The present invention relates to structures and the method of manufacturing electric motors. More specifically, the present invention relates to electric motors with a double layer formed coil lapped winding.
Electric motors contain a rotor (moving part) and a stator (stationary part). A force is generated to drive the electric motors through the interaction of magnetic fields and current-carrying conductors. The efficiency of the electric motors often depends on the designs of the winding on the stator.
A typical armature comprises one or more multiple phase windings. Each phase further comprises several parallel paths. Each path further comprises several coils. For a two-layer winding, each coil comprises two sides. A first side occupies top layer of the slot and the second side occupies the bottom layer of the slot. The typical armature comprises partially closed slots. The wires are inserted into the partially closed slots one by one and occupy random position in the slots. This procedure is time consuming, thereby limiting production quantities and increasing cost of manufacturing such motors.
Typically, a partially closed opening to receive the winding design is used on the motor of the electric vehicle. The drawbacks of using this design include that it is more difficult to manufacture and it takes more time for the workers to install them into the partially closed slot of the stator. In average, a skilled worker takes a whole working day to complete the insertion of the winding for two motors.
In some embodiments of the present invention, an electric motor contains a rotor and a stator having a double layer formed coil lapped winding. The winding is able to be used on an open slot armature, which is advantageous in many aspects including higher slot fill factor, better insulation performance, lower thermal resistance between winding and armature core, shorter length of winding end turns, easier insertion of formed coils into the armature core, easier to manufacture, and better magnetic insulation between layers. This type of armature is able to be applied in synchronous machine, induction machine, and permanent magnet machines. In some embodiments, the electric motor disclosed herein is used on electric vehicles.
In a first aspect, a motor comprises a stator having a first open slot and a second open slot, a double layered winding structure having a first coil side of a first winding at a bottom position and a first coil side of a second winding at a top position of the first open slot, and a first end turn comprising a turned phase winding structure, wherein the first end turn is electrically coupled with the first coil side of the first winding and a second coil side of the first winding. In some embodiments, each of the first winding and the second winding comprise multiple conductors forming a multiple turn winding, wherein each of the conductors comprises multiple strands. In other embodiments, the second coil side of the first winding is positioned at a top position of the second open slot. In some other embodiments, the motor further comprises a third winding having a first coil side at a bottom position of the second open slot, In some embodiments, the motor further comprises a third open slot having a second coil side of the second winding positioned at a bottom position of the third open slot. In some other embodiments, the stator comprises multiple slots surrounding the stator in a circle. In some embodiments, the first winding is twisted and turned up-side-down at the first end turn. In other embodiments, the motor further comprises a second end turn connecting the first coil side of the first winding and the second coil side of the second winding forming a loop structure. In some embodiments, the motor is operated at a frequency higher than 70 Hz. In other embodiments, the motor further comprises a wedge covering an opening of the first open slot, the second open slot, the third open slot, or a combination thereof. In some other embodiments, the wedge is made of plastic, polymers, bamboo, aluminum, a semi-magnetic material, or a combination thereof. In some embodiments, the semi-magnetic material comprises epoxy and powdered steel.
In a second aspect, a motor comprises a stator comprising a first open slot and a first coil in the first open slot, wherein the first coil forms at least one block. In some embodiments, the block is substantially rectangular in shape. In other embodiments, the first coil forms a first block and a second block. In some embodiments, the first block is on top of the second block in the first open slot. In other embodiments, the first block and the second block are reverse in position when the first coil is positioned in a different open slot. In some other embodiments, the motor further comprises a second coil. In some other embodiments, the second coil is on top of the first coil in the first open slot. In some embodiments, the motor further comprises a separator between the first coil and the second coil. In other embodiments, the motor further comprises a wedge covering the opening of the first opening slot. In some other embodiments, the wedge is made of plastic, polymers, bamboo, aluminum, a semi-magnetic material, or a combination thereof. In some embodiments, the thickness of the block is less than 0.8 mm. In other embodiments, the thickness of the block is reduced to reduce a skin effect.
In a third aspect, a method of manufacturing a motor comprises placing a first coil in a lower position of a first open slot and placing a second coil in a higher position of the first open slot. In some embodiments, the first coil is in a higher position of a second open slot. In other embodiments, the second coil is in a lower position of a third open slot. In some other embodiments, the first coil is formed before placing in the first open slot. In some embodiments, the method further comprises placing a third coil in a lower position of an open slot immediate adjacent to the first open slot. In some embodiments, the motor comprises multiple open slots surrounding a stator of the motor, In other embodiments, the open slots comprise fully opening slots.
With the coil placement described above, a first aim 111 of a 7th winding is placed on top of the second arm 108B of the first coil 108, such that a double layer winding structure is formed by having an arm on top of the other. More details of the coil 108 are described in the following sections.
In some embodiments, each unit of the coil block (such as unit 124A) comprises a rectangular coil block, such as coil block 126K. For example, the windings can be wound from a wire having a rectangular cross section. The size of the coil block 126K is able to be pre-determined by the numbers of turns per coil to meet a voltage requirement. In some embodiments, a thin coil block 126K is preferred to decrease the skin effect in the conductor. In some embodiments, the size of the coil block 126K is 5-6 mm in its width and 0.5 mm or thinner in its thickness, such as 0.1 mm to 0.3 mm. The length of the coil block 126K is able to be determined by the thickness of the stator.
In some embodiments, the wedges are able to be semi-magnetic wedges to decrease an equivalent air gap, so that the power factor of the motor is able to be improved, especially in an induction motor application. In some embodiments, factors and parameters are considered in the motor design including air gap, slot leakage induction, and a combination thereof. These factors are able to be calculated and balanced to design an efficient motor.
The present invention is able to be utilized to improve the motor efficiency for the electric vehicles that runs fully or partially on batteries and for all motors. In the operation of a motor manufacturing plant, the windings/coils are able to be pre-formed and be placed into the open slots of the armature to form a lapped double layer winding. Comparing to the typical partial closed opening/slot design, the present invention provides advantageous aspects. For example, the typical partial closed opening/slot design requires a worker to push the winding into the partial closed slot one by one, and the typical design would take up significant time for manufacturing a motor. In comparison, the present invention has open slots, so the manufacturing workers are able to directly put the coils/windings into the open slots without pushing through the narrower bottleneck design at the opening. Further, the thin winding block design of the present invention is able to reduce the skin effect when the windings are charged with electricity at function. Moreover, the position transferred/phase turning coil (the winding is twisted and turned upside down at the end turn) makes current distribution more uniformly and makes minimum circulating currents between the strands.
The term “open slot” is able to include a fully open slot (without bottleneck that is narrower at the opening) of the stator.
All steps described above are optional. The sequence of performing the steps that are included in the methods above is able to be in any orders. Additional steps are able to be added.
The present invention has been described in terms of specific embodiments incorporating details to facilitate the understanding of principles of construction and operation of the invention. Such reference herein to specific embodiments and details thereof is not intended to limit the scope of the claims appended hereto. It will be readily apparent to one skilled in the art that other various modifications may be made in the embodiment chosen for illustration without departing from the spirit and scope of the invention as defined by the claims