Garment dyeing machine for underwear
The detachable connection system for stirring components in dyeing machines addresses the challenge of debris accumulation, improving cleaning efficiency and dyeing uniformity by allowing easy detachment and reattachment of stirring elements.
Patent Information
- Application Number
- CN202422425042.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-08
- Publication Date
- 2025-07-15
- Estimated Expiration
- 2034-10-08
AI Technical Summary
The surface of the mixing plate in the existing garment dyeing machine is prone to stick to impurities. If it is not cleaned for a long time, it can easily lead to impurities accumulation, affecting the dyeing effect and making it inconvenient to clean or replace the mixing plate.
A garment dyeing machine is designed. The rotating plate is driven by the motor to stir the dyeing liquid by driving the rotating shaft. After emptiing the dyeing liquid, the connecting port is opened to remove the rotating shaft and the rotating plate, which is convenient for cleaning or replacing the rotating plate. Combined with the limit block, locking component and moving component, it realizes the convenient disassembly and assembly of the rotating shaft and the separate removal of the rotating plate.
It improves the dyeing effect, reduces impurities on the surface of the rotating plate, reduces the cost of replacement and cleaning of the rotating plate, and ensures the cleaning and efficiency of the dyeing machine.
Smart Images

Figure CN223103269U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of garment dyeing machines, and in particular to a garment dyeing machine for underwear. Background Art
[0002] Cold protection and warmth retention are important indicators of the comfort of winter clothing. Traditional warmth retention methods usually control the heat loss caused by heat conduction, convection, and radiation. For example, thick fabrics or cotton wadding are used for heat preservation, and some also add plastic films or use coated fabrics. At present, double-layer skin care and warmth retention knitted underwear has good warmth retention. The double-layer skin care and warmth retention knitted underwear is composed of two completely identical knitted fabrics, has good warmth retention, a soft hand feel, and has good skin care and health care functions, and the preparation process is simple.
[0003] Chinese Patent with the authorization announcement number CN215441044U discloses a garment dyeing machine convenient for feeding, including a bracket. A dyeing cylinder that can be opened is fixed on the bracket. A stirring mechanism for stirring the solution is arranged on the dyeing cylinder. A feed hopper communicated with the dyeing cylinder is connected to the dyeing cylinder. The lower end of the feed hopper is connected to the dyeing cylinder and is internally communicated with the dyeing cylinder. A feeding device for controlling the opening of the feed hopper is arranged in the feed hopper. The stirring mechanism includes a stirring shaft rotatably connected in the dyeing cylinder. The stirring shaft is coaxial with the dyeing cylinder. One end face of the dyeing cylinder is fixed with a stirring motor. The output shaft of the stirring motor is fixed at the end of the stirring shaft and drives the stirring shaft to rotate. A plurality of stirring plates are radially fixed on the outer wall of the stirring shaft. The stirring plates are evenly distributed along the circumferential direction of the stirring shaft. This application has the effect of facilitating the addition of dyes into the dyeing cylinder during the working process of the dyeing cylinder.
[0004] In view of the above related technologies, impurities are easily adhered to the surface of the stirring plates after long-term use, and if not cleaned for a long time, the impurities are likely to accumulate in the dyeing cylinder. The stirring plates and the stirring shaft are fixedly connected in the dyeing cylinder, so it is not convenient to clean or replace the stirring plates. Utility Model Content
[0005] In order to facilitate the cleaning and replacement of the stirring plates, the present application provides a garment dyeing machine for underwear.
[0006] The garment dyeing machine for underwear provided by the present application adopts the following technical solutions:
[0007] A ready-made clothing dyeing machine for underwear, comprising a frame and a dyeing box. The dyeing box is horizontally arranged and connected to the frame. A rotating shaft is rotatably connected inside the dyeing box, and the length direction of the rotating shaft is the same as the length direction of the dyeing box. A number of rotating plates are connected to the circumferential side of the rotating shaft. One end of the dyeing box in its length direction is provided with a connection port for the rotating shaft and the rotating plates to pass through. The other end of the dyeing box is connected with a first motor, and one end of the rotating shaft is detachably connected to the output shaft of the first motor. The dyeing box is connected with an opening and closing member, and the opening and closing member is used to open or close the connection port.
[0008] By adopting the above technical solution, during use, the first motor drives the rotating shaft to rotate, and the rotating plates follow the rotating shaft to rotate, so that the rotating plates stir the dye liquor in the dyeing box, thereby making the dye liquor mix evenly. When impurities adhere to the surface of the rotating plates, the dye liquor in the dyeing box is emptied, and the connection port is opened through the opening and closing member, and the rotating shaft and the rotating plates are taken out along the length direction of the dyeing box, so that the rotating plates are far away from the dyeing box, thereby facilitating the cleaning or replacement of the rotating plates, reducing the impurities on the surface of the rotating plates, and further reducing the impurities in the dyeing box, thereby improving the dyeing effect.
[0009] Optionally, the opening and closing member includes a baffle plate and a mounting cover. The baffle plate is connected to one end of the rotating shaft, the baffle plate is embedded in the connection port, the baffle plate is slidably connected in the connection port along the length direction of the dyeing box, the mounting cover is covered on one end of the dyeing box, and the inner wall of the mounting cover contacts the baffle plate, and the mounting cover is detachably connected to the dyeing box.
[0010] By adopting the above technical solution, when replacing or cleaning the rotating plates, the mounting cover is removed from one end of the dyeing box, so as to facilitate the removal of the baffle plate from the connection port, and further facilitate the removal of the rotating shaft and the rotating plates from the dyeing box. When installing the rotating shaft and the rotating plates, when the rotating shaft is inserted into the dyeing box, the baffle plate is embedded in the connection port along the length of the rotating shaft to close the connection port. After the baffle plate is embedded in the connection port, the mounting cover is covered on one end of the dyeing box, so that the baffle plate is stably connected inside the dyeing box.
[0011] Optionally, the output shaft of the first motor is connected with a sleeve. The sleeve is slidably sleeved on one end of the rotating shaft. The central axis of the sleeve is the same as the central axis of the rotating shaft. A limiting block is connected to the inner wall of the sleeve. A limiting groove for the limiting block to be embedded is provided on the circumferential side of one end of the rotating shaft close to the sleeve. The length direction of the limiting groove is the same as the length direction of the rotating shaft, and the limiting block is slidably connected in the limiting groove along the length direction of the rotating shaft.
[0012] By adopting the above technical solution, when the first motor drives the sleeve to rotate, under the limiting effect of the limiting block and the limiting groove, the rotating shaft follows the sleeve to rotate. When disassembling the rotating shaft, the rotating shaft is pulled along the length direction of the rotating shaft, and the limiting block is slidably connected in the limiting groove along the length direction of the rotating shaft, so as to facilitate the disassembly and assembly of the rotating shaft.
[0013] Optionally, a plurality of sliding grooves are formed on the circumferential side of the rotating shaft. The length direction of the sliding grooves is consistent with the length direction of the rotating shaft. The sliding grooves correspond to the rotating plates one by one. The rotating plates are slidably connected to the sliding grooves along their length directions. One end of the sliding grooves away from the baffle is open. The rotating shaft is connected with a locking component, and the locking component is used for locking the rotating plates to the rotating shaft.
[0014] By adopting the above technical solutions, when replacing or cleaning the rotating plates, move the rotating plate to be disassembled along the length direction of the rotating shaft, so that the rotating plate can be taken off the rotating shaft, which is convenient for cleaning and replacing the rotating plates. Moreover, the rotating plates can be taken off the rotating shaft separately, thus reducing the cost when replacing the rotating plates.
[0015] Optionally, a blocking ring is slidably sleeved on the rotating shaft. The central axis of the blocking ring is collinear with the central axis of the rotating shaft. An installation groove is formed on the circumferential side of the rotating shaft. The length direction of the installation groove is consistent with the radial direction of the rotating shaft. The locking component includes a first spring and a locking block. The length direction of the first spring is consistent with the length direction of the installation groove. One end of the first spring is connected to the inner wall of the installation groove, and the other end of the first spring is connected to the locking block. The locking block is slidably connected to the installation groove along the length direction of the installation groove. The blocking ring is provided with a locking hole, and the locking block passes through the locking hole.
[0016] By adopting the above technical solutions, during use, the locking block passes through the locking hole. When disassembling the rotating plate, press the locking block along the radial direction of the rotating shaft, so that the locking block is embedded into the installation groove and compresses the first spring, causing the first spring to deform. In this way, it is convenient to take the blocking ring off the rotating shaft, thus opening one end of the sliding groove and facilitating the removal of the rotating plate from the rotating shaft, which is convenient for cleaning and replacing the rotating plate.
[0017] Optionally, a guiding surface is provided on one side of the locking block along the length direction of the rotating shaft. The guiding surface is arranged on the side of the locking block close to the rotating plate, and the guiding surface is inclined. The guiding surface facilitates the locking block to move away from the locking hole.
[0018] By adopting the above technical solutions, with the addition of the guiding surface, when disassembling the blocking ring, move the blocking ring along the length direction of the rotating shaft. Under the guiding action of the guiding surface, the locking block is embedded into the installation groove, which is convenient for the locking block to move away from the locking hole and facilitates the removal of the blocking ring from the rotating shaft.
[0019] Optionally, a collecting plate is slidably connected to the rotating shaft. The circumferential side of the collecting plate is in contact with the inner wall of the dyeing box. A plurality of moving holes are formed in the collecting plate. The moving holes correspond to the rotating plates one by one. The rotating plates pass through and are slidably connected to the moving holes. The rotating shaft is connected with a moving component, and the moving component is used to drive the collecting plate to move along the length direction of the rotating shaft. A plurality of drain holes are formed in the collecting plate.
[0020] By adopting the above technical solution, during use, the collecting plate is arranged at the end of the rotating shaft away from the baffle. Before the collecting plate takes out the rotating plate and the rotating shaft from the dyeing tank, the moving assembly drives the collecting plate to move along the length direction of the rotating shaft, and makes the collecting plate approach the baffle to push the impurities on the surface of the rotating plate, so that the impurities accumulate at one end of the rotating plate, thereby facilitating the cleaning of the impurities.
[0021] Optionally, a moving groove is provided on the circumferential side of the rotating shaft. The length direction of the moving groove is consistent with the length direction of the rotating shaft. The moving assembly includes a lead screw and a second motor. The length direction of the lead screw is consistent with the length direction of the rotating shaft. The lead screw is rotatably connected in the moving groove. The second motor is connected to the baffle. One end of the lead screw is connected to the output shaft of the second motor. The collecting plate is threadedly sleeved on the lead screw, and the collecting plate is slidably connected in the moving groove along the length direction of the rotating shaft.
[0022] By adopting the above technical solution, the second motor drives the lead screw to rotate, thereby driving the collecting plate to move along the length direction of the rotating shaft, so that the collecting plate pushes the impurities, facilitating the centralized treatment of the impurities.
[0023] In summary, the present application includes at least one of the following beneficial technical effects:
[0024] 1. During use, the first motor drives the rotating shaft to rotate, and the rotating plate follows the rotating shaft to rotate, so that the rotating plate agitates the dye liquor in the dyeing tank, making the dye liquor mix evenly. When impurities adhere to the surface of the rotating plate, the dye liquor in the dyeing tank is emptied, and the connection port is opened through the opening and closing member, and the rotating shaft and the rotating plate are taken out along the length direction of the dyeing tank, making the rotating plate away from the dyeing tank, so as to facilitate the cleaning or replacement of the rotating plate, thereby reducing the impurities on the surface of the rotating plate, and further reducing the impurities in the dyeing tank, thereby improving the dyeing effect;
[0025] 2. When the first motor drives the sleeve to rotate, under the limiting action of the limiting block and the limiting groove, the rotating shaft follows the sleeve to rotate. When disassembling the rotating shaft, pull the rotating shaft along the length direction of the rotating shaft, and the limiting block slides along the length direction of the rotating shaft in the limiting groove, so as to facilitate the disassembly and assembly of the rotating shaft;
[0026] 3. During use, the locking block passes through the locking hole. When disassembling the rotating plate, press the locking block along the radial direction of the rotating shaft, so that the locking block is embedded in the installation groove and presses the first spring, causing the first spring to deform, so as to facilitate the removal of the blocking ring from the rotating shaft, thereby opening one end opening of the sliding groove, so as to facilitate the removal of the rotating plate from the rotating shaft, and facilitate the cleaning and replacement of the rotating plate. BRIEF DESCRIPTION OF THE DRAWINGS
[0027] Figure 1 is the three-dimensional structure diagram of this embodiment.
[0028] Figure 2 is the top view of this embodiment.
[0029] Figure 3 is the sectional view taken along the A-A direction in this embodiment. Figure 2 in the A-A direction of this embodiment.
[0030] Figure 4 is the sectional view taken along the B-B direction in this embodiment. Figure 2 in the B-B direction of this embodiment.
[0031] Figure 5 is the enlarged view of part D in this embodiment. Figure 4 in part D of this embodiment.
[0032] Figure 6 is the sectional view taken along the C-C direction in this embodiment. Figure 2 in the C-C direction of this embodiment.
[0033] Figure 7 is the enlarged view of part E in this embodiment. Figure 3 in part E of this embodiment.
[0034] Description of reference numerals: 100, frame; 200, dyeing tank; 210, feed inlet; 220, opening and closing cover; 230, water inlet pipe; 240, drain pipe; 250, first motor; 251, sleeve; 252, limit block; 260, groove; 270, connection port; 300, rotating shaft; 310, rotating plate; 311, through hole; 312, connection block; 320, placement cavity; 330, limit groove; 340, collection plate; 341, drain hole; 342, moving hole; 350, moving groove; 360, installation groove; 370, sliding groove; 400, opening and closing member; 410, baffle; 411, handle; 420, installation cover; 421, first hole; 422, sealing layer; 500, moving component; 510, lead screw; 520, second motor; 600, locking component; 610, first spring; 620, locking block; 700, blocking ring; 710, locking hole. Detailed description of the specific embodiment
[0035] The following further describes this application in detail Figures 1-7 with reference to the attached drawings.
[0036] An embodiment of this application discloses a ready-to-wear dyeing machine for underwear. Refer to Figure 1 and Figure 2, a ready-to-wear dyeing machine for underwear, including a frame 100 and a dyeing tank 200. The dyeing tank 200 is connected to the frame 100. The dyeing tank 200 is cylindrically arranged and horizontally set. The top of the dyeing tank 200 is provided with a feed inlet 210, and an opening and closing cover 220 is connected inside the feed inlet 210. One end of the opening and closing cover 220 is rotatably connected inside the feed inlet 210, and the opening and closing cover 220 is used to open or close the feed inlet 210. The top of the dyeing tank 200 is communicated with a water inlet pipe 230, and the water inlet pipe 230 is used to input dye liquor into the dyeing tank 200. The bottom of the dyeing tank 200 is communicated with a drain pipe 240, and the drain pipe 240 is used to drain the dye liquor out of the dyeing tank 200.
[0037] Refer to Figure 1 and Figure 3 , one end of the dyeing tank 200 is connected with a first motor 250 along its length direction. A rotating shaft 300 is rotatably connected inside the dyeing tank 200. The length direction of the rotating shaft 300 is the same as the length direction of the dyeing tank 200, and the central axis of the rotating shaft 300 is collinear with the central axis of the dyeing tank 200.
[0038] Refer to Figure 1 and Figure 4 , one end of the rotating shaft 300 along its length direction is connected to the output shaft of the first motor 250. A rotating plate 310 is connected to the circumferential side of the rotating shaft 300. There are three rotating plates 310, and the three rotating plates 310 are evenly distributed at equal intervals along the circumferential direction of the rotating shaft 300. The length direction of the rotating plate 310 is the same as the length direction of the rotating shaft 300, and the width direction of the rotating plate 310 is the same as the radial direction of the rotating shaft 300. One side of the rotating plate 310 along its width direction is connected to the rotating shaft 300, and the other side is in contact with the inner wall of the dyeing tank 200. A placing cavity 320 is formed between two adjacent rotating plates 310, and there are three placing cavities 320. An opening 270 for the rotating shaft 300 and the rotating plate 310 to pass through is provided at one end of the dyeing tank 200 along its length direction and away from the first motor 250. The dyeing tank 200 is connected with an opening and closing member 400, and the opening and closing member 400 is used to open or close the opening 270.
[0039] When replacing or cleaning the rotating plate 310, open the opening 270 through the opening and closing member 400, so as to facilitate taking out the rotating shaft 300 and the rotating plate 310 from the dyeing tank 200.
[0040] Refer to Figure 3 and Figure 4, a plurality of through holes 311 are formed in the rotating plate 310. An inner wall at one end of the dyeing box 200 in its length direction is provided with a groove 260. The output shaft of the first motor 250 passes through the inner wall of the groove 260 along the length direction of the rotating shaft 300, and a sleeve 251 is connected to the output shaft of the first motor 250. The central axis of the sleeve 251 is collinear with the central axis of the output shaft of the first motor 250, and the sleeve 251 is rotatably connected in the groove 260. The sleeve 251 is slidably sleeved on one end of the rotating shaft 300, and the central axis of the sleeve 251 is consistent with the central axis of the rotating shaft 300.
[0041] Refer to Figure 4 and Figure 5 , a limiting block 252 is connected to the inner wall of the sleeve 251. There are two limiting blocks 252, and the two limiting blocks 252 are respectively arranged on the inner walls of the two radial sides of the sleeve 251 along the radial direction of the sleeve 251. A limiting groove 330 is provided on the circumferential side of one end of the rotating shaft 300 close to the sleeve 251. The length direction of the limiting groove 330 is consistent with the length direction of the rotating shaft 300. There are two limiting grooves 330, and the two limiting grooves 330 are arranged on the two radial sides of the rotating shaft 300 along the radial direction of the rotating shaft 300. The limiting block 252 corresponds to the limiting groove 330 one by one, and the limiting block 252 is slidably connected in the limiting groove 330 along the length direction of the rotating shaft 300.
[0042] Refer to Figure 1 and Figure 4 , the opening and closing member 400 includes a baffle 410 and a mounting cover 420. The baffle 410 is connected to one end of the rotating shaft 300 far from the first motor 250. The baffle 410 is embedded in the connection port 270, and the baffle 410 is rotatably connected in the connection port 270. The central axis of the baffle 410 is collinear with the central axis of the dyeing box 200. The baffle 410 is slidably connected in the connection port 270 along the length direction of the dyeing box 200. The mounting cover 420 is covered on one end of the dyeing box 200. The central axis of the mounting cover 420 is collinear with the central axis of the dyeing box 200, and the inner wall of the mounting cover 420 contacts the baffle 410. A first hole 421 is provided at one end of the mounting cover 420 along the length direction of the dyeing box 200. The first hole 421 is a circular hole, and the central axis of the first hole 421 is collinear with the central axis of the mounting cover 420. Two handles 411 are connected to the side of the baffle 410 far from the rotating shaft 300. The handles 411 pass through the first hole 421, and the two handles 411 are sequentially spaced apart along the radial direction of the baffle 410.
[0043] Refer to Figure 4 , a sealing layer 422 is connected to the inner wall of the mounting cover 420. The sealing layer 422 is made of rubber material. The sealing layer 422 contacts the side wall of the dyeing box 200 and contacts the baffle 410. The mounting cover 420 is detachably connected to the dyeing box 200 by bolts. The bolts pass through the mounting cover 420 along the length direction of the dyeing box 200 and are threadedly connected to the dyeing box 200.
[0044] Refer toFigure 4 And Figure 6 Figure 6 , the rotating shaft 300 is slidably connected with a collecting plate 340. The collecting plate 340 is provided with a plurality of drain holes 341, and the collecting plate 340 is slidably connected to the rotating shaft 300 along the length direction of the rotating shaft 300. The rotating shaft 300 is connected with a moving component 500, and the moving component 500 is used to drive the collecting plate 340 to move along the length direction of the rotating shaft 300.
[0045] Refer to Figure 4 And Figure 6 Figure 6 , the periphery of the collecting plate 340 is in contact with the inner wall of the dyeing box 200. The collecting plate 340 is provided with three moving holes 342. The length direction of the moving holes 342 is the same as the radial direction of the rotating shaft 300. The three moving holes 342 are evenly distributed at equal intervals in the circumferential direction of the collecting plate 340. The moving holes 342 correspond to the rotating plates 310 one by one, and the rotating plates 310 pass through and are slidably connected in the moving holes 342.
[0046] Refer to Figure 4 And Figure 6 Figure 6 , the periphery of the rotating shaft 300 is provided with a moving groove 350. The length direction of the moving groove 350 is the same as the length direction of the rotating shaft 300. There are three moving grooves 350, and the three moving grooves 350 are sequentially spaced apart in the circumferential direction of the rotating shaft 300, and the moving grooves 350 correspond to the placement cavities 320 one by one. The moving grooves 350 are communicated with the placement cavities 320, and the three moving grooves 350 are communicated with each other.
[0047] Refer to Figure 4 And Figure 6 Figure 6 , the moving component 500 includes a lead screw 510 and a second motor 520. The length direction of the lead screw 510 is the same as the length direction of the rotating shaft 300. The two ends of the lead screw 510 along its length direction are respectively rotatably connected to the corresponding inner walls of the moving groove 350. The second motor 520 is connected to the side of the baffle 410 away from the rotating shaft 300, and the second motor 520 passes through the first hole 421. The second motor 520 is arranged between the two handles 411. The output shaft of the second motor 520 passes through the baffle 410 and is connected to one end of the lead screw 510. The collecting plate 340 is threadedly sleeved on the lead screw 510, and the collecting plate 340 is slidably connected in the moving groove 350 along the length direction of the rotating shaft 300. When in use, the collecting plate 340 is arranged at one end of the rotating shaft 300 away from the baffle 410, and the water inlet pipe 230 is arranged between the baffle 410 and the collecting plate 340.
[0048] The second motor 520 drives the lead screw 510 to rotate, so that the collecting plate 340 moves along the length direction of the rotating shaft 300, so as to drive the collecting plate 340 to approach the baffle 410, and make the collecting plate 340 push the impurities in the placement cavity 320 to accumulate at one end of the placement cavity 320 close to the baffle 410, so as to facilitate the centralized cleaning of the impurities.
[0049] Refer to Figure 4 And Figure 7, three sliding grooves 370 are formed on the circumferential side of the rotating shaft 300. The three sliding grooves 370 are equally spaced along the circumferential direction of the rotating shaft 300 in sequence. The length direction of the sliding groove 370 is the same as the length direction of the rotating shaft 300. The sliding grooves 370 correspond to the rotating plates 310 one by one. Along its width direction and on the side close to the rotating shaft 300, the rotating plate 310 is connected with a connecting block 312. The length direction of the connecting block 312 is the same as the length direction of the rotating plate 310. The connecting block 312 is arranged in the shape of a dovetail block, and the sliding groove 370 is arranged as a dovetail groove. The connecting blocks 312 and the sliding grooves 370 correspond to each other one by one. The connecting block 312 is slidably connected in the sliding groove 370 along the length direction of the rotating shaft 300. One end of the sliding groove 370 is open along its length direction and away from the baffle 410.
[0050] Referring to Figure 4 and Figure 5 , the rotating shaft 300 is connected with a locking assembly 600, and the locking assembly 600 is used to lock the rotating plate 310 to the rotating shaft 300. A blocking ring 700 is sleeved on the rotating shaft 300 in a sliding manner. The central axis of the blocking ring 700 is collinear with the central axis of the rotating shaft 300.
[0051] Referring to Figure 4 and Figure 5 , on the circumferential side of one end of the rotating shaft 300 away from the baffle 410, an installation groove 360 is formed. The length direction of the installation groove 360 is the same as the radial direction of the rotating shaft 300. The locking assembly 600 includes a first spring 610 and a locking block 620 connected in the installation groove 360. The length direction of the first spring 610 is the same as the length direction of the installation groove 360. One end of the first spring 610 is connected to the inner wall of the installation groove 360 along its length direction, and the other end of the first spring 610 is connected to the locking block 620. The locking block 620 is slidably connected in the installation groove 360 along the length direction of the installation groove 360. The blocking ring 700 is provided with a locking hole 710. The depth direction of the locking hole 710 is the same as the radial direction of the rotating shaft 300. The locking block 620 passes through the locking hole 710 along the length direction of the installation groove 360. On one side of the locking block 620 along the length direction of the rotating shaft 300, a guiding surface is provided. The guiding surface is arranged at one end of the locking block 620 away from the first spring 610, and the guiding surface is arranged on the side of the locking block 620 close to the baffle 410. The guiding surface is inclined, and the guiding surface facilitates the locking block 620 to move away from the locking hole 710.
[0052] When disassembling the baffle 410, press the locking block 620 along the radial direction of the rotating shaft 300, so that the locking block 620 moves away from the locking hole 710, thereby facilitating the removal of the blocking ring 700 from the rotating shaft 300, and further facilitating the removal of the rotating plate 310 from the rotating shaft 300, so as to facilitate the cleaning or replacement of the rotating plate 310.
[0053] The implementation principle of a ready-made garment dyeing machine for an undergarment in an embodiment of this application is as follows: When impurities adhere to the rotating plate 310, the dye liquor in the dyeing tank 200 is drained from the dyeing tank 200 through the drain pipe 240, and the mounting cover 420 is removed from one end of the dyeing tank 200, so as to facilitate the removal of the baffle plate 410 from the connection port 270. When the baffle plate 410 is moved along the length direction of the rotating shaft 300, the rotating shaft 300 and the rotating plate 310 move with the baffle plate 410 and away from the dyeing tank 200. After the rotating shaft 300 is removed from the dyeing tank 200, the blocking ring 700 is moved along the length direction of the rotating shaft 300. Under the guiding action of the guiding surface, the locking block 620 is embedded in the mounting groove 360, so as to facilitate the removal of the blocking ring 700 from the rotating shaft 300, and thus facilitate the movement of the rotating plate 310 along the length direction of the rotating shaft 300, so that the connecting block 312 is slidably connected in the sliding groove 370 along the length direction of the rotating shaft 300, and the rotating plate 310 is moved away from the rotating shaft 300, so as to facilitate the cleaning and replacement of the rotating plate 310.
[0054] The above are all preferred embodiments of this application, and the protection scope of this application is not limited thereby. Therefore, all equivalent changes made according to the structure, shape, and principle of this application shall be covered within the protection scope of this application.
Claims
1. A ready-to-wear dyeing machine for underwear, comprising a frame (100) and a dyeing tank (200). The dyeing tank (200) is horizontally arranged and connected to the frame (100). A rotating shaft (300) is rotatably connected inside the dyeing tank (200). The length direction of the rotating shaft (300) is the same as that of the dyeing tank (200). A plurality of rotating plates (310) are connected to the circumferential side of the rotating shaft (300), and it is characterized in that: The dyeing box (200) is provided with a connection port (270) at one end along its length for the rotation shaft (300) and the rotating plate (310) to pass through. The other end of the dyeing box (200) is connected with a first motor (250). One end of the rotation shaft (300) is detachably connected to the output shaft of the first motor (250). The dyeing box (200) is connected with an opening and closing member (400), and the opening and closing member (400) is used to open or close the connection port (270).
2. The ready-made clothing dyeing machine for an undergarment according to claim 1, wherein: The opening and closing member (400) includes a baffle plate (410) and a mounting cover (420). The baffle plate (410) is connected to one end of the rotation shaft (300). The baffle plate (410) is embedded in the connection port (270). The baffle plate (410) is slidably connected in the connection port (270) along the length direction of the dyeing box (200). The mounting cover (420) is covered on one end of the dyeing box (200), and the inner wall of the mounting cover (420) contacts the baffle plate (410). The mounting cover (420) is detachably connected to the dyeing box (200).
3. The ready-made clothing dyeing machine for an undergarment according to claim 1, characterized in that: The output shaft of the first motor (250) is connected with a sleeve (251). The sleeve (251) is slidably sleeved on one end of the rotation shaft (300). The central axis of the sleeve (251) is consistent with the central axis of the rotation shaft (300). The inner wall of the sleeve (251) is connected with a limiting block (252). A limiting groove (330) for the limiting block (252) to be embedded is opened on the circumferential side of the rotation shaft (300) near the sleeve (251). The length direction of the limiting groove (330) is consistent with the length direction of the rotation shaft (300). The limiting block (252) is slidably connected in the limiting groove (330) along the length direction of the rotation shaft (300).
4. A garment dyeing machine for underwear according to claim 3, characterized in that: A plurality of sliding grooves (370) are opened on the circumferential side of the rotation shaft (300). The length direction of the sliding grooves (370) is consistent with the length direction of the rotation shaft (300). The sliding grooves (370) correspond to the rotating plates (310) one by one. The rotating plates (310) are slidably connected in the sliding grooves (370) along their length directions. The sliding grooves (370) are open at one end far from the baffle plate (410). The rotation shaft (300) is connected with a locking component (600), and the locking component (600) is used to lock the rotating plates (310) on the rotation shaft (300).
5. A ready-to-wear dyeing machine for underwear according to claim 4, characterized in that: A blocking ring (700) is slidably sleeved on the rotating shaft (300). The central axis of the blocking ring (700) is collinear with the central axis of the rotating shaft (300). An installation groove (360) is formed on the circumferential side of the rotating shaft (300). The length direction of the installation groove (360) is the same as the radial direction of the rotating shaft (300). The locking assembly (600) includes a first spring (610) and a locking block (620). The length direction of the first spring (610) is the same as the length direction of the installation groove (360). One end of the first spring (610) is connected to the inner wall of the installation groove (360), and the other end of the first spring (610) is connected to the locking block (620). The locking block (620) is slidably connected to the installation groove (360) along the length direction of the installation groove (360). A locking hole (710) is formed on the blocking ring (700), and the locking block (620) passes through the locking hole (710).
6. The ready-made clothing dyeing machine for an undergarment according to claim 5, characterized in that: A guiding surface is provided on one side of the locking block (620) along the length direction of the rotating shaft (300). The guiding surface is provided on the side of the locking block (620) close to the rotating plate (310). The guiding surface is inclined, and the guiding surface facilitates the locking block (620) to move away from the locking hole (710).
7. A garment dyeing machine for underwear according to claim 1, characterized in that: A collecting plate (340) is slidably connected to the rotating shaft (300). The circumferential side of the collecting plate (340) is in contact with the inner wall of the dyeing box (200). A plurality of moving holes (342) are formed on the collecting plate (340). The moving holes (342) correspond to the rotating plates (310) one by one. The rotating plates (310) pass through and are slidably connected to the moving holes (342). The rotating shaft (300) is connected with a moving assembly (500). The moving assembly (500) is used to drive the collecting plate (340) to move along the length direction of the rotating shaft (300). A plurality of drainage holes (341) are formed on the collecting plate (340).
8. A ready-to-wear dyeing machine for underwear according to claim 7, characterized in that: A moving groove (350) is formed on the circumferential side of the rotating shaft (300). The length direction of the moving groove (350) is the same as the length direction of the rotating shaft (300). The moving assembly (500) includes a lead screw (510) and a second motor (520). The length direction of the lead screw (510) is the same as the length direction of the rotating shaft (300). The lead screw (510) is rotatably connected to the moving groove (350). The second motor (520) is connected to the baffle (410). One end of the lead screw (510) is connected to the output shaft of the second motor (520). The collecting plate (340) is threadedly sleeved on the lead screw (510). The collecting plate (340) is slidably connected to the moving groove (350) along the length direction of the rotating shaft (300).
Citation Information
Patent Citations
Garment dyeing machine facilitating feeding
CN215441044U