A wind energy recovery system for closed chicken houses
By designing a wind energy recovery system in a closed chicken house, and using the air collector hood, volute and drive wind wheel to accelerate and direction control the airflow, the problem of high energy consumption in a closed chicken house is solved, the secondary recycling of wind energy and stable power generation is achieved, and the operating cost is reduced.
Patent Information
- Application Number
- CN202411664295.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-20
- Publication Date
- 2025-09-02
- Estimated Expiration
- 2044-11-20
AI Technical Summary
The energy consumption of closed chicken houses is high, mainly because the wet curtain system and negative pressure exhaust fan must operate 24 hours a day, resulting in excessive energy consumption.
A wind energy recovery system is designed, including a wind collecting hood, volute and drive wind wheel. The airflow is accelerated and directionally controlled through the wind collecting wall, volute and adjustment module to realize the secondary recycling of wind energy and drive the generator set to generate electricity.
The secondary recycling and utilization of wind energy is realized, the operation energy consumption and cost of chicken houses is reduced, and the utilization rate of wind energy and the stability of power output is improved.
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Figure CN119435152B_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of animal husbandry technology, and in particular to a wind energy recovery system for a closed chicken house. Background Art
[0002] In the prior art, in order to ensure the stable operation of a closed chicken house, cold air is generally transported from the vents to the inside of the chicken house through a wet curtain system. The cold air exchanges heat with the chickens and the environment inside the chicken house during the process of passing through the chicken house. However, the chicken house is generally long, and natural ventilation cannot meet the requirement of timely exhausting hot air. Therefore, a high-power negative pressure exhaust fan is generally installed in the exhaust vent of the chicken house. The hot air inside the chicken house is forcibly extracted through the suction force of the negative pressure exhaust fan, and the extracted air is directly discharged.
[0003] Due to the characteristics of the closed chicken house, in order to ensure the stability of the environment inside the chicken house, the wet curtain system and negative pressure exhaust fan must operate 24 hours a day, which results in higher energy consumption in the operation of the chicken house. Summary of the Invention
[0004] The main purpose of this application is to provide a wind energy recovery system for a closed chicken house, aiming to solve the defect of high energy consumption in the operation of the chicken house in the prior art.
[0005] This application achieves the above objectives through the following technical solutions:
[0006] A wind energy recovery system for a closed chicken house includes a power generation module;
[0007] An air collecting hood, the inlet end of which is connected to the air outlet of the negative pressure exhaust fan of the chicken house; the air collecting hood is also provided with an air collecting wall for reducing the flow area of the air outlet end thereof;
[0008] A volute, wherein the inlet end of the volute is connected to the air outlet end of the wind collecting cover; a cylindrical equipment cavity is provided on the volute, a driving wind wheel is rotatably provided in the equipment cavity, and the driving wind wheel is connected to the power generation module; an air inlet connected to the equipment cavity is provided on the volute, and an air outlet is provided at the bottom of the equipment cavity;
[0009] A regulating module is provided on the volute, and is used to control the direction and velocity of the airflow in the air inlet.
[0010] Optionally, the wind collecting hood includes an air inlet section and an air outlet section, and the air collecting wall is arranged between the air inlet section and the air outlet section along the direction of air flow; the air collecting wall has a conical structure, its large end is connected to the air inlet section, and its small end is connected to the air outlet section.
[0011] Optionally, the driving wind wheel includes a main shaft and a plurality of blades, one end of the main shaft is connected to the power generation module; and each blade is connected to the main shaft around the axis of the main shaft.
[0012] Optionally, a hub is also provided on the main shaft, and a plurality of splicing tenons are provided on the outer peripheral surface of the hub around the axis of the hub. A splicing tenon plate is also integrally connected to one side of each blade along the width direction of each blade, and the splicing tenon plate is spliced and connected to the splicing tenon groove; a plurality of fastening bolts are also provided between each splicing tenon plate and the hub.
[0013] Optionally, the adjustment module includes a plurality of adjustment guide vanes, which are evenly arranged in the air inlet around the rotation axis of the main shaft, and each adjustment guide vane is respectively connected to the volute for rotation; a drive ring and a drive module are also provided on the volute, and the drive module controls the drive to rotate around the rotation axis of the main shaft; a plurality of pull rods are hinged on the drive ring, and each pull rod is respectively hinged to the adjustment guide vane.
[0014] Optionally, a circular slide rail coaxial with the main shaft is provided on the volute, and a plurality of sliders are provided on the circular slide rail, and each of the sliders is connected to the drive ring respectively.
[0015] Optionally, the adjusting guide vane includes a guide vane body, the cross-section of the guide vane body is arc-shaped, and connecting shafts are provided at the top and bottom of the guide vane body along the height direction of the guide vane body. A crank arm is also provided on the rotating shaft located at the top of the guide vane body, and the crank arm is hingedly connected to the pull rod.
[0016] Optionally, along the height direction of the guide vane body, both of the connecting axes coincide with the symmetry axis of the guide vane body.
[0017] Optionally, the driving module includes a plurality of driving cylinders, each of which is evenly arranged around the rotation axis of the main shaft, one end of each of the driving cylinders is rotationally connected to the volute, and an output end thereof is rotationally connected to the driving ring.
[0018] Optionally, the power generation module includes a generator, a battery and an inverter, and the output end of the generator is electrically connected to the battery through the inverter.
[0019] Compared with the prior art, this application has the following beneficial effects:
[0020] The present application includes a power generation module and a wind collecting hood, the inlet end of the wind collecting hood is connected to the outlet of the negative pressure exhaust fan of the chicken house; the wind collecting hood is also provided with a wind gathering wall for reducing the flow area of its outlet end, and the outlet end of the wind collecting hood is also connected to a volute, and a cylindrical equipment cavity is provided on the volute, and a driving wind wheel is rotatably provided in the equipment cavity, and the driving wind wheel is connected to the power of the power generation module; the volute is provided with an air inlet connected to the equipment cavity, and an air outlet is provided at the bottom of the equipment cavity; the volute is also provided with a regulating module for adjusting the airflow direction and airflow velocity in the air inlet.
[0021] During the operation of the chicken house, cold air is input into the chicken house through the wet curtain system. Due to the large length of the chicken house, a negative pressure exhaust fan must be equipped to discharge the hot air through the exhaust port; the high-speed airflow discharged by the negative pressure exhaust fan all enters the wind collecting hood. Since the outlet end of the wind collecting hood is reduced by the wind collecting wall, the airflow passing through the outlet end will be accelerated for the first time, and then the airflow enters the volute and finally enters the equipment cavity from the air inlet. The flow rate and direction of the airflow in the air inlet can be controlled by the adjustment module, that is, the flow area of each airflow channel in the air inlet is adjusted by the adjustment module to form a gradually shrinking airflow channel, which will accelerate the airflow for a second time and adjust the direction of the airflow at the same time. The airflow after passing through the air inlet collides with the driving wind wheel, thereby driving the driving wind wheel to rotate, and the driving wind wheel drives the power generation module to generate electricity. The airflow after passing through the driving wind wheel is directly discharged into the atmospheric environment from the exhaust port at the bottom.
[0022] This application realizes wind power generation through the cooperation of equipment such as a wind collecting hood, a volute and a driving wind wheel. Compared with the technical solution of direct emptying in the prior art, this application realizes the secondary recycling of wind energy. The recovered electricity can be used to drive various electrical equipment, thereby reducing the operating energy consumption of the chicken house and at the same time reducing the operating cost of the chicken house.
[0023] Secondly, the wind-gathering wall and volute are fully enclosed structures, which can effectively prevent air leakage during operation, maximize the utilization rate of high-speed airflow, and thus improve the recovery rate of wind energy;
[0024] At the same time, since the negative pressure exhaust fan needs to operate stably for a long time, the entire wind energy recovery system can receive airflow with a stable flow rate for a long time, thereby continuously outputting current in a stable state. Compared with the method of using natural wind power generation, its power output is more stable.
[0025] Finally, the present application achieves double acceleration of the airflow through the combined action of the wind-gathering wall, the volute, and the regulating module, thereby avoiding the rapid decrease of the airflow at the outlet end of the negative pressure exhaust fan, while ensuring that the airflow can drive the wind wheel to rotate at a higher airflow, thereby realizing the recovery and utilization of wind energy;
[0026] At the same time, the volute can also guide the airflow to enter the equipment cavity in an orderly manner around the axis of the driving wind wheel. At the same time, the airflow directions at different positions can push the driving wind energy to rotate counterclockwise or clockwise. On the one hand, it realizes the full utilization of wind force. On the other hand, multiple wind forces can push the driving wind wheel to rotate in the same direction, that is, avoid the mutual offset of thrust due to opposite airflow directions, which helps to increase the thrust of the driving wind wheel. BRIEF DESCRIPTION OF THE DRAWINGS
[0027] Figure 1 This is a schematic structural diagram of a wind energy recovery system for a closed chicken house provided in Example 1 of the present application;
[0028] Figure 2 An exploded view of a wind energy recovery system for a closed chicken house provided in Example 1 of the present application;
[0029] Figure 3 A bottom view of a wind energy recovery system for a closed chicken house provided in Example 1 of the present application;
[0030] Figure 4 A cross-sectional view of a wind energy recovery system for a closed chicken house provided in Example 1 of the present application;
[0031] Figure 5 This is an exploded view of the driving wind wheel;
[0032] Figure 6 A structural diagram and airflow distribution diagram of another feasible technical solution for driving the wind wheel;
[0033] Figure 7 This is the airflow simulation diagram of the wind collecting hood;
[0034] Figure 8 for Figure 7 An airflow velocity diagram corresponding to the airflow pattern diagram;
[0035] Figure 9 It is the driving wind wheel speed diagram;
[0036] Figure 10 This is the power generation distribution diagram.
[0037] Figure markings: 1-power generation module, 2-wind collecting cover, 3-wind collecting wall, 4-volute, 5-equipment chamber, 6-driving wind wheel, 7-air inlet, 8-air outlet, 9-adjusting guide vane, 10-driving ring, 11-pull rod, 12-circular slide rail, 13-slider, 14-driving cylinder, 201-air inlet section, 202-air outlet section, 601-main shaft, 602-blade, 603-hub, 604-slotted tenon, 605-slotted tenon plate, 606-fastening bolt, 901-guide vane body, 902-connecting shaft.
[0038] The purpose, features and advantages of this application will be further explained in conjunction with embodiments and with reference to the accompanying drawings. DETAILED DESCRIPTION
[0039] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. All other embodiments obtained by ordinary technicians in this field based on the embodiments of the present invention without making any creative efforts shall fall within the scope of protection of the present invention.
[0040] It should be noted that all directional indications (such as up, down, left, right, front, back, etc.) in the embodiments of the present invention are only used to explain the relative position relationship, movement status, etc. between the various components under a certain specific posture (as shown in the accompanying drawings). If the specific posture changes, the directional indication will also change accordingly.
[0041] In the present invention, unless otherwise specified or limited, the terms "connection" and "fixation" should be understood in a broad sense. For example, "fixation" can mean fixed connection, detachable connection, or integration; mechanical connection or electrical connection; direct connection or indirect connection through an intermediate medium; internal communication between two elements or interaction between two elements, unless otherwise specified. Those skilled in the art will be able to understand the specific meanings of the above terms in the present invention based on specific circumstances.
[0042] In addition, if there are descriptions involving "first", "second", etc. in the embodiments of the present invention, the descriptions of "first", "second", etc. are only for descriptive purposes and cannot be understood as indicating or implying their 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 at least one of such features. In addition, the meaning of "and / or" appearing throughout the text includes three parallel schemes. Taking "robot coordinate system and / or m" as an example, it includes the robot coordinate system scheme, or the m scheme, or the scheme in which the robot coordinate system and m are satisfied at the same time. In addition, the technical solutions between the various embodiments can be combined with each other, but it must be based on the fact that ordinary technicians in this field can implement it. When the combination of technical solutions is mutually contradictory or cannot be implemented, it should be deemed that such a combination of technical solutions does not exist and is not within the scope of protection required by the present invention.
[0043] Example 1
[0044] Reference Figures 1 to 6This embodiment, as an optional embodiment of the present application, discloses a wind energy recovery system for a closed chicken house, comprising a power generation module 1, wherein the power generation module 1 comprises a chassis and a generator disposed in the chassis, the power generation module 1 further comprising a battery and an inverter, wherein the ionization output end of the generator is electrically connected to the battery via the inverter. It should be noted that the above-mentioned power generation equipment is preferably a mature wind power generation equipment in the prior art;
[0045] The wind energy recovery system further includes a wind collecting hood 2 and a wind collecting wall 3, wherein the wind collecting hood 2 includes an air inlet section 201 and an air outlet section 202, the air inlet section 201 and the air outlet section 202 are integrally formed into a rectangular parallelepiped structure, and the flow area of the air outlet section 202 is smaller than the flow area of the air inlet section 201;
[0046] Along the airflow direction, the air gathering wall 3 is arranged between the air inlet section 201 and the air outlet section 202; the air gathering wall 3 has a conical structure, and the large end of the air gathering wall 3 is connected to the air inlet section 201, and the flow area of the large end is the same as the flow area of the air inlet section 201, and the small end of the air gathering wall 3 is connected to the air outlet section 202, and the flow area of the small end is the same as the flow area of the air outlet section 202;
[0047] The arrangement of the wind collecting wall 3 can gradually reduce the flow area of the wind collecting hood 2, so that the airflow is discharged from the smaller air outlet section 202. According to the Bernoulli equation, the above structure can accelerate the airflow velocity through the air outlet section 202, thereby achieving the first acceleration of the airflow velocity through the wind collecting wall 3; Figure 7 , which discloses the airflow simulation diagram of the wind collecting hood. It can be seen from the diagram that the airflow velocity has been accelerated; at the same time Figure 8 Specific airflow velocity diagrams are disclosed;
[0048] At the same time, the above structure is simple, which is beneficial to reducing the cost of the equipment while ensuring stable operation of the equipment.
[0049] In order to ensure the quality of ventilation in the existing technology, all negative pressure exhaust fans are usually installed on the same wall, and the air intake section of the wind collecting hood 2 is installed on the same wall. At the same time, the wind collecting hood 2 needs to include all negative pressure exhaust fans, that is, projected along the direction of air flow, and the projections of all negative pressure exhaust fans need to be within the projection of the wind collecting hood 2, so as to ensure that the airflow discharged from the negative pressure exhaust fan all enters the wind collecting hood 2, which helps to improve the wind energy recovery rate.
[0050] Furthermore, the wind energy recovery system further includes a volute 4, wherein an equipment cavity 5 and an air flow channel are provided in the volute 4, wherein the equipment cavity 5 is a cylindrical structure, and the axis of the equipment cavity 5 overlaps with the axis of the volute 4; around the axis of the equipment cavity 5, the air flow channel wraps the equipment cavity 5;
[0051] An air inlet 7 is further provided on the outer peripheral surface of the equipment chamber 5, and the air inlet 7 connects the air flow channel with the equipment chamber 5; the inlet end of the air flow channel is connected with the air outlet section 202 of the air collecting cover 2, thereby guiding the air flow in the air collecting cover 2 into the air flow channel and finally entering the equipment chamber 5 through the air inlet 7;
[0052] At the same time, an exhaust port 8 is provided at the bottom of the equipment cavity 5, and the power generation module 1 is provided at the top of the equipment cavity 5; of course, the installation positions of the exhaust port 8 and the power generation module 1 can be swapped.
[0053] It should be noted that, since the air inlet is located on the outer peripheral surface of the equipment cavity 5 , the airflow will enter the equipment cavity 5 along the radial direction of the equipment cavity 5 .
[0054] A driving wind wheel 6 is also provided in the equipment cavity 5. The driving wind wheel 6 includes a main shaft 601 and a plurality of blades 602. A rolling bearing is provided at the top of the equipment cavity 5, and a thrust ball bearing is provided at the bottom. The bottom end of the main shaft 601 is plug-connected to the thrust ball bearing, and the top end is connected to the rolling bearing. The top end of the main shaft 601 passes through the volute 4 and extends into the chassis, and is connected to the generator power through a transmission component such as a bevel gear. At the same time, a reducer can be added between the main shaft 601 and the generator to control the generator speed. Around the axis of the main shaft 601, each of the blades 602 is connected to the main shaft 601 respectively.
[0055] Furthermore, the main shaft 601 is further provided with a hub 603, and a plurality of inserting tenons 604 are provided on the outer circumferential surface of the hub 603 around the axis of the hub 603. Along the circumferential direction of the main shaft 601, the bottom end of each inserting tenon 604 is closed and the top end is open. At the same time, along the radial outward direction of the main shaft 601, the inserting tenons 604 are also open.
[0056] It should be noted that the length direction of each blade 602 is parallel to the axial direction of the main shaft 601, and the width direction of each blade 602 is the radial direction of the main shaft 601;
[0057] Along the width direction of each of the blades 602, each blade 602 is integrally connected with a plug-in tenon 605 at one end facing the main shaft 601. During assembly, the length direction of each of the plug-in tenon 605 is inserted into the plug-in tenon groove 604 from the top of the plug-in tenon groove 604 along the axial direction of the main shaft 601. At the same time, along the length direction of the plug-in tenon plate 605, a number of fastening bolts 606 are also provided between the plug-in tenon plate 605 and the hub 603, thereby realizing a fixed connection between the main shaft 601 and each of the blades 602.
[0058] Compared with the traditional welding structure, in the radial direction along the main shaft 601, the plug-in tenon groove 604 and the plug-in tenon plate 605 are in contact with each other, so that the centrifugal force is applied to a larger area during the high-speed rotation of the blade 602, and the force per unit area is smaller;
[0059] Secondly, in the above structure, when a single blade 602 is damaged, not only is the blade 602 removed more quickly, but only the damaged blade 602 needs to be replaced, without having to replace the hub 603 and multiple intact blades 602 at the same time, which can effectively reduce the maintenance cost and difficulty of the equipment.
[0060] Furthermore, the surface where the splicing groove 604 and the splicing tenon plate 605 fit together can be set to an arc or an eight-shaped structure. The above-mentioned inclined thrust surface can disperse the force, part of the force is along the radial direction, and part of the force is directly against the blade 602. Since the splicing tenon plates 605 are provided on both sides of the blade 602, part of the force on both sides will offset each other, further reducing the influence of centrifugal force on the main shaft 601.
[0061] Furthermore, an adjustment module is provided on the volute 4, and the adjustment module includes a plurality of adjustment guide vanes 9, and the adjustment guide vanes 9 are evenly arranged in the air inlet 7 around the rotation axis of the main shaft 601;
[0062] The regulating guide vane 9 includes a guide vane body 901, the cross section of which is arc-shaped. Along the height direction of the guide vane body 901, a connecting shaft 902 is provided at the top and bottom of the guide vane body 901. The connecting shafts 902 at both ends are rotatably connected to the top and bottom of the volute 4 respectively through rolling bearings.
[0063] It should be noted that, in the fully closed state, the regulating guide vanes 9 are connected at their ends to form a circular closed structure, thereby completely closing the entire air inlet 7. During the adjustment process, any two adjacent regulating guide vanes 9 can be dislocated by rotating the regulating guide vanes 9, thereby forming an airflow channel.
[0064] Combine Figure 4It can be seen that the airflow channel has a large inlet end and a small outlet end, and along the airflow direction, the entire airflow channel has an overall arc-shaped structure; at the same time, the size of the inlet end and the outlet end can be adjusted by controlling the rotation angle of the guide vane 9;
[0065] Compared with the prior art, the present application firstly realizes arbitrary adjustment of the flow area of the air flow channel by adjusting the angle of the adjustable guide vane 9, thereby improving the adjustability of the entire device as much as possible. Especially under low wind speed conditions, the above adjustment can effectively increase the wind speed at the inlet end of the driving wind wheel 6, thereby ensuring the stable rotation of the driving wind wheel 6;
[0066] Secondly, the curved channel structure can effectively adjust the direction of the airflow, so that the airflow direction is more closely matched with the blades, ensuring the consistency of thrust, avoiding opposite or even offsetting thrust, and helping to improve the recovery rate of wind energy;
[0067] Finally, the airflow with a large inlet and a small outlet can better accelerate the airflow, thereby achieving secondary acceleration of the airflow, increasing the thrust of the airflow on the blades, and ensuring the stable operation of the blades under working conditions such as low wind speeds.
[0068] Furthermore, along the height direction of the guide vane body 901, the two connecting shafts 902 coincide with the symmetry axis of the guide vane body 901, that is, the two connecting shafts 902 are both provided in the middle of the guide vane body 901;
[0069] In the above structure, there are guide vane bodies 901 on both sides of the connecting shaft 902. During the rotation adjustment process, part of the guide vane body 901 is located in the equipment cavity 5, and part is located in the air flow channel of the volute 4, which can intercept and guide more airflow into the equipment cavity 5; at the same time, the above structural design has better balance, and the rotation adjustment of the guide vane 9 is more stable.
[0070] Further, refer to Figure 6 , the curvature of each regulating guide vane 9 can be different, that is, in the volute 4, along the airflow direction, the curvature of each regulating guide vane 9 increases linearly, and the number of regulating guide vanes 9 can also be appropriately increased or decreased;
[0071] After the above structure controls the rotation angle of the regulating guide vane 9, the length of each regulating guide vane 9 located in the airflow channel of the volute 4 will increase linearly along the airflow direction, thereby forming a stepped interception structure, thereby forming a step-by-step interception in the volute 4;
[0072] On the one hand, it can ensure that the distal airflow along the radial direction of the volute 4 is introduced into the equipment cavity 5 as much as possible to drive the driving wind wheel 6 to rotate, thereby improving the wind energy recovery rate; secondly, due to the obstruction of the front-end regulating blades, the rear-end may have insufficient airflow, and the above-mentioned graded interception can effectively supplement the rear-end airflow, thereby ensuring that the airflow rate received by the driving wind wheel 6 in different directions is basically the same, thereby ensuring that the thrust in each direction is basically the same, and improving the consistency of force;
[0073] Finally, along the direction of air flow, the above structure can also gradually reduce the flow area of the air flow channel in the volute 4, forming a structure with a large inlet end and a gradually reduced outlet end, thereby accelerating the air flow three times. At the same time, the air flow can be introduced to the far end, so that the air flow can be distributed more reasonably in the volute 4, which is conducive to improving the recovery rate of wind energy.
[0074] At the same time, the above technical solution only adjusts the curvature of the regulating blade and does not add any new structure to the mechanical structure. Its structure is simple, which increases the reliability of the equipment and has significant technical effects.
[0075] Furthermore, a drive ring 10, a circular slide 12, and a drive module are further provided on the volute 4. The circular slide 12 is coaxially arranged with the main shaft 601. A plurality of sliders 13 are slidably provided on the circular slide 12. Each of the sliders 13 is connected to the drive ring 10, thereby realizing the rotation connection between the drive ring 10 and the volute 4 and ensuring that the rotation axis of the drive ring 10 coincides with the axis of the main shaft 601.
[0076] The drive module includes a plurality of drive cylinders 14, each of which is evenly arranged around the rotation axis of the main shaft 601. One end of each drive cylinder 14 is rotatably connected to the volute 4 via a rotating shaft, and its output shaft is hingedly connected to the drive ring 10 via a pin.
[0077] Along the length direction of the regulating guide vane 9, a connecting shaft 902 located at the same end as the driving module passes through the volute 4. At the same time, a crank arm is provided on the connecting shaft 902. The free end of the crank arm is hingedly connected to a pull rod 11. The pull rod 11 is hingedly connected to the driving ring 10, so that the rotation of the regulating guide vane 9 is controlled by the rotation of the driving ring 10.
[0078] When the device described in the present application is in use, the large end of the air collecting hood is installed on the wall of the chicken house, and the air collecting hood needs to include all negative pressure exhaust fans to ensure that all the airflow discharged by the negative pressure exhaust fans can be recovered.
[0079] During the operation of the chicken house, cold air is input into the chicken house through the wet curtain system. Due to the large length of the chicken house, a negative pressure exhaust fan must be equipped to discharge the hot air through the exhaust port; the high-speed airflow discharged by the negative pressure exhaust fan all enters the wind collecting hood. Since the outlet end of the wind collecting hood is reduced by the wind collecting wall, the airflow passing through the outlet end will be accelerated for the first time, and then the airflow enters the volute and finally enters the equipment cavity from the air inlet. The flow rate and direction of the airflow in the air inlet can be controlled by the adjustment module, that is, the flow area of each airflow channel in the air inlet is adjusted by the adjustment module to form a gradually shrinking airflow channel, which will accelerate the airflow for a second time and adjust the direction of the airflow at the same time. The airflow after passing through the air inlet collides with the driving wind wheel, thereby driving the driving wind wheel to rotate, and the driving wind wheel drives the power generation module to generate electricity. The airflow after passing through the driving wind wheel is directly discharged into the atmospheric environment from the exhaust port at the bottom.
[0080] Reference Figure 9 and Figure 10 , which discloses the corresponding air flow velocity diagram, driving wind wheel speed diagram and power generation power diagram;
[0081] The present application realizes wind power generation through the cooperation of wind collecting hood, volute and driving wind wheel. Compared with the technical solution of direct exhaust in the prior art, the present application realizes the secondary recovery and utilization of wind energy. The recovered electricity can be used to drive various electrical equipment, thereby reducing the operating energy consumption of the chicken house and also reducing the operating cost of the chicken house.
[0082] Secondly, the wind-gathering wall and volute are fully enclosed structures, which can effectively prevent air leakage during operation, maximize the utilization rate of high-speed airflow, and thus improve the recovery rate of wind energy;
[0083] At the same time, since the negative pressure exhaust fan needs to operate stably for a long time, the entire wind energy recovery system can receive airflow with a stable flow rate for a long time, thereby continuously outputting current in a stable state. Compared with the method of using natural wind power generation, its power output is more stable.
[0084] Finally, the present application achieves double acceleration of the airflow through the combined action of the wind-gathering wall, the volute, and the regulating module, thereby avoiding the rapid decrease of the airflow at the outlet end of the negative pressure exhaust fan, while ensuring that the airflow can drive the wind wheel to rotate at a higher airflow, thereby realizing the recovery and utilization of wind energy;
[0085] At the same time, the volute can also guide the airflow to enter the equipment cavity in an orderly manner around the axis of the driving wind wheel. At the same time, the airflow direction at different positions can push the driving wind energy to rotate counterclockwise or clockwise. On the one hand, it realizes the full utilization of wind force. On the other hand, multiple wind forces can push the driving wind wheel to rotate in the same direction, that is, avoid the opposite airflow direction causing the thrust to offset each other, which helps to increase the thrust of the driving wind wheel.
[0086] The above are only preferred embodiments of the present application and do not limit the patent scope of the present application. Any equivalent structure or equivalent process transformation made using the contents of the present application specification and drawings, or directly or indirectly applied in other related technical fields, are also included in the patent protection scope of the present application.
Claims
1. A wind energy recovery system for a closed chicken house, characterized in that: It includes a power generation module (1); An air collecting hood (2), the inlet end of which is in communication with the air outlet of the negative pressure exhaust fan of the chicken house; the air collecting hood (2) is also provided with an air collecting wall (3) for reducing the flow area of the air outlet end thereof; A volute (4), the inlet end of the volute (4) is connected to the air outlet end of the wind collecting cover (2); a cylindrical equipment cavity (5) is provided on the volute (4), a driving wind wheel (6) is rotatably provided in the equipment cavity (5), and the driving wind wheel (6) is dynamically connected to the power generation module (1); an air inlet (7) connected to the equipment cavity (5) is provided on the volute (4), and an air outlet (8) is provided at the bottom of the equipment cavity (5); The driving wind wheel (6) comprises a main shaft (601) and a plurality of blades (602), one end of the main shaft (601) being dynamically connected to the power generation module (1); and each of the blades (602) is connected to the main shaft (601) around the axis of the main shaft (601). a regulating module, the regulating module being arranged on the volute (4), and the regulating module being used to control the direction and velocity of the airflow in the air inlet (7); The regulating module comprises a plurality of regulating guide vanes (9) which are evenly arranged in the air inlet (7) around the rotation axis of the main shaft (601), and each regulating guide vane (9) is respectively connected to the volute (4) for rotation; a driving ring (10) and a driving module are also provided on the volute (4), and the driving module controls the driving ring (10) to rotate around the rotation axis of the main shaft (601); a plurality of pull rods (11) are hinged on the driving ring (10), and each pull rod (11) is respectively connected to the regulating guide vane (9); along the direction of airflow, the curvature of each regulating guide vane (9) increases linearly; The volute (4) is provided with a circular slide rail (12) coaxial with the main shaft (601), and the circular slide rail (12) is provided with a plurality of sliders (13), and each of the sliders (13) is connected to the drive ring (10).
2. The wind energy recovery system for a closed chicken house according to claim 1, characterized in that: The wind collecting hood (2) comprises an air inlet section (201) and an air outlet section (202); along the air flow direction, the wind collecting wall (3) is arranged between the air inlet section (201) and the air outlet section (202); the wind collecting wall (3) is a conical structure, with its large end connected to the air inlet section (201) and its small end connected to the air outlet section (202).
3. The wind energy recovery system for a closed chicken house according to claim 1, characterized in that: A hub (603) is also provided on the main shaft (601), and a plurality of splicing tenons (604) are provided on the outer peripheral surface of the hub (603) around the axis of the hub (603). A splicing tenon plate (605) is also integrally connected to one side of each blade (602) along the width direction of each blade (602), and the splicing tenon plate (605) is spliced and connected to the splicing tenon groove (604); a plurality of fastening bolts (606) are also provided between each splicing tenon plate (605) and the hub (603).
4. The wind energy recovery system for a closed chicken house according to claim 1, characterized in that: The regulating guide vane (9) includes a guide vane body (901), the cross section of the guide vane body (901) is arc-shaped, and along the height direction of the guide vane body (901), the top and bottom of the guide vane body (901) are both provided with connecting shafts (902), and a crank arm is also provided on the rotating shaft located at the top of the guide vane body (901), and the crank arm is hingedly connected to the pull rod (11).
5. The wind energy recovery system for a closed chicken house according to claim 4, characterized in that: Along the height direction of the guide vane body (901), both of the connecting shafts (902) coincide with the symmetry axis of the guide vane body (901).
6. The wind energy recovery system for a closed chicken house according to claim 1, characterized in that: The driving module comprises a plurality of driving cylinders (14), each of which is evenly arranged around the rotation axis of the main shaft (601), one end of each of which is rotationally connected to the volute (4), and an output end thereof is rotationally connected to the driving ring (10).
7. The wind energy recovery system for a closed chicken house according to claim 1, characterized in that: The power generation module (1) comprises a generator, a battery and an inverter, and the output end of the generator is electrically connected to the battery via the inverter.
Citation Information
Patent Citations
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