System and method for producing circular field emission structures
An improved field emission system and method is provided that involves field emission structures having electric or magnetic field sources. The magnitudes, polarities, and positions of the magnetic or electric field sources are configured to have desirable correlation properties, which may be in accordance with a code. The correlation properties correspond to a desired spatial force function where spatial forces between field emission structures correspond to relative alignment, separation distance, and the spatial force function.
1. A field emission system, comprising:
a first field emission structure, said first field emission structure comprising a first plurality of field emission sources having positions and polarities in accordance with a spatial force function, said first plurality of field emission sources being arranged in a first circular ring; and
a second field emission structure, said second field emission structure comprising a second plurality of field emission sources having positions and polarities in accordance with said spatial force function, said second plurality of field emission sources being arranged in a second circular ring, said spatial force function being in accordance with a code, said code corresponding to a code modulo of said first field emission structure and a complementary code modulo of said second field emission structure, said code defining a peak spatial force corresponding to substantial alignment of said code modulo of said first field emission structure with said complementary code modulo of said second field emission structure, said code also defining a plurality of off peak spatial forces corresponding to a plurality of different misalignments of said code modulo of said first field emission structure and said complementary code modulo of said second field emission structure, said plurality of off peak spatial forces having a largest off peak spatial force, said largest off peak spatial force being less than half of said peak spatial force.
2. The system of claim 1 , wherein axes of said first plurality of field emission sources are perpendicular to an interface surface of said first circular ring.
3. The system of claim 1 , wherein said polarities of said first plurality of field emission sources are in accordance with at least one code modulo of a first code.
4. The system of claim 1 , wherein said first code comprises at least one of a Barker code, a Gold code, a Kasami sequence, a hyperbolic congruential code, a quadratic congruential code, a linear congruential code, a pseudorandom code, or a chaotic code
5. The system of claim 4 , wherein said first field emission structure further comprises a third plurality of field emission sources having positions and polarities in accordance with said spatial force function, said third plurality of field emission sources being arranged in a third circular ring about said first circular ring.
6. The system of claim 5 , wherein axes of said third plurality of field emission sources are perpendicular to said interface surface of said first circular ring.
7. The system of claim 5 , wherein said polarities of said third plurality of field emission sources are in accordance with at least one code modulo of a second code.
8. The system of claim 7 , wherein said second code comprises at least one of a Barker code, a Gold code, a Kasami sequence, a hyperbolic congruential code, a quadratic congruential code, a linear congruential code, a pseudorandom code, or a chaotic code.
9. The system of claim 1 , wherein said first field emission structure is complementary to said second field emission structure.
10. The system of claim 1 , wherein at least one of said first field emission structure or said second field emission structure comprises a permanent magnet, an electromagnet, an electret, a magnetized ferromagnetic material, a portion of a magnetized ferromagnetic material, a soft magnetic material, or a superconductive magnetic material.
11. The system of claim 1 , wherein said spatial force function comprises at least one of a peak attractive force or a peak repellant force.
12. A field emission system, comprising:
a first field emission structure having a first plurality of field emission sources arranged in a first circular ring; and
a second field emission structure having a second plurality of field emission sources arranged in a second circular ring, said first plurality of field emission sources and said plurality of second field emission sources having positions and polarities in accordance with a desired spatial force function, said spatial force function being in accordance with a code, said code corresponding to a code modulo of said first field emission structure and a complementary code modulo of said second field emission structure, said code defining a peak spatial force corresponding to substantial alignment of said code modulo of said first field emission structure with said complementary code modulo of said second field emission structure, said code also defining a plurality of off peak spatial forces corresponding to a plurality of different misalignments of said code modulo of said first field emission structure and said complementary code modulo of said second field emission structure, said plurality of off peak spatial forces having a largest off peak spatial force, said largest off peak spatial force being less than half of said peak spatial force.
13. The system of claim 12 , wherein axes of said first plurality of field emission sources are perpendicular to an interface surface of said first circular ring.
14. The system of claim 12 , wherein said polarities of said first plurality of field emission sources are in accordance with at least one code modulo of a first code.
15. The system of claim 14 , wherein said first code comprises at least one of a Barker code, a Gold code, a Kasami sequence, a hyperbolic congruential code, a quadratic congruential code, a linear congruential code, a pseudorandom code, or a chaotic code.
16. The system of claim 12 , wherein said first field emission structure further comprises a third plurality of field emission sources having positions and polarities in accordance with said spatial force function, said third plurality of field emission sources being arranged in a third circular ring about said first circular ring.
17. The system of claim 16 , wherein axes of said third plurality of field emission sources are perpendicular to said interface surface of said first circular ring.
18. The system of claim 16 , wherein said polarities of said third plurality of field emission sources are in accordance with at least one code modulo of a second code.
19. The system of claim 18 , wherein said second code comprises at least one of a Barker code, a Gold code, a Kasami sequence, a hyperbolic congruential code, a quadratic congruential code, a linear congruential code, a pseudorandom code, or a chaotic code.
20. The system of claim 12 , wherein said first field emission structure is complementary to said second field emission structure.
21. The system of claim 12 , wherein at least one of said first field emission structure or said second field emission structure comprises a permanent magnet, an electromagnet, an electret, a magnetized ferromagnetic material, a portion of a magnetized ferromagnetic material, a soft magnetic material, or a superconductive magnetic material.
22. The system of claim 12 , wherein said spatial force function comprises at least one of a peak attractive force or a peak repellant force.