ELECTRIC MOTOR
20200336024 ยท 2020-10-22
Assignee
Inventors
Cpc classification
H02K11/215
ELECTRICITY
H02K29/08
ELECTRICITY
H02K3/04
ELECTRICITY
International classification
H02K11/215
ELECTRICITY
H02K29/08
ELECTRICITY
Abstract
An electric motor which comprises: (A) a rotor which comprises: (a.1) a co-centric shaft and disk; and (a.2) a plurality of permanent magnets that are equi-angularly spaced and equi-radially disposed on said disk in a ring-like structure! and, (B) a stator which comprises: (b.1) a plurality of coils having a U-shaped structure in top view and double C-shaped structure in side view, said coils are equi-angularly spaced and equi-radially disposed with respect to said disk of the rotor, each section of said C-shaped structure has a cavity through which said ring-like structure and disk rotationally move; and (b.2) a plurality-of-windings coil within each of said U-shaped coils.
Claims
1. An electric motor comprising: (A) a rotor which comprises: a. a co-centric shaft and disk; and b. a plurality of permanent magnets that are equi-angularly spaced and equi-radially disposed on said disk in a ring-like structure; and, (B) a stator which comprises: c. a plurality of coils having a U-shaped structure in top view and double C-shaped structure in side view, said coils are equi-angularly spaced and equi-radially disposed with respect to said disk of the rotor, each section of said C-shaped structure has a cavity through which said ring-like structure and disk rotationally move; and d. a plurality-of-windings coil within each of said U-shaped coils.
2. An electric motor according to claim 1, wherein the U-shaped coils are attached to a stator base.
3. An electric motor according to claim 1, wherein a ferromagnetic core is disposed between any two adjacent permanent magnets of the rotor, thereby to form a close ring.
4. An electric motor according to claim 1, wherein a DC current whose direction is alternated is supplied to said coils of the coils.
5. An electric motor according to claim 4, wherein all said coils are connected in parallel, such that they are all fed from a single DC source.
6. An electric motor according to claim 4, further comprising one or more sensors for sensing the position of the one or more of said permanent magnets relative to said coils, respectively, and for providing indication as to when to alter the direction of the DC current, respectively.
7. An electric motor according to claim 6, wherein each of said sensors is a Hall-type sensor.
8. An electric motor according to claim 5, wherein said alterations of the direction of the DC current is caused by a controller, and wherein said alterations are timed by a signal which is received from said one or more sensors.
9. An electric motor according to claim 1, wherein the poles of adjacent permanent magnets are arranged such that identical poles face one another, in an S-S, N-N . . . arrangement.
10. An electric motor according to claim 1, wherein the windings in each of the plurality of coils are formed by a single conductor which is repeatedly wound around a coil bobbin.
11. An electric motor according to claim 1 which is of relatively low current and relatively high voltage.
12. An electric motor according to claim 1, wherein the number of permanent magnets is twice the number of said U-shaped coils.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0027] In the drawings:
[0028]
[0029]
[0030]
DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
[0031] As noted above, the typical electrical motors of the prior art suffer from a significant parasitic magnetic flux, which results in the generation of a reversed electrical energy (CEMF), in addition to the mechanical (rotational) energy that the motor is intended to produce. Such generation of parasitic electrical energy results in a significant loss of energy.
[0032] The motor of the present invention very significantly reduces such losses of energy, while using a relatively low current and a relatively high voltage supply.
[0033]
[0034] More specifically, the rotor 120 comprises a shaft 121, disk 122, and a plurality of permanent magnets 123 (123a-123b in this specific embodiment) that are placed on it. As shown, the plurality of permanent magnets 123 have a cross sectional shape, which is adapted to pass through the cavity 134 of each of the C-shaped structures. The permanent magnets 123 are equi-angularly spaced and equi-radially placed on disk 122 in a ring-like manner, to pass through each of said cavities 134. The permanent magnets 123 are placed on rotor disk 122 such that identical poles of any two adjacent magnets face one another, respectively (i.e., in an S pole facing S pole, N pole facing N pole, etc.). In one embodiment, and as shown in the exemplary embodiment of
[0035]
[0036] In one embodiment, a ferromagnetic (e.g., iron) core 125 is disposed between any two adjacent permanent magnets 123. More specifically, in the embodiment of
[0037]
[0038] As noted, it has been found that the parasitic magnetic losses in the motor of the invention, namely the CEMF, are extremely low compared to conventional prior art motors. While in conventional motors the level of the CEMF typically reaches 80%-90%, the level of the CEMF in the motor of the invention has been found to be between 10% to 12%.
EXAMPLE
[0039] A motor according to the invention was implemented. The following parameters and results were respectively provided: [0040] 1. Number of U-shaped coils: 2; [0041] 2. Number of permanent magnets: 4; [0042] 3. Number of windings in each coil: 20; [0043] 4. Diameter of the wire that was used in the coils: 7 mm; [0044] 5. The level of the voltage supply: 8-20V DC; [0045] 6. The level of the current: 2200 A=400 A; [0046] 7. The power of the motor: up to 50 KW; [0047] 8. The rate of change of the polarity of the current: 4 times per disk turn; [0048] 9. The number of rounds per minutes achieved: up to 3000 rpm; [0049] 10. The diameter of the disk: 400 mm. [0050] 11. The CEMF at a speed of 3000 rpm has been found to be no more than 12%.
[0051] While some embodiments of the invention have been described by way of illustration, it will be apparent that the invention can be carried into practice with many modifications, variations and adaptations, and with the use of numerous equivalents or alternative solutions that are within the scope of persons skilled in the art, without departing from the spirit of the invention or exceeding the scope of the claims.