Honeycomb type generator set wind wheel
By using honeycomb wind wheels and flow guide units in wind turbines, the multi-directional air flow is converted into rotating kinetic energy, which solves the problem of low energy conversion efficiency of traditional wind turbines in complex terrain, and achieves efficient and low-noise wind energy utilization.
Patent Information
- Application Number
- CN202510301455.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-14
- Publication Date
- 2025-05-13
AI Technical Summary
In complex terrain such as low altitudes and residential areas, traditional blade wind turbines have low energy conversion efficiency due to variable wind direction and unstable wind speed.
The wind wheel of a honeycomb generator set is adopted to convert the multi-directional injected air flow into rotating kinetic energy through the honeycomb groove and flow guide unit on the wind wheel body to improve the energy conversion efficiency.
It improves energy conversion efficiency, reduces aerodynamic noise, suppresses leaf tip eddy currents, reduces the impact on the surrounding environment and bird ecology, and ensures stable power output through energy storage control units.
Smart Images

Figure CN119982345A_ABST
Abstract
Description
Technical Field
[0001] The invention belongs to the field of generators, in particular to a honeycomb type generator set wind wheel. Background Art
[0002] As the world actively seeks sustainable energy solutions, wind power generation, as a clean and renewable energy form, is gradually becoming an important part of the energy field. With its mature technology and wide application, blade-type wind turbines occupy a pivotal position in the field of wind power generation, providing stable power support for many regions and being one of the key forces in promoting energy transformation; its blades are the core components, and through the unique airfoil design and the use of aerodynamic principles, aerodynamic force is generated when the wind blows, driving the blades to rotate, thereby converting wind energy into mechanical energy and driving the generator to generate electricity.
[0003] Traditional blade-type wind turbines once occupied an important position in the field of power generation. However, traditional blades rely on regular wind direction and stable wind speed. In complex terrains such as low altitudes and residential areas, the energy conversion efficiency is greatly reduced due to changeable wind direction and unstable wind speed.
[0004] To this end, those skilled in the art have proposed a cellular generator set wind wheel to solve the problems raised by the background technology. Summary of the invention
[0005] In order to solve the above technical problems, the present invention provides a honeycomb type wind wheel of a generator set to solve the problems of the conventional blades in the prior art that rely on regular wind direction and stable wind speed.
[0006] A cellular generator set wind wheel, comprising:
[0007] A wind rotor body, wherein both upper and lower surfaces of the wind rotor body are penetrated by honeycomb grooves, and the honeycomb grooves convert multi-directional incident airflows into rotational kinetic energy;
[0008] A flow guiding unit guides the airflow to approach the connecting shaft.
[0009] Preferably, the wind wheel body is a first honeycomb wind wheel, which includes a first substrate, a guide unit, a first side plate and a first connecting shaft; an guide unit is arranged on the upper surface of the first substrate, and the guide unit includes an annular raised outer edge portion and a concave inner edge portion; an arc-shaped groove is arranged on the bottom surface of the first substrate, and a plurality of first side plates are arranged on the peripheral side of the first substrate, and a plurality of first honeycomb grooves are provided on the top and bottom surfaces of the first honeycomb wind wheel.
[0010] Preferably, the first connecting shaft is rigidly connected to the output end of the power-assisted transmission.
[0011] Preferably, the wind wheel body is a second honeycomb wind wheel, which includes a second substrate, a guide unit, a second side plate and a second connecting shaft. The guide unit is arranged on the upper surface of the second substrate, and the guide unit includes guide plates fixed in an array on the second substrate. The guide plates are "S" shaped plate structures, and a plurality of second side plates are arranged around the second substrate, and a plurality of second honeycomb grooves are opened on the bottom surface of the second substrate.
[0012] Preferably, the second connecting shaft is rigidly connected to the output end of the power-assisted transmission.
[0013] Preferably, the wind wheel body is a third honeycomb wind wheel, which includes a third substrate, a guide unit, a connecting sleeve and a third connecting shaft. The guide unit is arranged on the upper surface of the third substrate, and the guide unit includes a curved portion arranged at the outer edge of the upper surface of the third substrate and a bottom groove arranged at the inner circle of the third substrate. A plurality of third honeycomb grooves are provided on the upper surface and the bottom surface of the third substrate, the connecting sleeve is fixed at the bottom groove, and auxiliary blades are arranged in an array around the connecting sleeve.
[0014] Preferably, the third connecting shaft is rigidly connected to the output end of the power-assisted transmission.
[0015] Preferably, the first energy storage unit, the second energy storage unit, the inverter module, the AC power inverter module and the AC power control module are all installed in a control box, and a plurality of cooling fans are installed on the side walls of the control box.
[0016] Compared with the prior art, the present invention has the following beneficial effects:
[0017] The present invention effectively solves many problems of traditional blade-type wind turbines by providing a chassis, a generator set, an energy storage control unit and a wind rotor body. It utilizes honeycomb grooves and guide units to efficiently convert multi-directional incident airflows into rotational kinetic energy, thereby improving energy conversion efficiency. At the same time, aerodynamic noise is greatly reduced, blade tip vortices are suppressed, resonance risks are avoided, and the impact on the surrounding environment and bird ecology is reduced. The energy storage control unit ensures stable power output. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 It is a schematic diagram of the overall structure of the present invention;
[0019] Figure 2 It is a schematic diagram of the left three-dimensional structure of the present invention;
[0020] Figure 3 It is a bottom-view stereoscopic structural schematic diagram of the present invention;
[0021] Figure 4 is a schematic diagram of the cross-sectional structure of a first honeycomb wind wheel;
[0022] Figure 5 is a schematic diagram of the three-dimensional structure of the second honeycomb wind wheel;
[0023] Figure 6 is a bottom-view stereoscopic structural schematic diagram of the second honeycomb wind wheel;
[0024] Figure 7 is a schematic diagram of the cross-sectional structure of the second honeycomb wind wheel;
[0025] Figure 8 is a schematic diagram of the three-dimensional structure of the third honeycomb wind wheel;
[0026] Fig. 9 is a bottom-view stereoscopic structural schematic diagram of a third honeycomb wind wheel;
[0027] Fig.10 It is a schematic diagram of the cross-sectional structure of the third honeycomb wind wheel.
[0028] In the figure:
[0029] 1. chassis; 2. control box; 3. first energy storage unit; 4. second energy storage unit; 5. inverter module; 6. inverter mains module; 7. mains control module; 8. cooling fan; 9. fixed bracket; 10. generator; 11. power transmission box; 12. first honeycomb wind wheel; 1201. first substrate; 1202. annular raised outer edge; 1203. concave inner edge; 1204. first honeycomb groove; 1205. first side plate; 1206. first A connecting shaft; 1207, an arc-shaped groove; 13, a second honeycomb wind wheel; 1301, a second base plate; 1302, a second side plate; 1303, a guide plate; 1304, a second honeycomb groove; 1305, a second connecting shaft; 14, a third honeycomb wind wheel; 1401, a third base plate; 1402, a curved portion; 1403, a bottom groove; 1404, a third honeycomb groove; 1405, a connecting sleeve; 1406, an auxiliary blade; 1407, a third connecting shaft. DETAILED DESCRIPTION
[0030] The following is a further detailed description of the embodiments of the present invention in conjunction with the accompanying drawings and examples. The following examples are used to illustrate the present invention but are not intended to limit the scope of the present invention.
[0031] Embodiment 1: As shown in the attached Figure 1 To Attachment Figure 4 As shown: The present invention provides a cellular generator set wind wheel, wherein the generator set includes a chassis 1, an energy storage control unit, a generator 10, a power-assisted gearbox 11, an energy storage control unit and a wind wheel body;
[0032] A fixing bracket 9 is fixed on the upper surface of the chassis 1, and the wind wheel body is power-coupled with a power-assisted gearbox 11 through a connecting shaft;
[0033] The energy storage control unit comprises a control box 2, a first energy storage unit 3, a second energy storage unit 4, an inverter module 5, an inverter mains module 6 and a mains control module 7, and the flow guide unit guides the airflow close to the connecting shaft to switch the energy storage power supply mode and the wind power generation mode according to the power grid state;
[0034] Honeycomb grooves are passed through the upper and lower surfaces of the wind wheel body. The honeycomb grooves convert multi-directional incident airflow into rotational kinetic energy. The guide unit guides the airflow close to the connecting shaft to generate greater torque and enhance the rotational power of the wind wheel. The annular raised outer edge 1202 can gather the airflows from different directions around, while the concave inner edge 1203 further concentrates these gathered airflows to the connecting shaft. When the airflow is guided and concentrated, it can act on the honeycomb wind wheel more efficiently, thereby improving the efficiency of the wind wheel in obtaining wind energy. The airflow incident from multiple directions originally has a chaotic direction. After being guided by the annular raised outer edge 1202 and the concave inner edge 1203, the direction of the airflow changes and is converted into a direction that is more conducive to driving the wind wheel to rotate, so that the energy of the airflow can be better converted into the rotational kinetic energy of the wind wheel, thereby improving the power generation efficiency of the generator set.
[0035] The wind wheel body is a first honeycomb wind wheel 12, and the first honeycomb wind wheel 12 includes a first substrate 1201, a guide unit, a first side plate 1205 and a first connecting shaft 1206; the guide unit is arranged on the upper surface of the first substrate 1201, and the guide unit includes an annular raised outer edge portion 1202 and a concave inner edge portion 1203; an arc-shaped groove 1207 is arranged on the bottom surface of the first substrate 1201, and a plurality of first side plates 1205 are arranged on the periphery of the first substrate 1201, and a plurality of first honeycomb grooves 1204 are opened on the top and bottom surfaces of the first honeycomb wind wheel 12; the annular raised outer edge portion 1202 and the concave inner edge portion 1203 can guide incident airflows from multiple directions;
[0036] The first connecting shaft 1206 is rigidly connected to the output end of the power-assisted gearbox 11 through a keyway structure; the first connecting shaft 1206 is rigidly connected to the output end of the power-assisted gearbox 11 through a keyway structure, thereby ensuring reliable transmission of the rotational kinetic energy of the wind wheel.
[0037] The first energy storage unit 3, the second energy storage unit 4, the inverter module 5, the inverter mains module 6 and the mains control module 7 are all installed in the control box 2, and a number of cooling fans 8 are installed on the side wall of the control box 2; the first energy storage unit 3, the second energy storage unit 4, the inverter module 5, the inverter mains module 6 and the mains control module 7 are integrated in the control box 2. The inverter module 5 can intelligently switch between energy storage power supply and wind power generation mode according to the state of the power grid. When the wind energy is sufficient and stable, wind power generation is preferentially used and supplied to the power grid; when the wind energy is insufficient or unstable, it automatically switches to the energy storage unit for power supply to ensure continuous and stable output of electricity. The cooling fan 8 installed on the side wall of the control box 2 can effectively reduce the heat generated by each module when it is working, ensuring stable operation of the equipment.
[0038] As can be seen from the above, when the airflow contacts the outer edge of the annular protrusion, it will be initially guided, and the concave inner edge further changes the direction of the airflow, making it flow more concentratedly to the first honeycomb groove 1204. The arc groove 1207 on the bottom surface of the first substrate 1201 and the first side plate 1205 on the peripheral side work together to enhance the structural strength of the wind wheel and the guiding effect on the airflow. The first honeycomb grooves 1204 at the top and bottom form vortex channels to enhance airflow disturbance. The arc groove 1207 and the first side plate 1205 work together to reduce wind resistance and concentrate airflow energy, and transmit the rotational kinetic energy to the power-assisted gearbox 11 through the first connecting shaft 1206.
[0039] The wind wheel forms a stepped guide surface through the annular raised outer edge 1202 and the concave inner edge 1203, which adsorbs the side incident airflow to the surface of the first honeycomb groove 1204, forming a low pressure area to accelerate the movement of the fluid. The hexagonal structure of the honeycomb groove has the boundary layer separation suppression characteristic in fluid mechanics, which can reduce the airflow separation loss; the arc groove 1207 and the first side plate 1205 form a vortex generator to enhance the turbulent kinetic energy transfer efficiency. The first connecting shaft 1206 is rigidly transmitted through the keyway, and the torque is input into the generator 10 after being accelerated by the power-assisted gearbox 11, realizing the mechanical energy-electrical energy conversion.
[0040] This design shows significant advantages in low-altitude multi-directional wind environments (such as urban buildings). Its annular guide structure can capture 360° incident airflow, and the honeycomb grooves convert weak wind energy as low as 1.5m / s into effective kinetic energy through a turbulence enhancement mechanism. Compared with traditional three-blade fans, its aerodynamic noise is reduced by more than 12dB(A), and the side panels suppress the generation of blade tip vortices, avoiding the risk of resonance, making it suitable for sensitive scenarios such as residential areas.
[0041] When the multi-directional airflow contacts the first honeycomb wind wheel, the stepped guide surface formed by the annular raised outer edge 1202 and the concave inner edge 1203 adsorbs the lateral airflow to the surface of the wind wheel through the Coanda effect, and at the same time uses the hexagonal structure of the first honeycomb groove 1204 to suppress boundary layer separation and guide the airflow to form a directional vortex in the groove. The arc groove 1207 and the first side plate form a composite flow channel. On the one hand, it reduces the static pressure loss by accelerating the airflow, and on the other hand, it enhances the turbulent kinetic energy exchange efficiency based on the Taylor-Kutta flow state, so that weak airflows as low as 1.5m / s can also drive the wind wheel to rotate. The rotational kinetic energy is transmitted to the power-assisted gearbox 11 through the first connecting shaft 1206 rigidly connected by the keyway to increase the speed, and is finally converted into electrical energy by the generator 10.
[0042] When the system is running, the inverter module 5 monitors the grid status and wind energy intensity in real time, and intelligently switches between wind power generation and energy storage power supply modes: under stable wind conditions, the kinetic energy captured by the honeycomb wind wheel is preferentially converted into clean electricity, and the excess energy is stored in the dual energy storage units; when the wind speed is insufficient or fluctuates violently, the energy storage power supply is automatically switched to ensure continuous output; the unique 360° wind capture capability and turbulence enhancement characteristics of the honeycomb structure, combined with the blade tip vortex suppression design of the side panels, enable the system to maintain high efficiency and low noise operation in complex wind fields, reducing the noise by more than 12dB(A) compared to traditional blade fans, and is particularly suitable for low-altitude multi-directional wind environments in cities; the active heat dissipation cycle formed by the cooling fan 8 and the built-in flow channel of the honeycomb wind wheel further ensures that key components work stably under optimized working conditions.
[0043] Effectively utilize the power of natural irregular wind direction and wind speed to realize dynamic energy. Natural wind direction cannot determine a unified direction, especially in low-altitude and low-noise environments such as residential areas. At the same time, it solves the problem that solar energy is troubled by seasonal rainy weather. The honeycomb wind wheel is not restricted by meteorological conditions. As long as there is wind, there will be rotational kinetic energy output to realize the power generation function.
[0044] Embodiment 2: As shown in the attached Figure 5 To Attachment Figure 7 As shown: This embodiment is basically the same as the previous embodiment, except that the wind wheel body is a second honeycomb wind wheel 13, the second honeycomb wind wheel 13 includes a second substrate 1301, a guide unit, a second side plate 1302 and a second connecting shaft 1305, the guide unit is arranged on the upper surface of the second substrate 1301, the guide unit includes guide plates 1303 fixed in an array at the second substrate 1301, the guide plates 1303 are "S" shaped plate structures, a plurality of second side plates 1302 are arranged on the periphery of the second substrate 1301, and a plurality of second honeycomb grooves 1304 are opened on the bottom surface of the second substrate 1301.
[0045] The second connecting shaft 1305 is rigidly connected to the output end of the power-assisted transmission 11 through a keyway structure.
[0046] As can be seen from the above, the "S"-shaped guide plate 1303 forms a pressure gradient difference in the chord direction, inducing the airflow to generate spiral acceleration motion along the plate surface. The S-shaped guide plate optimizes the separation point of the airflow boundary layer through the streamlined curvature design, which can extend the airflow residence time, reduce turbulent losses, and improve momentum exchange efficiency. When high-speed airflow passes through, it can guide the airflow to form secondary vortices to improve energy capture efficiency.
[0047] The second honeycomb groove 1304 at the bottom adopts a hexagonal honeycomb structure, which uses its high specific surface area characteristics to enhance airflow disturbance and reduce wind resistance; this design is suitable for coastal or high wind speed areas, and its S-shaped guide plate 1303 can increase the wind speed, and the honeycomb groove structure can reduce wind pressure fluctuations and avoid the risk of traditional blades breaking due to overload at high wind speeds; and through the connecting shaft design, it can support rapid replacement of honeycomb wind wheels, allowing the device to select corresponding wind wheels according to different regions.
[0048] The wind turbine adopts an "S"-shaped guide plate 1303 structure, and its streamlined design can optimize the airflow path and improve the energy capture efficiency at high wind speeds. The honeycomb grooves at the bottom reduce wind resistance and enhance stability, which is suitable for areas with high wind speeds and relatively stable wind directions, such as coastal areas and islands. Compared with traditional horizontal axis wind turbines, its compact structure can reduce the risk of blade overload and noise pollution, and can achieve more reliable and continuous power generation in areas prone to typhoons.
[0049] Embodiment 3: As shown in the attached Figure 8 To Attachment Fig.10 As shown: on the basis of the first embodiment, the wind wheel body is a third honeycomb wind wheel 14, the third honeycomb wind wheel 14 comprises a third substrate 1401, a guide unit, a connecting sleeve 1405 and a third connecting shaft 1407, the guide unit is arranged on the upper surface of the third substrate 1401, the guide unit comprises a curved portion 1402 arranged at the outer edge of the upper surface of the third substrate 1401, and a bottom groove 1403 arranged at the inner circle of the third substrate 1401; a plurality of third honeycomb grooves 1404 are provided on the upper surface and the bottom surface of the third substrate 1401, and the connecting sleeve 1405 is fixed to the bottom The third honeycomb groove 1404 increases the contact area with the airflow and improves the wind energy capture capability. The auxiliary blades 1406 can further disturb the airflow and enhance the rotational power of the wind wheel when the wind wheel rotates. The third connecting shaft 1407 is rigidly connected to the output end of the power-assisted gearbox 11 through a keyway structure to achieve efficient power transmission.
[0050] The third connecting shaft 1407 is rigidly connected to the output end of the power-assisted transmission 11 through a keyway structure.
[0051] As can be seen from the above, the curved portion 1402 can effectively absorb the lateral airflow, and combined with the centrifugal acceleration effect of the auxiliary blades 1406, the vertical turbulence can be converted into rotational kinetic energy, which can improve the power generation efficiency in complex terrain; the third honeycomb groove 1404 reduces the airflow separation loss by suppressing the boundary layer separation. Its principle is similar to the control of fluid leakage by the honeycomb sealing technology of the steam turbine, and can adapt to the environment with relatively fluctuating wind speed.
[0052] The wind wheel is suitable for designing in areas with frequent turbulence, such as mountains and canyons. Its auxiliary blades 1406 can effectively disperse the impact of airflow and reduce the risk of structural fatigue. Under the condition where the wind speed change rate exceeds 30%, it can still maintain a high energy conversion efficiency. In addition, the connecting sleeve 1405 and the bottom groove 1403 can effectively alleviate the problem of eccentric wear of the shaft system caused by vibration.
[0053] The combined design of the curved portion 1402 and the auxiliary blades 1406 can capture vertical airflow and turbulence, and the top / bottom honeycomb grooves can achieve multi-dimensional wind energy absorption, which is particularly suitable for complex terrains such as mountains and canyons27; compared with Example 2, the wind wheel has a power generation efficiency increased by about 15% to 20% in a low-altitude turbulent environment, and the auxiliary blades 1406 can suppress the generation of vortices, reduce mechanical vibrations caused by airflow turbulence, and extend the life of the equipment.
[0054] The embodiments of the present invention are provided for the purpose of illustration and description. Although the embodiments of the present invention have been shown and described above, it can be understood that the above embodiments are exemplary and cannot be understood as limitations of the present invention. Ordinary technicians in this field can change, modify, replace and deform the above embodiments within the scope of the present invention.
[0055] In the description of the present invention, the terms "first" and "second" are used for descriptive purposes only and should not be understood as indicating or implying relative importance or implicitly indicating the number of the indicated technical features. Therefore, the features defined as "first" and "second" may explicitly or implicitly include one or more of the features. "Multiple" means two or more, unless otherwise clearly and specifically defined.
[0056] In the present invention, unless otherwise clearly specified and limited, the terms "installed", "connected", "connected", "fixed" and the like should be understood in a broad sense, for example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium, it can be the internal connection of two elements or the interaction relationship between two elements. For ordinary technicians in this field, the specific meanings of the above terms in the present invention can be understood according to specific circumstances.
[0057] In the present invention, unless otherwise clearly specified and limited, a first feature being "above" or "below" a second feature may mean that the first and second features are in direct contact, or the first and second features are in indirect contact through an intermediate medium. Moreover, a first feature being "above", "above" or "above" a second feature may mean that the first feature is directly above or obliquely above the second feature, or simply means that the first feature is higher in level than the second feature. A first feature being "below", "below" or "below" a second feature may mean that the first feature is directly below or obliquely below the second feature, or simply means that the first feature is lower in level than the second feature.
[0058] In the description of this specification, the description with reference to the terms "one embodiment", "some embodiments", "examples", "specific examples" or "some examples" etc. means that the specific features, structures, materials or characteristics described in conjunction with the embodiment or example are included in at least one embodiment or example of the present invention. In this specification, the schematic representations of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described may be combined in any one or more embodiments or examples in a suitable manner. In addition, those skilled in the art may combine and combine different embodiments or examples described in this specification and the features of different embodiments or examples, unless they are contradictory.
[0059] In the drawings of the embodiments disclosed in the present invention, only the structures involved in the embodiments disclosed in the present invention are involved, and other structures can refer to the general design. In the absence of conflict, the same embodiment and different embodiments of the present invention can be combined with each other.
[0060] Although the present invention has been described in detail with reference to the aforementioned embodiments, it is still possible for those skilled in the art to modify the technical solutions described in the aforementioned embodiments, or to make equivalent substitutions for some of the technical features therein. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the protection scope of the present invention.
Claims
1. A cellular generator set wind wheel, characterized in that: include: A wind rotor body, wherein both upper and lower surfaces of the wind rotor body are penetrated by honeycomb grooves, and the honeycomb grooves convert multi-directional incident airflows into rotational kinetic energy; A flow guiding unit guides the airflow to approach the connecting shaft.
2. A cellular generator set wind wheel as claimed in claim 1, characterized in that: The wind wheel body is a first honeycomb wind wheel (12), and the first honeycomb wind wheel (12) comprises a first substrate (1201), a guide unit, a first side plate (1205) and a first connecting shaft (1206); the guide unit is arranged on the upper surface of the first substrate (1201), and the guide unit comprises an annular raised outer edge portion (1202) and a concave inner edge portion (1203); the bottom surface of the first substrate (1201) is provided with an arc-shaped groove (1207), and a plurality of first side plates (1205) are arranged on the circumference of the first substrate (1201); and the top surface and the bottom surface of the first honeycomb wind wheel (12) are both provided with a plurality of first honeycomb grooves (1204).
3. A cellular generator set wind wheel as claimed in claim 2, characterized in that: The first connecting shaft (1206) is rigidly connected to the output end of the power-assisted transmission (11).
4. A cellular generator set wind wheel as claimed in claim 1, characterized in that: The wind wheel body is a second honeycomb wind wheel (13), the second honeycomb wind wheel (13) comprises a second substrate (1301), a guide unit, a second side plate (1302) and a second connecting shaft (1305), the guide unit is arranged on the upper surface of the second substrate (1301), the guide unit comprises guide plates (1303) fixed in an array on the second substrate (1301), the guide plates (1303) are "S" shaped plate structures, a plurality of second side plates (1302) are arranged on the circumference of the second substrate (1301), and a plurality of second honeycomb grooves (1304) are opened on the bottom surface of the second substrate (1301).
5. A honeycomb type wind turbine generator as claimed in claim 4, characterized in that: The second connecting shaft (1305) is rigidly connected to the output end of the power-assisted transmission (11).
6. A honeycomb type wind turbine generator as claimed in claim 1, characterized in that: The wind wheel body is a third honeycomb wind wheel (14), and the third honeycomb wind wheel (14) comprises a third substrate (1401), a guide unit, a connecting sleeve (1405) and a third connecting shaft (1407). The guide unit is arranged on the upper surface of the third substrate (1401), and the guide unit comprises a curved portion (1402) arranged at the outer edge of the upper surface of the third substrate (1401) and a bottom groove (1403) arranged at the inner circle of the third substrate (1401); a plurality of third honeycomb grooves (1404) are provided on the upper surface and the bottom surface of the third substrate (1401); the connecting sleeve (1405) is fixed at the bottom groove (1403), and auxiliary blades (1406) are arranged in an array around the connecting sleeve (1405).
7. A honeycomb type wind turbine generator as claimed in claim 6, characterized in that: The third connecting shaft (1407) is rigidly connected to the output end of the power-assisted transmission (11).
8. A honeycomb type wind turbine generator set as claimed in claim 1, characterized in that: The first energy storage unit (3), the second energy storage unit (4), the inverter module (5), the AC power inverter module (6) and the AC power control module (7) are all installed in a control box (2), and a plurality of cooling fans (8) are installed on the side wall of the control box (2).