Six-phase Switched Reluctance Motor, and Sensorless Rotor Position Estimation Method and System
20230198443 · 2023-06-22
Assignee
Inventors
Cpc classification
H02K19/103
ELECTRICITY
H02K2213/03
ELECTRICITY
International classification
Abstract
The present invention discloses a six-phase switched reluctance motor, and a sensorless rotor position estimation method and system. The six-phase switched reluctance motor includes a stator assembly and a rotor assembly, the stator assembly includes a stator core, the stator core includes stator teeth and a stator yoke, and the stator teeth are provided with windings; and the number Ns of the stator teeth is a multiple of 6, every six adjacent windings form a six-phase winding, a plurality of sets of six-phase windings are provided, one ends of each set of six-phase windings are connected to each other to form a common terminal, and the other ends of each set of six-phase windings are connected to a controller interface.
Claims
1. A six-phase switched reluctance motor comprising a stator assembly and a rotor assembly, characterized in that the stator assembly comprises a stator core, the stator core comprises stator teeth and a stator yoke, and the stator teeth are provided with windings; and the number Ns of the stator teeth is a multiple of 6, every six adjacent windings form a six-phase winding, a plurality of sets of six-phase windings are provided, one ends of each set of six-phase windings are connected to each other to form a common terminal, and the other ends of each set of six-phase windings are connected to a controller interface.
2. The six-phase switched reluctance motor according to claim 1, characterized in that a relationship between the number Ns of the stator teeth and the number Nr of rotor teeth meets:
3. The six-phase switched reluctance motor according to claim 1, characterized in that a winding manner of the six-phase windings is NNNNNN or SSSSSS or NSNSNS or NNSSNN or NNNSSS, N representing winding in a clockwise direction, S representing winding in a counterclockwise direction.
4. The six-phase switched reluctance motor according to claim 3, characterized in that a winding manner of the six-phase windings is NNNNNN or SSSSSS in the case that the number Ns of the stator teeth is 12.
5. The six-phase switched reluctance motor according to claim 1, characterized in that the stator yoke at least comprises hsy0 and hsy1 areas of unequal widths, and the hsy0 areas and the hsy1 areas are arranged alternately in a circumference direction of the stator yoke.
6. The six-phase switched reluctance motor according to claim 1, characterized in that the six-phase switched reluctance motor is provided as an outer rotor motor or an inner rotor motor or a linear motor or a disc motor or a cascade motor or a special-shaped motor.
7. The six-phase switched reluctance motor according to claim 1, characterized in that auxiliary permanent magnets or/and electrically excited windings are disposed on the stator assembly or/and the rotor assembly.
8. The six-phase switched reluctance motor according to claim 1, characterized in that the stator core is of a salient pole structure; and the rotor assembly comprises a rotor core, the rotor core is also of a salient pole structure, the rotor core comprises rotor teeth and a rotor yoke, and when the rotor assembly is driven by an external force to make directional movement, the rotor teeth cut a magnetic field on the stator windings to form an induced current output, such that the six-phase switched reluctance motor has a function of efficient electricity generation.
9. A sensorless rotor position estimation method for a six-phase switched reluctance motor, implemented by the six-phase switched reluctance motor according to claim 1, characterized by comprising: acquiring a current value and a voltage value in six-phase windings, a control waveform in the six-phase windings being square wave, sine wave or part of sine wave; calculating a flux linkage value based on the acquired current value and voltage value; and estimating an actual position and operating speed of a rotor assembly based on the current value, the voltage value and the flux linkage value.
10. A sensorless rotor position estimation system for a six-phase switched reluctance motor, characterized by comprising: a data acquisition module, configured to acquire a current value and a voltage value in six-phase windings, a control waveform in the six-phase windings being square wave, sine wave or part of sine wave; a data processing module, configured to calculate a flux linkage value based on the acquired current value and voltage value; and an inductance calculation module, configured to estimate an actual position and operating speed of a rotor assembly based on the current value, the voltage value and the flux linkage value.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032] Reference numerals: 1. stator assembly; 11. stator yoke; 12. stator tooth; 2. rotor assembly; and 3. winding.
DETAILED DESCRIPTION OF THE INVENTION
[0033] In order to make the objectives, technical solutions and advantages of the present invention clearer, the technical solutions of the present invention will be clearly and completely described below in conjunction with specific embodiments and corresponding accompanying drawings. Apparently, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by persons of ordinary skill in the art without creative efforts shall fall within the scope of the present invention.
[0034] It is to be noted that the expressions “first”, “second” and the like used in the embodiments of the present invention are merely for the purpose of description and should not be construed as indicating or implying the number of technical features defined, and thus the features defined as “first”, “second” in the embodiments of the present description may indicate that at least one of the technical features defined is included.
[0035] Referring to
[0036] According to this embodiment, a motor corresponding to every six windings 3 may be set as the minimum unit motor, and when the number Ns of the stator teeth 12 is greater than 6, every six windings 3 form 1 phase, for a total of six phases.
[0037] According to a preferred embodiment, a relationship between the number Ns of the stator teeth 12 and the number Nr of rotor teeth meets:
[0038] According to one embodiment of the present invention, taking a six-phase switched reluctance motor with twelve stator teeth 12 as an example, each coil is wound on the stator teeth 12, six adjacent windings 3 along the circumference belong to six phases: A, B, C, D, E, and F, respectively, and every two radially opposite windings 3 are of the same phase. One ends of the six-phase windings 3 are connected to each other to form a common terminal, and the other ends of the six-phase windings are connected to a controller interface.
[0039] Referring to
[0040] Referring to
[0041] Referring to
[0042] Referring to
[0043] According to other embodiments, an auxiliary permanent magnet or electrically excited winding 3 may also be provided on the stator assembly 1, and an auxiliary permanent magnet or electrically excited winding 3 may also be provided on the rotor assembly 2.
[0044] Based on the above six-phase switched reluctance motor, the present invention further provides a sensorless rotor position estimation method and system for the six-phase switched reluctance motor. As shown in
[0045] (1) a data acquisition module, configured to acquire a current value and a voltage value in six-phase windings 3, a control waveform in the six-phase windings 3 being square wave, sine wave or part of sine wave;
[0046] (2) a data processing module, configured to calculate a flux linkage value based on the acquired current value and voltage value; and
[0047] (3) an inductance calculation module, configured to estimate an actual position and operating speed of a rotor assembly 2 based on the current value, the voltage value and the flux linkage value.
[0048] Specifically, the data acquisition module acquires the voltage value and the current value of the connecting position of the six-phase windings 3 and a controller in real time by means of current sampling and voltage sampling; the data acquisition module is connected to the data processing module, and the data processing module converts six-phase signals into signals in a two-phase α-β stationary coordinate system through coordinate transformation; and the data processing module is connected to the inductance calculation module, and the inductance calculation module calculates inductance in the two-phase α-β stationary coordinate system. Since the inductance in the two-phase α-β stationary coordinate system is related to the position of the motor, the real-time position of a rotor may be estimated, and the real-time speed of the motor may be estimated by taking the derivative of the rotor position.
[0049] The system and the modules described in the above embodiments may be specifically implemented by computer chips or entities, or by products with some functions. An exemplary implementation device is a computer. Specifically, the computer may be, for example, a personal computer, a laptop computer, a cellular phone, a camera phone, a smart phone, a personal digital assistant, a media player, a navigation device, an email device, a gaming console, a tablet computer, a wearable device, or a combination of any of these devices. For the convenience of description, the above system is divided into various modules based on functions. Of course, during the implementation of the present invention, the functions of the modules may be implemented in one or more software and/or hardware.
[0050] A voltage equation of the six-phase switched reluctance motor may be expressed as follows:
[0051] where U.sub.k, R.sub.k, i.sub.k, e.sub.k and ψ.sub.k are an applied voltage, resistance, current, induced electromotive force, and flux linkage of a winding of a kth phase respectively.
[0052] The six-phase signals in natural coordinates are converted to the two-phase α-β stationary coordinate system through a coordinate transformation method as:
[f.sub.αf.sub.β].sup.T=T.sub.αβ[f.sub.a f.sub.b f.sub.c f.sub.d f.sub.e f.sub.f].sup.T (2)
[0053] where f denotes a signal, including a voltage signal, a current signal, a flux linkage signal, an inductance signal, etc. A transformation matrix T.sub.αβ is:
[0054] Therefore, through the current sampling and voltage sampling on the six-phase winding and the six phase-two phase coordinate transform, U.sub.α, U.sub.β, i.sub.α and i.sub.β in the two-phase α-β stationary coordinate system may be calculated.
[0055] In the two-phase α-β stationary coordinate system:
[0056] Thus,
ψ.sub.α=∫e.sub.αdt=∫(U.sub.α−Ri.sub.α)dt (5)
ψ.sub.β=∫e.sub.βdt=∫(U.sub.β−Ri.sub.β)dt (6)
[0057] The resistances R in the equations (5) and (6) may be directly measured, such that ψ.sub.α and ψ.sub.β in the two-phase α-β stationary coordinate system may be directly obtained by integration.
[0058] Further, ψ.sub.α and ψ.sub.β may also be expressed as:
[0059] where L.sub.u denotes phase winding inductance when the center of a stator salient pole coincides with the center of a rotor notch, and L(θ)k.sub.s is a variable parameter, and is related to the structure of the motor, the rotor position, the current, the core saturation, etc.
[0060] An unknown quantity k.sub.s is eliminated by the simultaneous equations (5), (6) and (7), and the rotor position may be calculated as:
[0061] where a rotor position angle θ may be obtained, and the speed ω of the rotor position may be obtained by taking a first order derivative of the rotor position angle θ.
[0062]
[0063] According to the present invention, the wiring method and the motor structure of the six-phase switched reluctance motor are improved, the voltage and current in the six-phase windings are sampled in real time through the data acquisition module, the flux linkage is calculated through the data processing module, and the rotor position is estimated through the inductance calculation module. Therefore, the advantages of simple structure, easy implementation, high practicality, high calculation accuracy and high reliability are achieved.
[0064] The above-mentioned embodiments are merely preferred embodiments of the present invention, and are not intended to limit the scope of the present invention, and any insubstantial changes and substitutions made by a person skilled in the art on the basis of the present invention fall within the scope of the present invention as claimed.