Patent classifications
H02K19/02
Synchronous Reluctance Motor
A plurality of flux barriers in each of flux barrier groups include arcuate portions formed in a polygonal region. The arcuate center of the arcuate portions in each of the flux barrier groups is set to the circumferential center point of the flux barrier group on the outer peripheral edge of a rotor. When regions of the rotor interposed between two flux barriers that are adjacent to each other in the flux barrier groups are defined as ribs, and portions of the rotor that are close to the outer periphery of the rotor in the regions of the rotor interposed between flux barrier groups that are adjacent to each other are defined as connecting portions, the ratio of the width of the connecting portions to the width of the ribs is 0.53 or more and 0.8 or less.
MAGNET SENSOR, MOTOR ASSEMBLY AND APPLICATION APPARATUS
A magnetic sensor, a motor and an application apparatus are provided. The magnetic sensor includes a magnetic sensing element, a chopping switch, a first discharging branch, and a second discharge branch. The magnetic sensing element includes a first terminal, a second terminal, a third terminal, and a fourth terminal. The first discharging branch is coupled between the first terminal and the third terminal. The second discharging branch is coupled between the second terminal and the fourth terminal. Before the first terminal and the third terminal serve as power input terminals, the second terminal and the fourth terminal serve as output terminals of magnetic field detection signal, the second discharging branch is turned on; before the first terminal and the third terminal serve as the magnetic field detection signal output terminals, the second terminal and the fourth terminal serve as power input terminals, the first discharging branch is turned on.
MAGNET SENSOR, MOTOR ASSEMBLY AND APPLICATION APPARATUS
A magnetic sensor, a motor and an application apparatus are provided. The magnetic sensor includes a magnetic sensing element, a chopping switch, a first discharging branch, and a second discharge branch. The magnetic sensing element includes a first terminal, a second terminal, a third terminal, and a fourth terminal. The first discharging branch is coupled between the first terminal and the third terminal. The second discharging branch is coupled between the second terminal and the fourth terminal. Before the first terminal and the third terminal serve as power input terminals, the second terminal and the fourth terminal serve as output terminals of magnetic field detection signal, the second discharging branch is turned on; before the first terminal and the third terminal serve as the magnetic field detection signal output terminals, the second terminal and the fourth terminal serve as power input terminals, the first discharging branch is turned on.
Rotor, Reluctance Machine and Method for Manufacturing the Rotor
A rotor for a reluctance machine and a method of producing a rotor for a reluctance machine is provided. The rotor is formed as a soft magnetic element which is cylindrical in shape. The soft magnetic element has recesses for forming flux barriers, one or more flux barriers being at least partially filled with a filler material, and the filler material of said flux barriers extending up to the rotor periphery and forming part of the rotor periphery.
Rotor, Reluctance Machine and Method for Manufacturing the Rotor
A rotor for a reluctance machine and a method of producing a rotor for a reluctance machine is provided. The rotor is formed as a soft magnetic element which is cylindrical in shape. The soft magnetic element has recesses for forming flux barriers, one or more flux barriers being at least partially filled with a filler material, and the filler material of said flux barriers extending up to the rotor periphery and forming part of the rotor periphery.
SYNCHRONOUS RELUCTANCE ELECTRIC MACHINE
A synchronous reluctance electric machine is described, and includes a stator including a plurality of electrical windings and a rotor disposed in a cylindrically-shaped void formed within the stator. The rotor includes a plurality of steel laminations assembled onto a shaft, wherein the shaft defines a longitudinal axis. Each of the steel laminations includes a plurality of poles and each of the poles includes a plurality of slots disposed near an outer periphery. The slots of the steel laminations are longitudinally aligned. A plurality of packets assembled from anisotropic material are disposed in the slots.
SYNCHRONOUS RELUCTANCE ELECTRIC MACHINE
A synchronous reluctance electric machine is described, and includes a stator including a plurality of electrical windings and a rotor disposed in a cylindrically-shaped void formed within the stator. The rotor includes a plurality of steel laminations assembled onto a shaft, wherein the shaft defines a longitudinal axis. Each of the steel laminations includes a plurality of poles and each of the poles includes a plurality of slots disposed near an outer periphery. The slots of the steel laminations are longitudinally aligned. A plurality of packets assembled from anisotropic material are disposed in the slots.
DIRECT DRIVE OUTER ROTOR BRUSHLESS DC MOTOR DRIVE WHEEL
The presently disclosed invention provides an outer rotor brushless direct current motor that includes a tire integrated as part of the outer rotor, and is thus configured as a direct drive wheel, such as may be used on a mobile robot. The drive wheel includes a cylindrical outer rotor having a plurality of poles positioned on an inner surface, a stationary stator spaced inwardly from the rotor and defining a magnetic clearance gap between the plurality of poles of the rotor and a plurality of electromagnets positioned on an outer circumference of the stator, and a stationary central shaft. The stator is mounted to the central shaft and the rotor is configured for rotation about the stator.
DIRECT DRIVE OUTER ROTOR BRUSHLESS DC MOTOR DRIVE WHEEL
The presently disclosed invention provides an outer rotor brushless direct current motor that includes a tire integrated as part of the outer rotor, and is thus configured as a direct drive wheel, such as may be used on a mobile robot. The drive wheel includes a cylindrical outer rotor having a plurality of poles positioned on an inner surface, a stationary stator spaced inwardly from the rotor and defining a magnetic clearance gap between the plurality of poles of the rotor and a plurality of electromagnets positioned on an outer circumference of the stator, and a stationary central shaft. The stator is mounted to the central shaft and the rotor is configured for rotation about the stator.
COMPRESSOR
In a compressor for refrigerant having a suction inlet for refrigerant and a pressure outlet for compressed refrigerant, said compressor comprising a compression unit and an electric motor driving said compression unit, said electric motor being a synchronous reluctance motor having a stator and a rotor, said rotor comprising a plurality of stacked disc elements, each disc element having a plurality of flux barriers configured to give the rotor core an anisotropic magnetic structure and formed as apertures in said disc element, it is provided that said flux barriers are arranged in said rotor core to define channels enabling a flow of refrigerant through said rotor core, said rotor is provided with a first support element acting on a first front side of said rotor core and a second support element acting on a second front side of said rotor core, said support elements being provided with cut-out sections and said cut-out sections being designed to uncover at least 70% of the cross section of apertures defined by said flux barriers in the respective disc element forming the respective front side of said rotor core.