Slurry recovery device for polyester blending

By setting multiple output nozzles in the slurry recovery device, the problem of the existing device's inability to flexibly adjust the output is solved, enabling adaptive output based on the properties of the waste material, reducing material waste, and saving costs.

CN224086734UActive Publication Date: 2026-04-07DAFENG GARDENER TEXTILE CO LTD
View PDF 1 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-23
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

Existing slurry recycling devices cannot flexibly adjust the output mode when processing different types of waste slurry, resulting in some slurry being unusable and wasting it.

Method used

A polyester blended slurry recovery device was designed. By cooperating with the bottom tank and bottom pipe, a first output nozzle and a second output nozzle are set to realize different discharge output ends and adapt to the treatment needs of different waste materials.

Benefits of technology

It enables adaptive output based on the nature of waste materials, reducing material waste and saving on usage costs.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224086734U_ABST
    Figure CN224086734U_ABST
Patent Text Reader

Abstract

The utility model provides a polyester blended slurry recovery device, which relates to the technical field of textile wastewater treatment, and comprises a feeding bearing assembly and a directional discharging sleeve joint, the output end of the feeding bearing assembly is provided with a slag removal part, the bottom end of the feeding bearing assembly is provided with the directional discharging sleeve joint which is installed in a sleeving manner, and the bottom end of the feeding bearing assembly is provided with a slag removal part. The directional discharging sleeve comprises a bottom cabin, a bottom pipeline, a first output nozzle, a second output nozzle, a purifying cabin, a liquid discharging nozzle, an electric rotating seat, a rotating rod, a lower turning piece and a stirring strip, the bottom cabin is arranged at the bottom end of the feeding bearing assembly, and the bottom pipeline is arranged at the bottom end of the bottom cabin; according to the utility model, the first output nozzle and the second output nozzle form different discharging output ends under the mutual matching of the bottom cabin and the bottom pipeline, so that the effect of adaptive output target can be achieved according to the waste treatment effect in the aspect of discharging selection; therefore, the use cost of materials can be saved to a certain extent.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the field of textile wastewater treatment technology, and in particular to a sizing recovery device for polyester blended fabrics. Background Technology

[0002] Slurry recycling is an environmentally friendly technology that can effectively reduce the negative impact of waste on the environment. Slurry usually refers to liquid or solid waste left over from the manufacturing process. By recycling and reusing it, environmental pollution can be reduced, and resources can be saved. The entire slurry recycling process involves relatively complex equipment and processes, and corresponding treatment solutions need to be customized according to different types and sources of waste slurry. Slurry recycling not only reduces environmental pollution, but also saves costs for enterprises and improves resource utilization. It is a very important and beneficial environmental protection technology.

[0003] Existing slurry recovery devices, such as the coating slurry recovery device disclosed in application number CN201820862796.5, include a collection component and a feeding component. The collection component includes a coating receiving tray, a storage box, a scraper sieve, a screen, and a collection pipe. The storage box is located at the bottom of the coating receiving tray, and the storage box and the coating receiving tray are fixedly connected. The scraper sieve is located inside the storage box, and the scraper sieve and the storage box are detachably connected. A device is provided to recover the scraped material during the electrode coating process. The electrode coating residue is collected through the coating receiving tray, and the collected material is screened by the scraper sieve in the storage box. However, in the above technology, the discharge is mainly from a single output port, which is not convenient for reusing materials that are not heavily contaminated, resulting in a certain degree of waste. Therefore, this utility model proposes a slurry recovery device for polyester blended fabrics to solve the problems existing in the prior art. Utility Model Content

[0004] To address the aforementioned problems, this utility model proposes a slurry recovery device for polyester blended fabrics. This device mainly utilizes the cooperation between the bottom chamber and the bottom pipe to create different discharge outlets for the first and second outlets. This allows for adaptive output based on the waste material treatment effect, thereby saving material usage costs to a certain extent.

[0005] To achieve the purpose of this utility model, the utility model is implemented through the following technical solution: a polyester blended slurry recovery device, including a feeding and bearing assembly and a directional discharge sleeve, wherein the output end of the feeding and bearing assembly is provided with a slag cleaning component, and the bottom end of the feeding and bearing assembly is provided with a directional discharge sleeve that is sleeved on.

[0006] The directional discharge assembly includes a bottom chamber, a bottom pipe, a first outlet, a second outlet, a purification chamber, a drain nozzle, an electric rotating seat, a rotating rod, a downward-turning plate, and a stirring bar. The bottom chamber is located at the bottom end of the feeding support assembly. A bottom pipe is located at the bottom end of the bottom chamber. A first outlet is located on one side of the bottom chamber, and a second outlet is located on one side of the bottom pipe. One end of the second outlet is connected to the purification chamber. A drain nozzle is located below one end of the purification chamber. An electric rotating seat is located on the inner bottom side of the bottom pipe, and a rotating rod is located above the electric rotating seat. A downward-turning plate is located on the outer side of the rotating rod, and a stirring bar is located above the rotating rod.

[0007] In a preferred embodiment of this utility model, the stirring bar and the rotating rod are distributed in a ring at equal angles to the central axis of the rotating rod.

[0008] In a preferred embodiment of the present invention, the feeding and bearing assembly includes a pad, a base plate, a slotted frame, a top plate, an annular base, a bearing cylinder, and a feeding valve. The base plate is provided above the pad, and the slotted frame is provided around the base plate. The top plate is provided at the top of the slotted frame.

[0009] In a preferred embodiment of the present invention, an annular base is provided on the inner side of the top plate, and a support cylinder is provided on the inner side of the annular base for sleeve installation, and a feed valve is provided on the upper side of the support cylinder.

[0010] In a preferred embodiment of this utility model, the slag removal component includes a lifting screw, a lifting base, a connecting frame, a lifting bar, an annular plate, an upper mesh cover, and a lower mesh cover. The lifting screw is located at the output end of the slotted frame, and the output end of the lifting screw is provided with a threaded lifting base. A connecting frame is located above the outer end of the lifting base, and a lifting bar is located below one end of the connecting frame.

[0011] In a preferred embodiment of this utility model, the bottom end of the lifting bar is provided with an annular plate, and an upper net cover is provided on the inner side above the annular plate, and a lower net cover is provided on the inner side below the annular plate.

[0012] The beneficial effects of this utility model are as follows:

[0013] This invention mainly utilizes the cooperation between the bottom chamber and the bottom pipe to make the first and second output nozzles form different discharge output ends. This allows the selection of discharge to achieve an adaptive output target based on the waste treatment effect, thereby saving material usage costs to a certain extent. Attached Figure Description

[0014] Figure 1This is a three-dimensional structural diagram of the present invention;

[0015] Figure 2 This is a bottom-view three-dimensional structural diagram of the present invention;

[0016] Figure 3 This is a cross-sectional three-dimensional structural diagram of the present invention.

[0017] The components include: 1. Feeding and bearing assembly; 101. Pad block; 102. Base plate; 103. Slotted frame; 104. Top plate; 105. Annular base; 106. Bearing cylinder; 107. Feed valve; 2. Slag removal components; 201. Lifting screw; 202. Lifting base; 203. Connecting frame; 204. Lifting bar; 205. Annular plate; 206. Upper mesh cover; 207. Lower mesh cover; 3. Diverting discharge sleeve; 301. Bottom chamber; 302. Bottom pipe; 303. First output nozzle; 304. Second output nozzle; 305. Purification chamber; 306. Drain nozzle; 307. Electric rotating seat; 308. Rotating rod; 309. Lowering plate; 3010. Stirring bar. Detailed Implementation

[0018] To deepen the understanding of this utility model, the following detailed description will be provided in conjunction with embodiments. These embodiments are only used to explain this utility model and do not constitute a limitation on the scope of protection of this utility model.

[0019] according to Figure 1-3 As shown, this embodiment proposes a slurry recovery device for polyester blended fabrics, including a feeding and carrying component 1 and a directional discharge sleeve 3. The output end of the feeding and carrying component 1 is provided with a slag cleaning component 2, and the bottom end of the feeding and carrying component 1 is provided with a directional discharge sleeve 3 that is sleeved on.

[0020] The directional discharge sleeve 3 includes a bottom chamber 301, a bottom pipe 302, a first output nozzle 303, a second output nozzle 304, a purification chamber 305, a drain nozzle 306, an electric rotating seat 307, a rotating rod 308, a downward-turning plate 309, and a stirring bar 3010. The bottom chamber 301 is located at the bottom end of the feeding and carrying assembly 1. The bottom pipe 302 is located at the bottom end of the bottom chamber 301. The first output nozzle 303 is located on one side of the bottom chamber 301. The second output nozzle 304 is located on one side of the bottom pipe 302, and one end of the second output nozzle 304 is sleeved and connected to the purification chamber 305. The drain nozzle 306 is located below one end of the purification chamber 305. The electric rotating seat 307 is located on the inner bottom side of the bottom pipe 302. The rotating rod 308 is located above the electric rotating seat 307. The downward-turning plate 309 is located on the outer side of the rotating rod 308. The stirring bar 3010 is located above the rotating rod 308.

[0021] The stirring bar 3010 and the rotating rod 308 are distributed in a ring at equal angles around the central axis of the rotating rod 308.

[0022] In this embodiment, when it is necessary to open and output materials, the first output nozzle 303 on the bottom chamber 301 is opened to output the pre-processed materials. Then, the second output nozzle 304 is opened to output the deeply processed slurry from the purification chamber 305 and the drain nozzle 306, so as to achieve the effect of material discharge.

[0023] The feeding and bearing assembly 1 includes a pad 101, a base plate 102, a slotted frame 103, a top plate 104, an annular base 105, a bearing cylinder 106, and a feeding valve 107. The base plate 102 is provided above the pad 101, and the slotted frame 103 is provided above the four sides of the base plate 102. The top plate 104 is provided at the top of the slotted frame 103.

[0024] In this embodiment, when in use, the slotted frame 103 is assembled by using the pad 101 in conjunction with the base plate 102, and then the slotted frame 103 is used in conjunction with the top plate 104 to install and splice the various components.

[0025] An annular base 105 is provided on the inner side of the top plate 104, and a support cylinder 106 is provided on the inner side of the annular base 105. A feed valve 107 is provided on the upper side of the support cylinder 106.

[0026] In this embodiment, the feed valve 107 is then opened, allowing the feed valve 107 to input the slurry into the interior of the bearing cylinder 106 for settling.

[0027] The slag removal component 2 includes a lifting screw 201, a lifting base 202, a connecting frame 203, a lifting bar 204, an annular plate 205, an upper mesh cover 206, and a lower mesh cover 207. The lifting screw 201 is located at the output end of the slotting frame 103. The output end of the lifting screw 201 is provided with a threaded connection to the lifting base 202. The connecting frame 203 is located above the outer end of the lifting base 202, and a lifting bar 204 is located below one end of the connecting frame 203.

[0028] In this embodiment, when it is necessary to accelerate the reaction, the electric rotating seat 307 is used to output power to drive the output end to run, so that the rotating rod 308, together with the lower flip plate 309 and the stirring bar 3010, can drive to achieve the effect of stirring and mixing. After the accelerated reaction is completed, the lifting screw 201 outputs power to drive the output.

[0029] The bottom end of the lifting bar 204 is provided with an annular plate 205, and an upper net cover 206 is provided on the inner side above the annular plate 205, and a lower net cover 207 is provided on the inner side below the annular plate 205.

[0030] In this embodiment, after the lifting screw 201 outputs power transmission, the lifting base 202 moves up and down, and the connecting frame 203 and the lifting bar 204 are hinged, so that the annular plate 205, the upper mesh cover 206 and the lower mesh cover 207 lift out the waste material after it has settled, so as to achieve the cleaning effect.

[0031] The working principle of this polyester blend slurry recovery device is as follows: During use, the grooving frame 103 is assembled using the pad 101 and base plate 102. The grooving frame 103 is then connected to the top plate 104 to install and assemble the various components. Next, the feed valve 107 is opened, allowing the slurry to be fed into the bearing cylinder 106 for settling. When accelerated reaction is required, the electric rotating seat 307 outputs power to drive the output end, causing the rotating rod 308 to work in conjunction with the lower flap 309 and stirring bar 3010 to achieve mixing. After the accelerated reaction is complete, the rising... The lifting screw 201 outputs power transmission. After the lifting screw 201 outputs power transmission, the lifting base 202 moves up and down, which causes the connecting frame 203 and the lifting bar 204 to hinge and drive the annular plate 205, the upper mesh cover 206 and the lower mesh cover 207 to lift out the waste material after settling, thus achieving the cleaning effect. When it is necessary to open the output of materials, the first output nozzle 303 on the bottom chamber 301 is opened to output the pre-processed material. Then, the second output nozzle 304 is opened to output the deeply processed slurry from the purification chamber 305 and the drain nozzle 306, thus achieving the discharge effect.

[0032] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.

Claims

1. A sizing recovery device for polyester blended fabrics, comprising a feeding and bearing assembly (1) and a directional discharge sleeve (3), characterized in that: The output end of the feeding and carrying assembly (1) is provided with a slag cleaning component (2), and the bottom end of the feeding and carrying assembly (1) is provided with a split discharge sleeve (3) that is sleeved and installed. The directional discharge sleeve (3) includes a bottom chamber (301), a bottom pipe (302), a first outlet (303), a second outlet (304), a purification chamber (305), a drain nozzle (306), an electric rotating seat (307), a rotating rod (308), a downward tilting plate (309), and a stirring bar (3010). The bottom chamber (301) is located at the bottom end of the feeding bearing assembly (1). The bottom pipe (302) is located at the bottom end of the bottom chamber (301), and the first outlet (303) is located on one side of the bottom chamber (301). A second outlet (304) is provided on one side of the bottom pipe (302), and one end of the second outlet (304) is connected to the purification chamber (305). A drain nozzle (306) is provided below one end of the purification chamber (305). An electric rotating seat (307) is provided on the inner bottom side of the bottom pipe (302), and a rotating rod (308) is provided above the electric rotating seat (307). A downward-turning plate (309) is provided on the outer side of the rotating rod (308), and a stirring bar (3010) is provided above the rotating rod (308).

2. The sizing recovery device for polyester blended fabrics according to claim 1, characterized in that: The stirring bar (3010) and the rotating rod (308) are distributed in a ring at equal angles around the central axis of the rotating rod (308).

3. The sizing recovery device for polyester blended fabrics according to claim 1, characterized in that: The feeding and bearing assembly (1) includes a pad (101), a base plate (102), a slotted frame (103), a top plate (104), an annular base (105), a bearing cylinder (106), and a feeding valve (107). The base plate (102) is provided above the pad (101), and the slotted frame (103) is provided above the four sides of the base plate (102). The top plate (104) is provided at the top of the slotted frame (103).

4. The sizing recovery device for polyester blended fabrics according to claim 3, characterized in that: An annular base (105) is provided on the inner side of the top plate (104), and a support cylinder (106) is provided on the inner side of the annular base (105) and is fitted with a feed valve (107) on the upper side of the support cylinder (106).

5. The sizing recovery device for polyester blended fabrics according to claim 3, characterized in that: The slag removal component (2) includes a lifting screw (201), a lifting base (202), a connecting frame (203), a lifting bar (204), an annular plate (205), an upper mesh cover (206), and a lower mesh cover (207). The lifting screw (201) is located at the output end of the slotting frame (103). The output end of the lifting screw (201) is provided with a threaded lifting base (202). A connecting frame (203) is located above the outer end of the lifting base (202), and a lifting bar (204) is located below one end of the connecting frame (203).

6. The sizing recovery device for polyester blended yarns according to claim 5, characterized in that: The bottom end of the lifting bar (204) is provided with an annular plate (205), and an upper net cover (206) is provided on the inner side above the annular plate (205), and a lower net cover (207) is provided on the inner side below the annular plate (205).

Citation Information

Patent Citations

  • Coating paste recycle device

    CN208400994U