ELECTRIC GENERATOR WITH A ROTATIONAL RESISTANCE AVOIDANCE FEATURE

20200028429 ยท 2020-01-23

Assignee

Inventors

Cpc classification

International classification

Abstract

The electric generator with the rotational resistance avoidance feature in the present invention comprises a rotating set of magnet parts interposed between at least two rotating sets of conductor coil parts, which are respectively installed on opposite sides of the rotating set of magnet parts. The diameters of the rotating sets of conductor coil parts are configured to be larger than the diameter of the rotating set of magnet parts. The rotational speed of the conductor coil parts and the magnet parts are therefore different, which causes the induction of the electromotive force within the conductor coils by way of variation of the magnetic field. When the mechanical power input is applied only on the rotating set of magnet parts and the electromotive force induced in the conductor coil, which has been connected to a load, is applied to a load; the electrical current will induce the conductor coil itself to generate magnetic polarities which are similar to the original magnetic polarities of the permanent magnet. The sets of conductor coils are pushed by the said pushing force to be continuously rotated in a clockwise direction (freely rotated without being driven by the mechanical power input). The rotating set of magnets in the middle is also continuously rotated by the mechanical power input. With this configuration, the rotational resistance can be avoided. Therefore, the additional mechanical power input is not necessary (rather, only a partial increase is required), and the electrical power can be generated by converting the magnetic energy stored in permanent magnets, to be supplied to the load.

Claims

1. An electric generator with a rotational resistance avoidance feature, which comprises a rotating set of magnets part which can be mounted in either a horizontal or vertical manner, interposed between at least two rotating sets of conductor coil parts, which are installed parallel to the shaft axis of both sides of the magnet parts, the diameters of the rotating sets of conductor coil parts, are configured to be larger than the diameter of the rotating set of magnet parts, thus to cause the rotational speed of the conductor coil parts and the magnet part, and are therefore different, and the mechanical power input, which can be either counterclockwise or clockwise, is applied only on the shaft of the rotating set of magnet parts: wherein, the structure of each magnet part comprises multiple permanent magnets attached to a bracket, of which the magnetic polarities are arranged along and fixed on the shaft axis, with the magnetic flux from the north magnetic polarities (N) towards the south magnetic polarities (S) to complete the magnetic flux loop around the shaft axis, which can induce the electromotive force in the conductor coils; wherein, the rotating set of magnets part comprises a plurality of magnet parts fixed on the same shaft, the suitable interval between the magnets parts is accurately and properly set, the same magnetic polarities are located along the shaft axis, the mechanical power input is provided to drive the rotating shaft to change the magnetic flux and to induce the conductor coils on both sides, in which the conductor wire is rolled to form a conductor coil, the number of conductor coils corresponds to the number of magnet parts, the length of each conductor coil is configured to be greater than or equal to the length of each related magnet part, the cross-sectional area of the conductor coil is configured to be greater than or equal to the cross-sectional area of the magnet, thus to allow the size of magnetic polarity generated at the conductor coil along the shaft axis to be larger than or equal to the size of the magnetic polarity of each magnet part, wherein, the structure of the rotating set of conductor coil part, comprises conductor coils which extend along the shaft axis, the number of conductor coil parts corresponds to the number of magnet parts, the conductor coils are fixed into the slots of the cog cylindrical rotor, which are fixed around the shaft, the slip ring is provided on the shaft to allow the transmission of the generated electrical power from the rotating conductor coils which has been connected to a circuit, to be supplied to the load; the diameter of the cog cylindrical rotor of the rotating set of conductor coils must be larger than the diameter of the magnet parts and the slots of the cog cylindrical rotor are provided along the shaft axis and around the peripheral circumference of the cylindrical rotor, where the number of the conductor coils parts corresponds to the number of magnet parts; and wherein the electric generator with the rotational resistance avoidance feature functions when mechanical power input is applied to rotate the shaft in a counterclockwise direction; and the magnetic flux from north magnetic polarities (N) towards the south magnetic polarities (S) of all four sides of each pole around the shaft will vary in relation to the conductor coils which have been connected to a circuit, then the electromotive force is induced and the electrical current will be transmitted through slip rings, and supplied to a load; the electrical current will then induce the conductor coil itself to generate magnetic polarities, which are similar to the original magnetic polarities of the permanent magnet, the pushing force will occur while the magnetic polarities of the permanent magnets rotate and, as a result, the sets of inductor coils, are pushed by the pushing force to be continuously rotated in a clockwise direction, which is opposite to the rotational direction of the rotating set of magnets in the middle, which is also continuously rotated by the mechanical power input, the reaction between the rotating set of magnets which rotate with the rotating sets of conductor coils, results in that the rotational resistance is avoided when the electric power is generated in the conductor coil and supplied to the load, therefore, the additional mechanical power input is not necessary, (rather, a only partial increase is required), as electrical power can be generated by converting the magnetic energy stored in permanent magnets to be supplied to a load.

2. The electric generator of claim 1, wherein the capacity of the electric generator is expanded in at least one or two of the vertical and horizontal directions in a serial manner, and all those rotating sets of magnets, must be driven by the mechanical power input in the same direction.

3. The electric generator of claim 1, wherein conductor wire used in the said conductor coils is made of metal or any other type of conductor material.

4. The electric generator of claim 1, wherein conductor wire used in the said conductor coils is made of copper, aluminum, silver or any other conductor metal material.

5. The electric generator of claim 2, wherein conductor wire used in the conductor coils is made of metal or any other type of conductor material.

6. The electric generator of claim 2, wherein conductor wire used in the conductor coils is made of copper, aluminum, silver or any other conductor metal material.

Description

BRIEF DESCRIPTION OF DRAWINGS

[0012] FIG. 1 is the perspective view of a prototype of the electric generator with the rotational resistance avoidance feature of the present invention.

[0013] FIG. 2 is the front view of the electric generator with the rotational resistance avoidance feature of FIG. 1.

[0014] FIG. 3 is the enlarged front view, illustrating the direction of the magnetic flux around the rotating shaft of the rotating set of magnet parts.

[0015] FIG. 4 is the front view of the capacity expansion of the generator of FIG. 2, in the horizontal direction for higher power generation.

[0016] FIG. 5 is the front view of the capacity expansion of the generator of FIG. 2, in both vertical and horizontal directions for practical application in the power plant.

DESCRIPTION OF EMBODIMENTS

[0017] FIG. 1 is the perspective view of a prototype of the electric generator with the rotational resistance avoidance feature of the present invention. The electric generator of the present invention comprises a rotating set of magnet parts 10 attached to the shaft axis, for example, in a horizontal manner, interposed between at least two rotating sets of conductor coil parts 11, 12, which are respectively installed on opposite sides of the rotating set of magnet parts. The diameters of the cylindrical rotors of the rotating sets of conductor coil parts 11, 12 are configured to be larger than the diameter of the cylindrical rotor of the rotating set of magnets parts. The rotational speed of the conductor coil parts and the magnet parts are therefore different, which causes the induction of the electromotive force within the conductor coils by way of the variation of the magnetic field. The mechanical power input 6 is applied only on the shaft of the rotating set of magnet parts 10.

[0018] The structure of each magnet part 9 comprises multiple permanent magnets 2 attached to a bracket 7, which is fixed on to shaft 1 of the rotating set of magnet parts. The magnetic polarities are arranged along the shaft axis, which allows magnetic flux from the north magnetic polarities (N) towards the south magnetic polarities (S) to complete the magnetic flux loop around the axis of the shaft 1 as illustrated in FIG. 3, thereby induce the electromotive force in the conductor coils 5.

[0019] The rotating set of magnet parts 10 comprise a plurality of magnet parts 9 fixed on the same shaft 1. The suitable interval between the magnet parts 9 is accurately and properly set. The same magnetic polarities are located along the shaft axis 1. The mechanical power input 6 is provided to drive the rotating shaft 1 to vary the magnetic flux and induce the conductor coils 5 of the rotating set of conductor coils on both sides. The conductor wire is rolled to form a conductor coil 5, and its length is extended along the shaft axis. The number of the conductor coil parts corresponds to the number of magnet parts 9. The length of each of the conductor coils 5 is configured to be greater than or equal to the length of each of its related magnet parts 9. The cross-sectional area of the conductor coil 5 is configured to be greater than or equal to the cross-sectional area of the magnet part 9. This is to allow the size of the magnetic polarity generated at conductor coil 5 along the shaft axis 3 to be larger than or equal to the size of the magnetic polarity of each magnet part 9.

[0020] The structure of the rotating set of conductor coil parts 11, 12 comprise conductor coils 5, which extend along the shaft axis. The number of the conductor coils 5 corresponds to the number of magnet parts 9. The conductor coils 5 are fixed into the slots of the cog cylindrical rotor 4, which are fixed around the shaft 3. The slip ring 8 is provided on the shaft 3 to allow the transmission of the generated electrical power from the rotating conductor coils 5 which have been connected to a circuit to be supplied to the load. The diameter of the cog cylindrical rotor 4 of the rotating set of conductor coils 5 must be larger than the diameter of the magnet parts 9. The slots of the cog cylindrical rotor 4 of the conductor coils are provided along the shaft axis and around the peripheral circumference of the cylindrical rotor. The number of the conductor coil parts 5 corresponds to the number of magnet parts 9.

[0021] Preferably, conductor wire used in the conductor coils of the electric generator, according to the present invention, may be made of metal or any other type of conductor material.

[0022] Preferably, conductor wire used in the conductor coils of the electric generator, according to the present invention, may be made of copper, aluminum, silver or any other conductor metal material.

[0023] The electric generator with a rotational resistance avoidance feature of the present invention functions when mechanical power input 6 is applied rotate the shaft (1) counterclockwise; and the magnetic flux, from north magnetic polarities (N) towards south magnetic polarities (S), of all four sides of each pole around the shaft 1 will vary in relation to the conductor coils 5, which have been connected to a circuit. Then the electromotive force is induced and the electrical current will be transmitted through slip rings 8. When the electromotive force is applied to the load, the electrical current will induce the conductor coils 5 to generate magnetic polarities itself, which are similar to the original magnetic polarities of the permanent magnet 2. The pushing force will push the sets of conductor coils 11, 12 to continuously rotate in a clockwise direction. The rotating set of magnets in the middle is also continuously rotated by the mechanical power input 6. The reaction between the rotating set of magnets 10 and the rotating sets of conductor coils 11, 12 results in the rotational resistance being avoided when the electric power is generated and supplied to the load. Therefore, the additional mechanical power input 6 according to the related load is not necessary (rather, only a partial increase is required), and the electrical power can be generated by converting the energy stored in permanent magnets to be supplied to the load in the amount that is greater than the mechanical power input.

[0024] FIG. 2 is the front view of the electric generator with the rotational resistance avoidance feature of FIG. 1 illustrating the rotational direction of the mechanical power input of FIG. 1 for further illustration of the capacity extension in FIGS. 4 and 5.

[0025] FIG. 3 is the enlarged front view illustrating the direction of the magnetic flux around the rotating shaft of the rotating set of magnet parts.

[0026] FIG. 4 is the front view of the capacity expansion of the generator of FIG. 2 in the horizontal direction. For example, this embodiment is provided with three rotating sets of magnets driven by the same direction of the mechanical power input 6, and with four rotating sets of conductor coils as illustrated in FIG. 4.

[0027] FIG. 5 is the front view of the capacity expansion of the generator of FIG. 2 in both vertical and horizontal directions for practical application in the power plant. Each of the electric generators with a rotational resistance avoidance feature in the present invention can be horizontally expanded on the same plane and vertically expanded in other directions. All those rotating sets of magnet parts must be driven in the same direction by the mechanical power input.