CN212003431U - Pure square wave permanent magnet wind-collecting type wind power generation system - Google Patents

Pure square wave permanent magnet wind-collecting type wind power generation system Download PDF

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Publication number
CN212003431U
CN212003431U CN202020201465.4U CN202020201465U CN212003431U CN 212003431 U CN212003431 U CN 212003431U CN 202020201465 U CN202020201465 U CN 202020201465U CN 212003431 U CN212003431 U CN 212003431U
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wind
permanent magnet
impeller
square wave
generator
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朴俊民
鲍志民
边春元
朱建勇
陈星谏
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Shenyang Norda Power Co ltd
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SHENYANG PERMANENT MAGNET MOTOR MANUFACTURING CO LTD
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    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E10/00Energy generation through renewable energy sources
    • Y02E10/70Wind energy
    • Y02E10/72Wind turbines with rotation axis in wind direction
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E10/00Energy generation through renewable energy sources
    • Y02E10/70Wind energy
    • Y02E10/76Power conversion electric or electronic aspects
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E70/00Other energy conversion or management systems reducing GHG emissions
    • Y02E70/30Systems combining energy storage with energy generation of non-fossil origin

Abstract

A pure square wave permanent magnet wind-collecting type wind power generation system relates to a wind power generation system, and comprises a pure square wave permanent magnet generator and a back-to-back double PWM converter; the system operation mode comprises that a motor stator winding flows in two directions through a four-quadrant converter and power grid energy, a machine side converter controls the rotating speed and power of a permanent magnet generator, a grid side converter performs voltage stabilization control on a direct current bus and controls a grid side power factor, and the modulation mode is a controller with a rectification step-up ratio of more than 10 times; the blades of the wind turbine of the generator are connected with the flange plate to form an impeller, and the impeller is placed in the wind collecting cover; the utility model discloses a step-up ratio more than 10 times, system's generating efficiency surpasses 0.63, the utility model discloses the more abundant utilization of the system wind energy, the wind speed range of wind power system operation has been widened.

Description

Pure square wave permanent magnet wind-collecting type wind power generation system
Technical Field
The utility model relates to a wind power generation system especially relates to a pure square wave permanent magnetism collection wind formula wind power generation system.
Background
With the increasing tension of fossil energy and environmental problems, wind energy is used as clean renewable energy, and accounts for more and more renewable energy. The active utilization of wind energy is beneficial to the development of multi-element energy supply and improves the energy safety guarantee level in China. The horizontal axis wind turbine is a typical structural type of the wind turbine, the pneumatic efficiency of the horizontal axis wind turbine reaches a high level along with the continuous improvement of the design level, and if the Betz limit of the pneumatic efficiency of the existing wind turbine is broken through, the structural type of the new wind turbine must be explored.
According to the aerodynamics of the wind turbine, the aerodynamic power of the wind turbine is in direct proportion to the cube of the incoming flow wind speed, and the method of utilizing flow control to improve the windward speed of the wind turbine is an effective method for improving the aerodynamic power of the wind turbine. Therefore, the blades of the horizontal axis wind turbine are arranged in the annular wind collecting cover to form the wind collecting type horizontal axis wind turbine, and the pneumatic power of the horizontal axis wind turbine can be obviously improved by utilizing the wind collecting and accelerating effect of the wind collecting cover. Under the same power output condition, the length of the wind-collecting type horizontal-axis wind turbine blade can be reduced by about 1/3 compared with the conventional horizontal-axis wind turbine without a wind-collecting cover, and the shorter blade length is beneficial to the structural design of the blade and the safe operation of the wind turbine. In addition, the starting wind speed of the wind-collecting type horizontal axis wind turbine is lower, the wind speed application range of the wind turbine is widened, and the wind-collecting type horizontal axis wind turbine has higher economic benefit and social benefit.
The permanent magnet generator adopts different magnetic circuit structures and armature winding forms, and can obtain two different counter potential waveforms, namely trapezoidal waves and sine waves. The driving mode is also two types according to the waveform of the driving current, namely square wave driving and sine wave driving. The boost ratio of the permanent magnet wind power generation system is about 2 times. Horizontal-axis generators generally require a yaw to track the wind direction, and are a frequent component of failure.
Disclosure of Invention
The utility model aims at providing a pure square wave permanent magnetism wind-collecting type wind power generation system, which adopts a pure square wave permanent magnetism generator and a controller, realizes more than ten times of boost ratio, more than four times of overload capacity and 85% of high-efficiency area working range; the wind collecting cover is arranged, the pneumatic power of the wind machine is improved by utilizing the wind collecting and accelerating principle, the same wind sweeping area is achieved, and the power is improved by about three times; the wind resistance is utilized to realize automatic wind following, a yaw device is omitted, and the failure rate is reduced.
The utility model aims at realizing through the following technical scheme:
a pure square wave permanent magnet wind-collecting type wind power generation system comprises a pure square wave permanent magnet generator and a back-to-back double PWM converter; the system operation mode comprises that a motor stator winding flows in two directions through a four-quadrant converter and power grid energy, a machine side converter controls the rotating speed and power of a permanent magnet generator, a grid side converter performs voltage stabilization control on a direct current bus and controls a grid side power factor, and the modulation mode is a controller with a rectification step-up ratio of more than 10 times; the wind turbine blade is connected with the flange plate to form an impeller, and the impeller is placedIn the wind collecting cover; the impeller is fixedly connected with the generator axially through a transmission shaft, the generator is connected into a rectification controller, and the rectification controller is externally connected with an energy storage battery or an electric drive load; the design of the wind collecting cover of the generator is according to the rotating radius of the impellerR 0 Determining the radii of the inlet circular cross-section, the minimum circular cross-section and the outlet circular cross-section of the air collecting hoodR 1 R 2 AndR 3 and axial lengthLHeight of rigid vertical edgeH 1 And a flexible stile heightH 2 (ii) a Wherein the content of the first and second substances,R 1 =1.1R 0 ~1.2R 0 R 2 =1.01R 0 ~1.02R 0 R 2 =1.15R 0 ~1.18R 0 L=0.5R 0 ~0.7R 0 H 1 =0.12R 0 ~0.36R 0 H 2 =0~0.3R 0
according to the pure square wave permanent magnet wind collection type wind power generation system, the rotation axis of the blade is overlapped with the axis of the wind collection cover, and the rotation axis of the impeller is overlapped with the circle center of the smallest circular cross section of the wind collection cover.
In the pure square wave permanent magnet wind-collecting type wind power generation system, the number of the impeller blades is 1-99; the mounting angle of the blade is 0-90 degrees.
According to the pure square wave permanent magnet wind-collecting type wind power generation system, the impeller blade takes a rotation center as a starting point, and the blade root is located at the radial position of 10% -15% of the rotation radius of the impeller and connected with the flange plate to form the impeller.
According to the pure square wave permanent magnet wind-collecting type wind power generation system, the impeller blade takes a rotation center as a starting point, an S823 airfoil is selected within a range from a blade root to 15% of the rotation radius of the impeller along the radial direction, and an S822 airfoil is selected within a range from 15% to 100% of the rotation radius of the impeller along the radial direction.
The pure square wave permanent magnet wind-collecting type wind power generation system collects windDesign of the cover according to radiusR 1 R 2 AndR 3 and axial lengthLHeight of rigid vertical edgeH 1 And a flexible stile heightH 2 Determining three coordinate points A (-0.474) of the molded line of the wind collecting coverL, R 1 )、B(0, R 2 ) And C (0.526)L, R 3 ) The vertical edge of the wind-collecting cover is coplanar with the outlet section of the wind-collecting cover, and the rigid vertical edge is connected with the flexible vertical edge in a collinear way.
In the pure square wave permanent magnet wind collecting type wind power generation system, three point coordinates of the vertical edge of the wind collecting cover are respectively C (0.526)L, R 3 )、D (0.526L, R 3 +H 1 ) And E (0.526)L, R 3 +H 1 +H 2 ) (ii) a And making an arc through A, B, C, connecting C, D and E to obtain a two-dimensional molded line of the wind collecting cover, and rotating the molded line for 360 degrees along the rotating shaft of the wind turbine to obtain the three-dimensional aerodynamic shape of the wind collecting cover.
The utility model has the advantages that:
1. the permanent magnet generator adopts different magnetic circuit structures and armature winding forms, and can obtain two different back electromotive force waveforms, namely trapezoidal wave and sine wave, and the driving modes of the permanent magnet generator also have two types according to the waveform of driving current, namely square wave driving and sine wave driving; the utility model discloses a pure square wave permanent magnet generator has that efficiency is higher, energy density is bigger, the overload multiple is higher, high efficiency area scope advantage such as wideer, improves wind energy utilization and generated energy.
2. Permanent magnetism wind power generation system's step-up is than generally about 2 times, the utility model discloses a pure square wave permanent magnet generator and intelligent control ware can realize the step-up more than 10 times than, makes the more abundant wind energy of utilizing of system, has widened wind power system operation wind speed range.
3. Horizontal-axis wind turbines generally require a yaw to track the wind direction and are a frequent component of failure. The utility model discloses a wind-collecting cover utilizes the windage to realize following the wind automatically, cancels the drifter, reduces the fault rate.
4. The utility model discloses utilize the wind-collecting effect of wind-collecting cover, the impeller wind energy utilization efficiency of wind energy conversion system surpasses 0.7, cancels the drifter, possesses low wind speed self-starting performance in addition.
5. The efficiency of pure square wave permanent magnet generator at rated point can reach 0.975 at most, and controller efficiency is greater than 0.98, thereby makes the utility model discloses power generation system's generating efficiency is greater than 0.63.
Drawings
FIG. 1 is a schematic structural view of a wind turbine generator according to the present invention;
FIG. 2 is a schematic view of a blade component of the wind turbine of the present invention;
fig. 3 is a schematic view of the wind-collecting cover component of the wind turbine generator of the present invention.
In the figure: 1-wind-collecting cover, 2-flange plate, 3-blade, 4-transmission shaft, 5-generator, 6-hub, 7-controller, 8-S823 airfoil profile, and 9-S822 airfoil profile.
Detailed Description
The present invention will be described in detail with reference to the embodiments shown in the drawings.
The utility model discloses wind turbine paddle and ring flange are connected and are constituteed the impeller, and the impeller is placed in the air-collecting cover, the axis of rotation of impeller and the coincidence of the axis of air-collecting cover to impeller rotation axis center and the coincidence of the centre of a circle of the minimum circular cross section of air-collecting cover. In order to improve the overall efficiency of the power generation system, the generator adopts a high-efficiency pure square wave permanent magnet generator and a controller. The impeller is axially and fixedly connected with the generator through a transmission shaft, the generator is connected into a controller, and the controller is externally connected with an energy storage battery or an electric drive load.
The number of the system blades is 1-99.
The mounting angle of the system blade is 0-90 degrees.
The system paddle takes a rotation center as a starting point, and a blade root is located at the position of 10% -15% of the rotation radius of the impeller in the radial direction and is connected with the flange plate to form the impeller.
The system blade takes the rotation center as a starting point, and selects S823 airfoil profile in the range from the radial blade root to 15% of the impeller rotation radius, and selects S822 airfoil profile in the range from 15% to 100% of the impeller rotation radius.
The system wind collecting cover is according to the rotating radius of the impellerR 0 Determining the radii of the inlet circular cross-section, the minimum circular cross-section and the outlet circular cross-section of the air collecting hoodR 1 R 2 AndR 3 and axial lengthLHeight of rigid vertical edgeH 1 And a flexible stile heightH 2 Wherein, in the step (A),R 1 =1.1R 0 ~1.2R 0 R 2 =1.01R 0 ~1.02R 0 R 2 =1.15R 0 ~1.18R 0 L=0.5R 0 ~0.7R 0 H 1 =0.12R 0 ~0.36R 0 H 2 =0~0.3R 0 . According to radiusR 1 R 2 AndR 3 and axial lengthLHeight of rigid vertical edgeH 1 And a flexible stile heightH 2 Determining three coordinate points A (-0.474) of the molded line of the wind collecting coverL, R 1 )、B(0, R 2 ) And C (0.526)L, R 3 ) The vertical edge of the wind-collecting cover is coplanar with the outlet section of the wind-collecting cover, and the rigid vertical edge is connected with the flexible vertical edge in a collinear way. Three-point coordinates of the vertical edge of the wind collecting cover are respectively C (0.526)L,R 3 )、D (0.526L, R 3 +H 1 ) And E (0.526)L, R 3 +H 1 +H 2 ). And making an arc through A, B, C, connecting C, D and E to obtain a two-dimensional molded line of the wind collecting cover, and rotating the molded line for 360 degrees along the rotating shaft of the wind turbine to obtain the three-dimensional aerodynamic shape of the wind collecting cover.
The system wind collecting cover can realize automatic wind following by utilizing the principle of wind resistance, replace a yaw device part of a common fan and reduce fault points;
the system generator is a high-efficiency pure square wave permanent magnet generator with high torque density, wide high-efficiency area range and strong overload capacity.
A system controller rectification boosting ratio control strategy adopts a PWM _ OFF modulation mode, and is combined with a pure square wave permanent magnet generator to realize a boosting ratio more than ten times.
The wind power generation system with the double PWM converters of the wind turbine comprises the wind turbine, a generator, the back-to-back double PWM converters and a filter circuit, wherein a stator winding of the motor is connected with a power grid through a four-quadrant converter, energy bidirectional flow can be achieved, a machine side converter can control the rotating speed and power of the permanent magnet generator, and a grid side converter can achieve voltage stabilization control on a direct current bus and control grid side power factors. The structure of which is shown in the following figure. Compared with the uncontrollable rectification of a diode, the machine side converter adopts PWM rectification to greatly reduce the current harmonic content of the stator of the generator, thereby reducing the copper consumption and the iron consumption of the generator. The variable-frequency variable-amplitude voltage generated by the motor is converted into the available constant-frequency voltage under the control of the control system, and the purpose of capturing the maximum wind energy is achieved.
The generating efficiency of the wind turbine generating system is the product of the pneumatic efficiency of the blades of the wind turbine, the generator efficiency and the controller efficiency.
The utility model discloses wind power generation set includes that three paddle 3 is connected with ring flange 1 and constitutes the impeller, and impeller radius of rotation 2.345m, impeller place in air-collecting cover 1, the axis of rotation of impeller and air-collecting cover 1's axis coincidence to impeller rotation axis center and air-collecting cover 1 minimum circular cross section's centre of a circle coincidence. In order to improve the overall efficiency of the power generation system, the generator 5 adopts a high-efficiency pure square wave permanent magnet generator 5 and a controller 7. The impeller is axially and fixedly connected with the generator 5 through the transmission shaft 4, the generator 5 is connected into the rectification controller 7, and the rectification controller 7 is externally connected with an energy storage battery or an electric drive load. The installation angle of the wind turbine power generation system blade 3 is 0 degree.
The length of the wind turbine generating system blade 3 is 2m, the rotating center is taken as a starting point, and the blade root is positioned at the radial position of 0.345m and connected with the flange plate 2 to form an impeller. Wind turbine power generation systemThe uniform blade 3 takes the rotation center as a starting point, selects the S823 airfoil 8 within the range of 0.345m to 0.560m along the radial direction, and selects the S822 airfoil 9 within the range of 0.560m to 2.345m along the radial direction. The wind collecting cover of the wind turbine generating system is based on the rotation radius of the impellerR 0 =2.345m radius of inlet circular cross section, minimum circular cross section and outlet circular cross section of wind collecting coverR 1 =2.66m、R 2 =2.38m andR 3 =2.74m and axial lengthL=1.425m, rigid vertical heightH 1 =0.71m and flexible stile heightH 2 =0 m. According to radiusR 1 R 2 AndR 3 and axial lengthLHeight of rigid vertical edgeH 1 And a flexible stile heightH 2 And determining three coordinate points A (-0.675,2.66), B (0,2.38) and C (0.75,2.74) of the molded line of the wind-collecting cover, wherein the vertical edge of the wind-collecting cover is coplanar with the outlet section of the wind-collecting cover, and the rigid vertical edge is in collinear connection with the flexible vertical edge. Three-point coordinates of the vertical edge of the wind collecting cover are respectively C (0.75,2.74), D (0.75, 3.25) and E (0.75, 3.25). And making an arc through A, B, C, connecting C, D and E to obtain a two-dimensional molded line of the wind collecting cover, and rotating the molded line for 360 degrees along the rotating shaft of the wind turbine to obtain the three-dimensional aerodynamic shape of the wind collecting cover.
The generator 5 of the wind turbine power generation system is a pure square wave permanent magnet generator 5 with high torque density, strong overload capacity and high efficiency. The rotor magnetic pole adopts tile-shaped magnetic steel surface-mounted form, larger pole arc coefficient, and through magnetic circuit design, the air gap flux density of trapezoidal wave can be obtained, and the stator winding adopts concentrated integral pitch winding, so that the induced back electromotive force is trapezoidal wave.
A controller 7 of the wind turbine power generation system adopts a PWM _ OFF modulation mode for rectification step-up ratio control strategy, and the step-up ratio of more than 10 times is realized by combining with a pure square wave permanent magnet generator. The boost ratio of the common permanent magnet wind power generation system is about 2 times, so that the system can more fully utilize wind energy, and the operating wind speed range of the wind power system is widened.
The generating efficiency of the wind turbine generating system is the product of the aerodynamic efficiency of the wind turbine blades 3, the efficiency of the generator 5 and the efficiency of the controller 7.
The utility model discloses a pure square wave permanent magnetism collection wind formula wind power generation system power generation power 10kW when designing wind speed 11.3m/s, design rotational speed 226rpm, system efficiency surpasss 0.6.
The embodiments are not intended to limit the scope of the present invention, and all equivalent implementations or modifications that do not depart from the scope of the present invention are intended to be included within the scope of the present invention.

Claims (7)

1. A pure square wave permanent magnet wind-collecting type wind power generation system is characterized by comprising a pure square wave permanent magnet generator and a back-to-back double PWM converter; the motor stator winding is in bidirectional flow connection with power grid energy through a four-quadrant converter, a machine side converter is connected with a permanent magnet generator, a grid side converter is connected with a direct current bus, and the modulation mode is a controller with the rectification step-up ratio more than 10 times; the blades of the wind turbine of the generator are connected with the flange plate to form an impeller, and the impeller is placed in the wind collecting cover; the impeller is fixedly connected with the generator axially through a transmission shaft, the generator is connected into a rectification controller, and the rectification controller is externally connected with an energy storage battery or an electric drive load; the generator wind collecting cover rotates according to the radius of the impellerR 0 Determining the radii of the inlet circular cross-section, the minimum circular cross-section and the outlet circular cross-section of the air collecting hoodR 1 R 2 AndR 3 and axial lengthLHeight of rigid vertical edgeH 1 And a flexible stile heightH 2 (ii) a Wherein the content of the first and second substances,R 1 =1.1R 0 ~1.2R 0 R 2 =1.01R 0 ~1.02R 0 R 2 =1.15R 0 ~1.18R 0 L=0.5R 0 ~0.7R 0 H 1 =0.12R 0 ~0.36R 0 H 2 =0~0.3R 0
2. a pure square wave permanent magnet wind collecting type wind power generation system according to claim 1, wherein the rotation axis of the impeller coincides with the axis of the wind collecting cover, and the rotation axis center of the impeller coincides with the center of the smallest circular cross section of the wind collecting cover.
3. The pure square wave permanent magnet wind collecting type wind power generation system according to claim 1, wherein the number of the blades of the wind turbine blade of the generator is 1-99; the blade installation angle is 0-90 degrees.
4. The pure square wave permanent magnet wind collecting type wind power generation system of claim 1, wherein the wind turbine blade of the generator takes a rotation center as a starting point, and the blade root is positioned at a radial position of 10% -15% of the rotation radius of the impeller and connected with the flange plate to form the impeller.
5. The pure square wave permanent magnet wind collecting type wind power generation system of claim 1, wherein the wind turbine blade of the generator uses a rotation center as a starting point, and selects S823 airfoil profile within a range from a blade root to 15% of the rotation radius of the impeller along the radial direction, and selects S822 airfoil profile within a range from 15% to 100% of the rotation radius of the impeller along the radial direction.
6. A pure square wave permanent magnet wind-collecting type wind power generation system according to claim 1, wherein the wind-collecting cover is designed according to radiusR 1 R 2 AndR 3 and axial lengthLHeight of rigid vertical edgeH 1 And a flexible stile heightH 2 Determining three coordinate points A (-0.474) of the molded line of the wind collecting coverL, R 1 )、B(0, R 2 ) And C (0.526)L, R 3 ) The vertical edge of the wind-collecting cover is coplanar with the outlet section of the wind-collecting cover, and the rigid vertical edge is connected with the flexible vertical edge in a collinear way.
7. According toThe pure square wave permanent magnet wind-collecting type wind power generation system of claim 6, wherein three-point coordinates of vertical edges of the wind-collecting cover are respectively C (0.526)L, R 3 )、D (0.526L, R 3 +H 1 ) And E (0.526)L, R 3 +H 1 +H 2 ) (ii) a And making an arc through A, B, C, connecting C, D and E to obtain a two-dimensional molded line of the wind collecting cover, and rotating the molded line for 360 degrees along the rotating shaft of the wind turbine to obtain the three-dimensional aerodynamic shape of the wind collecting cover.
CN202020201465.4U 2020-02-24 2020-02-24 Pure square wave permanent magnet wind-collecting type wind power generation system Active CN212003431U (en)

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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN111207039A (en) * 2020-02-24 2020-05-29 沈阳永磁电机制造有限公司 Pure square wave permanent magnet wind-collecting type wind power generation system

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN111207039A (en) * 2020-02-24 2020-05-29 沈阳永磁电机制造有限公司 Pure square wave permanent magnet wind-collecting type wind power generation system

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Effective date of registration: 20231128

Address after: No. 22-1, 13th Street, Shenyang Economic and Technological Development Zone, Shenyang City, Liaoning Province, 110000

Patentee after: Shenyang Norda Power Co.,Ltd.

Address before: Building 2, No. 115 Jianshe Road, Dadong District, Shenyang City, Liaoning Province, 110003

Patentee before: SHENYANG PERMANENT MAGNET MOTOR MANUFACTURING Co.,Ltd.