Fur drying apparatus
By adopting a container and bottom cover design in the fur spin dryer and through an improved connection structure, the container can be quickly disassembled, solving the technical problems existing in the prior art, enabling rapid disassembly and maintenance, and facilitating the maintenance of the drive components.
Patent Information
- Application Number
- CN202311250579.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-09-26
- Publication Date
- 2025-11-28
- Estimated Expiration
- 2043-09-26
AI Technical Summary
The maintenance process for the drive motor of existing fur spin dryers is cumbersome and the disassembly efficiency is low.
The container and bottom cover are connected by a through first and second flanges. Quick disassembly is achieved using bolted connections and a plug-in structure, reducing the number of turns during locking. Disassembly can be completed by slightly loosening the bolts and nuts and moving the whole unit to the opening.
It improves the disassembly efficiency of the housing and bottom cover, facilitates rapid maintenance of the drive components, simplifies the disassembly process, and improves disassembly efficiency.
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Figure CN117073314B_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the technical field of fur dyeing and finishing equipment, and more specifically, relates to a fur spin-drying device. Background Technology
[0002] Fur dyeing and finishing refers to the process of dyeing fur with dyes to achieve a uniform and durable color. After dyeing and finishing, the fur needs to be spun dry in order to lock in the dye color. The above process requires the use of a spin dryer.
[0003] In existing spin dryers, the drive motor is typically installed at the bottom of the inner shell. The shell includes a receiving cylinder and a bottom cover for sealing the lower opening of the receiving cylinder. The bottom cover and the receiving cylinder are connected by multiple sets of bolted fasteners. When the drive motor needs maintenance, these multiple sets of bolted fasteners must be disassembled one by one, which is extremely tedious and reduces disassembly efficiency. Summary of the Invention
[0004] This invention provides a fur spin-drying device that enables quick disassembly of the housing and bottom cover, improving disassembly efficiency and facilitating rapid maintenance of the drive components.
[0005] To achieve the above objectives, the technical solution adopted by the present invention is as follows: A fur spin-drying device is provided, comprising a receiving cylinder, a spin-drying cylinder, a bottom cover, and a driving component. The receiving cylinder has a vertically penetrating receiving cavity. A first flange is provided at the lower end of the receiving cylinder, and a first mounting groove with an outward opening is provided on the outer peripheral wall of the first flange. The spin-drying cylinder's main shaft is rotatably connected to the receiving cylinder in a vertical direction. The spin-drying cylinder has an upward opening and is used for spin-drying fur. The bottom cover seals the lower opening of the receiving cylinder. A second flange is provided at the upper end of the bottom cover. A second mounting groove with an outward opening is provided on the outer peripheral wall of the second flange and corresponds one-to-one with the first mounting groove. The driving component is located at the inner bottom of the bottom cover. The driving end of the driving component is connected to a driving shaft that extends upward and is connected to the bottom surface of the spin-drying cylinder. The driving component is used to drive the spin-drying cylinder to rotate. The first flange and the second flange are connected by bolts that pass through the first and second mounting grooves.
[0006] In one possible implementation, the drive shaft includes a first rotating shaft and a second rotating shaft. The first rotating shaft is connected to the drive end of the drive component and extends upward. The upper end of the first rotating shaft is connected to a first mounting plate, and the top surface of the first mounting plate is connected to an upwardly extending insertion post. The second rotating shaft is connected to the lower part of the swivel drum and extends downward. The lower end of the second rotating shaft is connected to a second mounting plate, and the second mounting plate is provided with an axially penetrating insertion hole that engages with the insertion post.
[0007] In some embodiments, a threaded sleeve is threaded around the outer periphery of the first rotating shaft, and a rotating ring is rotatably fitted around the outer periphery of the threaded sleeve. A first hinge rod extending outward is hinged around the outer periphery of the first mounting plate. A second hinge rod is provided between the first hinge rod and the rotating ring. A hook for hooking onto the top surface of the second mounting plate is connected to the first hinge rod. The threaded sleeve can move upward and drive the first hinge rod to swing vertically so that the hook hooks onto the top surface of the second mounting plate.
[0008] In some embodiments, the inner peripheral wall of the insertion hole is provided with a slot communicating with the insertion hole, and the peripheral wall of the insertion post is provided with a sliding groove facing the slot. The insertion post and the second mounting plate are locked by elastic locking members located in the sliding groove and the slot.
[0009] In some embodiments, the elastic locking member includes an elastic element and a locking block. The elastic element is connected to the inner bottom wall of the sliding groove and extends to the outer side of the sliding groove. The locking block is connected to the extended end of the elastic element and slides in cooperation with the sliding groove. The locking block can move into the slot under the elastic pushing action of the elastic element.
[0010] In some embodiments, the bottom surface of the first mounting plate is provided with a plug-in groove that extends in the vertical direction and communicates with the sliding groove. A clamping rod is slidably connected in the plug-in groove, and the threaded sleeve can push the clamping rod upward so that the upper end of the clamping rod presses against the locking block.
[0011] In some embodiments, the outer peripheral wall of the locking block is provided with a downward-facing locking groove, and the upper end of the clamping rod is used to engage with the locking groove. The clamping rod can be inserted into the locking groove under the push of the threaded sleeve to prevent the locking block from disengaging from the slot.
[0012] In some embodiments, a baffle plate located below the sling is provided inside the receiving cylinder, and a drive shaft is provided to pass through the baffle plate upward and is rotatably connected to the baffle plate.
[0013] In some embodiments, a water outlet hole is provided through the peripheral wall of the sling, and a water outlet pipe is connected to the receiving cylinder, with the water outlet pipe located above the baffle plate.
[0014] In some embodiments, the center of the baffle plate is arched upwards.
[0015] Compared with the prior art, the fur spin-drying device provided in this embodiment can disassemble the first flange and the second flange by slightly loosening the bolts and nuts and moving the bolts and nuts as a whole to the opening of the first mounting groove and the second mounting groove (outside the first flange and the second flange). This realizes the rapid disassembly of the receiving cylinder and the bottom cover, improves the disassembly efficiency, and facilitates the rapid maintenance of the drive components. Attached Figure Description
[0016] To more clearly illustrate the technical solutions in the embodiments of the present invention, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the 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.
[0017] Figure 1 This is a frontal cross-sectional view of the fur spin-drying device provided in an embodiment of the present invention;
[0018] Figure 2 This is an embodiment of the present invention. Figure 1 A magnified schematic diagram of the local structure at point I;
[0019] Figure 3 This is an embodiment of the present invention. Figure 1 A front sectional view of the second mounting plate.
[0020] Figure 4 This is an embodiment of the present invention. Figure 1 A schematic diagram of the front sectional view of the locking block;
[0021] Figure 5 This is an embodiment of the present invention. Figure 1 A bottom view of the structure of the first flange in the middle;
[0022] Figure 6 This is an embodiment of the present invention. Figure 1 A top view of the second flange.
[0023] The following are the labeling elements in the figure:
[0024] 10. Receiving cylinder; 11. Receiving cavity; 12. First flange; 121. First mounting groove; 13. Water outlet pipe; 14. Base; 20. Swinging cylinder; 21. Water outlet hole; 30. Bottom cover; 31. Second flange; 311. Second mounting groove; 32. Bolt connector; 40. Driving component; 50. Drive shaft; 51. First rotating shaft; 511. First mounting plate; 512. Insertion post; 513. Sliding groove; 514. Insertion groove; 52. Second rotating shaft; 521. Second mounting plate; 522. Insertion hole; 523. Slot; 60. Threaded sleeve; 61. Rotary ring; 62. Second hinge rod; 63. First hinge rod; 64. Hook; 70. Elastic locking component; 71. Locking block; 711. Locking groove; 712. Arc-shaped transition part; 72. Elastic component; 80. Tightening rod; 90. Water baffle. Detailed Implementation
[0025] To make the technical problems, solutions, and beneficial effects of this invention clearer, the invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative and not intended to limit the invention.
[0026] It should be noted that when an element is referred to as being "set on" another element, it can be directly on or indirectly on the other element. It should be understood that the terms "length," "width," "upper," "lower," "front," "rear," "top," "bottom," "inner," and "outer," etc., indicating orientation or positional relationships based on the orientation or positional relationships shown in the accompanying drawings, are only for the convenience of describing the invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of the invention. The terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of the invention, "a number" means two or more, unless otherwise explicitly specified.
[0027] Please see Figures 1 to 6 The present invention will now describe the fur spin-drying device. The fur spin-drying device includes a receiving cylinder 10, a spin-drying cylinder 20, a bottom cover 30, and a driving component 40. The receiving cylinder 10 has a vertically penetrating receiving cavity 11. A first flange 12 is provided at the lower end of the receiving cylinder 10, and a first mounting groove 121 with an outward opening is provided on the outer peripheral wall of the first flange 12. The spin-drying cylinder 20's main shaft is rotatably connected to the receiving cylinder 10 in the vertical direction. The spin-drying cylinder 20 has an upward opening and is used for spin-drying fur. The bottom cover 30 seals the lower opening of the receiving cylinder 10, and a second mounting groove 40 is provided at the upper end of the bottom cover 30. The outer peripheral wall of the second flange 31 is provided with an outward-facing second mounting groove 311, which corresponds one-to-one with the first mounting groove 121. The driving member 40 is provided at the inner bottom of the bottom cover 30. The driving end of the driving member 40 is connected to a driving shaft 50 that extends upward and is connected to the bottom surface of the spinning drum 20. The driving member 40 is used to drive the spinning drum 20 to rotate. The first flange 12 and the second flange 31 are connected by bolts 32 that pass through the first mounting groove 121 and the second mounting groove 311.
[0028] Bolted connector 32 includes a bolt and a nut that is threadedly connected to the bolt.
[0029] A base 14 is connected to the outer peripheral wall of the receiving cylinder 10. The base 14 is used to support the receiving cylinder 10, so that the bottom of the bottom cover 30 has a certain gap with the ground, which facilitates the disassembly of the bottom cover 30.
[0030] This application provides a fur spin-drying device. In actual use, during installation, the nut can be pre-connected to the lower end of the bolt, and the distance between the nut and the bolt should be greater than the total thickness of the first flange 12 and the second flange 31. Then, the bolt is sent into the first mounting groove 121 and the second mounting groove 311, reducing the number of turns of the nut during the locking process.
[0031] During disassembly, simply loosen the bolts and nuts slightly and move the bolts and nuts together toward the openings of the first mounting groove 121 and the second mounting groove 311 (outside the first flange 12 and the second flange 31) to complete the disassembly of the first flange 12 and the second flange 31. This enables the rapid disassembly of the housing cylinder 10 and the bottom cover 30, improves disassembly efficiency, and facilitates the rapid maintenance of the drive component 40.
[0032] Compared with the prior art, the fur spin-drying device provided in this embodiment can disassemble the first flange 12 and the second flange 31 by slightly loosening the bolts and nuts and moving the bolts and nuts as a whole to the opening of the first mounting groove 121 and the second mounting groove 311 (outside the first flange 12 and the second flange 31). This enables the rapid disassembly of the receiving cylinder 10 and the bottom cover 30, improves the disassembly efficiency, and facilitates the rapid maintenance of the drive component 40.
[0033] In one possible implementation, the aforementioned drive shaft 50 adopts as follows: Figures 1 to 3 The structure shown is described in the following document. Figures 1 to 3 The drive shaft 50 includes a first rotating shaft 51 and a second rotating shaft 52. The first rotating shaft 51 is connected to the drive end of the drive component 40 and extends upward. The upper end of the first rotating shaft 51 is connected to a first mounting plate 511, and the top surface of the first mounting plate 511 is connected to an upwardly extending insertion post 512. The second rotating shaft 52 is connected to the lower part of the swivel drum 20 and extends downward. The lower end of the second rotating shaft 52 is connected to a second mounting plate 521. The second mounting plate 521 is provided with an axially penetrating insertion hole 522 that is inserted and engaged with the insertion post 512.
[0034] Specifically, the second rotating shaft 52 is fixedly connected to the bottom of the spinning drum 20, and the first rotating shaft 51 is fixedly connected to the driving component 40 of the driving component 40, which facilitates the separation, disassembly and installation of the driving component 40 and the spinning drum 20.
[0035] During installation, simply align the plug pin 512 with the plug hole 522 and insert it into the plug hole 522. Use bolt connector 32 to connect the first flange 12 and the second flange 31 to complete the connection between the receiving cylinder 10 and the bottom cover 30. This allows the driving component 40 to be stably positioned on the bottom cover 30, i.e., the plug pin 512 is stably inserted into the plug hole 522. Driven by the driving component 40, the plug pin 512 drives the second mounting plate 521 to rotate, and the second rotating shaft 52 drives the spin drum 20 to rotate, thereby spin-drying the fur and improving the connection efficiency of the first rotating shaft 51 and the second rotating shaft 52.
[0036] During disassembly, simply loosen the bolt connector 32 and move the bolt and nut together toward the openings of the first mounting groove 121 and the second mounting groove 311 (outside the first flange 12 and the second flange 31) to complete the disassembly of the bottom cover 30. This allows the drive component 40 to be moved down so that the plug pin 512 disengages from the plug hole 522, thus facilitating the maintenance of the drive component 40.
[0037] In some embodiments, see Figures 1 to 3 The outer periphery of the first rotating shaft 51 is provided with a threaded sleeve 60, and a rotating ring 61 is provided on the outer periphery of the threaded sleeve 60. The outer periphery of the first mounting plate 511 is hinged with an outwardly extending first hinge rod 63. A second hinge rod 62 is provided between the first hinge rod 63 and the rotating ring 61. A hook 64 for hooking onto the top surface of the second mounting plate 521 is connected to the first hinge rod 63. The threaded sleeve 60 can move upward and drive the first hinge rod 63 to swing vertically so that the hook 64 hooks onto the top surface of the second mounting plate 521.
[0038] Specifically, one end of the second hinge rod 62 is hinged to the extension end of the first hinge rod 63, and the other end is hinged to the swivel ring 61. When installing the drive component 40, the insertion post 512 is aligned with the insertion hole 522 and inserted into the insertion hole 522 to complete the initial docking of the first mounting plate 511 and the second mounting plate 521. Then, the threaded sleeve 60 is rotated upward, and the swivel ring 61 applies force to the second hinge rod 62 to push the first hinge rod 63 to swing vertically, so that the hook 64 is hooked onto the top surface of the second mounting plate 521, thereby locking the relative position of the first mounting plate 511 and the second mounting plate 521 and improving the stability of the relative position of the first mounting plate 511 and the second mounting plate 521.
[0039] During disassembly, simply rotate the threaded sleeve 60 downwards, causing the second hinge rod 62 to pull the first hinge rod 63 downwards, which will disengage the hook 64 from the second mounting plate 521, thereby releasing the lock between the first mounting plate 511 and the second mounting plate 521 and separating the first mounting plate 511 and the second mounting plate 521. This will complete the disassembly of the drive component 40 and improve disassembly efficiency.
[0040] In some embodiments, see Figures 1 to 4 The inner peripheral wall of the insertion hole 522 is provided with a slot 523 communicating with the insertion hole 522, and the peripheral wall of the insertion post 512 is provided with a sliding groove 513 facing the slot 523. The insertion post 512 and the second mounting plate 521 are locked by an elastic locking member 70 located in the sliding groove 513 and the slot 523.
[0041] Specifically, when installing the drive component 40, the plug pin 512 is aligned with the plug hole 522 and inserted into the plug hole 522. At this time, the elastic locking component 70 is aligned with the slot 523 and elastically engaged in the slot 523 to lock the position of the plug pin 512, completing the initial locking and docking of the first mounting plate 511 and the second mounting plate 521, reducing the lifting force required to manually lift the drive component 40 (facilitating the tightening of the threaded sleeve 60 later). Then, the threaded sleeve 60 is rotated upwards, and the rotating ring 61 applies force to the second hinge rod 62 to push the first hinge rod 63 to swing vertically, so that the hook 64 is hooked onto the top surface of the second mounting plate 521, thereby completing the locking of the relative positions of the first mounting plate 511 and the second mounting plate 521 and improving the stability of the relative positions of the first mounting plate 511 and the second mounting plate 521.
[0042] During disassembly, simply rotate the threaded sleeve 60 downwards, causing the second hinge rod 62 to pull the first hinge rod 63 downwards, which will disengage the hook 64 from the second mounting plate 521, thereby releasing the lock between the first mounting plate 511 and the second mounting plate 521. Then, pull down the drive member 40 forcefully to disengage the elastic locking member 70 from the slot 523 and the insertion post 512 from the insertion hole 522, thus separating the first mounting plate 511 and the second mounting plate 521, thereby completing the disassembly of the drive member 40 and improving the disassembly efficiency.
[0043] In some embodiments, see Figures 1 to 4 The elastic locking member 70 includes an elastic member 72 and a locking block 71. The elastic member 72 is connected to the inner bottom wall of the sliding groove 513 and extends to the outside of the sliding groove 513. The locking block 71 is connected to the extended end of the elastic member 72 and slides in cooperation with the sliding groove 513. The locking block 71 can move into the slot 523 under the elastic pushing action of the elastic member 72.
[0044] Specifically, the locking block 71 is used to insert into the slot 523. When the locking block 71 is completely in the sliding groove 513, the elastic element 72 is in a compressed state. When the insertion post 512 drives the locking block 71 to align with the slot 523, the elastic element 72 elastically pushes the locking block 71 into the slot 523, thereby locking the position of the insertion post 512 and improving the stability of the position of the insertion post 512.
[0045] Furthermore, the outer end face of the locking block 71 is provided with an outwardly protruding arc-shaped transition portion 712. The arc-shaped transition portion 712 is a smooth curved surface. When it is necessary to release the locking block 71 from the slot 523, the driving member 40 can be pulled down directly. The locking block 71 is disengaged from the slot 523 by the guiding action of the arc-shaped transition portion 712 and the inner wall of the slot 523. This achieves the effect of quickly disengaging the plug pin 512 from the plug hole 522, improving practicality.
[0046] In some embodiments, see Figures 1 to 4 The bottom surface of the first mounting plate 511 is provided with a plug groove 514 that extends in the vertical direction and communicates with the sliding groove 513. A tightening rod 80 is slidably connected in the plug groove 514. The threaded sleeve 60 can push the tightening rod 80 upward so that the upper end of the tightening rod 80 presses against the locking block 71.
[0047] Specifically, to facilitate the insertion of the plug 512 into the plug hole 522, the diameter of the plug hole 522 is larger than the diameter of the plug 512. When the first mounting plate 511 rotates, without the locking block 71, the plug 512 will rotate slightly relative to the second mounting plate 521, resulting in a certain degree of sluggishness. Consequently, when the drive component 40 opens and closes, impact noise will be generated between the plug 512 and the second mounting plate 521. To avoid this noise, the locking block 71 is pressed against the tightening rod 80 to lock its position and prevent it from retracting into the sliding groove 513. Under the action of the locking block 71, the first mounting plate 511 drives the second mounting plate 521 to rotate synchronously, improving the driving effect. Furthermore, the locking block 71 in this device serves a dual purpose: reducing the lifting force required to manually lift the drive component 40 during installation and enabling the first mounting plate 511 to drive the second mounting plate 521 to rotate synchronously, achieving unexpected results and improving practicality.
[0048] When installing the drive component 40, the plug pin 512 is aligned with the plug hole 522 and inserted into the plug hole 522. At this time, the locking block 71 is aligned with the slot 523 and is elastically engaged in the slot 523 under the elastic push of the elastic member 72 to lock the position of the plug pin 512, completing the initial docking of the first mounting plate 511 and the second mounting plate 521. Then, the threaded sleeve 60 is rotated upward, and the rotating ring 61 applies force to the second hinge rod 62 to push the first hinge rod 63 to swing vertically, so that the hook 64 is hooked on the top surface of the second mounting plate 521. At the same time, during the upward movement of the threaded sleeve 60, the tightening rod 80 is also pushed upward to tighten the locking block 71, ensuring the stability of the insertion of the locking block 71 and the slot 523, thereby completing the locking of the relative position of the first mounting plate 511 and the second mounting plate 521 and improving the stability of the relative position of the first mounting plate 511 and the second mounting plate 521.
[0049] During disassembly, simply rotate the threaded sleeve 60 downwards, causing the second hinge rod 62 to pull the first hinge rod 63 downwards, which will disengage the hook 64 from the second mounting plate 521. The clamping rod 80 will also move downwards due to its own weight, releasing the clamping force on the locking block 71. Then, by forcefully pulling down the drive component 40, the elastic locking component 70 will disengage from the slot 523, and the insertion post 512 will disengage from the insertion hole 522, thus separating the first mounting plate 511 and the second mounting plate 521, thereby completing the disassembly of the drive component 40 and improving the disassembly efficiency.
[0050] In some embodiments, see Figures 1 to 4 The outer peripheral wall of the locking block 71 is provided with a downward-opening locking groove 711. The upper end of the tightening rod 80 is used to engage with the locking groove 711. The tightening rod 80 can be inserted into the locking groove 711 under the push of the threaded sleeve 60 to restrict the locking block 71 from disengaging from the slot 523.
[0051] Specifically, the locking groove 711 is designed so that the tightening rod 80 can be inserted into the locking groove 711, which enhances the locking effect of the tightening rod 80 on the locking block 71, thereby enhancing the stability of the relative position of the first mounting plate 511 and the second mounting plate 521.
[0052] In some embodiments, see Figure 1 The container cylinder 10 is provided with a baffle plate 90 located below the throwing cylinder 20. The drive shaft 50 is installed upward through the baffle plate 90 and is rotatably connected to the baffle plate 90.
[0053] Specifically, the outer periphery of the baffle plate 90 is connected to the inner periphery of the receiving cylinder 10 to separate the slinging cylinder 20 from the driving component 40, preventing water splashed from the fur from dripping onto the driving component 40 and causing water damage to the driving component 40, thus ensuring the service life of the driving component 40.
[0054] In some embodiments, see Figure 1 A water outlet hole 21 is provided through the peripheral wall of the sling 20, and a water outlet pipe 13 is connected to the receiving cylinder 10. The water outlet pipe 13 is located above the baffle plate 90.
[0055] Specifically, the water outlet pipe 13 is used to discharge the water flowing out of the water outlet hole 21, to prevent water from accumulating on the baffle plate 90 and to extend the service life of the baffle plate 90.
[0056] In some embodiments, see Figure 1 The water baffle 90 is arched upwards in the middle.
[0057] Specifically, the arched baffle plate 90 allows water flowing out of the water outlet 21 to diffuse to the outside of the drive shaft 50, preventing water from accumulating and seeping at the rotational connection between the drive shaft 50 and the baffle plate 90.
[0058] The above are merely preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. Fur drying apparatus, characterized in that The fur drying device comprises: a containing cylinder having a containing cavity extending through up and down, a first flange plate being arranged at a lower end of the containing cylinder, and a first mounting groove being arranged on an outer peripheral wall of the first flange plate and opening outwardly; a spinning cylinder, a main shaft of which is rotationally connected to the containing cylinder in the up and down direction, the spinning cylinder having an upward opening, and the spinning cylinder being used for spinning and drying fur; a bottom cover, which is sealed to a lower opening of the containing cylinder, an upper end of the bottom cover being provided with a second flange plate, an outer peripheral wall of the second flange plate being provided with a second mounting groove opening outwardly and corresponding to the first mounting groove; a driving member, which is arranged at an inner bottom of the bottom cover, a driving end of the driving member being connected with a driving shaft extending upwardly and connected with a bottom surface of the spinning cylinder, the driving member being used for driving the spinning cylinder to rotate; wherein the first flange plate and the second flange plate are connected through a bolt connecting member arranged through the first mounting groove and the second mounting groove; the driving shaft comprises: a first rotating shaft, which is connected to the driving end of the driving member and extends upwardly, an upper end of the first rotating shaft being connected with a first mounting disc, a top surface of the first mounting disc being connected with an insertion column extending upwardly; and a second rotating shaft, which is connected to a lower part of the spinning cylinder and extends downwardly, a lower end of the second rotating shaft being connected with a second mounting disc, the second mounting disc being provided with an insertion hole extending axially and being inserted and matched with the insertion column; an outer peripheral thread sleeve of the first rotating shaft is provided with a thread sleeve, an outer peripheral hinge rod of the first mounting disc extending outwardly is hingedly connected, a hook being connected to the first hinge rod and being used for hooking the top surface of the second mounting disc, the thread sleeve being capable of moving upwardly and driving the first hinge rod to vertically swing so that the hook is hooked on the top surface of the second mounting disc; an inner peripheral wall of the insertion hole is provided with a clamping groove communicating with the insertion hole, a peripheral wall of the insertion column is provided with a sliding groove arranged on a side facing the clamping groove, and the insertion column and the second mounting disc are locked through an elastic locking member arranged in the sliding groove and the clamping groove; the elastic locking member comprises: an elastic member, which is connected to an inner bottom wall of the sliding groove and extends to an outer side of the sliding groove; and a locking block, which is connected to an extension end of the elastic member and is slidingly matched with the sliding groove, the locking block being capable of moving into the clamping groove under the elastic pushing action of the elastic member; a bottom surface of the first mounting disc is provided with an insertion groove extending in the up and down direction and communicating with the sliding groove, a jacking rod being slidingly connected in the insertion groove, and the thread sleeve being capable of jacking the jacking rod upwardly so that an upper end of the jacking rod jacks the locking block; an outer peripheral wall of the locking block is provided with a locking groove opening downwardly, the upper end of the jacking rod being used for being inserted and matched with the locking groove, and the jacking rod being capable of being inserted into the locking groove under the jacking of the thread sleeve so as to limit the locking block from being separated from the clamping groove.
2. The fur drying apparatus as claimed in claim 1, wherein an outer peripheral rotating sleeve of the thread sleeve is provided with a rotating ring, and a second hinge rod is arranged between the first hinge rod and the rotating ring.
3. The fur drying apparatus of claim 1, wherein The accommodating cylinder is provided with a water baffle below the spinning cylinder, and the driving shaft is arranged through the water baffle in the upward direction and is rotationally connected with the water baffle.
4. The fur drying apparatus as claimed in claim 3, wherein A water outlet hole is arranged through the circumferential wall of the spinning cylinder, and a water outlet pipe is connected to the accommodating cylinder and is located above the water baffle.
5. The fur drying apparatus as claimed in claim 4, wherein The middle part of the water baffle is arranged in an upward arch shape.
Citation Information
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