|
current | 03:42, 28 February 2016 | 3,812 × 2,436 (1.02 MB) | FastilyClone | Transferred from enwp |
File usage
The following 2 pages use this file:
Global file usage
The following other wikis use this file:
- Usage on ca.wikipedia.org
Metadata
This file contains additional information, probably added from the digital camera or scanner used to create or digitize it.
If the file has been modified from its original state, some details may not fully reflect the modified file.
Horizontal resolution | 37.8 dpc |
---|---|
Vertical resolution | 37.8 dpc |