Wind power generation drying apparatus and usage method therefor
By designing the alternating use of the drying shell assembly and the drying assembly in the wind power drying equipment, the saturation problem of the adsorption plate in the wind power equipment was solved, realizing automatic drying and continuous normal operation of the equipment, and avoiding manual high-altitude operations.
Patent Information
- Application Number
- PCT/CN2025/098417
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-07-26
- Filing Date
- 2025-05-30
- Publication Date
- 2026-01-29
AI Technical Summary
Existing wind power drying equipment cannot dry saturated adsorption plates in a timely manner, resulting in equipment corrosion and shortened dryer lifespan, and requiring manual high-altitude operations to replace the adsorption plates.
A wind power generation drying device is designed, comprising a drying shell assembly, a drying assembly, a drive assembly, a movable sealing assembly, a movable assembly, and a clamping assembly. The drive assembly drives the movable sealing assembly to alternately open and close the air outlet of the drying assembly, thereby achieving self-drying and alternating use of the drying space and preventing humid air from entering the generator.
This effectively reduces the probability of generator corrosion from contact with humid air, enables automatic drying and reuse of the adsorption plate, avoids manual high-altitude operations, and ensures continuous normal operation of the equipment.
Smart Images

Figure CN2025098417_29012026_PF_FP_ABST
Abstract
Description
A wind power drying device and its usage method Technical Field
[0001] This invention relates to the technical field of drying devices, and more particularly to a wind power generation drying device and its usage method. Background Technology
[0002] Wind power generation refers to converting wind energy into electrical energy. It is a relatively clean energy source, but it requires certain wind conditions to be met before it can be used.
[0003] Therefore, wind power generation equipment is generally built in coastal areas, where the air humidity is usually high. When the equipment is ventilating and cooling, moisture can enter the interior, easily causing corrosion of components and leading to equipment damage, thus affecting the normal power generation. Current technology typically uses adsorption plates for drying, but after prolonged use, these plates become saturated and unable to dry properly. This is difficult for staff to detect in time, and the entire drying unit malfunctions during replacement. Furthermore, during wind power equipment operation, the oil temperature and pressure inside the equipment rise, causing air backflow. Some oil and gas can flow back into the dryer, severely contaminating the drying medium and shortening the dryer's lifespan. Summary of the Invention
[0004] In view of the problem that existing wind power drying equipment cannot dry the saturated adsorption plate in a timely manner, this invention is proposed.
[0005] Therefore, the present invention provides a wind power generation drying device, the purpose of which is to solve the technical problem of not being able to dry the saturated adsorption plate in a timely manner.
[0006] To solve the above-mentioned technical problems, the present invention provides the following technical solution: the wind power generation drying equipment includes a power generation unit and a drying unit.
[0007] The power generation unit includes a generator housing, a generator disposed within the generator housing, and a reducer disposed within the generator housing and connected to the generator output shaft.
[0008] The drying unit includes a drying shell assembly disposed at the air inlet of the generator housing, a drying component disposed within the drying shell assembly, a drive component disposed on the drying shell assembly, an air outlet component disposed on the drying shell assembly and cooperating to extend into the generator housing, a movable sealing component slidably disposed on the drying component, a movable component slidably disposed on the drying component, and a clamping component disposed on the drying component.
[0009] As a preferred embodiment of the wind power drying equipment of the present invention, the drying shell assembly includes a mounting shell disposed on the generator housing, an air inlet disposed on the mounting shell, an air inlet tee disposed on the air inlet, and a fan disposed on the air inlet tee.
[0010] As a preferred embodiment of the wind power drying equipment of the present invention, the drying component includes a first partition and a second partition arranged side by side in the mounting shell, a dividing plate disposed on the first partition and connected to the second partition, a heating wire disposed on the dividing plate, an adsorption plate disposed on the dividing plate, a humidity detector first disposed on the first partition, a humidity detector second disposed on the second partition, an air outlet pipe disposed on the second partition, and a delay button disposed on the second partition.
[0011] The dividing plate divides the space between the first partition and the second partition into two independent drying spaces.
[0012] As a preferred embodiment of the wind power drying equipment of the present invention, the partition plate is provided with a through hole for the movable sealing assembly to pass through, the partition plate 2 is provided with a movable groove, the partition plate 2 is provided with a clamping groove communicating with the movable groove, the partition plate 2 is provided with an installation groove communicating with the clamping groove, the partition plate 2 is provided with a sealing sliding groove, and the partition plate 2 is provided with an air outlet.
[0013] As a preferred embodiment of the wind power drying equipment of the present invention, the air outlet component includes an air outlet tee pipe disposed on the partition plate 2, a fixed pipe disposed on the generator housing, a sealing block slidably disposed in the fixed pipe, and a spring disposed in the fixed pipe and connected to the sealing block.
[0014] The sealing block is provided with an air outlet channel, and the fixed pipe is provided with an air outlet.
[0015] As a preferred embodiment of the wind power drying equipment of the present invention, the movable sealing assembly includes a sealing movable block, an elastic clamping member disposed on the sealing movable block, a connecting rope disposed on the sealing movable block, a sealing plate slidably disposed in the sealing groove, a magnet one disposed on the sealing plate, a limiting plate disposed on the sealing movable block and subject to sealing friction with the through hole, and a magnet two disposed in the sealing groove.
[0016] In a preferred embodiment of the wind power drying equipment of the present invention, the moving component includes a moving plate slidably disposed in the moving groove, a blocking plate disposed on the moving plate, and a locking plate disposed on the moving plate.
[0017] The movable plate has a through hole for the connecting rope to pass through, the locking plate has an inclined surface that slides and rubs against the clamping assembly, the locking plate has a groove, and the locking plate has a through groove communicating with the groove.
[0018] As a preferred embodiment of the wind power drying equipment of the present invention, the clamping assembly includes a magnet three, a movable block disposed on the magnet three, an elastic element disposed on the movable block and connected to the inner wall of the mounting groove, a fixed plate disposed in the clamping groove, and an electromagnet disposed on the fixed plate.
[0019] The beneficial effects of this invention are as follows: It comprises a drying shell assembly, a drying component, a driving assembly, an air outlet assembly, a movable sealing assembly, a moving assembly, and a clamping assembly. Driven by the driving assembly, the movable sealing assembly moves, causing one air outlet of the drying component to be open, while the moving assembly closes the other air outlet. At this time, outside air enters the drying component through the drying shell assembly, is dried by the drying component, and then enters the generator housing through the air outlet assembly, reducing the probability of corrosion of the generator and reducer due to contact with humid air. Through the alternating use of the two drying spaces, and the fact that each drying space can achieve self-drying, it can continuously dry the humid air entering from the outside, preventing incomplete drying.
[0020] Another objective of this invention is to provide a method for using wind power drying equipment, which aims to solve the technical problem of requiring workers to perform high-altitude live-line operations.
[0021] To solve the above-mentioned technical problems, the present invention provides the following technical solution: the method of using the wind power generation drying equipment includes the wind power generation drying equipment described in any of the above-mentioned methods, the method of using includes: drying in drying chamber one, changing the drying chamber, self-drying in drying chamber one, and drying in drying chamber two.
[0022] Drying chamber one: Drying chamber one dries the air drawn in through the drying shell assembly. At this time, the air outlet of drying chamber two is blocked, and the air cannot pass through drying chamber two for drying.
[0023] Replace the drying chamber: The drying component in drying chamber one performs self-testing, the driving component drives the moving sealing component to move, alternately blocking the air outlets of drying chamber one and drying chamber two, and controlling the self-drying in drying chamber one.
[0024] Drying chamber self-drying: Under the action of the drying component, the clamping component releases the restriction on the moving component, and the moving sealing component seals the air outlet component.
[0025] Drying in drying chamber two: Drying chamber one cannot be ventilated. At this time, the gas drawn in can only circulate through drying chamber two and is dried by the drying components in drying chamber two.
[0026] As a preferred embodiment of the method of using the wind power drying equipment of the present invention, it further includes: preventing backflow: preventing gas from entering the drying shell assembly from the generator housing by means of an exhaust component.
[0027] The beneficial effects of this invention are that the adsorption plates in the drying chamber can be dried by alternating between drying chamber one and drying chamber two, thus avoiding the need for manual high-altitude operations to replace them. Attached Figure Description
[0028] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the accompanying drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0029] Figure 1 is a schematic diagram of the overall structure of the wind power drying equipment disclosed in some embodiments of the present invention.
[0030] Figure 2 is a cross-sectional view of the overall structure of the wind power drying equipment disclosed in some embodiments of the present invention.
[0031] Figure 3 is a schematic diagram of the structure of the drying unit in the wind power drying equipment disclosed in some embodiments of the present invention.
[0032] Figure 4 is a cross-sectional view of the drying unit in a wind power drying device disclosed in some embodiments of the present invention.
[0033] Figure 5 is a cross-sectional view of the drying unit in a wind power drying device disclosed in some embodiments of the present invention.
[0034] Figure 6 is a magnified view of a portion of Figure 5.
[0035] Figure 7 is a cross-sectional view three of the drying unit in the wind power drying equipment disclosed in some embodiments of the present invention.
[0036] Figure 8 is a partial cross-sectional view of the partition plate 2 in the wind power drying equipment disclosed in some embodiments of the present invention.
[0037] Figure 9 is a magnified view of a portion of Figure 8.
[0038] Figure 10 is a schematic diagram of the structure of the movable sealing assembly in the wind power drying equipment disclosed in some embodiments of the present invention.
[0039] Figure 11 is a schematic diagram of the structure of the moving component in the wind power drying equipment disclosed in some embodiments of the present invention. Detailed Implementation
[0040] To make the above-mentioned objects, features and advantages of the present invention more apparent and understandable, the specific embodiments of the present invention will be described in detail below with reference to the accompanying drawings.
[0041] Many specific details are set forth in the following description in order to provide a full understanding of the invention. However, the invention may also be practiced in other ways different from those described herein, and those skilled in the art can make similar extensions without departing from the spirit of the invention. Therefore, the invention is not limited to the specific embodiments disclosed below.
[0042] Secondly, the term "an embodiment" or "embodiment" as used herein refers to a specific feature, structure, or characteristic that may be included in at least one implementation of the present invention. The phrase "in one embodiment" appearing in different places throughout this specification does not necessarily refer to the same embodiment, nor is it an embodiment that is mutually exclusive, either alone or selectively, with other embodiments.
[0043] Secondly, the present invention is described in detail with reference to the schematic diagrams. When detailing the embodiments of the present invention, for ease of explanation, the cross-sectional views illustrating the device structure may be partially enlarged, not according to the usual scale. Furthermore, the schematic diagrams are merely examples and should not limit the scope of protection of the present invention. In addition, actual fabrication should include three-dimensional spatial dimensions of length, width, and depth.
[0044] Example 1, referring to Figures 1-8, is the first embodiment of the present invention, providing a wind power generation drying device 300 and its usage method. This device includes a power generation unit 100 and a drying unit 200. The drying unit 200 dries the air entering the power generation unit 100, preventing humid air from entering the power generation unit 100 and damaging the electrical components inside.
[0045] The power generation unit 100 includes a generator housing 101, a generator 102 disposed inside the generator housing 101, and a reducer 103 disposed inside the generator housing 101 and connected to the output shaft of the generator 102.
[0046] The drying unit 200 includes a drying shell assembly 201 disposed at the air inlet of the generator housing 101, a drying component 202 disposed within the drying shell assembly 201, a drive component 203 disposed on the drying shell assembly 201, an air outlet component 204 disposed on the drying shell assembly 201 and cooperating with it to extend into the generator housing 101, a movable sealing component 205 slidably disposed on the drying component 202, a movable component 206 slidably disposed on the drying component 202, and a clamping component 207 disposed on the drying component 202. The drying component 202 has two air outlets; one air outlet communicates with the air outlet component 204 and the generator housing 101; the other air outlet extends outward from the drying shell assembly 201. The drying component 202 contains two drying chambers that can alternately dry humid air, and each drying chamber can also perform self-drying processing. The exhaust assembly 204 only allows gas to pass through in one direction, and the oil and gas inside the generator housing 101 will not enter the drying unit 200 in reverse and damage the internal parts of the drying unit 200.
[0047] During use, driven by the drive component 203, the moving sealing component 205 moves, causing one air outlet of the drying component 202 to be open, while the moving component 206 causes the other air outlet of the drying component 202 to be closed. At this time, outside air enters the drying component 202 through the drying shell component 201, is dried by the drying component 202, and then enters the generator housing 101 through the air outlet component 204, reducing the probability of corrosion of the generator 102 and the reducer 103 due to contact with humid air. Through the alternating use of the two drying spaces, and the fact that each drying space can achieve self-drying, the humid air entering from the outside can be continuously dried without incomplete drying.
[0048] Example 2, referring to Figures 1-11, is the second embodiment of the present invention. This embodiment differs from the first embodiment in that: the drive assembly 203 moves two sealing blocks 205a, causing one sealing block 205a to block one air inlet of the outlet tee pipe 204a, while the elastic clamping member 205b presses against the delay button 202i, energizing the heating wire 202d within the sealed drying space. The sealing block 205a then slides the sealing plate 205d via the connecting rope 205c; simultaneously, the other sealing block 205a releases its blockage of the other air inlet of the outlet tee pipe 204a. At this time, outside air is drawn into the two drying spaces by the fan 201d. After drying, the air in one drying space enters the generator housing 101 through the outlet tee pipe 204a. Inside, the gas in another drying space is heated by the heating wire 202d, which carries the moisture on the saturated adsorption plate 202e out of the mounting shell 201a through the air outlet pipe 202h. After the time delay button 202i controls the time period to expire, the heating wire 202d is de-energized, and at the same time the electromagnet 207e is energized, causing the magnet 207a to move away from the electromagnet 207e and separate from the through groove 206g. The magnets 205e and 205g attract each other, and the sealing plate 205d moves, which in turn moves the moving plate 206a, so that the sealing plate 205d blocks the air outlet 202o, thereby sealing the air outlet pipe 202h and preventing the gas from being discharged through the air outlet pipe 202h. This prevents air circulation inside the drying space, and the incoming air will no longer enter the drying space.
[0049] Compared to Embodiment 1, the drying shell assembly 201 further includes a mounting shell 201a disposed on the generator housing 101, an air inlet 201b disposed on the mounting shell 201a, an air inlet tee pipe 201c disposed on the air inlet 201b, and a fan 201d disposed on the air inlet tee pipe 201c; the air inlet 201b includes a filter screen disposed on the mounting shell 201a and an air inlet hopper disposed on the mounting shell 201a, the air inlet hopper being funnel-shaped, the air inlet hopper communicating with the air inlet tee pipe 201c, and the filter screen being located on the side of the air inlet hopper away from the air inlet tee pipe 201c; the filter screen and the air inlet hopper have the same shape. The fan 201d draws outside air into the mounting housing 201a, and removes impurities through the filter of the air inlet 201b. The fan 201d provides power to the incoming air, so that the gas dried by the drying component 202 has enough power to push through the air outlet component 204 into the generator housing 101.
[0050] Furthermore, the drying assembly 202 includes a first partition 202a and a second partition 202b arranged side by side within the mounting housing 201a, a dividing plate 202c disposed on the first partition 202a and connected to the second partition 202b, a heating wire 202d disposed on the dividing plate 202c, an adsorption plate 202e disposed on the dividing plate 202c, a humidity detector 202f disposed on the first partition 202a, a humidity detector 202g disposed on the second partition 202b, an air outlet pipe 202h disposed on the second partition 202b, and a delay button 202i disposed on the second partition 202b; multiple adsorption plates 202e are provided, and the multiple adsorption plates 202e are staggered vertically to facilitate the passage of humid air and fully absorb the moisture in the humid air. Humidity detector 202f and humidity detector 202g detect the air humidity entering and exiting the drying shell assembly 201. When the detected value is lower than the set value, it is determined that the adsorption plate 202e has sufficient water absorption and needs to be replaced or dried. By controlling the activation of the heating wire 202d, the adsorption plate 202e is dried and dehydrated, so that the adsorption plate 202e can be reused.
[0051] The partition plate 202c divides the space between partition 1 202a and partition 2 202b into two independent drying spaces. These two drying spaces can be referred to as Drying Chamber 1 and Drying Chamber 2, respectively. Drying Chamber 1 and Drying Chamber 2 can be used alternately for convenient drying. Two sets of heating wire 202d, humidity detector 1 202f, humidity detector 2 202g, air outlet pipe 202h, and delay button 202i are provided, each located within one of the two drying spaces. The two air outlets of the air inlet tee 201c extend into the two drying spaces respectively. By alternating the use of the two drying spaces, the adsorption plate 202e in the saturated drying space can be dried, facilitating reuse without affecting the drying use of the other drying space. This avoids the need to disassemble and replace the adsorption plate 202e, making it more suitable for the high-altitude operation environment of wind turbines.
[0052] Furthermore, the partition plate 202c is provided with a through hole 202j for the movable sealing assembly 205 to pass through, the partition plate 202b is provided with a movable groove 202l, a clamping groove 202k communicating with the movable groove 202l, an installation groove 202m communicating with the clamping groove 202k, a sealing groove 202n inside the partition plate 202b, and an air outlet 202o. An air outlet pipe 202h is installed at the air outlet 202o. By moving the movable sealing assembly 205, the air outlet 202o can be blocked, thereby blocking the air outlet pipe 202h and preventing outside air from entering the drying shell assembly 201 through the air outlet pipe 202h. The drive assembly 203 includes a motor 203a disposed on the mounting housing 201a, a movable rod 203b disposed inside the mounting housing 201a and slidably connected to the movable sealing assembly 205, and a threaded rod 203c disposed on the output shaft of the motor 203a and threadedly connected to the movable sealing assembly 205.
[0053] In particular, the air outlet assembly 204 includes an air outlet tee pipe 204a disposed on the partition 202b, a fixed pipe 204b disposed on the generator housing 101, a sealing block 204c slidably disposed within the fixed pipe 204b, and a spring 204d disposed within the fixed pipe 204b and connected to the sealing block 204c; the end of the fixed pipe 204b away from the air outlet tee pipe 204a is a sealed end; the two air inlets of the air outlet tee pipe 204a respectively connect to the two drying spaces. Gas pushes the sealing block 204c to move, thereby allowing gas to enter the generator housing 101 through the sealing block 204c and the fixed pipe 204b. When no external gas is introduced, the spring 204d pushes the sealing block 204c to reset, so that the gas containing oil in the generator housing 101 cannot enter the fixed pipe 204b and the sealing block 204c, and cannot enter the drying housing assembly 201 in the reverse direction.
[0054] The sealing block 204c has an air outlet channel 204e, and the fixed pipe 204b has an air outlet 204f. The air outlet channel 204e is L-shaped and can connect the air outlet tee pipe 204a and the air outlet 204f. When the dried air pushes the sealing block 204c to move, the air outlet end of the air outlet channel 204e is connected to the air outlet 204f, so that the dried gas can enter the generator housing 101 through the air outlet tee pipe 204a, the air outlet channel 204e and the air outlet 204f.
[0055] Preferably, the movable sealing assembly 205 includes a sealing movable block 205a connected to the drive assembly 203, an elastic clamping member 205b disposed on the sealing movable block 205a, a connecting rope 205c disposed on the sealing movable block 205a, a sealing plate 205d slidably disposed in the sealing groove 202n, a magnet 205e disposed on the sealing plate 205d, a limiting plate 205f disposed on the sealing movable block 205a and subject to sealing friction with the through hole 202j, and a magnet 205g disposed in the sealing groove 202n. The other end of the limiting plate 205f is connected to the movable sealing part. The structure of the movable sealing part is basically the same as that of the movable sealing assembly 205, but the movable sealing part does not include the limiting plate 205f. The movable sealing assembly 205 and the sealing part are located in two drying spaces respectively. The drive assembly 203 drives the two sealing moving blocks 205a to move, blocking one air inlet end of the air outlet tee pipe 204a and opening the other air inlet end, so that one drying space can pass dry air into the generator housing 101, and the other... One drying space can only discharge heated air from the mounting housing 201a through the air outlet pipe 202h, realizing the alternating use of the two drying spaces; when the sealing moving block 205a blocks the inlet end of the air outlet tee pipe 204a, the elastic clamping member 205b will press on the delay button 202i, thereby energizing the heating wire 202d to dry the adsorption plate 202e in the drying space; after the delay button 202i reaches the time, the heating wire 202d is de-energized, and at the same time the clamping component 207 is energized.
[0056] Furthermore, the moving component 206 includes a moving plate 206a slidably disposed within the moving groove 202l, a blocking plate 206b disposed on the moving plate 206a, and a locking plate 206c disposed on the moving plate 206a. The moving plate 206a, the blocking plate 206b, and the locking plate 206c are integrally formed, making the overall structure more stable. When the sealing moving block 205a moves in the reverse direction, it drives the blocking plate 206b, the moving plate 206a, and the locking plate 206c to move, causing the locking plate 206c to lock with the clamping component 207, thus limiting the movement of the moving component 206. The moving plate 206a supports the connecting rope 205c, facilitating the control of the position of the sealing plate 205d by the movement of the sealing moving block 205a.
[0057] The movable plate 206a has a through hole 206d for the connecting rope 205c to pass through, the locking plate 206c has an inclined surface 206e for sliding friction with the clamping assembly 207, the locking plate 206c has a groove 206f, and the locking plate 206c has a through groove 206g that communicates with the groove 206f.
[0058] Furthermore, the clamping assembly 207 includes a magnet 207a, a movable block 207b disposed on the magnet 207a, an elastic element 207c disposed on the movable block 207b and connected to the inner wall of the mounting groove 202m, a fixing plate 207d disposed in the clamping groove 202k, and an electromagnet 207e disposed on the fixing plate 207d. The fixing plate 207d and the electromagnet 207e cooperate to extend into the groove 206f. The magnet 207a has a mating surface that cooperates with the inclined surface 206e. The magnet 207a cooperates to extend into the through groove 206g. When the electromagnet 207e is energized, its magnetism is opposite to that of the magnet 207a. The energization of the electromagnet 207e is controlled by a delay button 202i. When the delay button 202i controls the heating wire 202d to be de-energized, it controls the electromagnet 207e to be energized, so that the magnet 207a is far from the heating wire 202d. When the electromagnet 207e is disconnected, the magnet 207a separates from the through slot 206g. The magnets 205e and 205g attract each other, and the sealing plate 205d moves while the moving plate 206a moves, so that the sealing plate 205d blocks the air outlet 202o, thereby sealing the air outlet pipe 202h and preventing gas from being discharged through the air outlet pipe 202h. This prevents air circulation inside the drying space and prevents the air that has entered from entering the drying space.
[0059] The remaining structure is the same as that in Example 1.
[0060] Example 3 is the third embodiment of the present invention. Based on the wind power drying equipment 300 provided in Examples 1 and 2, this embodiment proposes a method of using the wind power drying equipment 300. The method of use includes: drying in drying chamber one, changing the drying chamber, self-drying in drying chamber one, and drying in drying chamber two.
[0061] Drying in drying chamber one: Drying chamber one dries the air drawn in through the drying shell assembly 201. At this time, the air outlet of drying chamber two is blocked, and air cannot pass through drying chamber two for drying.
[0062] Replacing the drying chamber: The drying component 202 in drying chamber one performs a self-test. The drive component 203 moves the movable sealing component 205 to alternately block the air outlets of drying chamber one and drying chamber two, and controls the self-drying process in drying chamber one. When the difference between the humidity detector 1 202f and humidity detector 202g in drying chamber one is less than the set value, the drive component 203 moves the movable sealing component 205 to close the air inlet of the air outlet tee 204a in drying chamber one and open the air inlet of the air outlet tee 204a in drying chamber two. At the same time, the delay button 202i is pressed to power on the heating wire 202d, and the heating wire 202d is automatically de-energized after one hour.
[0063] Self-drying in the drying chamber: Under the action of the drying component 202, the clamping component 207 releases the limit on the moving component 206, and the moving sealing component 205 seals the air outlet component 204; the delay button 202i controls the heating wire 202d to be energized at the same time as the electromagnet 207e is energized. Under the action of magnet one 205e and magnet two 205g, the sealing moving block 205a and the connecting rope 205c drive the moving plate 206a to slide, and the sealing moving block 205a seals the air inlet of the air outlet tee pipe 204a.
[0064] Drying in drying chamber two: Drying chamber one cannot be ventilated. At this time, the gas drawn in can only circulate through drying chamber two and is dried by the drying component 202 in drying chamber two.
[0065] Furthermore, it also includes preventing backflow: the provided venting assembly 204 prevents gas from entering the drying shell assembly 201 from inside the generator housing 101.
[0066] The remaining structure is the same as that in Example 2.
[0067] It is important to note that the constructions and arrangements of this application shown in several different exemplary embodiments are merely illustrative. Although only a few embodiments are described in detail in this disclosure, those who consult this disclosure will readily understand that many modifications are possible (e.g., changes in the size, dimensions, structure, shape, and proportions of various elements, as well as parameter values (e.g., temperature, pressure, etc.), installation arrangements, use of materials, color, orientation, etc.) without substantially departing from the novel teachings and advantages of the subject matter described in this application). For example, an element shown as integrally formed may be composed of multiple parts or elements, the position of elements may be inverted or otherwise altered, and the nature or number or position of discrete elements may be changed or altered. Therefore, all such modifications are intended to be included within the scope of the invention. The order or sequence of any process or method steps may be changed or rearranged according to alternative embodiments. In the claims, any "device plus function" clause is intended to cover the structure performing the function described herein, and not only structural equivalents but also equivalent structures. Other substitutions, modifications, alterations, and omissions may be made in the design, operation, and arrangement of the exemplary embodiments without departing from the scope of the invention. Therefore, the present invention is not limited to the specific embodiments, but extends to various modifications that still fall within the scope of the appended claims.
[0068] Furthermore, in order to provide a concise description of exemplary embodiments, not all features of actual embodiments (i.e., those features that are not relevant to the best mode of carrying out the invention as currently considered, or those features that are not relevant to implementing the invention) may be omitted.
[0069] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and are not intended to limit it. Although the present invention has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solutions of the present invention without departing from the spirit and scope of the technical solutions of the present invention, and all such modifications or substitutions should be covered within the scope of the claims of the present invention.
Claims
1. A wind power generation drying apparatus, characterized by: The utility model relates to a kind of drying system, including: Power generation unit (100), including generator housing (101), generator (102) being arranged in the generator housing (101), and reducer (103) being arranged in the generator housing (101) and being connected with the generator (102) output shaft;And, Drying unit (200), including drying shell assembly (201) being arranged at the air inlet port of the generator housing (101), drying assembly (202) being arranged in the drying shell assembly (201), drive assembly (203) being arranged on the drying shell assembly (201), air outlet assembly (204) being arranged on the drying shell assembly (201) and being matched to be in-depth in the generator housing (101), mobile sealing assembly (205) being slidably arranged on the drying assembly (202), mobile assembly (206) being slidably arranged on the drying assembly (202), and chucking assembly (207) being arranged on the drying assembly (202).
2. The wind power drying apparatus according to claim 1, characterized in that: The drying shell assembly (201) includes mounting shell (201a) being arranged on the generator housing (101), air inlet portion (201b) being arranged on the mounting shell (201a), air inlet tee (201c) being arranged on the air inlet portion (201b), and fan (201d) being arranged on the air inlet tee (201c).
3. The wind power drying apparatus according to claim 2, characterized in that: The drying assembly (202) includes partition one (202a) and partition two (202b) being arranged side by side in the mounting shell (201a), partition plate (202c) being arranged on the partition one (202a) and being connected with the partition two (202b), heating wire (202d) being arranged on the partition plate (202c), adsorption plate (202e) being arranged on the partition plate (202c), humidity detector one (202f) being arranged on the partition one (202a), humidity detector two (202g) being arranged on the partition two (202b), air outlet pipe (202h) being arranged on the partition two (202b), and delay button (202i) being arranged on the partition two (202b). Wherein, the partition plate (202c) divides the space between the partition one (202a) and the partition two (202b) into two drying spaces independent of each other.
4. The wind power drying apparatus according to claim 3, characterized in that: The partition plate (202c) is provided with a through hole (202j) for the mobile sealing assembly (205) to pass through, the partition two (202b) is provided with a moving groove (202l), the partition two (202b) is provided with a chucking groove (202k) in communication with the moving groove (202l), the partition two (202b) is provided with a mounting groove (202m) in communication with the chucking groove (202k), the partition two (202b) is provided with a sealing sliding groove (202n) in the partition two (202b), and the partition two (202b) is provided with an air outlet hole (202o).
5. The wind power drying apparatus according to claim 4, characterized in that: The air outlet assembly (204) comprises an air outlet tee (204a) arranged on the second partition plate (202b), a fixed pipe (204b) arranged on the generator shell (101), a sealing block (204c) slidingly arranged in the fixed pipe (204b), and a spring (204d) arranged in the fixed pipe (204b) and connected with the sealing block (204c); The sealing block (204c) is provided with an air outlet channel (204e), and the fixed pipe (204b) is provided with an air outlet (204f).
6. The wind power drying apparatus according to claim 5, characterized in that: The moving sealing assembly (205) comprises a sealing moving block (205a), an elastic pressing piece (205b) arranged on the sealing moving block (205a), a connecting rope (205c) arranged on the sealing moving block (205a), a sealing plate (205d) slidingly arranged in the sealing sliding groove (202n), a magnet I (205e) arranged on the sealing plate (205d), a limiting plate (205f) arranged on the sealing moving block (205a) and sealingly abutting against the through hole (202j), and a magnet II (205g) arranged in the sealing sliding groove (202n).
7. The wind power drying apparatus according to claim 6, characterized in that: The moving assembly (206) comprises a moving plate (206a) slidingly arranged in the moving groove (202l), a blocking plate (206b) arranged on the moving plate (206a), and a locking plate (206c) arranged on the moving plate (206a); The moving plate (206a) is provided with a through hole (206d) for the connecting rope (205c) to pass through, the locking plate (206c) is provided with an inclined surface (206e) slidingly abutting against the clamping assembly (207), the locking plate (206c) is provided with a groove (206f), and the locking plate (206c) is provided with a through groove (206g) in communication with the groove (206f).
8. The wind power drying apparatus according to claim 7, characterized in that: The clamping assembly (207) comprises a magnet III (207a), a moving block (207b) arranged on the magnet III (207a), an elastic piece (207c) arranged on the moving block (207b) and connected with the inner wall of the mounting groove (202m), a fixed plate (207d) arranged in the clamping groove (202k), and a power magnet (207e) arranged on the fixed plate (207d).
9. A method of using the wind power drying apparatus of any one of claims 1-8, characterized by: It comprises: Drying chamber one drying: the drying chamber one dries the air drawn in through the drying shell assembly (201), and at this time, the air outlet end of the drying chamber two is blocked, and the air cannot be dried through the drying chamber two; Change drying chamber: the drying assembly (202) in the drying chamber one performs self-detection, the driving assembly (203) drives the moving sealing assembly (205) to move, the air outlets of the drying chamber one and the drying chamber two are alternately blocked, and the drying chamber one is controlled to be self-dried; Dry room one self-drying: under the action of the drying assembly (202), the clamping assembly (207) releases the limit of the moving assembly (206), and the moving sealing assembly (205) seals the air outlet assembly (204); Dry room two drying: dry room one cannot be ventilated, at this time the extracted gas can only pass through dry room two and be dried by the drying assembly (202) in dry room two.
10. The method of using a wind-powered drying apparatus of claim 9, wherein: Also includes: Prevent backflow: the air outlet assembly (204) is arranged to prevent gas from entering the drying shell assembly (201) from the generator housing (101).
Citation Information
Patent Citations
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