Claims
- 1. A system for transportation using magnetic propulsion, the system comprising:
- a first means for producing a direct current in each of at least two conductors, said conductors each having a length and a volume (v), the current density in each of said conductors representable by a direction vector (J);
- a plurality of second means for producing magnetic flux densities, said magnetic flux densities being representable by direction vectors (B); and,
- a maglev vehicle positioned by a guideway, said maglev vehicle attached to said first means or second means, wherein said first and said second means are not in physical contact, but are oriented so that said current densities and said magnetic flux densities will interact to produce linear forces representable by direction vectors (f) such that f=(J.times.B)v, so as to induce linear propulsion of said maglev vehicle with respect to said guideway in the direction of said vectors (f), and wherein said first means for producing direct current includes means on said maglev vehicle and means on said guideway interacting to provide a signal to a computer programmed to control the speed of said maglev vehicle by controlling the average value of said direct current in each of said at least two currents.
- 2. A method for constructing a magnetic propulsion system for transportation, said method comprising the steps of:
- providing a first means for producing a direct current in each of at least two conductors having a length and a volume (v), the current density in each of said conductors representable by a direction vector (J);
- providing a second means for producing magnetic flux density, said magnetic flux density being representable by flux lines, all of which have the same direction such that the magnetic flux density is representable by a direction vector (B);
- providing a maglev vehicle positioned over a guideway, said maglev vehicle attached to said first means or said second means, wherein both of said first and second means are not in physical contact, but are oriented so that said magnetic flux density will interact with only the direct current in each of said at least two conductors to produce linear forces representable by direction vectors (f) such that f=(J.times.B)v, so as to induce linear propulsion of said maglev vehicle in the direction of said vectors (f);
- electrically connecting said first means for producing said direct current to a means for controlling speed by varying the average value of said direct current while said direct current is flowing, wherein said first means for producing direct current in said at least two conductors includes means on said maglev train and means on said guideway interacting to provide a control signal, and said control signal is provided to a computer programmed to control the speed of said maglev vehicle by controlling the average value of direct current flowing in each of said at least two conductors.
- 3. A method for constructing a magnetic propulsion system for transportation, said method comprising the steps of:
- providing a first means for producing a direct current in each of at least two conductors having a length and a volume (v) the current density in each of said conductors representable by a direction vector (J);
- providing a plurality of second means for producing magnetic flux densities;
- providing a maglev vehicle positioned over a guideway, said maglev vehicle attached to said first means or said second means, wherein said first and said second means are not in physical contact, but are oriented so that said current densities and said magnetic flux densities will interact to produce linear forces representable by direction vectors (f) such that f=(J.times.B)v, so as to induce linear propulsion of said maglev vehicle with respect to said guideway in the direction of said vectors (f); and,
- electrically connecting to said first means for producing direct current a means for controlling speed by varying the average value of said direct current while said direct current is flowing, wherein said first means for producing direct current in at least two conductors includes means on said maglev vehicle and means on said guideway which interact to provide a control signal, and wherein said control signal is provided to a computer programmed to control the speed of said maglev vehicle by controlling the average value of the direct current flowing in each of said at least two cinductors.
- 4. A method for transportation by magnetic propulsion of a vehicle, said method comprising the steps of:
- producing by a first means a direct current in each of at least two conductors having a length and a volume (v), the current density in each of said conductors representable by a direction vector (J);
- producing magnetic flux density by a second means, said magnetic flux density being representable by flux lines and representable by a direction vector (B);
- propelling a maglev vehicle positioned with respect to a guideway, said maglev vehicle attached to said first means or said second means, wherein said first and second means are not in physical contact, but are oriented so that said magnetic flux density will interact with only the direct current in each of said at least two currents to produce linear forces representable by direction vectors (f) such that f=(J.times.B)v, so as to induce linear propulsion of said maglev vehicle in the direction of said vectors (f); and,
- controlling speed by varying the average value of said direct current while said direct current is flowing, and controlling said average value of said direct current flowing in each of said at least two currents wherein said first means includes means on said maglev train and means on said guideway which interact to provide a signal to a programmed computer, said computer controlling the speed of said maglev vehicle.
- 5. A method for transportation by magnetic propulsion of a vehicle, said method comprising the steps of:
- producing by a first means a direct current in each of at least two currents having a length and a volume (v), the current densities representable by direction vectors (J);
- producing magnetic flux densities by a plurality of second means, said magnetic flux densities being representable by direction vectors (B); and,
- propelling a maglev vehicle with respect to a guideway, said maglev vehicle attached to said first means or said second means, wherein said first and said second means are not in physical contact, but are oriented so that said current densities and said magnetic flux densities will interact to produce linear forces representable by direction vectors (f) such that f=(J.times.B)v, so as to induce linear propulsion of said maglev vehicle with respect to said guideway in the direction of said vectors (f); and,
- controlling the speed of said maglev vehicle by varying the average value of said direct current while said direct current is flowing, said average value of said direct current controlled by a computer programmed to control the speed of said maglev vehicle in response to a signal to said computer, said signal being produced by the interaction of a means on said maglev train and a means on said guideway.
Parent Case Info
This is a continuation-in-part of patent application Ser. No. 07/601,109 filed on Oct. 23, 1990, now abandoned.
US Referenced Citations (30)
Foreign Referenced Citations (1)
Number |
Date |
Country |
53101 |
Apr 1980 |
JPX |
Continuation in Parts (1)
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Number |
Date |
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Parent |
601109 |
Oct 1990 |
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