Water removal mechanism and dry umbrella device
By designing the water-absorbing component and drive assembly in the water-removal mechanism, the problem of rainwater not being removed from the umbrella surface in a timely manner is solved, realizing the continuous water-removal function of the umbrella, preventing the umbrella handle from rusting, and extending the service life of the umbrella.
Patent Information
- Application Number
- CN202311527356.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-11-15
- Publication Date
- 2025-11-25
- Estimated Expiration
- 2043-11-15
AI Technical Summary
Existing technology cannot remove rainwater from the surface of umbrellas in a timely manner, which leads to rust on the umbrella handle and shortens the lifespan of the umbrella.
A water removal mechanism was designed, including a placement plate and a water-absorbing component. The water-absorbing component slides along the inner wall of the chute and absorbs water by sliding friction with the umbrella surface. Combined with a drive assembly and a pressure rod assembly, the stable sliding of the water-absorbing component and the continuous water removal function are ensured.
It enables timely absorption of moisture from the umbrella surface, preventing the umbrella handle from rusting, extending the umbrella's lifespan, and improving water removal efficiency and stability.
Smart Images

Figure CN117516075B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of rain gear technology, and particularly to a water-removing mechanism and an umbrella dryer. Background Technology
[0002] In daily life, when people bring dripping umbrellas indoors on rainy days, they either leave them on the ground or cover them with plastic bags. However, if the rainwater is not removed from the surface of the dripping umbrella in time, the handle will rust, greatly shortening the lifespan of the umbrella.
[0003] In other words, existing technologies have the problem of not being able to remove rainwater from the surface of umbrellas in a timely manner. Summary of the Invention
[0004] This invention provides a water removal mechanism and an umbrella dryer to solve the problem of not being able to remove rainwater from the surface of an umbrella in a timely manner.
[0005] This invention provides a water removal mechanism for removing moisture from the surface of an umbrella, comprising:
[0006] A placement board with a groove for holding umbrellas; and
[0007] The water-absorbing component has one end set in the chute, and the water-absorbing component can slide along the inner wall of the chute.
[0008] The absorbent component is designed such that when one end slides along the inner wall of the groove, the absorbent component slides against the umbrella surface to absorb and carry away the moisture from the umbrella surface.
[0009] In one embodiment, the groove is an arc-shaped groove or an annular groove, with the arc-shaped groove distributed around the central axis of the placement plate.
[0010] In one embodiment, when the chute is the arc-shaped groove, the transverse cross-section of the water-absorbing element is an annular structure, which includes:
[0011] The first arc segment; and
[0012] The second arc segment is located outside the first arc segment; and
[0013] The third arc segment is positioned between the first and second arc segments;
[0014] The first and second arc segments are coaxially arranged, and the third arc segment is located at the ends of the first and second arc segments. The water-absorbing component can slide cyclically along the inner wall of the groove.
[0015] In the above embodiment, the first arc segment, the second arc segment, and the two third arc segments form a closed ring structure. This ring structure is adapted to the sliding groove and can slide cyclically along the inner wall of the groove to achieve continuous sliding friction on the umbrella surface. The water-absorbing component has a hollow structure, with one end adapted to the arc-shaped groove. This ensures that the water-absorbing component can slide cyclically along the inner wall of the groove on the placement plate to achieve continuous sliding friction on the umbrella surface. This allows the water-absorbing component to continuously absorb moisture from the umbrella surface, thereby improving the water absorption efficiency of the water removal mechanism.
[0016] In one embodiment, at least one arc-shaped limiting plate is provided on the bottom wall of the chute to limit the position of the water-absorbing component in the chute. The at least one arc-shaped limiting plate is distributed around the central axis of the placement plate, and one end of the water-absorbing component is limited between the arc-shaped limiting plate and the inner wall surface of the chute.
[0017] In the above embodiment, by limiting one end of the water-absorbing component between the arc-shaped limiting plate and the inner wall of the slide groove, the water-absorbing component is positioned and installed. This prevents the water-absorbing component from deviating from the preset sliding trajectory or falling out of the slide groove during sliding. This ensures that the water-absorbing component slides cyclically along the inner wall of the slide groove. Furthermore, it achieves continuous sliding friction between the water-absorbing component and the umbrella surface, ensuring the continuous water removal function of the water-removing mechanism.
[0018] In one embodiment, the absorbent and the placement plate enclose a placement cavity, and the umbrella is located inside the placement cavity.
[0019] In one embodiment, the placement plate is provided with a socket, which is spaced apart from the slide groove, and one end of the umbrella is inserted into the socket.
[0020] In one embodiment, a driving component is also included, the driving component comprising:
[0021] A first rotating member, rotatably disposed within a chute and located within one end of a suction member; and
[0022] A drive assembly, the output of which is connected to the first rotating component, is used to control the rotation of the first rotating component.
[0023] When the driving component drives the first rotating part to rotate, friction is generated between the first rotating part and the water-absorbing part. Under the action of friction, the water-absorbing part slides along the inner wall of the groove, so that the water-absorbing part slides against the umbrella surface to absorb and remove the moisture from the umbrella surface.
[0024] In one implementation, the driving component further includes:
[0025] A gear rod, extending along a first direction, is inserted into the water-absorbing component, with one end of the gear rod connected to the first rotating component; and
[0026] The second rotating component is rotatably disposed inside the other end of the water-absorbing component and connected to the other end of the gear rod;
[0027] The second rotating component and the first rotating component can synchronously drive the water-absorbing component to slide cyclically along the inner wall of the chute.
[0028] In the above embodiment, the second rotating member and the first rotating member can synchronously drive the water-absorbing member to slide cyclically along the inner wall of the chute from both the upper and lower ends. This avoids the situation where the upper end of the water-absorbing member slides with a delay relative to its lower end, which could occur if the water-absorbing member is driven only by the first rotating member, thus affecting the water absorption performance of the dewatering mechanism. This ensures the stability and reliability of the dewatering mechanism.
[0029] In one embodiment, a strut assembly is also included, the strut assembly comprising:
[0030] The third rotating component is rotatably disposed within one end of the chute and located within one end of the suction component; and
[0031] A water-pressing rod is inserted into the water-absorbing component along the first direction, and one end of the water-pressing rod is connected to the third rotating component.
[0032] When the water-absorbing component slides along the inner wall of the chute, it can drive the third rotating component and the water-pressing rod to rotate, thereby rotating and squeezing the water-absorbing component.
[0033] In the above embodiment, the water-squeezing function of the pressure rod assembly on the water-absorbing component is realized by utilizing the rotational squeezing principle of the third rotating component and the water-pressing rod. This avoids the problem that the water-absorbing component cannot continuously absorb moisture from the umbrella surface due to excessive water absorption, thereby ensuring the continuous water removal function of the water removal mechanism.
[0034] In one embodiment, the pressure rod assembly further includes a fourth rotating member, which is rotatably disposed inside the other end of the water suction member and connected to the other end of the water pressure rod. When the water suction member slides along the inner wall of the chute, the water suction member can drive the third rotating member, the water pressure rod, and the fourth rotating member to rotate synchronously to rotate and squeeze the water suction member.
[0035] The present invention also provides a umbrella dryer, comprising:
[0036] A cylindrical body for holding umbrellas; and
[0037] The aforementioned water removal mechanism is located inside the cylinder.
[0038] In one embodiment, a placement plate divides the cylinder into a first cavity and a second cavity connected to the first cavity, wherein the first cavity is located above the second cavity, a water-absorbing element is disposed in the first cavity, and the second cavity is used to store rainwater flowing in from the first cavity.
[0039] In one embodiment, the placement plate is provided with a connecting hole for connecting the first cavity and the second cavity.
[0040] In one embodiment, a heating component is also included for heating the interior of the tube to remove residual moisture from the umbrella surface.
[0041] In one embodiment, a base is also included, on which the cylinder is disposed, and the heating component is disposed inside the base.
[0042] Compared with the prior art, the advantages of this invention are that it includes a placement plate and a water-absorbing component. The water-absorbing component slides along the inner wall of a groove on the placement plate, achieving sliding friction against the umbrella surface. Under the action of the sliding friction between the umbrella surface and the water-absorbing component, the moisture on the umbrella surface can be absorbed and carried away by the water-absorbing component in a timely manner, thus realizing the water removal function of the water removal mechanism and promptly removing rainwater from the umbrella surface. Attached Figure Description
[0043] The invention will now be described in more detail with reference to embodiments and the accompanying drawings.
[0044] Figure 1 This is a schematic diagram (main sectional view) of the structure of the water removal mechanism in Embodiment 1 of the present invention;
[0045] Figure 2 yes Figure 1 Sectional view at point AA;
[0046] Figure 3 This is a three-dimensional structural diagram of the umbrella dryer in Embodiment 4 of the present invention;
[0047] Figure 4 yes Figure 3 Exploded perspective view of the central air conditioning unit (drive components not shown);
[0048] Figure 5 yes Figure 4 Exploded view of the central placement plate and water absorption component;
[0049] Figure 6 yes Figure 3 Main sectional view of the central air dryer;
[0050] Figure 7 yes Figure 6 Sectional view at point BB.
[0051] Figure label:
[0052] 10. Placement plate; 11. Slide groove; 111. Inner wall surface; 12. Insertion hole; 13. Arc-shaped limiting plate; 14. Connecting hole; 20. Water absorption component; 21. First arc segment; 22. Second arc segment; 23. Third arc segment; 30. Drive assembly; 31. First rotating component; 32. Drive assembly; 321. Drive motor; 322. Connecting rod; 33. Gear rod; 34. Second rotating component; 40. Pressure rod assembly; 41. Third rotating component; 42. Water pressure rod; 43. Fourth rotating component; 100. Water removal mechanism; 200. Cylinder; 201. First cavity; 202. Second cavity; 300. Heating assembly; 301. Fan; 302. Heating element; 400. Base; 500. Pressure cap; 600. Bracket; 700. Protective cylinder; 800. Rubber sleeve. Detailed Implementation
[0053] The invention will now be further described with reference to the accompanying drawings.
[0054] Example 1
[0055] like Figure 1 and Figure 2 As shown, the present invention provides a water removal mechanism 100 for removing moisture from the surface of an umbrella. The water removal mechanism 100 includes a placement plate 10 and a water-absorbing component 20. The placement plate 10 has a groove 11 on it, and one end of the water-absorbing component 20 is disposed within the groove 11, allowing it to slide along the inner wall 111 of the groove 11. The umbrella is fixed to the placement plate 10, and the water-absorbing component 20 is configured such that when one end slides along the inner wall 111 of the groove 11, the water-absorbing component 20 undergoes sliding friction with the umbrella surface to absorb moisture from the umbrella surface.
[0056] In the above configuration, a placement plate 10 and a water-absorbing component 20 are provided. The water-absorbing component 20 slides along the inner wall 111 of the groove 11 on the placement plate 10 to achieve sliding friction against the umbrella surface. Under the action of the sliding friction force generated between the umbrella surface and the water-absorbing component 20, the moisture on the umbrella surface can be absorbed and carried away by the water-absorbing component 20 in a timely manner, thereby realizing the water removal function of the water removal mechanism 100 and removing rainwater from the umbrella surface in a timely manner.
[0057] It should be noted that the principle by which the absorbent component 20 absorbs and removes moisture from the surface of the umbrella can be compared to the principle of wiping water on a table with a rag. The absorbent component 20 is equivalent to the function of a rag.
[0058] Specifically, in one embodiment, the absorbent element 20 is made of high-density absorbent fiber cloth, which ensures that the absorbent element 20 can effectively absorb moisture from the surface of the umbrella.
[0059] Specifically, such as Figure 1 and Figure 2As shown, in one embodiment, the groove 11 is an arc-shaped groove distributed around the central axis of the placement plate 10, and the water-absorbing member 20 has a hollow structure, one end of which is adapted to the arc-shaped groove. This ensures that the water-absorbing member 20 can slide cyclically along the inner wall surface 111 of the groove 11 on the placement plate 10 to achieve continuous sliding friction on the umbrella surface. This allows the water-absorbing member 20 to continuously absorb moisture from the umbrella surface, thereby improving the water absorption efficiency of the water removal mechanism 100.
[0060] It should be noted that the cyclic sliding in this application refers to any part of the outer wall of the water-absorbing component 20 being able to slide repeatedly along the closed inner wall of the arc-shaped groove.
[0061] It should be noted that the arc-shaped grooves are distributed around the central axis of the placement plate 10, so that the umbrella is located inside the arc-shaped grooves, thereby ensuring that the outer surface of the umbrella can contact the water-absorbing component 20, and thus realize the water removal function of the water removal mechanism 100.
[0062] Of course, depending on the actual situation, the chute 11 can be set as an annular groove, and the water-absorbing component 20 can slide along the inner wall of the annular groove.
[0063] Specifically, such as Figure 1 and Figure 2 As shown, in one embodiment, the transverse cross-section of the water-absorbing element 20 ( Figure 1 Horizontal section in the AA direction or Figure 6 The horizontal cross-section (in the BB direction) is a ring structure, comprising a first arc segment 21, a second arc segment 22, and a third arc segment 23. The second arc segment 22 is located outside the first arc segment 21; the third arc segment 23 is located between the first arc segment 21 and the second arc segment 22; the first arc segment 21 and the second arc segment 22 are coaxially arranged, and the third arc segment 23 is located at the ends of the first arc segment 21 and the second arc segment 22.
[0064] It should be noted that the first arc segment 21, the second arc segment 22, and the two third arc segments 23 form a closed ring structure, which is adapted to the slide groove 11 and can slide cyclically along the inner wall surface 111 of the slide groove 11 to achieve continuous sliding friction on the umbrella surface.
[0065] Specifically, such as Figure 1 and Figure 2 As shown, in one embodiment, at least one arc-shaped limiting plate 13 is provided on the bottom wall of the chute 11 to limit the position of the water-absorbing member 20 in the chute 11. The at least one arc-shaped limiting plate 13 is distributed around the central axis of the placement plate 10, and one end of the water-absorbing member 20 is limited between the arc-shaped limiting plate 13 and the inner wall surface 111 of the chute 11.
[0066] In the above configuration, by limiting one end of the water-absorbing component 20 between the arc-shaped limiting plate 13 and the inner wall surface 111 of the slide groove 11, the water-absorbing component 20 is positioned and installed. This prevents the water-absorbing component 20 from deviating from the preset sliding trajectory or falling out of the slide groove 11 during sliding. This ensures that the water-absorbing component 20 slides cyclically along the inner wall surface 111 of the slide groove 11. Furthermore, this achieves continuous sliding friction between the water-absorbing component 20 and the umbrella surface, ensuring the continuous water removal function of the water-removing mechanism 100.
[0067] Specifically, such as Figure 1 and Figure 2 As shown, in one embodiment, the placement plate 10 is a circular plate.
[0068] Specifically, such as Figure 1 and Figure 2 As shown, in one embodiment, two arc-shaped limiting plates 13 are provided on the bottom wall of the slide 11 to limit the position of the water-absorbing component 20 within the slide 11. The two arc-shaped limiting plates 13 are distributed around the central axis of the placement plate 10 and are spaced apart along the radial direction of the placement plate 10. One end of the water-absorbing component 20 is limited between the two arc-shaped limiting plates 13 and the inner wall surface 111 of the slide 11. This can better prevent the water-absorbing component 20 from deviating from the preset sliding trajectory or from falling out of the slide 11 during sliding. This can better ensure that the water-absorbing component 20 slides cyclically along the inner wall surface 111 of the slide 11. This achieves continuous sliding friction between the water-absorbing component 20 and the umbrella surface, thereby ensuring the continuous water removal function of the water removal mechanism 100.
[0069] Specifically, such as Figure 1 and Figure 2 As shown, in one embodiment, the placement plate 10 is provided with a socket 12, which is spaced apart from the slide groove 11, and one end of the umbrella is inserted into the socket.
[0070] Specifically, such as Figure 1 and Figure 2 As shown, in one embodiment, the jack 12 is located at the center of the placement plate 10.
[0071] Specifically, such as Figure 1 and Figure 2 As shown, in one embodiment, the absorbent element 20 and the placement plate 10 enclose a placement cavity, and the umbrella is located inside the placement cavity. This ensures that the absorbent element 20 has a large contact area with the surface of the umbrella, thereby improving the water absorption efficiency of the water removal mechanism 100.
[0072] Specifically, such as Figure 1 and Figure 2As shown, in one embodiment, the water removal mechanism 100 further includes a drive assembly 30, which includes a first rotating member 31 and a drive assembly 32. The first rotating member 31 is rotatably disposed within the slide groove 11 and located within one end of the water-absorbing member 20. The drive assembly 32 has its output end connected to the first rotating member 31 and is used to control the rotation of the first rotating member 31. When the drive assembly 32 drives the first rotating member 31 to rotate, friction is generated between the first rotating member 31 and the water-absorbing member 20. Under the action of this friction, the water-absorbing member 20 slides cyclically along the inner wall surface 111 of the slide groove 11, causing sliding friction between the water-absorbing member 20 and the umbrella surface to absorb and remove moisture from the umbrella surface.
[0073] Specifically, such as Figure 1 and Figure 2 As shown, in one embodiment, the drive assembly 32 includes a drive motor 321 and a connecting rod 322. The drive end of the drive motor 321 is connected to one end of the connecting rod 322.
[0074] Specifically, such as Figure 1 and Figure 2 As shown, in one embodiment, the drive assembly 30 further includes a gear rod 33 and a second rotating member 34. The gear rod 33 passes through the water-absorbing member 20 along a first direction, and one end of the gear rod 33 is connected to the first rotating member 31. The second rotating member 34 is rotatably disposed within the other end of the water-absorbing member 20 and is connected to the other end of the gear rod 33. The second rotating member 34 and the first rotating member 31 can synchronously drive the water-absorbing member 20 to slide cyclically along the inner wall surface 111 of the slide groove 11.
[0075] In the above configuration, the second rotating member and the first rotating member 31 can synchronously drive the water-absorbing member 20 to slide cyclically along the inner wall 111 of the slide groove 11 from both the upper and lower ends. This avoids the situation where the upper end of the water-absorbing member 20 is delayed relative to its lower end and cannot slide synchronously, which could affect the water absorption performance of the water removal mechanism 100, which might be caused by the water-absorbing member 20 being driven only by the first rotating member 31. This ensures the stability and reliability of the water removal mechanism 100.
[0076] Specifically, such as Figure 1 and Figure 2 As shown, in one embodiment, the water removal mechanism 100 further includes a pressure rod assembly 40, which includes a third rotating member 41 and a water-pressing rod 42. The third rotating member 41 is rotatably disposed within one end of the slide groove 11 and located within one end of the water-absorbing member 20; the water-pressing rod 42 passes through the water-absorbing member 20 along a first direction, with one end connected to the third rotating member 41. When the water-absorbing member 20 slides along the inner wall surface 111 of the slide groove 11, the water-absorbing member 20 can drive the third rotating member 41 and the water-pressing rod 42 to rotate, thereby rotating and squeezing the water-absorbing member 20.
[0077] In the above configuration, the pressure rod assembly 40 squeezes water from the absorbent component 20 by utilizing the rotational squeezing principle of the third rotating component 41 and the pressure rod 42. This avoids the problem that the absorbent component 20 cannot continuously absorb moisture from the umbrella surface due to excessive water absorption, thus ensuring the continuous water removal function of the water removal mechanism 100.
[0078] Specifically, such as Figure 1 and Figure 2 As shown, in one embodiment, the pressure rod assembly 40 further includes a fourth rotating member 43, which is rotatably disposed within the other end of the water-absorbing member 20 and connected to the other end of the water-pressing rod 42. When the water-absorbing member 20 slides along the inner wall surface 111 of the slide groove 11, the water-absorbing member 20 can drive the third rotating member 41, the water-pressing rod 42, and the fourth rotating member 43 to rotate synchronously, thereby rotating and squeezing the water-absorbing member 20. This can improve the water-squeezing capacity of the pressure rod assembly 40 on the water-absorbing member 20, thereby better ensuring the continuous water removal function of the water removal mechanism 100.
[0079] Specifically, such as Figure 1 and Figure 2 As shown, in one embodiment, the second to fourth rotating members have the same structure.
[0080] Specifically, such as Figure 1 and Figure 2 As shown, in one embodiment, gears are provided inside the first to fourth rotating parts, and the gears contact the water-absorbing part 20, generating friction on their contact surface.
[0081] Example 2
[0082] refer to Figure 1 and Figure 2 As shown, the present invention provides a water removal mechanism 100.
[0083] The aforementioned water removal mechanism 100 is used to remove moisture from the surface of an umbrella. It includes a placement plate 10 and a water-absorbing component 20. The placement plate 10 has a groove 11 on it. One end of the water-absorbing component 20 is disposed in the groove 11 and can slide along the inner wall 111 of the groove 11. When the umbrella is fixed on the placement plate 10, the water-absorbing component 20 is configured such that when one end slides along the inner wall 111 of the groove 11, the water-absorbing component 20 slides against the surface of the umbrella to absorb the moisture from the surface of the umbrella.
[0084] In the above configuration, a placement plate 10 and a water-absorbing component 20 are provided. The water-absorbing component 20 slides along the inner wall 111 of the groove 11 on the placement plate 10 to achieve sliding friction against the umbrella surface. Under the action of the sliding friction force generated between the umbrella surface and the water-absorbing component 20, the moisture on the umbrella surface can be absorbed and carried away by the water-absorbing component 20 in a timely manner, thereby realizing the water removal function of the water removal mechanism 100.
[0085] It should be noted that the principle by which the absorbent component 20 absorbs and removes moisture from the surface of the umbrella can be compared to the principle of wiping water on a table with a rag. The absorbent component 20 is equivalent to the function of a rag.
[0086] Specifically, in one embodiment, the absorbent element 20 is made of high-density absorbent fiber cloth, which ensures that the absorbent element 20 can effectively absorb moisture from the surface of the umbrella.
[0087] Specifically, in one embodiment, the groove 11 is an arc-shaped groove distributed around the central axis of the placement plate 10, and the water-absorbing member 20 has a hollow structure, one end of which is adapted to the arc-shaped groove. This ensures that the water-absorbing member 20 can slide cyclically along the inner wall surface 111 of the groove 11 on the placement plate 10, thereby achieving continuous sliding friction against the umbrella surface. This allows the water-absorbing member 20 to continuously absorb moisture from the umbrella surface, thereby improving the water absorption efficiency of the water removal mechanism 100.
[0088] It should be noted that the cyclic sliding in this application refers to any part of the outer wall of the water-absorbing component 20 being able to slide repeatedly along the closed inner wall of the arc-shaped groove.
[0089] Specifically, in one embodiment, the transverse cross-section of the absorbent 20 is an annular structure, comprising a first arc segment 21, a second arc segment 22, and a third arc segment 23. The second arc segment 22 is located outside the first arc segment 21; the third arc segment 23 is located between the first arc segment 21 and the second arc segment 22; the first arc segment 21 and the second arc segment 22 are coaxially arranged, and the third arc segment 23 is located at the ends of the first arc segment 21 and the second arc segment 22.
[0090] It should be noted that the first arc segment 21, the second arc segment 22, and the two third arc segments 23 form a closed ring structure, which is adapted to the slide groove 11 and can slide cyclically along the inner wall surface 111 of the slide groove 11 to achieve continuous sliding friction on the umbrella surface.
[0091] Specifically, in one embodiment, an arc-shaped limiting plate 13 is provided on the bottom wall of the chute 11, which is used to limit the position of the water-absorbing component 20 in the chute 11. The arc-shaped limiting plate 13 is distributed around the central axis of the placement plate 10, and one end of the water-absorbing component 20 is limited between the arc-shaped limiting plate 13 and the inner wall surface 111 of the chute 11.
[0092] In the above configuration, by limiting one end of the water-absorbing component 20 between the arc-shaped limiting plate 13 and the inner wall surface 111 of the slide groove 11, the water-absorbing component 20 is positioned and installed. This prevents the water-absorbing component 20 from deviating from the preset sliding trajectory or falling out of the slide groove 11 during sliding. This ensures that the water-absorbing component 20 slides cyclically along the inner wall surface 111 of the slide groove 11. Furthermore, this achieves continuous sliding friction between the water-absorbing component 20 and the umbrella surface, ensuring the continuous water removal function of the water-removing mechanism 100.
[0093] Specifically, such as Figure 1 As shown, in one embodiment, the placement plate 10 is a circular plate.
[0094] Specifically, in one embodiment, the placement plate 10 is provided with a socket 12, which is spaced apart from the slide groove 11, and one end of the umbrella is inserted into the socket.
[0095] Specifically, in one embodiment, the jack 12 is located at the center of the placement plate 10.
[0096] Specifically, in one embodiment, the absorbent element 20 and the placement plate 10 form a placement cavity, and the umbrella is located inside the placement cavity. This ensures that the absorbent element 20 has a large contact area with the surface of the umbrella, thereby improving the water absorption efficiency of the water removal mechanism 100.
[0097] Specifically, in one embodiment, the water removal mechanism 100 further includes a drive assembly 30, which includes a first rotating member 31 and a drive assembly 32. The first rotating member 31 is rotatably disposed within the slide groove 11 and located within one end of the water-absorbing member 20. The drive assembly 32 has its output end connected to the first rotating member 31 and is used to control the rotation of the first rotating member 31. When the drive assembly 32 drives the first rotating member 31 to rotate, friction is generated between the first rotating member 31 and the water-absorbing member 20. Under the action of this friction, the water-absorbing member 20 slides cyclically along the inner wall surface 111 of the slide groove 11, causing the water-absorbing member 20 to slide and rub against the umbrella surface, thereby absorbing and removing moisture from the umbrella surface.
[0098] Specifically, in one embodiment, the drive assembly 32 includes a drive motor 321 and a connecting rod 322. The drive end of the drive motor 321 is connected to one end of the connecting rod 322.
[0099] Specifically, in one embodiment, the drive assembly 30 further includes a gear rod 33 and a second rotating member 34. The gear rod 33 passes through the water-absorbing member 20 along a first direction, and one end of the gear rod 33 is connected to the first rotating member 31. The second rotating member 34 is rotatably disposed within the other end of the water-absorbing member 20 and is connected to the other end of the gear rod 33. The second rotating member 34 and the first rotating member 31 can synchronously drive the water-absorbing member 20 to slide cyclically along the inner wall surface 111 of the slide groove 11.
[0100] In the above configuration, the second rotating member and the first rotating member 31 can synchronously drive the water-absorbing member 20 to slide cyclically along the inner wall 111 of the slide groove 11 from both the upper and lower ends. This avoids the situation where the upper end of the water-absorbing member 20 is delayed relative to its lower end and cannot slide synchronously, which could affect the water absorption performance of the water removal mechanism 100, which might be caused by the water-absorbing member 20 being driven only by the first rotating member 31. This ensures the stability and reliability of the water removal mechanism 100.
[0101] Specifically, in one embodiment, the water removal mechanism 100 further includes a pressure rod assembly 40, which includes a third rotating member 41 and a water-pressing rod 42. The third rotating member 41 is rotatably disposed within one end of the slide groove 11 and located within one end of the water-absorbing member 20; the water-pressing rod 42 passes through the water-absorbing member 20 along a first direction, with one end connected to the third rotating member 41. When the water-absorbing member 20 slides along the inner wall surface 111 of the slide groove 11, the water-absorbing member 20 can drive the third rotating member 41 and the water-pressing rod 42 to rotate, thereby rotating and squeezing the water-absorbing member 20.
[0102] In the above configuration, the pressure rod assembly 40 squeezes water from the absorbent component 20 by utilizing the rotational squeezing principle of the third rotating component 41 and the pressure rod 42. This avoids the problem that the absorbent component 20 cannot continuously absorb moisture from the umbrella surface due to excessive water absorption, thus ensuring the continuous water removal function of the water removal mechanism 100.
[0103] Specifically, in one embodiment, the pressure rod assembly 40 further includes a fourth rotating member 43, which is rotatably disposed within the other end of the water-absorbing member 20 and connected to the other end of the water-pressing rod 42. When the water-absorbing member 20 slides along the inner wall surface 111 of the slide groove 11, the water-absorbing member 20 can drive the third rotating member 41, the water-pressing rod 42, and the fourth rotating member 43 to rotate synchronously, thereby rotating and squeezing the water-absorbing member 20. This can improve the water-squeezing capacity of the pressure rod assembly 40 on the water-absorbing member 20, thereby better ensuring the continuous water removal function of the water removal mechanism 100.
[0104] Specifically, in one embodiment, the second to fourth rotating members have the same structure.
[0105] Specifically, in one embodiment, gears are provided inside the first to fourth rotating members, and the gears contact the water-absorbing member 20, generating friction on their contact surface.
[0106] It should be noted that the difference between Embodiment 2 and Embodiment 1 is that only a single arc-shaped limiting plate 13 is provided.
[0107] Example 3
[0108] refer to Figure 1 and Figure 2 As shown, the present invention provides a water removal mechanism 100.
[0109] The aforementioned water removal mechanism 100 is used to remove moisture from the surface of an umbrella. It includes a placement plate 10 and a water-absorbing component 20. The placement plate 10 has a groove 11 on it. One end of the water-absorbing component 20 is disposed in the groove 11 and can slide along the inner wall 111 of the groove 11. When the umbrella is fixed on the placement plate 10, the water-absorbing component 20 is configured such that when one end slides along the inner wall 111 of the groove 11, the water-absorbing component 20 slides against the surface of the umbrella to absorb the moisture from the surface of the umbrella.
[0110] In the above configuration, a placement plate 10 and a water-absorbing component 20 are provided. The water-absorbing component 20 slides along the inner wall 111 of the groove 11 on the placement plate 10 to achieve sliding friction against the umbrella surface. Under the action of the sliding friction force generated between the umbrella surface and the water-absorbing component 20, the moisture on the umbrella surface can be absorbed and carried away by the water-absorbing component 20 in a timely manner, thereby realizing the water removal function of the water removal mechanism 100.
[0111] It should be noted that the principle by which the absorbent component 20 absorbs and removes moisture from the surface of the umbrella can be compared to the principle of wiping water on a table with a rag. The absorbent component 20 is equivalent to the function of a rag.
[0112] Specifically, in one embodiment, the absorbent element 20 is made of high-density absorbent fiber cloth, which ensures that the absorbent element 20 can effectively absorb moisture from the surface of the umbrella.
[0113] Specifically, in one embodiment, the groove 11 is an arc-shaped groove distributed around the central axis of the placement plate 10, and the water-absorbing member 20 has a hollow structure, one end of which is adapted to the arc-shaped groove. This ensures that the water-absorbing member 20 can slide cyclically along the inner wall surface 111 of the groove 11 on the placement plate 10, thereby achieving continuous sliding friction against the umbrella surface. This allows the water-absorbing member 20 to continuously absorb moisture from the umbrella surface, thereby improving the water absorption efficiency of the water removal mechanism 100.
[0114] Specifically, in one embodiment, the transverse cross-section of the absorbent 20 is an annular structure, comprising a first arc segment 21, a second arc segment 22, and a third arc segment 23. The second arc segment 22 is located outside the first arc segment 21; the third arc segment 23 is located between the first arc segment 21 and the second arc segment 22; the first arc segment 21 and the second arc segment 22 are coaxially arranged, and the third arc segment 23 is located at the ends of the first arc segment 21 and the second arc segment 22.
[0115] It should be noted that the first arc segment 21, the second arc segment 22, and the two third arc segments 23 form a closed ring structure, which is adapted to the slide groove 11 and can slide cyclically along the inner wall surface 111 of the slide groove 11 to achieve continuous sliding friction on the umbrella surface.
[0116] Specifically, such as Figure 1 As shown, in one embodiment, the placement plate 10 is a circular plate.
[0117] Specifically, in one embodiment, the placement plate 10 is provided with a socket 12, which is spaced apart from the slide groove 11, and one end of the umbrella is inserted into the socket.
[0118] Specifically, in one embodiment, the jack 12 is located at the center of the placement plate 10.
[0119] Specifically, in one embodiment, the absorbent element 20 and the placement plate 10 form a placement cavity, and the umbrella is located inside the placement cavity. This ensures that the absorbent element 20 has a large contact area with the surface of the umbrella, thereby improving the water absorption efficiency of the water removal mechanism 100.
[0120] Specifically, in one embodiment, the water removal mechanism 100 further includes a drive assembly 30, which includes a first rotating member 31 and a drive assembly 32. The first rotating member 31 is rotatably disposed within the slide groove 11 and located within one end of the water-absorbing member 20. The drive assembly 32 has its output end connected to the first rotating member 31 and is used to control the rotation of the first rotating member 31. When the drive assembly 32 drives the first rotating member 31 to rotate, friction is generated between the first rotating member 31 and the water-absorbing member 20. Under the action of this friction, the water-absorbing member 20 slides cyclically along the inner wall surface 111 of the slide groove 11, causing the water-absorbing member 20 to slide and rub against the umbrella surface, thereby absorbing and removing moisture from the umbrella surface.
[0121] Specifically, in one embodiment, the drive assembly 32 includes a drive motor 321 and a connecting rod 322. The drive end of the drive motor 321 is connected to one end of the connecting rod 322.
[0122] Specifically, in one embodiment, the water removal mechanism 100 further includes a pressure rod assembly 40, which includes a third rotating member 41 and a water-pressing rod 42. The third rotating member 41 is rotatably disposed within one end of the slide groove 11 and located within one end of the water-absorbing member 20; the water-pressing rod 42 passes through the water-absorbing member 20 along a first direction, with one end connected to the third rotating member 41. When the water-absorbing member 20 slides along the inner wall surface 111 of the slide groove 11, the water-absorbing member 20 can drive the third rotating member 41 and the water-pressing rod 42 to rotate, thereby rotating and squeezing the water-absorbing member 20.
[0123] In the above configuration, the pressure rod assembly 40 squeezes water from the absorbent component 20 by utilizing the rotational squeezing principle of the third rotating component 41 and the pressure rod 42. This avoids the problem that the absorbent component 20 cannot continuously absorb moisture from the umbrella surface due to excessive water absorption, thus ensuring the continuous water removal function of the water removal mechanism 100.
[0124] Specifically, in one embodiment, the pressure rod assembly 40 further includes a fourth rotating member 43, which is rotatably disposed within the other end of the water-absorbing member 20 and connected to the other end of the water-pressing rod 42. When the water-absorbing member 20 slides along the inner wall surface 111 of the slide groove 11, the water-absorbing member 20 can drive the third rotating member 41, the water-pressing rod 42, and the fourth rotating member 43 to rotate synchronously, thereby rotating and squeezing the water-absorbing member 20. This can improve the water-squeezing capacity of the pressure rod assembly 40 on the water-absorbing member 20, thereby better ensuring the continuous water removal function of the water removal mechanism 100.
[0125] Specifically, in one embodiment, the third and fourth rotating members have the same structure.
[0126] Specifically, in one embodiment, gears are provided inside the first, third and fourth rotating members, and the gears contact the water-absorbing member 20, generating friction on their contact surface.
[0127] The difference between Embodiment 3 and Embodiment 1 is that Embodiment 3 does not have an arc-shaped limiting plate 13, and the drive assembly 32 does not have a gear rod 33 and a second rotating component 34.
[0128] Example 4
[0129] like Figures 3 to 7 As shown, the present invention also provides an umbrella dryer, which includes a cylinder 200 and a water removal mechanism 100. The water removal mechanism 100 is disposed inside the cylinder 200.
[0130] Specifically, such as Figures 3 to 7 As shown, in one embodiment, the placement plate 10 divides the cylinder 200 into a first cavity 201 and a second cavity 202 connected to the first cavity 201, wherein the first cavity 201 is located above the second cavity 202, the water-absorbing member 20 is disposed in the first cavity 201, and the second cavity 202 is used to store rainwater flowing in from the first cavity 201.
[0131] Specifically, such as Figures 3 to 7 As shown, in one embodiment, the placement plate 10 is provided with a connecting hole 14, which is used to connect the first cavity 201 and the second cavity 202.
[0132] Specifically, such as Figures 3 to 7As shown, in one embodiment, the umbrella dryer further includes a heating component 300 for heating the inside of the tube to heat and remove residual moisture from the umbrella surface.
[0133] Specifically, such as Figures 3 to 7 As shown, in one embodiment, the umbrella dryer also includes a base 400, on which the cylinder 200 is disposed, and a heating component 300 is disposed within the base 400.
[0134] Specifically, such as Figures 3 to 7 As shown, in one embodiment, the heating assembly 300 includes a fan 301 and a heating element 302. The fan 301 is located below the heating element 302 and can blow the heat generated by the heating element 302 into the cylinder 200 to heat and remove residual moisture from the umbrella surface.
[0135] Specifically, such as Figures 3 to 7 As shown, in one embodiment, the umbrella dryer further includes a cap 500 and a bracket 600. The cap 500 covers the upper end of the absorbent member 20, and the bracket 600 is disposed on the cap 500. The cylinder 200 has a side opening, through which the bracket 600 engages with the cylinder 200. The cap 500 and the bracket 600 support the absorbent member 20 and define the vertical mounting position of the absorbent member 20 within the cylinder 200.
[0136] Specifically, such as Figures 3 to 7 As shown, in one embodiment, the umbrella dryer also includes a protective tube 700, one end of which is sleeved on the drive end of the drive motor, and the other end of the protective tube 700 extends into the slide groove 11. The connecting rod 322 passes through the protective tube 700 and can drive the first rotating member 31 to rotate within the protective tube 700.
[0137] Specifically, such as Figures 3 to 7 As shown, in one embodiment, the water removal mechanism 100 is used to remove moisture from the surface of the umbrella, and includes a placement plate 10 and a water-absorbing member 20. The placement plate 10 has a groove 11 on it, and one end of the water-absorbing member 20 is disposed within the groove 11, allowing it to slide along the inner wall 111 of the groove 11. The umbrella is fixed to the placement plate 10, and the water-absorbing member 20 is configured such that when one end slides along the inner wall 111 of the groove 11, the water-absorbing member 20 slides against the umbrella surface, thereby absorbing moisture from the umbrella surface.
[0138] In the above configuration, a placement plate 10 and a water-absorbing component 20 are provided. The water-absorbing component 20 slides along the inner wall 111 of the groove 11 on the placement plate 10 to achieve sliding friction against the umbrella surface. Under the action of the sliding friction force generated between the umbrella surface and the water-absorbing component 20, the moisture on the umbrella surface can be absorbed and carried away by the water-absorbing component 20 in a timely manner, thereby realizing the water removal function of the water removal mechanism 100.
[0139] It should be noted that the principle by which the absorbent component 20 absorbs and removes moisture from the surface of the umbrella can be compared to the principle of wiping water on a table with a rag. The absorbent component 20 is equivalent to the function of a rag.
[0140] Specifically, in one embodiment, the absorbent element 20 is made of high-density absorbent fiber cloth, which ensures that the absorbent element 20 can effectively absorb moisture from the surface of the umbrella.
[0141] Specifically, such as Figures 3 to 7 As shown, in one embodiment, the groove 11 is an arc-shaped groove distributed around the central axis of the placement plate 10, and the water-absorbing member 20 has a hollow structure, one end of which is adapted to the arc-shaped groove. This ensures that the water-absorbing member 20 can slide cyclically along the inner wall surface 111 of the groove 11 on the placement plate 10 to achieve continuous sliding friction on the umbrella surface. This allows the water-absorbing member 20 to continuously absorb moisture from the umbrella surface, thereby improving the water absorption efficiency of the water removal mechanism 100.
[0142] Specifically, such as Figures 3 to 7 As shown, in one embodiment, the transverse cross-section of the absorbent 20 is an annular structure, comprising a first arc segment 21, a second arc segment 22, and a third arc segment 23. The second arc segment 22 is located outside the first arc segment 21; the third arc segment 23 is located between the first arc segment 21 and the second arc segment 22; the first arc segment 21 and the second arc segment 22 are coaxially arranged, and the third arc segment 23 is located at the ends of the first arc segment 21 and the second arc segment 22.
[0143] It should be noted that the first arc segment 21, the second arc segment 22, and the two third arc segments 23 form a closed ring structure, which is adapted to the slide groove 11 and can slide cyclically along the inner wall surface 111 of the slide groove 11 to achieve continuous sliding friction on the umbrella surface.
[0144] Specifically, such as Figures 3 to 7 As shown, in one embodiment, at least one arc-shaped limiting plate 13 is provided on the bottom wall of the chute 11 to limit the position of the water-absorbing member 20 in the chute 11. The at least one arc-shaped limiting plate 13 is distributed around the central axis of the placement plate 10, and one end of the water-absorbing member 20 is limited between the arc-shaped limiting plate 13 and the inner wall surface 111 of the chute 11.
[0145] In the above configuration, by limiting one end of the water-absorbing component 20 between the arc-shaped limiting plate 13 and the inner wall surface 111 of the slide groove 11, the water-absorbing component 20 is positioned and installed. This prevents the water-absorbing component 20 from deviating from the preset sliding trajectory or falling out of the slide groove 11 during sliding. This ensures that the water-absorbing component 20 slides cyclically along the inner wall surface 111 of the slide groove 11. Furthermore, this achieves continuous sliding friction between the water-absorbing component 20 and the umbrella surface, ensuring the continuous water removal function of the water-removing mechanism 100.
[0146] Specifically, such as Figures 3 to 7 As shown, in one embodiment, the placement plate 10 is a circular plate.
[0147] Specifically, such as Figures 3 to 7 As shown, in one embodiment, two arc-shaped limiting plates 13 are provided on the bottom wall of the slide 11 to limit the position of the water-absorbing component 20 within the slide 11. The two arc-shaped limiting plates 13 are distributed around the central axis of the placement plate 10 and are spaced apart along the radial direction of the placement plate 10. One end of the water-absorbing component 20 is limited between the two arc-shaped limiting plates 13 and the inner wall surface 111 of the slide 11. This can better prevent the water-absorbing component 20 from deviating from the preset sliding trajectory or from falling out of the slide 11 during sliding. This can better ensure that the water-absorbing component 20 slides cyclically along the inner wall surface 111 of the slide 11. This achieves continuous sliding friction between the water-absorbing component 20 and the umbrella surface, thereby ensuring the continuous water removal function of the water removal mechanism 100.
[0148] Specifically, such as Figures 3 to 7 As shown, in one embodiment, the placement plate 10 is provided with a socket 12, which is spaced apart from the slide groove 11, and one end of the umbrella is inserted into the socket.
[0149] Specifically, such as Figures 3 to 7 As shown, in one embodiment, the jack 12 is located at the center of the placement plate 10.
[0150] Specifically, such as Figures 3 to 7 As shown, in one embodiment, the absorbent element 20 and the placement plate 10 enclose a placement cavity, and the umbrella is located inside the placement cavity. This ensures that the absorbent element 20 has a large contact area with the surface of the umbrella, thereby improving the water absorption efficiency of the water removal mechanism 100.
[0151] Specifically, such as Figures 3 to 7As shown, in one embodiment, the water removal mechanism 100 further includes a drive assembly 30, which includes a first rotating member 31 and a drive assembly 32. The first rotating member 31 is rotatably disposed within the slide groove 11 and located within one end of the water-absorbing member 20. The drive assembly 32 has its output end connected to the first rotating member 31 and is used to control the rotation of the first rotating member 31. When the drive assembly 32 drives the first rotating member 31 to rotate, friction is generated between the first rotating member 31 and the water-absorbing member 20. Under the action of this friction, the water-absorbing member 20 slides cyclically along the inner wall surface 111 of the slide groove 11, causing sliding friction between the water-absorbing member 20 and the umbrella surface to absorb and remove moisture from the umbrella surface.
[0152] Specifically, such as Figures 3 to 7 As shown, in one embodiment, the drive assembly 32 includes a drive motor 321 and a connecting rod 322. The drive end of the drive motor 321 is connected to one end of the connecting rod 322.
[0153] Specifically, such as Figures 3 to 7 As shown, in one embodiment, the drive assembly 30 further includes a gear rod 33 and a second rotating member 34. The gear rod 33 passes through the water-absorbing member 20 along a first direction, and one end of the gear rod 33 is connected to the first rotating member 31. The second rotating member 34 is rotatably disposed within the other end of the water-absorbing member 20 and is connected to the other end of the gear rod 33. The second rotating member 34 and the first rotating member 31 can synchronously drive the water-absorbing member 20 to slide cyclically along the inner wall surface 111 of the slide groove 11.
[0154] In the above configuration, the second rotating member and the first rotating member 31 can synchronously drive the water-absorbing member 20 to slide cyclically along the inner wall 111 of the slide groove 11 from both the upper and lower ends. This avoids the situation where the upper end of the water-absorbing member 20 is delayed relative to its lower end and cannot slide synchronously, which could affect the water absorption performance of the water removal mechanism 100, which might be caused by the water-absorbing member 20 being driven only by the first rotating member 31. This ensures the stability and reliability of the water removal mechanism 100.
[0155] Specifically, such as Figures 3 to 7 As shown, in one embodiment, the water removal mechanism 100 further includes a pressure rod assembly 40, which includes a third rotating member 41 and a water-pressing rod 42. The third rotating member 41 is rotatably disposed within one end of the slide groove 11 and located within one end of the water-absorbing member 20; the water-pressing rod 42 passes through the water-absorbing member 20 along a first direction, with one end connected to the third rotating member 41. When the water-absorbing member 20 slides along the inner wall surface 111 of the slide groove 11, the water-absorbing member 20 can drive the third rotating member 41 and the water-pressing rod 42 to rotate, thereby rotating and squeezing the water-absorbing member 20.
[0156] In the above configuration, the pressure rod assembly 40 squeezes water from the absorbent component 20 by utilizing the rotational squeezing principle of the third rotating component 41 and the pressure rod 42. This avoids the problem that the absorbent component 20 cannot continuously absorb moisture from the umbrella surface due to excessive water absorption, thus ensuring the continuous water removal function of the water removal mechanism 100.
[0157] Specifically, such as Figures 3 to 7 As shown, in one embodiment, the pressure rod assembly 40 further includes a fourth rotating member 43, which is rotatably disposed within the other end of the water-absorbing member 20 and connected to the other end of the water-pressing rod 42. When the water-absorbing member 20 slides along the inner wall surface 111 of the slide groove 11, the water-absorbing member 20 can drive the third rotating member 41, the water-pressing rod 42, and the fourth rotating member 43 to rotate synchronously, thereby rotating and squeezing the water-absorbing member 20. This can improve the water-squeezing capacity of the pressure rod assembly 40 on the water-absorbing member 20, thereby better ensuring the continuous water removal function of the water removal mechanism 100.
[0158] Specifically, such as Figures 3 to 7 As shown, in one embodiment, the second to fourth rotating members have the same structure.
[0159] Specifically, such as Figures 3 to 7 As shown, in one embodiment, gears are provided inside the first to fourth rotating parts, and the gears contact the water-absorbing part 20, generating friction on their contact surface.
[0160] It should be noted that when the umbrella is placed in the umbrella dryer and the start / stop switch of the drive motor 321 is pressed, the drive motor 321, located in the motor cavity (inner cavity of the base 400) at the bottom of the machine, drives the first rotating component 31 to rotate. The rotation is transmitted sequentially to the gear rod 33 and the high-density absorbent fiber cloth. There is tension between the high-density absorbent fiber cloth and the gear rod 33, which drives the high-density absorbent fiber cloth to rotate. The high-density absorbent fiber cloth rotates counterclockwise, absorbing moisture from the surface of the umbrella through friction. The water tank (second cavity 202) has a water outlet, which is sealed with a rubber sleeve 800. When the water level reaches a certain point, the rubber sleeve 800 can be removed to release the water. At the same time, there is also a water-pressing rod 42 on the high-density absorbent fiber cloth, which provides pressure to squeeze the high-density absorbent fiber cloth, thereby transporting the water from the high-density absorbent fiber cloth to the second cavity 202 below.
[0161] It should be noted that the drive motor 321 is placed at the bottom of the entire device. The drive motor 321 is externally powered, that is, the drive motor 321 is connected to an external socket through a power cord.
[0162] Although the invention has been described with reference to preferred embodiments, various modifications can be made and components can be replaced with equivalents without departing from the scope of the invention. In particular, the technical features mentioned in the various embodiments can be combined in any manner as long as there is no structural conflict. The invention is not limited to the specific embodiments disclosed herein, but includes all technical solutions falling within the scope of the claims.
Claims
1. A water removal mechanism, characterized in that, For removing moisture from the surface of an umbrella, it includes: A placement plate having a groove thereon, the placement plate being used to place umbrellas; and A water-absorbing component, one end of which is disposed in the groove, and the water-absorbing component can slide along the inner wall surface of the groove; The absorbent component is configured such that when one end slides along the inner wall of the groove, the absorbent component slides against the surface of the umbrella to absorb and remove moisture from the surface of the umbrella. The chute is an arc-shaped chute or an annular chute. The arc-shaped chute and the annular chute are arranged continuously or at intervals around the circumference of the placement plate. When the chute is an arc-shaped chute, the transverse cross-section of the water-absorbing element is a ring structure. The placement plate is provided with a socket, which is spaced apart from the slide groove. One end of the umbrella is inserted into the socket, and the slide groove surrounds the socket, so that the water-absorbing component surrounds the socket. The water-absorbing component and the placement plate form a placement cavity, and the umbrella is located in the placement cavity.
2. The water removal mechanism according to claim 1, characterized in that, The absorbent component includes: The first arc segment; and The second arc segment is disposed outside the first arc segment; and The third arc segment is positioned between the first arc segment and the second arc segment; The first arc segment and the second arc segment are coaxially arranged, and the third arc segment is located at the ends of the first arc segment and the second arc segment. The water-absorbing component can slide cyclically along the inner wall of the groove.
3. The water removal mechanism according to claim 2, characterized in that, At least one arc-shaped limiting plate is provided on the bottom wall of the chute to limit the position of the water-absorbing component in the chute. The at least one arc-shaped limiting plate is distributed around the central axis of the placement plate, and one end of the water-absorbing component is limited between the arc-shaped limiting plate and the inner wall surface of the chute.
4. The water removal mechanism according to any one of claims 1 to 3, characterized in that, It also includes a driver component, which includes: A first rotating member, rotatably disposed within the chute and located at one end of the water-absorbing member; and A drive component, the output of which is connected to the first rotating member, is used to control the rotation of the first rotating member; When the driving component drives the first rotating member to rotate, friction is generated between the first rotating member and the water-absorbing member. Under the action of the friction, the water-absorbing member slides cyclically along the inner wall of the groove, so that the water-absorbing member slides against the umbrella surface to absorb and remove moisture from the umbrella surface.
5. The water removal mechanism according to claim 4, characterized in that, The driving component also includes: A gear rod, extending along a first direction, is disposed within the absorbent member, one end of which is connected to the first rotating member; and The second rotating component is rotatably disposed inside the other end of the water-absorbing component and connected to the other end of the gear rod; The second rotating component and the first rotating component can synchronously drive the water-absorbing component to slide cyclically along the inner wall of the chute.
6. The water removal mechanism according to claim 4, characterized in that, It also includes a strut assembly, the strut assembly comprising: A third rotating component is rotatably disposed within one end of the chute and located within one end of the water-absorbing component; and A water-pressing rod is inserted into the water-absorbing component along a first direction, and one end of the water-pressing rod is connected to the third rotating component. When the water-absorbing component slides along the inner wall of the groove, it can drive the third rotating component and the water-pressing rod to rotate, thereby rotating and squeezing the water-absorbing component.
7. The water removal mechanism according to claim 6, characterized in that, The pressure rod assembly also includes a fourth rotating member, which is rotatably disposed inside the other end of the water-absorbing member and connected to the other end of the water-pressing rod. When the water-absorbing member slides along the inner wall of the groove, the water-absorbing member can drive the third rotating member, the water-pressing rod, and the fourth rotating member to rotate synchronously to rotate and squeeze the water-absorbing member.
8. A type of umbrella dryer, characterized in that, include: A cylindrical container used to hold umbrellas; as well as The water removal mechanism as described in any one of claims 1 to 7 is disposed within the cylinder.
9. The umbrella dryer according to claim 8, characterized in that, The placement plate divides the cylinder into a first cavity and a second cavity connected to the first cavity, wherein the first cavity is located above the second cavity, the water-absorbing element is disposed in the first cavity, and the second cavity is used to store rainwater flowing in from the first cavity.
10. The umbrella dryer according to claim 9, characterized in that, The placement plate is provided with a connecting hole, which is used to connect the first cavity and the second cavity.
11. The umbrella dryer according to claim 8, characterized in that, It also includes a heating component for heating the inside of the tube to remove residual moisture from the surface of the umbrella.
12. The umbrella dryer according to claim 11, characterized in that, It also includes a base, on which the cylinder is disposed, and the heating component is disposed within the base.
Citation Information
Patent Citations
Water remover for umbrella
CN102338549A
Water removal mechanism and umbrella dryer
CN221349539U
Dewatering device of umbrella
JP1993091916A