US20010035107A1 - Magnetic levitation transport system - Google Patents
Magnetic levitation transport system Download PDFInfo
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- US20010035107A1 US20010035107A1 US09/801,397 US80139701A US2001035107A1 US 20010035107 A1 US20010035107 A1 US 20010035107A1 US 80139701 A US80139701 A US 80139701A US 2001035107 A1 US2001035107 A1 US 2001035107A1
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60L—PROPULSION OF ELECTRICALLY-PROPELLED VEHICLES; SUPPLYING ELECTRIC POWER FOR AUXILIARY EQUIPMENT OF ELECTRICALLY-PROPELLED VEHICLES; ELECTRODYNAMIC BRAKE SYSTEMS FOR VEHICLES IN GENERAL; MAGNETIC SUSPENSION OR LEVITATION FOR VEHICLES; MONITORING OPERATING VARIABLES OF ELECTRICALLY-PROPELLED VEHICLES; ELECTRIC SAFETY DEVICES FOR ELECTRICALLY-PROPELLED VEHICLES
- B60L13/00—Electric propulsion for monorail vehicles, suspension vehicles or rack railways; Magnetic suspension or levitation for vehicles
- B60L13/10—Combination of electric propulsion and magnetic suspension or levitation
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60L—PROPULSION OF ELECTRICALLY-PROPELLED VEHICLES; SUPPLYING ELECTRIC POWER FOR AUXILIARY EQUIPMENT OF ELECTRICALLY-PROPELLED VEHICLES; ELECTRODYNAMIC BRAKE SYSTEMS FOR VEHICLES IN GENERAL; MAGNETIC SUSPENSION OR LEVITATION FOR VEHICLES; MONITORING OPERATING VARIABLES OF ELECTRICALLY-PROPELLED VEHICLES; ELECTRIC SAFETY DEVICES FOR ELECTRICALLY-PROPELLED VEHICLES
- B60L13/00—Electric propulsion for monorail vehicles, suspension vehicles or rack railways; Magnetic suspension or levitation for vehicles
- B60L13/04—Magnetic suspension or levitation for vehicles
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60L—PROPULSION OF ELECTRICALLY-PROPELLED VEHICLES; SUPPLYING ELECTRIC POWER FOR AUXILIARY EQUIPMENT OF ELECTRICALLY-PROPELLED VEHICLES; ELECTRODYNAMIC BRAKE SYSTEMS FOR VEHICLES IN GENERAL; MAGNETIC SUSPENSION OR LEVITATION FOR VEHICLES; MONITORING OPERATING VARIABLES OF ELECTRICALLY-PROPELLED VEHICLES; ELECTRIC SAFETY DEVICES FOR ELECTRICALLY-PROPELLED VEHICLES
- B60L2200/00—Type of vehicles
- B60L2200/26—Rail vehicles
Definitions
- This invention relates in general to transporting of vehicles by a mass transport system and in particular to a system that will magnetically levitate transporting vehicles.
- a mass transport system that utilizes a pair of guideways.
- Each guideway has a shroud surrounding it with a slot for receiving an axle of a vehicle.
- the vehicle may either be a ferry for hauling conventional automobiles and trucks, or it may be a special purpose vehicle that carries cargo and/or passengers.
- the vehicle has wheels that roll on tracks located within the shrouds.
- the vehicle may be powered electrically or by other means.
- the magnetic fields of the permanent magnets pass through the coils of copper wire. This induces currents in the coils that in turn produce opposing magnetic fields to the permanent magnets. This causes the permanent magnets to be repulsed from the coils, thereby levitating components of the train above the rails. Additional coils are also located at the sides of the rail system.
- the train components have permanent magnets mounted at the sides in such a manner to interact with the coils at the sides, thereby providing horizontal direction control for the vehicles.
- the prior art systems have disadvantages. Magnetic levitation systems cannot be used in railway switching areas, making it necessary for vehicles to slow to a low speed and exit the magnetic levitation segments of the rails for track-to-track switching by conventional railroad means.
- the magnetic levitation coils are added to the outsides of the conventional railway rails, thereby requiring a railway bed of greater width than conventional railroads.
- These railways have been expensive to build because of extensive land grading and/or massive structural supports for heavy elevated railways. Also, they are expensive because of the large number of separate, individually wound coils of copper wire that form the magnetic levitation rails.
- the transport system of this invention uses a pair of levitating rails.
- Each levitating rail has a core and a plurality of coils extending circumferentially around the core perpendicular to the length of the levitating rail.
- each of the levitating rails has an upper surface located directly above the core.
- a vehicle used on the transport system has wheels that roll on the upper surfaces of the levitating rails while at a low speed.
- the vehicle has a plurality of magnets which create magnetic fields that pass through the coils while the vehicle moves along the levitating rails. This induces in the coils, which causes magnetic fields to be generated that repel the magnetic fields of the permanent magnets. Once the speed begins to pick up, the levitating rails will levitate the vehicle.
- Each of the levitating rails has a hollow core that is nonmagnetic.
- the vehicle may be powered along the guideways by various systems, with one of them being a linear motor.
- the linear motor comprises power coils periodically spaced apart from each other along the length of the rails.
- the power coils are supplied with alternating current, which induces movement of the vehicle when its magnets react with the magnetic fields produced by the power coils.
- a steering rail is mounted adjacent to at least one of the levitating rails.
- the steering rail has a plurality of coils wrapped around a core.
- a pair of steering magnets are mounted to the vehicle and positioned on opposite sides of the steering rail.
- the steering magnets create magnetic fields that pass through the coils of the steering rail. This induces current in the coils, which causes magnetic fields to be generated that repel the magnetic fields of the permanent magnets.
- the opposing forces created by the magnets and the coils steer the vehicle by tending to cause the permanent magnets to remain substantially equidistant from the steering rail.
- steering magnets mounted to the vehicle on each side of the vehicle.
- steering rails are located in both guideways.
- One of the steering rails passes straight through the switching area for retaining the vehicle on a main track.
- the other steering rail diverges off into a branch line. If the vehicle is to be switched onto the branch line, an actuator on the vehicle causes the steering magnets on the main track side to move downward from the main track steering rail. At the same time, another actuator on the vehicle causes steering magnets on the branch side to be moved upward into proximity with the branch side steering rail.
- the branch side steering magnets will thus cause the vehicle to follow the branch rail, resulting in the vehicle exiting from the main track onto the branch line.
- the steering rail is formed by providing sheets of substantial width.
- Each sheet which may be of an insulating film such as Mylar, will have parallel traces of conductive strips formed on it.
- the conductive strips will be separated by insulation strips, which are air gaps between the strips.
- the sheet is wrapped in multiple wraps around the core to create multiple coils along the rails simultaneously. For use as a levitating rail, these coils will be shorted at each wrap so that each coil forms only a single loop.
- FIG. 1 is a schematic front view of an automobile located on a mass transport system constructed in accordance with this invention.
- FIG. 2 is a perspective view of the guideways of the mass transport system of FIG. 1.
- FIG. 3 is an enlarged sectional view of one of the guideways and a portion of the transporting vehicle of FIG. 1.
- FIG. 4 is a sectional view similar to FIG. 3, but taken at a different point to show one of the wheels of the transporting vehicle.
- FIG. 5 is an enlarged sectional view of one of the levitating rails of the mass transport system of FIG. 1.
- FIG. 6 is a sectional view of a portion of the levitating rail of FIG. 5, taken along the line 6 - 6 of FIG. 5.
- FIG. 7 is a schematic sectional view of the levitating rail of FIG. 5, taken along the line 7 - 7 of FIG. 5, and also showing magnets of the vehicle interacting with the levitating rail.
- FIG. 8 is a sectional view of the levitating rail shown in FIG. 7, illustrating one of the power coils.
- FIG. 9 is a schematic view illustrating one method for forming the levitating coil of FIG. 1.
- FIG. 10 is a plan view showing a switching section of the guideways of FIG. 1 leading to a branch section.
- the mass transport system includes a pair of guideways 11 .
- Guideways 11 are mounted above the ground preferably on columns 13 , as illustrated in FIG. 2.
- Guideways 11 are preferably spaced apart, leaving clear open spaces between them.
- Cross braces 15 at the upper ends of columns 13 support guideways 11 in a parallel manner.
- each guideway 11 includes a levitating rail 17 , which is shown schematically.
- Levitating rail 17 is made up of a series of coils that are passive; that is, they are not supplied with electrical power.
- a mass transport vehicle 19 has wheels 21 carried in guideways 11 .
- Vehicle 19 also has a plurality of permanent magnets 23 that are positioned just above each levitating rail 17 .
- Permanent magnets 23 create a magnetic field that passes through the coils of levitating rails 17 .
- the moving magnetic fields of magnets 23 will induce a current flow in the coils of levitating rails 17 . This causes a magnetic field that repels magnets 23 , causing levitation of vehicle 19 .
- each levitating rail 17 has a nonconducting core 25 of that is either hollow, as shown, or solid. It may be a high strength composite or other non-magnetic material. Core 25 may be rectangular as shown in FIG. 5 or other shapes, such as cylindrical. A series of electrical coils 27 are wrapped around core 25 . An outer shell 29 is located over coils 27 . Outer shell 29 is also of a nonconductive material, such as a composite. Preferably the upper surface of outer shell 29 is flat and faces upward for providing support for one of the wheels 21 (FIG. 4).
- a sheet 31 is used to simultaneously wrap a large number of coils 27 .
- Sheet 31 has a backing material of a nonconductive film such as Mylar, with electrically conductive traces or strips 23 are formed therein.
- Conductive strips 33 are parallel and spaced apart from each other, forming insulation strips 35 between them.
- Each insulation strip 35 comprises the Mylar backing material and air gap between conductive strips 33 .
- Sheet 31 may be quite wide, say 20-50 ft. in width, thus will have a large number of conducive strips 33 .
- Sheet 31 is wrapped around core 25 in a direction that places conductive strips 31 perpendicular to longitudinal axis 37 (FIG. 5) of core 25 .
- Sheet 31 will be wrapped numerous times around core 37 , although only three wraps are shown in FIG. 5. For example, there could be one hundred wraps around core 37 to achieve the desired magnetic forces.
- conductive strips 33 are electrically connected to each other by a shorting band 39 , shown in FIG. 6.
- Shorting band 29 is located on both sides of the Mylar backing film of sheet 31 . As it overlaps the preceding wrap, shorting band 29 will electrically contact the conductive strips 33 of the previous wrap. Consequently, each coil 27 formed by a conductive strip 33 extends only around core 25 one time, thus forming a single loop. Also, each single coil 27 will be electrically connected joined to the other conductive strips 33 .
- shorting bands 39 Prior to wrapping sheet 31 around core 25 , shorting bands 39 will be placed along the length of sheet 31 at desired intervals so that there will be only one turn of each coil 27 .
- FIG. 9 illustrates the wrapping process, showing sheet 31 being drawn in a web from a large roll (not shown) of sheet material.
- a propulsion system must be used for propelling vehicle 19 (FIG. 1) along guideways 11 .
- the propulsion system could be a variety of devices, including an engine or electrical motor driving a propeller, or a jet engine. In the preferred embodiment, however, the propulsion system comprises an electrical linear motor.
- a power coil 47 will be supplied with electrical power, unlike coils 27 of levitating rail 17 .
- the power coil 41 is supplied with AC power from a power supply 43 .
- Power coil 41 is preferably wrapped around core 25 and is formed on the same sheet 31 with levitating coils 27 .
- Power coil 41 preferably comprises one or more conductive strips 45 that are not shorted to adjacent conductive strips 33 or to themselves with shorting band 39 , as in FIG. 6. Rather conductive strips 45 are wrapped around the coil continuously, as shown in FIG. 8, resulting in a pair of leads 47 , one at each end of the sheet.
- Conductive strips 45 are parallel to conductive strips 33 (FIG. 6) and may be identical in width.
- Magnet 23 is preferably a horseshoe type magnet, having a pair of downward facing legs 49 connected by a cross bar 53 . This results in a downward directed north pole in one leg and a downward directed south pole in the other leg, creating a magnetic field passing in a semi-circular downward loop.
- the magnetic field extends through outer shell 29 and through coils 27 as well as power coil 41 .
- the magnetic fields of magnets 23 move longitudinally along the stationary levitating rail 17 , the magnetic fields will create current in the coils 27 .
- This current causes an opposite magnetic force which repulses magnets 23 , causing vehicle 19 (FIG. 1) to levitate.
- the electromagnetic field produced by the AC power supply 43 will induce forward motion of vehicle 19 in a direction indicated by the arrow.
- vehicle 19 (FIG. 1) could be steered mechanically or electrically, preferably vehicle 19 is magnetically steered along guideways 11 . As shown in FIG. 3, this is handled by a steering rail 55 that is mounted within one of the guideways 11 above and adjacent levitating rail 17 .
- Steering rail 55 is constructed in the same manner as levitating rail 17 .
- FIG. 6, which illustrates levitating rail 17 also illustrates the construction of steering rail 55 .
- Steering rail 55 comprises a plurality of coils, each having windings perpendicular to the length of the rail.
- Steering rail is also preferably constructed with a sheet 31 having conductive strips 33 . It also is formed as a passive device, having a shorting band 39 , resulting in single loop coils throughout its length. It does not have power coils similar to power coil 41 .
- a pair of steering magnets 57 are mounted by a mounting member 59 to vehicle 19 (FIG. 1) above one of the wheels 21 on each side of vehicle 19 .
- Mounting member 59 will selectively position magnets 57 in close proximity to and on each side of steering rail 55 .
- Steering magnets 57 are also permanent magnets and react in the same manner as levitating magnets 23 .
- As they move along steering rail 55 their magnetic fields will induce current in the coils of steering rail 55 , which in turn causes a magnetic field that repels magnets 57 . This causes magnets 57 to tend to remain equidistant by small gaps from the sides of steering rail 55 , thus steering the vehicle 19 .
- Mounting member 59 which is shown schematically, includes an actuator, which could be either a rack and pinion, telescoping tubes, a hydraulic cylinder, or other similar device.
- the actuator will move steering magnets 57 from the operational position shown by the solid lines in FIG. 3 to a storage position, shown by the dotted lines in FIGS. 3 and 4. In the storage position, steering magnets 57 will be located below steering rail 55 , and their magnetic fields will not induce currents in the coils in steering rail 55 .
- rollers 61 are mounted to mounting member 59 adjacent each steering magnet 57 .
- Steering rollers 61 are positioned in close proximity to the sides of steering rail 55 while in the operational position. Rollers 61 are positioned to roll on each side of steering rail 55 when steering is handled manually. Rollers 61 are employed, however, only at low speeds when the current being induced by the moving steering magnets 57 is not adequate to create enough of a counter-magnetic field to cause magnetic steering.
- Rollers 61 are preferably spaced laterally from contact with the sides of steering rail 55 while in a storage position. Actuators (not shown) will move them into contact with the sides of steering rail 55 if they are required for manual steering.
- FIG. 10 shows a plan view of a main guideway track 63 which extends straight through a switching section 65 .
- Switching section 65 has a branch track section 67 that diverts at an angle from main track section 63 .
- One side which is the left side in this drawing, has a steering rail 55 that extends straight through switching section 65 and continues along main track 63 .
- the other side which is the right side in this drawing, has a steering rail 69 that curves and follows one of the branch track sections 67 .
- Shroud 71 encloses the components of each guideway 11 to prevent rain, ice and snow from affecting the operation.
- Shroud 71 has a lower end 73 , an outer side 75 that extends vertically, and an upper side or end 77 .
- Steering rail 55 is mounted to upper end 77 within shroud 71 .
- Shroud 71 has an upper inner side 79 that inclines inward and downward.
- a slot 81 separates upper inner side 79 from a lower inner side 83 , which is preferably vertical.
- Axle 85 of vehicle 19 is offset so as to fit over upper edge of lower inner side 83 .
- Power and communication cables 87 extend through a lower compartment 89 .
- Levitating rail 17 is located on top of compartment 89 .
- Electrical power busses 91 and a control signal antenna or waveguide 93 are mounted to the interior of shroud 71 on the outer side 75 .
- the vehicle has control and power pickup devices 95 to engage or interact with power bus 91 to supply electrical power and control vehicle 19 .
- vehicle 19 is a ferry having channels 97 on its upper side for receiving wheels 99 of an automobile, truck, or other type of vehicle 101 .
- Automobile 101 may have a probe 103 to electrically engage ferry vehicle 19 for supplying electrical power to automobile 101 while in transit.
- Ferry vehicle 19 has a brake system 105 and a controller 107 .
- Controller 107 automatically controls the operation of ferry vehicle 19 . It receives control signals from a railway controller 109 and power from a power supply 111 .
- vehicle 19 could also be passenger and/or cargo vehicle rather than a ferry for automobiles 101 .
- vehicle 19 will be propelled along guideways 11 .
- its permanent magnets 23 will create magnetic fields in the coils of levitating rails 17 . This results in opposing magnetic fields that cause levitation of vehicle 19 .
- Wheels 21 will raise up out of engagement with levitating rails 17 .
- the propulsion from guideways 11 maybe caused by power coils 41 (FIG. 7) spaced at periodic intervals.
- Permanent magnets 57 induce electrical currents in the coils of steering rail 55 , which in turn create repelling magnetic fields tending to cause magnets 57 to remain at the same gaps from the side walls of the steering rail 55 .
- the invention has significant advantages.
- the mass transport system should be less expensive than prior art levitation systems because the sheet-wound rails should be less expensive than separate individually wound coils.
- the wheels of the vehicle while not levitating, roll directly on the levitating rails, thus eliminating the need for separate heavy rails to support the vehicle.
- By handling the steering magnetically, rolling and sliding contact are reduced.
- the use of dual steering enables full-speed switching from one track to another.
- the vehicles move on non-stop basis at a synchronized speed under automatic control. All of the levitation, steering and electrical power transfer components are located inside enclosed rails for protection from weather elements. The open spaces between the two guideways enable light to pass between to the ground.
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- Engineering & Computer Science (AREA)
- Physics & Mathematics (AREA)
- Electromagnetism (AREA)
- Power Engineering (AREA)
- Transportation (AREA)
- Mechanical Engineering (AREA)
- Control Of Vehicles With Linear Motors And Vehicles That Are Magnetically Levitated (AREA)
Abstract
A transport system has a pair of levitating rails, each of the levitating rails has a core with a plurality of coils extending circumferentially around each of the cores. The coils are perpendicular to the lengths of the levitating rails. Each of the levitating rails has an upper surface directly above the core. A vehicle has wheels that roll on the upper surfaces of the levitating rails in a nonlevitating position. The vehicle has a plurality of magnets that create magnetic fields that pass through the coils while the vehicle is moving along the levitating rails. The magnetic fields induce current, which in turn causes an opposing magnetic field that levitates the vehicle. A steering rail having a plurality of coils is mounted to at least one of the guideways. Permanent steering magnets are located on each side of the steering rail to magnetically steer the vehicle along the guideways.
Description
- This application claims the benefit of provisional application Ser. No. 60/187610, filed Mar. 7, 2000.
- This invention relates in general to transporting of vehicles by a mass transport system and in particular to a system that will magnetically levitate transporting vehicles.
- In U.S. Pat. No. 6,039,135, issued Mar. 21, 2000, a mass transport system is shown that utilizes a pair of guideways. Each guideway has a shroud surrounding it with a slot for receiving an axle of a vehicle. The vehicle may either be a ferry for hauling conventional automobiles and trucks, or it may be a special purpose vehicle that carries cargo and/or passengers. The vehicle has wheels that roll on tracks located within the shrouds. The vehicle may be powered electrically or by other means.
- One factor that limits the speed of such a system comprises the rolling components, which create friction. Prior art exists that employ permanent magnets located on the undersides of components of a train. These magnets are placed in proximity to a series of separate, individually wound coils of copper wire that are mounted adjacent to the tracks. The copper wire is wound at a 90° angle to the direction of the train travel.
- As the train is moved along the rails, the magnetic fields of the permanent magnets pass through the coils of copper wire. This induces currents in the coils that in turn produce opposing magnetic fields to the permanent magnets. This causes the permanent magnets to be repulsed from the coils, thereby levitating components of the train above the rails. Additional coils are also located at the sides of the rail system. The train components have permanent magnets mounted at the sides in such a manner to interact with the coils at the sides, thereby providing horizontal direction control for the vehicles.
- The prior art systems have disadvantages. Magnetic levitation systems cannot be used in railway switching areas, making it necessary for vehicles to slow to a low speed and exit the magnetic levitation segments of the rails for track-to-track switching by conventional railroad means. The magnetic levitation coils are added to the outsides of the conventional railway rails, thereby requiring a railway bed of greater width than conventional railroads. These railways have been expensive to build because of extensive land grading and/or massive structural supports for heavy elevated railways. Also, they are expensive because of the large number of separate, individually wound coils of copper wire that form the magnetic levitation rails.
- The transport system of this invention uses a pair of levitating rails. Each levitating rail has a core and a plurality of coils extending circumferentially around the core perpendicular to the length of the levitating rail. Also, each of the levitating rails has an upper surface located directly above the core. A vehicle used on the transport system has wheels that roll on the upper surfaces of the levitating rails while at a low speed. The vehicle has a plurality of magnets which create magnetic fields that pass through the coils while the vehicle moves along the levitating rails. This induces in the coils, which causes magnetic fields to be generated that repel the magnetic fields of the permanent magnets. Once the speed begins to pick up, the levitating rails will levitate the vehicle.
- Each of the levitating rails has a hollow core that is nonmagnetic. The vehicle may be powered along the guideways by various systems, with one of them being a linear motor. The linear motor comprises power coils periodically spaced apart from each other along the length of the rails. The power coils are supplied with alternating current, which induces movement of the vehicle when its magnets react with the magnetic fields produced by the power coils.
- Also, a steering rail is mounted adjacent to at least one of the levitating rails. The steering rail has a plurality of coils wrapped around a core. A pair of steering magnets are mounted to the vehicle and positioned on opposite sides of the steering rail. The steering magnets create magnetic fields that pass through the coils of the steering rail. This induces current in the coils, which causes magnetic fields to be generated that repel the magnetic fields of the permanent magnets. The opposing forces created by the magnets and the coils steer the vehicle by tending to cause the permanent magnets to remain substantially equidistant from the steering rail.
- Preferably, there are steering magnets mounted to the vehicle on each side of the vehicle. In a switching area, steering rails are located in both guideways. One of the steering rails passes straight through the switching area for retaining the vehicle on a main track. The other steering rail diverges off into a branch line. If the vehicle is to be switched onto the branch line, an actuator on the vehicle causes the steering magnets on the main track side to move downward from the main track steering rail. At the same time, another actuator on the vehicle causes steering magnets on the branch side to be moved upward into proximity with the branch side steering rail. The branch side steering magnets will thus cause the vehicle to follow the branch rail, resulting in the vehicle exiting from the main track onto the branch line.
- Preferably the steering rail is formed by providing sheets of substantial width. Each sheet, which may be of an insulating film such as Mylar, will have parallel traces of conductive strips formed on it. The conductive strips will be separated by insulation strips, which are air gaps between the strips. The sheet is wrapped in multiple wraps around the core to create multiple coils along the rails simultaneously. For use as a levitating rail, these coils will be shorted at each wrap so that each coil forms only a single loop.
- FIG. 1 is a schematic front view of an automobile located on a mass transport system constructed in accordance with this invention.
- FIG. 2 is a perspective view of the guideways of the mass transport system of FIG. 1.
- FIG. 3 is an enlarged sectional view of one of the guideways and a portion of the transporting vehicle of FIG. 1.
- FIG. 4 is a sectional view similar to FIG. 3, but taken at a different point to show one of the wheels of the transporting vehicle.
- FIG. 5 is an enlarged sectional view of one of the levitating rails of the mass transport system of FIG. 1.
- FIG. 6 is a sectional view of a portion of the levitating rail of FIG. 5, taken along the line6-6 of FIG. 5.
- FIG. 7 is a schematic sectional view of the levitating rail of FIG. 5, taken along the line7-7 of FIG. 5, and also showing magnets of the vehicle interacting with the levitating rail.
- FIG. 8 is a sectional view of the levitating rail shown in FIG. 7, illustrating one of the power coils.
- FIG. 9 is a schematic view illustrating one method for forming the levitating coil of FIG. 1.
- FIG. 10 is a plan view showing a switching section of the guideways of FIG. 1 leading to a branch section.
- Referring to FIG. 1, the mass transport system includes a pair of
guideways 11.Guideways 11 are mounted above the ground preferably oncolumns 13, as illustrated in FIG. 2.Guideways 11 are preferably spaced apart, leaving clear open spaces between them. Cross braces 15 at the upper ends ofcolumns 13support guideways 11 in a parallel manner. - Referring again to FIG. 1, each
guideway 11 includes a levitatingrail 17, which is shown schematically. Levitatingrail 17 is made up of a series of coils that are passive; that is, they are not supplied with electrical power. Amass transport vehicle 19 haswheels 21 carried inguideways 11.Vehicle 19 also has a plurality ofpermanent magnets 23 that are positioned just above each levitatingrail 17.Permanent magnets 23 create a magnetic field that passes through the coils of levitating rails 17. Asvehicle 19 is moved alongguideways 11 by a propulsion source, the moving magnetic fields ofmagnets 23 will induce a current flow in the coils of levitating rails 17. This causes a magnetic field that repelsmagnets 23, causing levitation ofvehicle 19. - Referring to FIG. 5, each levitating
rail 17 has anonconducting core 25 of that is either hollow, as shown, or solid. It may be a high strength composite or other non-magnetic material.Core 25 may be rectangular as shown in FIG. 5 or other shapes, such as cylindrical. A series ofelectrical coils 27 are wrapped aroundcore 25. Anouter shell 29 is located over coils 27.Outer shell 29 is also of a nonconductive material, such as a composite. Preferably the upper surface ofouter shell 29 is flat and faces upward for providing support for one of the wheels 21 (FIG. 4). - Referring to FIG. 6, rather than wrapping
core 25 with individual wrappings of copper wire to form coils 27, asheet 31 is used to simultaneously wrap a large number ofcoils 27.Sheet 31 has a backing material of a nonconductive film such as Mylar, with electrically conductive traces or strips 23 are formed therein.Conductive strips 33 are parallel and spaced apart from each other, forming insulation strips 35 between them. Eachinsulation strip 35 comprises the Mylar backing material and air gap betweenconductive strips 33.Sheet 31 may be quite wide, say 20-50 ft. in width, thus will have a large number of conducive strips 33.Sheet 31 is wrapped aroundcore 25 in a direction that placesconductive strips 31 perpendicular to longitudinal axis 37 (FIG. 5) ofcore 25.Sheet 31 will be wrapped numerous times aroundcore 37, although only three wraps are shown in FIG. 5. For example, there could be one hundred wraps aroundcore 37 to achieve the desired magnetic forces. - Also, at each wrap,
conductive strips 33 are electrically connected to each other by a shortingband 39, shown in FIG. 6. Shortingband 29 is located on both sides of the Mylar backing film ofsheet 31. As it overlaps the preceding wrap, shortingband 29 will electrically contact theconductive strips 33 of the previous wrap. Consequently, eachcoil 27 formed by aconductive strip 33 extends only aroundcore 25 one time, thus forming a single loop. Also, eachsingle coil 27 will be electrically connected joined to the otherconductive strips 33. Prior to wrappingsheet 31 aroundcore 25, shortingbands 39 will be placed along the length ofsheet 31 at desired intervals so that there will be only one turn of eachcoil 27. FIG. 9 illustrates the wrapping process, showingsheet 31 being drawn in a web from a large roll (not shown) of sheet material. - A propulsion system must be used for propelling vehicle19 (FIG. 1) along
guideways 11. The propulsion system could be a variety of devices, including an engine or electrical motor driving a propeller, or a jet engine. In the preferred embodiment, however, the propulsion system comprises an electrical linear motor. In the linear motor, apower coil 47 will be supplied with electrical power, unlikecoils 27 of levitatingrail 17. Thepower coil 41 is supplied with AC power from apower supply 43.Power coil 41 is preferably wrapped aroundcore 25 and is formed on thesame sheet 31 with levitatingcoils 27.Power coil 41 preferably comprises one or moreconductive strips 45 that are not shorted to adjacentconductive strips 33 or to themselves with shortingband 39, as in FIG. 6. Ratherconductive strips 45 are wrapped around the coil continuously, as shown in FIG. 8, resulting in a pair ofleads 47, one at each end of the sheet.Conductive strips 45 are parallel to conductive strips 33 (FIG. 6) and may be identical in width. - Referring again to FIG. 7, one of the
magnets 23 is shown schematically.Magnet 23 is preferably a horseshoe type magnet, having a pair of downward facinglegs 49 connected by across bar 53. This results in a downward directed north pole in one leg and a downward directed south pole in the other leg, creating a magnetic field passing in a semi-circular downward loop. The magnetic field extends throughouter shell 29 and throughcoils 27 as well aspower coil 41. As the magnetic fields ofmagnets 23 move longitudinally along thestationary levitating rail 17, the magnetic fields will create current in thecoils 27. This current causes an opposite magnetic force which repulsesmagnets 23, causing vehicle 19 (FIG. 1) to levitate. At the same time, the electromagnetic field produced by theAC power supply 43 will induce forward motion ofvehicle 19 in a direction indicated by the arrow. - Although vehicle19 (FIG. 1) could be steered mechanically or electrically, preferably
vehicle 19 is magnetically steered alongguideways 11. As shown in FIG. 3, this is handled by asteering rail 55 that is mounted within one of theguideways 11 above and adjacent levitatingrail 17. Steeringrail 55 is constructed in the same manner as levitatingrail 17. FIG. 6, which illustrates levitatingrail 17, also illustrates the construction ofsteering rail 55. Steeringrail 55 comprises a plurality of coils, each having windings perpendicular to the length of the rail. Steering rail is also preferably constructed with asheet 31 havingconductive strips 33. It also is formed as a passive device, having a shortingband 39, resulting in single loop coils throughout its length. It does not have power coils similar topower coil 41. - A pair of
steering magnets 57 are mounted by a mountingmember 59 to vehicle 19 (FIG. 1) above one of thewheels 21 on each side ofvehicle 19. Mountingmember 59 will selectively positionmagnets 57 in close proximity to and on each side of steeringrail 55.Steering magnets 57 are also permanent magnets and react in the same manner as levitatingmagnets 23. As they move along steeringrail 55, their magnetic fields will induce current in the coils of steeringrail 55, which in turn causes a magnetic field that repelsmagnets 57. This causesmagnets 57 to tend to remain equidistant by small gaps from the sides of steeringrail 55, thus steering thevehicle 19. - Mounting
member 59, which is shown schematically, includes an actuator, which could be either a rack and pinion, telescoping tubes, a hydraulic cylinder, or other similar device. The actuator will move steeringmagnets 57 from the operational position shown by the solid lines in FIG. 3 to a storage position, shown by the dotted lines in FIGS. 3 and 4. In the storage position, steeringmagnets 57 will be located below steeringrail 55, and their magnetic fields will not induce currents in the coils in steeringrail 55. - In addition, a pair of
rollers 61 are mounted to mountingmember 59 adjacent eachsteering magnet 57.Steering rollers 61 are positioned in close proximity to the sides of steeringrail 55 while in the operational position.Rollers 61 are positioned to roll on each side of steeringrail 55 when steering is handled manually.Rollers 61 are employed, however, only at low speeds when the current being induced by the movingsteering magnets 57 is not adequate to create enough of a counter-magnetic field to cause magnetic steering.Rollers 61 are preferably spaced laterally from contact with the sides of steeringrail 55 while in a storage position. Actuators (not shown) will move them into contact with the sides of steeringrail 55 if they are required for manual steering. - Steering may be accomplished with only a
single steering rail 55, a single pair ofsteering magnets 57, and a single pair ofrollers 61. However, for switching purposes, preferably there will be an identical set of steeringmagnets 57 androllers 61 on both the right and left sides ofvehicle 19. The reason for having steering capabilities on both sides is illustrated in FIG. 10. FIG. 10 shows a plan view of amain guideway track 63 which extends straight through aswitching section 65.Switching section 65 has abranch track section 67 that diverts at an angle frommain track section 63. One side, which is the left side in this drawing, has asteering rail 55 that extends straight through switchingsection 65 and continues alongmain track 63. The other side, which is the right side in this drawing, has asteering rail 69 that curves and follows one of thebranch track sections 67. There will be nostraight steering rail 55 following the right sidemain track section 63. - Assuming that the left
hand steering magnets 57 are handling the steering onmain track section 63, as the vehicle approaches or enters switchingtrack section 65, the leftside steering magnets 57 will be lowered by the actuator of mounting member 59 (FIG. 3). The actuator of mountingmember 59 on the right side will simultaneously raiseright side magnets 57 to the operational position. The rightside steering rail 69 will electromagnetically guidevehicle 19 off tobranch section 67. Once onbranch section 67, theright side magnets 57 may be lowered and theleft side magnets 57 again may be raised. Only one of the pairs ofmagnets 57 will be in an operational position at any given moment. The remaining components are discussed in U.S. Pat. 6,039,135, issued Mar. 21, 2000. Briefly, these include ashroud 71, such as shown in FIGS. 3 and 4.Shroud 71 encloses the components of eachguideway 11 to prevent rain, ice and snow from affecting the operation.Shroud 71 has alower end 73, anouter side 75 that extends vertically, and an upper side or end 77. Steeringrail 55 is mounted toupper end 77 withinshroud 71.Shroud 71 has an upperinner side 79 that inclines inward and downward. Aslot 81 separates upperinner side 79 from a lowerinner side 83, which is preferably vertical.Axle 85 ofvehicle 19 is offset so as to fit over upper edge of lowerinner side 83. Power andcommunication cables 87 extend through alower compartment 89. Levitatingrail 17 is located on top ofcompartment 89. Electrical power busses 91 and a control signal antenna orwaveguide 93 are mounted to the interior ofshroud 71 on theouter side 75. The vehicle has control andpower pickup devices 95 to engage or interact withpower bus 91 to supply electrical power andcontrol vehicle 19. - Referring to FIG. 1, in the embodiment shown,
vehicle 19 is aferry having channels 97 on its upper side for receivingwheels 99 of an automobile, truck, or other type ofvehicle 101.Automobile 101 may have aprobe 103 to electrically engageferry vehicle 19 for supplying electrical power toautomobile 101 while in transit. Ferryvehicle 19 has abrake system 105 and acontroller 107.Controller 107 automatically controls the operation offerry vehicle 19. It receives control signals from arailway controller 109 and power from apower supply 111. Alternatively,vehicle 19 could also be passenger and/or cargo vehicle rather than a ferry forautomobiles 101. - In operation,
vehicle 19 will be propelled alongguideways 11. As it moves alongguideways 11, itspermanent magnets 23 will create magnetic fields in the coils of levitating rails 17. This results in opposing magnetic fields that cause levitation ofvehicle 19.Wheels 21 will raise up out of engagement with levitating rails 17. The propulsion fromguideways 11 maybe caused by power coils 41 (FIG. 7) spaced at periodic intervals. - As
vehicle 19 moves alongguideways 11, it will be steered by permanent magnets 57 (FIG. 3).Permanent magnets 57 induce electrical currents in the coils of steeringrail 55, which in turn create repelling magnetic fields tending to causemagnets 57 to remain at the same gaps from the side walls of thesteering rail 55. - The invention has significant advantages. The mass transport system should be less expensive than prior art levitation systems because the sheet-wound rails should be less expensive than separate individually wound coils. The wheels of the vehicle, while not levitating, roll directly on the levitating rails, thus eliminating the need for separate heavy rails to support the vehicle. By handling the steering magnetically, rolling and sliding contact are reduced. The use of dual steering enables full-speed switching from one track to another. The vehicles move on non-stop basis at a synchronized speed under automatic control. All of the levitation, steering and electrical power transfer components are located inside enclosed rails for protection from weather elements. The open spaces between the two guideways enable light to pass between to the ground.
- While the invention has been shown in only one of its forms. It should be apparent to those skilled in the art that it is not so limited but it is susceptible to various changes without departing from the scope of the invention.
Claims (20)
1. A transport system, comprising:
a pair of levitating rails, each of the levitating rails having a core, a plurality of coils extending circumferentially around each of the cores perpendicular to lengths of the levitating rail, each of the levitating rails having an upper surface directly above the core;
a vehicle having wheels that are adapted to roll on the upper surfaces of the levitating rails in a nonlevitated position and to be above the upper surfaces in a levitated position; and
a plurality of magnets mounted to the vehicle, creating magnetic fields that pass through the coils while the vehicle is moving along the levitating rails to levitate the vehicle.
2. The transport system according to , wherein each of the cores has a longitudinal axis, and the upper surface of each of the rails is centered above the longitudinal axis.
claim 1
3. The transport system according to , wherein the core is nonmagnetic.
claim 1
4. The transport system according to , further comprising a propulsion source for causing the vehicle to move along the levitating rails.
claim 1
5. The transport system according to , further comprising:
claim 1
an electrical power source for applying an alternating current voltage to selected ones of the coils, the selected ones of the coils being spaced apart along the lengths of the rails to react with the magnetic fields of the magnets to cause longitudinal movement of the vehicle.
6. The transport system according to , wherein at least some of the coils are shorted to other of the coils with each wrap around the core.
claim 1
7. The transport system according to , wherein the each of the levitating rails comprises a plurality of sheets wrapped around the core in multiple wraps, each of the sheets having a plurality of conductive strips formed thereon.
claim 1
8. The transport system according to , further comprising:
claim 1
a steering rail mounted adjacent at least one of the levitating rails, the steering rail having a plurality of coils wrapped around a core; and
a pair of steering magnets mounted to the vehicle and positioned on opposite sides of the steering rail, the steering magnets creating magnetic fields that pass through the coils of the steering rail and steer the vehicle by tending to remain substantially equidistant to the steering rail.
9. The transport system according to , further comprising:
claim 1
a steering rail mounted adjacent each of the levitating rails, each of the steering rails having a plurality of coils wrapped around a core; and
two pairs of steering magnets mounted to the vehicle, each pair of steering magnets positioned on opposite sides of one of the steering rail while in an operational position, creating magnetic fields that pass through the coils of the steering rails for steering the vehicle, each pair of steering magnets being independently movable to a storage position in which the magnetic fields do not pass through the coils of the steering rails, to selectively steer the vehicle with either one of the steering rails.
10. The transport system according to , further comprising:
claim 1
a steering rail mounted adjacent at least one of the levitating rails, the steering rail having a plurality of coils wrapped around a core;
a pair of steering magnets mounted to the vehicle and positioned on opposite sides of the steering rail, the steering magnets creating magnetic fields that pass through the coils of the steering rail and steer the vehicle by tending to remain substantially equidistant to the steering rail; and
a pair of rollers mounted to the vehicle and located on opposite sides of the steering rail for selective rolling contact with the steering rail to steer the vehicle at speeds that are too low to effectively steer with the steering magnets.
11. A transport system, comprising:
a pair of guideways;
a vehicle having wheels that locate in the guideways;
a steering rail mounted to one of the guide ways, the steering rail having a plurality of coils wrapped around a core; and
a pair of steering magnets mounted to the vehicle and positioned on opposite sides of the steering rail, the steering magnets creating magnetic fields that pass through the coils of the steering rail and steer the vehicle by tending to remain substantially equidistant to the steering rail as the vehicle moves along the guideways.
12. The transport system according to , further comprising:
claim 11
a pair of rollers mounted to the vehicle and located on opposite sides of the steering rail for selective rolling contact with the steering rail to steer the vehicle at speeds that are too low to effectively steer with the steering magnets.
13. The transport system according to , further comprising:
claim 11
a second steering rail mounted to the other of the guideways, the second steering rail having a plurality of coils wrapped around a core;
a second pair of steering magnets mounted to the vehicle and positioned on opposite sides of the second steering rail, the second pair of steering magnets creating magnetic fields that pass through the coils of the second steering rail and steer the vehicle by tending to remain substantially equidistant to the second steering rail as the vehicle moves along the wheel guides; and
the first mentioned pair of steering magnets and the second pair of steering magnets being alternately movable to a storage position in which their magnetic fields do not pass through either of the steering rails, such that only one pair of the steering magnets serves to steer the vehicle at one time.
14. A transport system, comprising:
a pair of laterally spaced apart guideways, each of the guideways having a shroud;
a levitating rail mounted within each of the shrouds, each of the levitating rails having a plurality of coils wrapped around a core;
a vehicle having wheels that are received within the shrouds and which contact the levitating rail while in nonlevitating operation and levitate above the levitating rails while in levitating operation;
a propulsion source for moving the vehicle forward; and
a magnet mounted to the vehicle above each levitating rail, the magnets creating magnetic fields that pass through the coils of the levitating rails as the propulsion source moves the vehicle forward to cause the vehicle to move to the levitating operation.
15. The transport system according to , further comprising:
claim 14
a steering rail mounted within one of the shrouds, the steering rail having a plurality of coils wrapped around a core; and
a pair of steering magnets mounted to the vehicle and positioned on opposite sides of the steering rail, the steering magnets creating magnetic fields that pass through the coils of the steering rail and steer the vehicle by tending to remain substantially equidistant to the steering rail as the vehicle moves along the guideways.
16. A method of transporting a vehicle, comprising:
providing a pair of laterally spaced apart guideways with a first steering rail mounted to one of the guideways, the steering rail having a plurality of coils wrapped around a core;
positioning a vehicle on the track section, the vehicle having a pair of steering magnets mounted to the vehicle; and
positioning the steering magnets on opposite sides of the steering rail and moving the vehicle along the guideways, causing magnetic fields of the steering magnets to pass through the coils of the steering rail and steer the vehicle by tending to remain substantially equidistant to the steering rail as the vehicle moves along the guideways.
17. A method of transporting a vehicle, comprising:
providing a main track section with laterally spaced apart first and second guideways, a steering rail mounted to the first guideway, the steering rail having a plurality of coils wrapped around a core;
connecting a switch track section to the main track section, the switch track section having laterally spaced apart first and second guideways that register with the first and second guideways of the main track section and lead away from the main track section, a first steering rail mounted to the first guideway of the switch track section that aligns and extends straight with the steering rail of the main track section, and a second steering rail mounted to the second guideway of the switch track section and leading away from the main track section, the first and second steering rails of the switch track section each having a plurality of coils wrapped around a core;
positioning a vehicle on the main track section, the vehicle having first and second pairs of steering magnets mounted to and on opposite sides of the vehicle;
positioning the first pair of steering magnets on opposite sides of the steering rail of the main track section and moving the vehicle along the main track section, causing magnetic fields of the first pair of steering magnets to pass through the coils of the steering rail of the main track section and steer the vehicle by tending to remain substantially equidistant to the steering rail of the main track section as the vehicle moves along the main track section; then
at or prior to the switch track section, moving the first pair of steering magnets away from the steering rail of the main track section and moving the second pair of steering magnets on opposite sides of the second steering rail of the switch track section, causing magnetic fields of the second pair of steering magnets to pass through the coils of the second steering rail of the switch track section and steer the vehicle along the switch track section away from the main track section.
18. A method of forming an electromagnetic device, comprising:
providing a core with a longitudinal axis and a sheet having a plurality of parallel and spaced apart conductive strips; and
wrapping the sheet around the core in multiple wraps with the conductive strips being substantially perpendicular to the longitudinal axis.
19. The method according to , wherein the step of wrapping the sheet comprises shorting selected ones of the conductive strips to themselves with each turn to create single turn coils.
claim 18
20. The method according to , wherein the step of wrapping the sheet comprises:
claim 18
shorting selected ones of the conductive strips to themselves with each turn to create single turn coils and shorting the conductive strips to each other with each turn; and
wrapping other ones of the conductive strips continuously without shorting each turn to create power coils.
Priority Applications (2)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
US09/801,397 US6357358B2 (en) | 2000-03-07 | 2001-03-07 | Magnetic levitation transport system |
US10/074,335 US20020073877A1 (en) | 2000-03-07 | 2002-02-12 | Magnetic levitation transport system |
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
US18761000P | 2000-03-07 | 2000-03-07 | |
US09/801,397 US6357358B2 (en) | 2000-03-07 | 2001-03-07 | Magnetic levitation transport system |
Related Child Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
US10/074,335 Division US20020073877A1 (en) | 2000-03-07 | 2002-02-12 | Magnetic levitation transport system |
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US20010035107A1 true US20010035107A1 (en) | 2001-11-01 |
US6357358B2 US6357358B2 (en) | 2002-03-19 |
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US09/801,397 Expired - Fee Related US6357358B2 (en) | 2000-03-07 | 2001-03-07 | Magnetic levitation transport system |
US10/074,335 Abandoned US20020073877A1 (en) | 2000-03-07 | 2002-02-12 | Magnetic levitation transport system |
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US10/074,335 Abandoned US20020073877A1 (en) | 2000-03-07 | 2002-02-12 | Magnetic levitation transport system |
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US (2) | US6357358B2 (en) |
EP (1) | EP1286851A4 (en) |
AU (1) | AU2001243488A1 (en) |
WO (1) | WO2001066378A1 (en) |
Cited By (6)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US20070119332A1 (en) * | 2005-11-28 | 2007-05-31 | Henderson Joy K | Tram steering system |
CN100406324C (en) * | 2005-08-25 | 2008-07-30 | 李岭群 | Steering pendulum for hanger rail magnetic levitation vehicle |
US9570330B2 (en) | 2002-07-22 | 2017-02-14 | Brooks Automation, Inc. | Substrate processing apparatus |
KR101729301B1 (en) * | 2008-12-09 | 2017-04-21 | 브룩스 오토메이션 인코퍼레이티드 | Substrate processing apparatus |
WO2021162968A1 (en) * | 2020-02-13 | 2021-08-19 | Hyperloop Technologies, Inc. | System and method for traversing a non-moving rail switch using electromagnetic engines |
US20220144100A1 (en) * | 2020-11-12 | 2022-05-12 | Terence Alan Tamutus | Magnetic levitation capture arm system for vehicle |
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Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US20020162478A1 (en) * | 2001-04-06 | 2002-11-07 | Henderson J. Kirston | Elevated open-center transit guideway with open-mesh screen emergency walkway |
US7988398B2 (en) | 2002-07-22 | 2011-08-02 | Brooks Automation, Inc. | Linear substrate transport apparatus |
JP4111903B2 (en) * | 2003-10-20 | 2008-07-02 | 東海旅客鉄道株式会社 | Flying object launching apparatus and flying object launching method |
US7663281B1 (en) | 2004-08-31 | 2010-02-16 | Jeffrey J Nau | Magnetic field generating device |
CN100450814C (en) * | 2006-09-13 | 2009-01-14 | 李岭群 | Energy gathering permanent magnetic suspension steering device |
CN100450815C (en) * | 2006-09-13 | 2009-01-14 | 李岭群 | Energy collecting permanent magnetic suspension steering device |
US7757609B2 (en) * | 2006-10-10 | 2010-07-20 | Launchpoint Technologies, Inc. | Track switching for a magnetically levitated transportation system and method |
US7827917B1 (en) * | 2006-12-18 | 2010-11-09 | Joy Kirston Henderson | Redundant steering system for guideway vehicle |
KR101787306B1 (en) * | 2009-01-23 | 2017-10-18 | 마그네모션, 인코포레이티드 | Improved transport system powered by short block linear synchronous motors and switching mechanism |
US8602706B2 (en) | 2009-08-17 | 2013-12-10 | Brooks Automation, Inc. | Substrate processing apparatus |
CN102019938B (en) * | 2010-10-15 | 2012-07-25 | 唐山轨道客车有限责任公司 | Magnetic levitation steering mechanism |
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US20130327244A1 (en) * | 2012-06-11 | 2013-12-12 | Transit-21, Inc. (A Florida Corporation) | Autonomous moving highway |
DE102013203066A1 (en) * | 2013-02-25 | 2014-08-28 | Robert Bosch Gmbh | Transport device and method for operating the transport device |
US9228298B2 (en) * | 2013-03-14 | 2016-01-05 | Daryl Oster | Evacuated tube transport system with interchange capability |
DE102015001746A1 (en) * | 2015-02-11 | 2016-08-11 | Karlsruher Institut für Technologie | Rail-bound maglev train |
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AU2020100168B4 (en) * | 2020-02-01 | 2020-10-15 | Campbell, Robert Kenneth MR | Solid and sectional panel, roller door and curtain opener utilising embedded linear motor technology |
US11230813B1 (en) * | 2020-10-16 | 2022-01-25 | Thomas Holtzman Williams | Automated road-rail transportation system with side stabilization |
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Family Cites Families (11)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US3267402A (en) | 1964-10-27 | 1966-08-16 | Automatic Elect Lab | Multi-turn wrap-around solenoids |
US3560904A (en) * | 1968-04-19 | 1971-02-02 | Rolamite Technology Inc | Electric coils |
US3717103A (en) * | 1970-12-11 | 1973-02-20 | North American Rockwell | Low drag magnetic suspension system |
DE2541599A1 (en) * | 1975-09-18 | 1977-03-24 | Weh Herbert | Linear induction tracked vehicle - with stators spaced on each side of permanent magnet cores |
JPH01194803A (en) * | 1988-01-28 | 1989-08-04 | Railway Technical Res Inst | Superconducting magnetic levitation rolling stock of low running resistance type |
US5180048A (en) * | 1990-10-12 | 1993-01-19 | Mitsubishi Jukogyo Kabushiki Kaisha | Magnetic levitating transportation system |
US6044770A (en) * | 1990-10-23 | 2000-04-04 | Park Square Technology, Ltd. | Integrated high speed MAGLEV system |
US5270593A (en) * | 1992-11-10 | 1993-12-14 | Enrico Levi | Air cored, linear induction motor for magnetically levitated systems |
US5503083A (en) * | 1994-06-23 | 1996-04-02 | Powell; James R. | Electromagnetic induction suspension and horizontal switching system for a vehicle on a planar guideway |
US5517924A (en) * | 1994-07-27 | 1996-05-21 | The United States Of America As Represented By The United States Department Of Energy | Double row loop-coil configuration for high-speed electrodynamic maglev suspension, guidance, propulsion and guideway directional switching |
US6101952A (en) * | 1997-12-24 | 2000-08-15 | Magnemotion, Inc. | Vehicle guidance and switching via magnetic forces |
-
2001
- 2001-03-07 WO PCT/US2001/007327 patent/WO2001066378A1/en not_active Application Discontinuation
- 2001-03-07 EP EP01916465A patent/EP1286851A4/en not_active Withdrawn
- 2001-03-07 AU AU2001243488A patent/AU2001243488A1/en not_active Abandoned
- 2001-03-07 US US09/801,397 patent/US6357358B2/en not_active Expired - Fee Related
-
2002
- 2002-02-12 US US10/074,335 patent/US20020073877A1/en not_active Abandoned
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CN100406324C (en) * | 2005-08-25 | 2008-07-30 | 李岭群 | Steering pendulum for hanger rail magnetic levitation vehicle |
US20070119332A1 (en) * | 2005-11-28 | 2007-05-31 | Henderson Joy K | Tram steering system |
US7926425B2 (en) * | 2005-11-28 | 2011-04-19 | Joy Kirston Henderson | Tram steering system |
KR101729301B1 (en) * | 2008-12-09 | 2017-04-21 | 브룩스 오토메이션 인코퍼레이티드 | Substrate processing apparatus |
WO2021162968A1 (en) * | 2020-02-13 | 2021-08-19 | Hyperloop Technologies, Inc. | System and method for traversing a non-moving rail switch using electromagnetic engines |
US20220144100A1 (en) * | 2020-11-12 | 2022-05-12 | Terence Alan Tamutus | Magnetic levitation capture arm system for vehicle |
WO2022103644A1 (en) * | 2020-11-12 | 2022-05-19 | Tamutus Terence Alan | Magnetic levitation capture arm system for vehicle |
Also Published As
Publication number | Publication date |
---|---|
EP1286851A4 (en) | 2003-05-28 |
US6357358B2 (en) | 2002-03-19 |
WO2001066378A1 (en) | 2001-09-13 |
AU2001243488A1 (en) | 2001-09-17 |
EP1286851A1 (en) | 2003-03-05 |
US20020073877A1 (en) | 2002-06-20 |
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