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Defense Intelligence Reference Document Inertial Electrostatic Confinement Fusion

Defense Intelligence Agency · 72 pages · text from the file's own layer

This Defense Intelligence Agency reference document, dated 10 March 2010, covers inertial electrostatic confinement (IEC) fusion. It was produced in FY 2009 under the DIA's Advanced Aerospace Weapon System Applications (AAWSA) program. The report focuses on work at the University of Illinois Urbana-Champaign and reviews IEC basics, experiments, theory and applications such as neutron sources, explosives detection and space propulsion. It concludes by proposing a breakeven experiment for p-11B fusion that uses a hydrogen plasma simulation.

  • p. 5 …Photo of Center Spot Formation ......................................................... 12 Figure 2.1. The "Historic" Early IEC Ion Injection Experiment…
  • p. 9 …The ideal, however, is the elimination of the grid altogether which can be done via formation…
  • p. 12 …This result was quite negative for electron formation of potential wells, but left the route possibly…
  • p. 14 …most critical factors which inhibit deep well formation are inadequate spherical focusing and charge neutralization. The…
  • p. 18 …The ion formation is done in the high pressure gun discharge region outside of the chamber…
  • p. 19 …Photo of Center Spot Formation. The main beam observed is a direct path along the injector…
  • p. 20 …Klevans, "Theory of Potential-Well Formation in an Electrostatic Confinement Device", J. of Appl. Phys., Vol…
  • p. 22 …As shown in the paper, he found structure for both consistent with well formation. One possible…
  • p. 30 …However, to date, formation of the jet has only been studied under steady-state operation. 23…
  • p. 31 …The result is the formation of the intense space charge neutralized ion beam (or "plasma jet…
  • p. 32 …This type of ion formation in the IEC has been studied extensively by workers at Nambe…
  • p. 35 …The approach being pursued at UIUC is the formation of deep potential wells with angular ion…
  • p. 45 …considered well formation with emphasis on angular momentum effects (Reference 4.4). Earlier studies had assumed…
  • p. 48 …is very encouraging for formation of deep wells in IEC devices designed for reactors using beam…
  • p. 49 …Krylov algorithm that does not require actual formation and storage of the Jacobian matrix to minimize…
  • p. 69 …While very demanding, plasma simulations show that carefully controlled injection can provide the potential well formation…
  • p. 70 …This eliminates the need for a grid by formation of a deep potential well (ion trap…
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gridded IECs. Further, the model provides more insight into operation in the STAR
mode. This effect, described earlier in Section 1, is summarized in Figure 4.11.
For higher pressure operation, charge exchange severally limits the number of passes
possible through the grid despite the very high effective transparency achieved by the
STAR mode. This is emphasized by results for the calculations in Reference 4. 7 shown
in Figure 4.12. (Note that related calculations by J. Khachan discussed earlier in Section
II show similar results, but emphasize the role of molecular ions at lower operating
voltages).
Figure 4.11. Diagram Showing Equipotential
Surfaces of the IEC Cathode Grid and Their
Focusing Effect on a Beam of Ions in the star
Mode Discharge at High Voltages(> 50 keV)
Ion Energy Distributions 1st paH
2 cm grid radius, &O kV, 4.8 mTorr
2 .OE+07 ,--------:-c----i
• 1.5E+07
•.2 1 OE:+07 t- --=~
- 5.0E-+00
O.OE+OO
0 20000 """"
ton Energy leVI
1--= lwf ....-Cnll-il
'1--- ...... •c...,.. 'I
--- ..... ~ C.r'4
~ I
Figure 4.12. Results for Calculations for Ion Energy
Distributions is• Pass
These computational results are for the UIUC IEC "A-device" using a diameter grid with
conditions of 50 kV, 10 mA, and 4-cm, and background gas pressure of 4.6 mTorr. At
this pressure, charge-exchange (CX) collisions occur quite frequently for D+ ions. In
their first pass through the IEC, about half of these ions CX within the cathode region
and are lost. After only four passes, most of the remaining ions have lost a large
amount of their original potential energy and the fusion rate from subsequent passes
becomes negligible. D2+ ions have a smaller CX cross section and it takes about 20
passes for most of the D2+ ions to lose their energy and be lost to the grid. (D2+ ions
and also D3+ ions are naturally produced at diminishing quantities in ionization reactions
along with o+. As pointed out by Khachan his work noted D2+ becomes more significant
in lower voltages).
In summary, the design of an optimal IEC neutron source is seen to be quite different
from a power-producing IEC. In the source design, the grid parameters, grid/vessel
diameter ratio, chamber diameter, surface conditions, background pressure, current,
and voltage all become important parameters. In power-producing devices the ion
injection parameters-- including ion current, ion energy relative to height of the well
potential, the ion angular momentum, and the ion to electron temperature ratio, along
with the chamber diameter ---determine performance. The calculations and simulations
cited here provide much insight into these issues and also provide insight into
theoretical and computational tools for IEC study.
45
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Report, from the dia collection. The PDF is mirrored here; the original link is under it. 72 pages are in the text index: search them above, or from the library's search.