The invention described herein may be manufactured, used, imported, sold, and licensed by or for the Government of the United States of America without the payment to me of any royalty thereon.
The present invention relates to magnetic propulsion systems. More particularly, the present invention relates to devices and methods providing a magnetic field for space vehicle thrusters.
The proposed propulsion systems for ion Hall propulsion of long range space vehicles generally require a radially oriented magnetic field in a toroidal cavity. However, the standard sources of such radially oriented magnetic fields are neither sufficiently uniform nor strong enough to provide the necessary operational efficiency.
The drawbacks and deficiencies of inefficient operations, unwanted axial magnetic field components and weak magnetic fields found in prior art magnetic propulsion systems could be alleviated with a magnetic structure that generates a stronger radial magnetic field suitable for a more efficient magnetic propulsion. Those skilled in the art will readily observe that a number of potential magnetic structures with differing shapes and geometries could be employed to provide an enhanced magnetic field for a magnetic propulsion system such as the magic ring or magic cylinder, but the conventional prior art magnetic structures also suffer from a number of drawbacks and shortcomings such as excessive weight or cumbersome size.
Thus, there has been a long-felt need to develop a new magnetic structure that is suitable for a magnetic propulsion system and does not suffer from the drawbacks, deficiencies, shortcomings and disadvantages of prior art magnetic structures. Up until now, this long-felt need for a new structure for a magnetic propulsion system has not been answered.
One promising approach that deserves further consideration is the prior art magic toroid. Referring now to
Despite these advantages, the magic toroid is a completely closed structure that does not provide an exit for an anion beam. These drawbacks cannot be overcome by merely cutting a circular exit port at the top of the structure because that would both decrease and distort the internal radial magnetic field. This inventor's U.S. Pat. No. 5,396,209 entitled “Light-Weight Magnetic Field Sources Having Distortion-Free Access Ports,” points to a number of possible solutions for the magic toroid's lack of either an exit port or working space access. That invention's spherical and cylindrical magnetic structures provide distortion-free access to the working space with spherical and cylindrical cavities, and this approach could also be used with a toroidally shaped magnet to resolve the long-standing shortcomings, drawbacks and disadvantages of prior art magnetic propulsion systems. The toroidally-shaped ionic drive magnet of the present invention advantageously includes a distortion free exit port that is not available in prior art magnetic structures.
It is an object of the present invention to provide a toroidally shaped magnetic device with a distortion-free exit port.
It is another object of the present invention to provide a toroidally shaped magnetic device with distortion-free exit ports in order to provide a more operationally efficient, uniform and stronger radial magnetic field.
It is still a further object of the present invention to configure a toroidally shaped magnetic device with distortion-free exit ports to release unwanted electrons from a central cavity in order to provide for a more operationally efficient, uniform and stronger radial magnetic field that does not interfere with a vehicular propulsion system.
It is yet another object of the present invention to provide a method for forming a toroidally shaped magnetic device with distortion-free exit ports in order to provide a more operationally efficient, uniform and stronger radial magnetic field.
These and other objects and advantages are accomplished by this invention's toroidally-shaped magnetic device for propulsion systems, comprising a section of a magic cylinder magnetized in a cylindrical direction that is added to a uniformly magnetized cylindrical shell with no magnetic field in its central cavity to produce a cylindrical shell with a uniform interior magnetic field configured in such a way that a slot can be removed from the cylindrical shell for an exit port, which structure is then bent to form a toroidally-shaped ionic drive magnet. The present invention also encompasses a magnetic propulsion system for space vehicles and methods for magnetizing a toroidal ionic drive structure for a vehicle.
The present invention resolves the long-standing problems, shortcomings and limitations of prior art magnetic propulsion systems caused by undesired axial field components and a weak magnetic field by assembling a group of magic cylinder sections that are magnetized in a cylindrical direction and then added to a uniformly magnetized cylindrical shell without a central magnetic field. By assembling magic cylinder sections with a cylindrical magnetization direction into a uniformly magnetized cylindrical shell without a central magnetic field, this invention's cylindrical magnetic segments produce a cylindrical shell with a uniform interior magnetic field from which a slot can be advantageously removed to construct an exit port. The cylindrical magnetic segments are then bent to form this invention's toroidal ionic drive magnet.
Referring now to
γ=2θ Equation (1)
where θ is the coordinate angle and γ is the angle of magnetization with respect to the polar axis with an interior magnetic field represented by large arrow 33. The
Adding the magnetization vectors of the
The small arrows 38 all have unequal lengths, which indicates a varying magnetic strength. If the largest possible magnetization strength were used at all points of the magnetic structure, one could leave the magnetic field unaltered if material were pared away to compensate for the greater strength according to the formula:
where Br is the magnetic remanence of the magnetic material and ro and ri are the outer and inner radii, respectively. The result is the single magnetic segment 45 depicted in
Referring now to
Referring now to
The present invention also encompasses a toroidal magnetic ionic drive system for a space vehicle and a method for magnetizing a toroidal ionic drive structure for a vehicle. The method for magnetizing a toroidal ionic drive structure for a vehicle comprises the steps of forming a group of magic cylinder sections; forming a uniformly magnetized cylindrical shell having a central cavity and a first plurality of magnetization vectors; providing a vehicle with a propulsion system; magnetizing the group of magic cylinder sections in a cylindrical direction, with each magic cylinder section having an interior magnetic field and a second plurality of magnetization vectors; affixing the group of magic cylinder sections to the cylindrical shell; combining the first and second plurality of magnetization vectors; forming a group of composite cylindrical magnetic segments, each composite segment, being magnetized in a cylindrical direction with a varying magnetic field, having a central cavity and a uniform interior magnetic field; bending the group of composite segments into a toroidal tube; removing a first slot section from an outer surface of the toroidal tube; providing a longitudinal exit port; and allowing electrons to escape from the central cavity without distorting the uniform interior magnetic field in order to eliminate unwanted interference with the propulsion system.
A number of variations of the devices and methods of the present invention are also possible, including differences in the
Number | Name | Date | Kind |
---|---|---|---|
4355236 | Holsinger | Oct 1982 | A |
4614930 | Hickey et al. | Sep 1986 | A |
H591 | Leupold | Mar 1989 | H |
4862128 | Leupold | Aug 1989 | A |
4911627 | Leupold | Mar 1990 | A |
5063004 | Leupold | Nov 1991 | A |
5103200 | Leupold | Apr 1992 | A |
5274309 | Leupold | Dec 1993 | A |
5396209 | Leupold | Mar 1995 | A |
5491459 | Leupold | Feb 1996 | A |
5523731 | Leupold | Jun 1996 | A |
5532666 | Leupold | Jul 1996 | A |
5634263 | Leupold | Jun 1997 | A |
5666098 | Leupold | Sep 1997 | A |
6445130 | Leupold | Sep 2002 | B1 |
6525633 | Leupold | Feb 2003 | B1 |
6861935 | Leupold | Mar 2005 | B1 |
6989730 | Leupold | Jan 2006 | B1 |