High-automation-degree waste stock solution collection and treatment equipment for textile production
By designing a highly automated waste liquid collection and treatment equipment for textile production, using a mixing rod driven by a dual-axis motor and a synergistic infusion mechanism, the problem of uneven distribution of flocculant is solved, and efficient, uniform processing and automated collection of waste liquid is achieved.
Patent Information
- Application Number
- CN202510319018.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-18
- Publication Date
- 2025-05-27
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
In the existing waste stock solution collection device for textile production, the flocculant may be unevenly distributed due to centrifugal force, resulting in uneven mixing and affecting wastewater collection.
A highly automated waste liquid collection and treatment equipment for textile production is designed, including treatment tank one and treatment tank two. The mixing rod is driven by a dual-axis motor. The rotation of the mixing rod and the synergistic work of the infusion mechanism is realized through the transmission structure and linkage mechanism to ensure the uniform delivery and treatment of the agent.
It realizes efficient and uniform mixing and processing of waste stock liquid, improves the quality and efficiency of wastewater collection, and enhances the degree of automation of the equipment.
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Figure CN120039987A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of textile waste liquid collection and treatment, and specifically provides a waste stock solution collection and treatment device for textile production with a high degree of automation. Background Art
[0002] During the textile production process, the collection and treatment of waste stock solution is a key link, which is directly related to multiple aspects such as the cleanliness of the production environment, the effective utilization of resources, and environmental protection. With the rapid development of the textile industry and the continuous progress of automation technology, it is particularly important to develop a highly efficient and automated waste stock solution collection and treatment device.
[0003] Chinese Patent Publication No. CN109989131A discloses a spandex waste stock solution collection device, including a filtration tank, a treatment tank, a sedimentation tank, and an adsorption tank. A water inlet pipe is arranged on one side of the filtration tank. A baffle is fixedly connected to the inner wall on one side of the filtration tank. Upper filters, lower filters, and activated carbon filter layers are respectively fixedly connected to both sides of the inner wall of the filtration tank. A motor is arranged on the top of the treatment tank, and a rotating rod is fixedly connected to the output shaft of the motor. In this invention, by setting the baffle, upper filters, lower filters, and activated carbon filter layers, the impurities in the waste stock solution can be filtered in sequence.
[0004] However, there are the following defects in this device where the cartridge is located in the mixing tank and rotates with the stirring rod: For example, the mixing is uneven. When the cartridge rotates, the flocculant inside it may be unevenly distributed due to centrifugal force, resulting in uneven concentration of the flocculant in the mixing tank. And if the rotation speed of the cartridge or the layout of the stirring blocks is unreasonable, it may exacerbate the problem of uneven mixing. This unevenness will affect the flocculation effect of the waste stock solution, causing the waste stock solution in some areas to be well purified, while in other areas, the purification effect may be poor, affecting the waste water collection.
[0005] Therefore, it is urgent to improve the collection device to solve the above existing problems. Summary of the Invention
[0006] Aiming at the deficiencies of the prior art, the present invention provides a waste stock solution collection and treatment device for textile production with a high degree of automation, which has the advantages of high efficiency, uniformity, high degree of automation, and strong adaptability, and solves the problem that the flocculant may be unevenly distributed due to centrifugal force, affecting the waste water collection.
[0007] To achieve the above object, the present invention provides the following technical solution: A waste stock solution collection and treatment device for textile production with a high degree of automation, including a collection and treatment device, the collection and treatment device is composed of a first treatment tank and a second treatment tank. A stirring rod is arranged in the first treatment tank. An installation frame is arranged above the first treatment tank, and a treatment device cooperating with the stirring rod is arranged on the installation frame; The processing device includes a driving mechanism, a transmission structure, and an infusion mechanism. The transmission structure is connected to the driving mechanism and the stirring rod. The transmission structure consists of a transmission sleeve and a transmission shaft connected by a spline. The bottom end of the transmission shaft extends into the first processing tank and is fixed to the top end of the stirring rod. The processing device further includes a linkage mechanism that cooperates with the driving mechanism to reciprocate the stirring rod. Among them, the linkage mechanism consists of a first linkage structure and a second linkage structure. A synchronization structure is provided between the driving mechanism and the first linkage structure, and the second linkage structure is also connected to the top end of the transmission shaft.
[0008] Furthermore, a connecting pipe is fixedly connected between the first processing tank and the second processing tank. Covers are installed on the tops of the first processing tank and the second processing tank by bolts. The mounting frame is fixed to the upper surface of the cover. A plurality of spray holes are formed inside the stirring rod for cooperating with the infusion mechanism.
[0009] Furthermore, the transmission sleeve is installed on the upper surface of the cover by bearings, and the transmission shaft passes through the inside of the cover. The driving mechanism includes a double-shaft motor fixed to the outer surface of the mounting frame, a worm fixed to the front output shaft of the double-shaft motor, and a worm gear fixed to the outer surface of the transmission sleeve. The worm meshes with the worm gear.
[0010] Furthermore, both the transmission shaft and the stirring rod are hollow inside. The infusion mechanism includes a liquid storage tank fixed to the outer surface of the mounting frame and a diaphragm structure. An infusion hose that communicates with the transmission shaft and cooperates with the spray holes is provided on the diaphragm structure. One end of the infusion hose is rotatably connected to the top end of the transmission shaft. A stirring shaft that extends outside the liquid storage tank and is connected to the second linkage structure is rotatably installed inside the liquid storage tank.
[0011] Furthermore, the diaphragm structure includes a valve pipe fixed to the outer surface of the mounting frame, a pump housing fixedly connected to the outer surface of the valve pipe, a diaphragm fixed inside the pump housing, and a connecting rod fixed to one side of the diaphragm and extending outside the pump housing to be connected to the second linkage structure.
[0012] Furthermore, the diaphragm structure further includes two check valves elastically hinged inside the valve pipe. Both the upper and lower ends of the valve pipe are fixedly connected with communicating pipes. The top communicating pipe is fixedly connected to the lower surface of the liquid storage tank, and the bottom communicating pipe is flange-connected to the end of the infusion hose away from the transmission shaft.
[0013] Furthermore, the first linkage structure includes a turntable and a first connecting plate arranged outside the mounting frame, and a connecting rod hinged between the turntable and the first connecting plate. The top end of the transmission shaft is connected to the lower surface of the first connecting plate by bearings. A through hole for connecting the infusion hose and the transmission shaft is formed inside the first connecting plate. The first linkage structure further includes a second connecting plate rotatably installed on the outer surface of the top end of the transmission shaft. The second connecting plate is connected to the second linkage structure.
[0014] Furthermore, the second linkage structure includes a sliding seat disposed below the liquid storage tank, a vertical plate fixed to the top side of the sliding seat, a first connecting member disposed between the vertical plate and the stirring shaft, and a second connecting member disposed between the sliding seat and the connecting rod; The first connecting member includes a first connecting block fixed to the outer surface of the stirring shaft, a first shaft rod fixed to the outer surface of the top end of the vertical plate, and a first roller rotatably mounted at the other end of the first shaft rod. A first rolling groove adapted to the first roller is formed inside the first connecting block; The second connecting member includes a second connecting block fixed to the side of the sliding seat close to the liquid infusion mechanism, a second shaft rod fixed to the end of the connecting rod away from the pump housing, and a second roller rotatably mounted at the other end of the second shaft rod. A second rolling groove adapted to the second roller is formed inside the second connecting block.
[0015] Furthermore, a triggering member is disposed between the second connecting plate and the sliding seat. The triggering member includes two abutting blocks fixed to the outer surface of the sliding seat. The two abutting blocks are distributed vertically, and a first guide rod penetrating through the inside of the second connecting plate is fixed between the two abutting blocks; A guiding structure for limiting the sliding seat is disposed on the outer surface of the mounting frame. The guiding structure includes a limiting platform fixed to the outer surface of the mounting frame and located below the sliding seat, a second guide rod fixed to the bottom side of the sliding seat, and a buffer spring. The bottom side of the buffer spring is fixed to the upper surface of the limiting platform, and the second guide rod penetrates through the inside of the limiting platform.
[0016] Furthermore, the synchronization structure is composed of two synchronous wheels and a synchronous belt drivingly connected between the two synchronous wheels. The two synchronous wheels are distributed vertically. A synchronous shaft is fixed between the top synchronous wheel and the turntable, and the bottom synchronous wheel is fixed to the output shaft on the back of the dual-axis motor. The synchronous shaft is connected to the bearing inside the mounting frame.
[0017] Compared with the prior art, the present invention provides a waste stock solution collection and treatment device for textile production with a high degree of automation, having the following beneficial effects: 1. For the waste stock solution collection and treatment device for textile production with a high degree of automation, through the meshing of the worm and the worm wheel driven by the dual-axis motor, the driving sleeve is driven to rotate, and then the stirring rod is driven to rotate in the first treatment tank through the transmission shaft connected by splines. This design ensures the high efficiency of stirring and can fully mix the waste stock solution.
[0018] 2. For the waste stock solution collection and treatment device for textile production with a high degree of automation, the inside of the stirring rod is designed to be hollow and is provided with a plurality of spray holes. In cooperation with the liquid infusion mechanism, the treatment liquid is transported to the stirring rod through the transmission shaft by the liquid infusion mechanism and uniformly sprayed out from the spray holes, realizing the uniform treatment of the waste stock solution and improving the treatment effect.
[0019] 3. The waste stock solution collection and treatment equipment for textile production with high automation degree enables the rotation of the stirring rod and the operation of the infusion mechanism to be coordinated through the design of the first linkage structure, the synchronization structure and the second linkage structure, further improving the automation degree of the equipment.
[0020] 4. The waste stock solution collection and treatment equipment for textile production with high automation degree, through the design of the first linkage structure, especially the articulated structure of the turntable, the connecting rod and the first connecting plate, and the connection between the second connecting plate and the top of the transmission shaft, enables the stirring rod to drive the infusion hose and the transmission shaft to move reciprocally while rotating, further ensuring the uniform dosing of the medicament.
[0021] 5. The waste stock solution collection and treatment equipment for textile production with high automation degree realizes the linkage of the stirring shaft and the connecting rod through the first connecting piece and the second connecting piece in the second linkage structure, and then through the cooperation of the roller and the rolling groove. When the stirring shaft rotates, it will drive the vertical plate and the sliding seat to move reciprocally through the first connecting piece, and then drive the connecting rod to move reciprocally through the second connecting piece, realizing the automatic pumping function of the diaphragm structure. Description of the Drawings
[0022] Figure 1 It is a three-dimensional structure diagram of a waste stock solution collection and treatment equipment for textile production with high automation degree according to the present invention; Figure 2 It is a sectional view of the treatment tank 1 of a waste stock solution collection and treatment equipment for textile production with high automation degree according to the present invention; Figure 3 It is a structural schematic diagram of a waste stock solution collection and treatment equipment for textile production with high automation degree according to the present invention; Figure 4 It is a structural schematic diagram of the infusion mechanism of a waste stock solution collection and treatment equipment for textile production with high automation degree according to the present invention; Figure 5 It is a structural schematic diagram of the first linkage structure of a waste stock solution collection and treatment equipment for textile production with high automation degree according to the present invention; Figure 6 It is a waste stock solution collection and treatment equipment for textile production with high automation degree according to the present invention Figure 3 The enlarged structural schematic diagram of A shown; Figure 7 It is a structural schematic diagram of the first connecting piece of a waste stock solution collection and treatment equipment for textile production with high automation degree according to the present invention; Figure 8 It is a structural schematic diagram of the second connecting piece of a waste stock solution collection and treatment equipment for textile production with high automation degree according to the present invention.
[0023] In the figure: 1. Collection and treatment device; 101. First treatment tank; 102. Second treatment tank; 103. Connecting pipe; 104. Cover plate; 105. Stirring rod; 1051. Spray hole; 2. Mounting rack; 3. Treatment equipment; 4. Driving mechanism; 401. Biaxial motor; 402. Worm; 403. Worm gear; 5. Transmission structure; 501. Transmission shaft; 502. Transmission sleeve; 6. Liquid infusion mechanism; 601. Liquid storage tank; 602. Diaphragm structure; 6021. Valve pipe; 6022. Pump housing; 6023. Diaphragm; 6024. Check valve; 6025. Connecting pipe; 6026. Connecting rod; 603. Liquid infusion hose; 604. Stirring shaft; 7. First linkage structure; 701. Turntable; 702. Link; 703. First connecting plate; 704. Second connecting plate; 705. Abutting block; 706. First guide rod; 8. Synchronization structure; 801. Synchronization shaft; 802. Synchronization pulley; 803. Synchronization belt; 9. Second linkage structure; 901. Slide; 902. Vertical plate; 903. First connecting member; 9031. First connecting block; 9032. First shaft rod; 9033. First roller; 9034. First rolling groove; 904. Second connecting member; 9041. Second connecting block; 9042. Second roller; 9043. Second shaft rod; 9044. Second rolling groove; 10. Guide structure; 1001. Limit platform; 1002. Second guide rod; 1003. Buffer spring. Detailed implementation manners
[0024] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0025] Please refer to Figure 1 and Figure 2 In this embodiment, a waste stock solution collection and treatment device for textile production with a high degree of automation includes a collection and treatment device 1. The collection and treatment device 1 is composed of a first treatment tank 101 and a second treatment tank 102. A stirring rod 105 is arranged in the first treatment tank 101, and a mounting rack 2 is arranged above the first treatment tank 101. Among them, the first treatment tank 101 and the second treatment tank 102 are fixedly connected and communicated by a connecting pipe 103. The tops of the first treatment tank 101 and the second treatment tank 102 are both installed with cover plates 104 by bolts, and the mounting rack 2 is fixed on the upper surface of the cover plate 104. The design of the connecting pipe 103 enables the treated waste stock solution to flow smoothly into the second treatment tank 102 for further treatment or storage, ensuring the coherence and high efficiency of the entire treatment process.
[0026] To improve the collection effect of waste stock solution for textile production, asFigures 2 to 8 As shown, a processing device 3 for cooperating with the stirring rod 105 is provided on the mounting frame 2. Among them, the processing device 3 includes a driving mechanism 4, a transmission structure 5, and an infusion mechanism 6. The transmission structure 5 is connected to the driving mechanism 4 and the stirring rod 105. The transmission structure 5 is composed of a transmission sleeve 502 and a transmission shaft 501 connected by a spline. The bottom end of the transmission shaft 501 extends into the interior of the first processing tank 101 and is fixed to the top end of the stirring rod 105. A plurality of spray holes 1051 for cooperating with the infusion mechanism 6 are provided inside the stirring rod 105. Specifically, the processing device 3 further includes a linkage mechanism for cooperating with the driving mechanism 4 to reciprocate the stirring rod 105. Among them, the linkage mechanism is composed of a first linkage structure 7 and a second linkage structure 9. A synchronization structure 8 is provided between the driving mechanism 4 and the first linkage structure 7. The second linkage structure 9 is also connected to the top end of the transmission shaft 501.
[0027] As Figure 2 and Figure 3 shown, the transmission sleeve 502 is installed on the upper surface of the cover plate 104 by bearings, and the transmission shaft 501 penetrates through the interior of the cover plate 104. The driving mechanism 4 includes a dual-axis motor 401 fixed to the outer surface of the mounting frame 2, a worm 402 fixed to the front output shaft of the dual-axis motor 401, and a worm gear 403 fixed to the outer surface of the transmission sleeve 502. The worm 402 meshes with the worm gear 403. Both the transmission shaft 501 and the stirring rod 105 are hollow inside. The dual-axis motor 401 in the driving mechanism 4 drives the transmission sleeve 502 to rotate through the meshing of the worm 402 and the worm gear 403, and then drives the stirring rod 105 to rotate in the first processing tank 101 through the transmission shaft 501 connected by a spline. This design ensures the high efficiency of stirring and can fully mix the waste stock solution.
[0028] It should be noted that the stirring rod 105 is designed with a hollow interior and is provided with a plurality of spray holes 1051 for cooperating with the infusion mechanism 6. The infusion mechanism 6 can transport the processing liquid to the stirring rod 105 through the transmission shaft 501 and uniformly spray it from the spray holes 1051 to achieve uniform treatment of the waste stock solution and improve the treatment effect. Through the rotation of the stirring rod 105 and the uniform spraying of the infusion mechanism 6, the waste stock solution can be fully mixed and treated, improving the collection effect and treatment quality.
[0029] As Figure 2 , Figure 3 , Figure 4 and Figure 8As shown in the figure, the infusion mechanism 6 includes a liquid storage tank 601 fixed to the outer surface of the mounting frame 2 and a diaphragm structure 602. A liquid infusion hose 603 that communicates with the transmission shaft 501 and is used in cooperation with the spray hole 1051 is provided on the diaphragm structure 602. One end of the liquid infusion hose 603 is rotatably connected to the top end of the transmission shaft 501. A stirring shaft 604 that extends outside the liquid storage tank 601 and is connected to the second linkage structure 9 is rotatably installed inside the liquid storage tank 601. Among them, the diaphragm structure 602 includes a valve pipe 6021 fixed to the outer surface of the mounting frame 2, a pump housing 6022 fixedly connected to the outer surface of the valve pipe 6021, a diaphragm 6023 fixed inside the pump housing 6022, and a connecting rod 6026 fixed to one side of the diaphragm 6023 and extending outside the pump housing 6022 and connected to the second linkage structure 9.
[0030] Specifically, the diaphragm structure 602 further includes two check valves 6024 elastically hinged inside the valve pipe 6021. Both the upper and lower ends of the valve pipe 6021 are fixedly connected with communicating pipes 6025. The upper communicating pipe 6025 is fixedly connected to the lower surface of the liquid storage tank 601, and the lower communicating pipe 6025 is flange-connected to the end of the liquid infusion hose 603 away from the transmission shaft 501. The infusion mechanism 6 realizes the automatic infusion function through the coordinated work of components such as the pump housing 6022, the diaphragm 6023, and the connecting rod 6026 of the diaphragm structure 602. When the connecting rod 6026 in the second linkage structure 9 is driven, it will drive the diaphragm 6023 to reciprocate inside the pump housing 6022, thereby extracting the medicine from the liquid storage tank 601 through the valve pipe 6021 and the communicating pipe 6025, and transporting it to the transmission shaft 501 through the liquid infusion hose 603, and finally evenly spraying it from the spray hole 1051 of the stirring rod 105.
[0031] To achieve the uniformity of medicine delivery, such as Figure 2 , Figure 3 and Figures 5 to 8As shown in the figure, the first linkage structure 7 includes a turntable 701 and a first connecting plate 703 disposed outside the mounting bracket 2, and a connecting rod 702 hinged between the turntable 701 and the first connecting plate 703. The top end of the transmission shaft 501 is connected to the lower surface of the first connecting plate 703 by a bearing. A perforation for connecting the infusion hose 603 and the transmission shaft 501 is provided inside the first connecting plate 703. The first linkage structure 7 further includes a second connecting plate 704 rotatably mounted on the outer surface of the top end of the transmission shaft 501, and the second connecting plate 704 is connected to the second linkage structure 9. The design of the first linkage structure 7, especially the hinged structure of the turntable 701, the connecting rod 702 and the first connecting plate 703, and the connection between the second connecting plate 704 and the top end of the transmission shaft 501 enable the stirring rod 105 to drive the infusion hose 603 and the transmission shaft 501 to perform reciprocating motions while rotating, further ensuring the uniform dispensing of the medicament. The second linkage structure 9 includes a sliding seat 901 disposed below the liquid storage tank 601, a vertical plate 902 fixed to the top side of the sliding seat 901, a first connecting member 903 disposed between the vertical plate 902 and the stirring shaft 604, and a second connecting member 904 disposed between the sliding seat 901 and the connecting rod 6026. Among them, the first connecting member 903 includes a first connecting block 9031 fixed to the outer surface of the stirring shaft 604, a first shaft rod 9032 fixed to the outer surface of the top end of the vertical plate 902, and a first roller 9033 rotatably mounted at the other end of the first shaft rod 9032. A first rolling groove 9034 adapted to the first roller 9033 is provided inside the first connecting block 9031. The synchronization structure 8 is composed of two synchronous pulleys 802 and a synchronous belt 803 drivingly connected between the two synchronous pulleys 802. The two synchronous pulleys 802 are vertically distributed. A synchronous shaft 801 is fixed between the top synchronous pulley 802 and the turntable 701, and the bottom synchronous pulley 802 is fixed to the output shaft on the back of the dual-axis motor 401. The synchronous shaft 801 is connected to the inside of the mounting bracket 2 by a bearing.
[0032] To achieve automatic infusion of the infusion mechanism 6, as Figure 4 , Figure 5 , Figure 7 and Figure 8As shown in the figure, the second connecting member 904 includes a second connecting block 9041 fixed to one side of the sliding seat 901 close to the infusion mechanism 6, a second shaft rod 9043 fixed to the end of the connecting rod 6026 away from the pump housing 6022, and a second roller 9042 rotatably connected to the other end of the second shaft rod 9043. A second rolling groove 9044 adapted to the second roller 9042 is provided inside the second connecting block 9041. A triggering member is provided between the second connecting plate 704 and the sliding seat 901. The triggering member includes two abutting blocks 705 fixed to the outer surface of the sliding seat 901. The two abutting blocks 705 are distributed vertically, and a first guide rod 706 penetrating through the inside of the second connecting plate 704 is fixed between the two abutting blocks 705. The first connecting member 903 and the second connecting member 904 in the second linkage structure 9 realize the linkage between the stirring shaft 604 and the connecting rod 6026 through the cooperation of the roller and the rolling groove. When the stirring shaft 604 rotates, it drives the vertical plate 902 and the sliding seat 901 thereon to perform reciprocating motion through the first connecting member 903, and then drives the connecting rod 6026 to perform reciprocating motion through the second connecting member 904, realizing the automatic pumping function of the diaphragm structure 602. In addition, the design of the triggering member, including the abutting blocks 705 and the first guide rod 706, not only realizes the relative motion control between the second connecting plate 704 and the sliding seat 901, but also ensures the stability and reliability of the structure.
[0033] To ensure the stable operation of the infusion mechanism 6, as Figure 3 and Figure 5 shown in the figure, a guiding structure 10 for limiting the sliding seat 901 is provided on the outer surface of the mounting frame 2. The guiding structure 10 includes a limiting platform 1001 fixed to the outer surface of the mounting frame 2 and located below the sliding seat 901, a second guide rod 1002 fixed to the bottom side of the sliding seat 901, and a buffer spring 1003. The bottom side of the buffer spring 1003 is fixed to the upper surface of the limiting platform 1001, and the second guide rod 1002 penetrates through the inside of the limiting platform 1001. The second guide rod 1002 penetrating through the inside of the limiting platform 1001 provides a stable guiding function for the sliding seat 901. This design ensures that the sliding seat 901 can move along a predetermined trajectory during the reciprocating motion, avoiding deviation or shaking, thereby ensuring the stable operation of the infusion mechanism 6. It should be noted that a limiting component for limiting the first connecting plate 703 is provided inside the mounting frame 2, and the limiting component has the same structure as the guiding structure 10. The bottom side of the buffer spring 1003 is fixed to the upper surface of the limiting platform 1001. When the sliding seat 901 encounters impact or vibration during the movement, the buffer spring 1003 can absorb and disperse these energies, reducing the direct impact between the sliding seat 901 and the mounting frame 2 and extending the service life of the equipment.
[0034] The working principle of the above embodiment is as follows: First, the transmission sleeve 502 and the transmission shaft 501 are driven by the dual-axis motor 401. The transmission shaft 501 rotates. The bottom end of the transmission shaft 501 is fixed to the top end of the stirring rod 105, and the stirring rod 105 rotates accordingly to stir the waste stock solution in the first treatment tank 101. When a liquid agent needs to be added, the other output shaft of the dual-axis motor 401 drives the turntable 701 to rotate in cooperation with the synchronization structure 8. At this time, the first connecting plate 703 makes a reciprocating motion around the turntable 701 under the action of the connecting rod 702. The top end of the transmission shaft 501 is connected to the lower surface of the first connecting plate 703 through a bearing. When the transmission shaft 501 rotates, the transmission shaft 501 reciprocates up and down with the first connecting plate 703. When the transmission shaft 501 moves up and down, the second linkage structure 9 is activated through the second connecting plate 704 to realize the lifting of the sliding seat 901. When the sliding seat 901 moves up and down, the stirring shaft 604 and the connecting rod 6026 are respectively driven through the first connecting member 903 and the second connecting member 904 to make reciprocating motions. The diaphragm 6023 is driven by the connecting rod 6026 to make reciprocating motions in the pump housing 6022. When the diaphragm 6023 makes reciprocating motions, the liquid in the pump housing 6022 is sucked from the liquid storage tank 601 through the valve pipe 6021 and the connecting pipe 6025 and is input into the transmission shaft 501 and the interior of the stirring rod 105 through the infusion hose 603. The liquid is ejected through the spray holes 1051 inside the stirring rod 105 to uniformly treat the waste stock solution. The treated waste stock solution flows into the second treatment tank 102 through the connecting pipe 103 for further treatment or storage and collection.
[0035] The installation method, connection method or setting method disclosed in this embodiment are all common mechanical connection methods, and any method that can achieve its beneficial effects can be implemented. In addition, the electrical components in this embodiment are all electrically connected to the main controller and the power supply. The main controller can be a conventional known device such as a computer that plays a control role. Those skilled in the art can realize the control of the electrical components through simple programming, and the existing publicly disclosed electrical connection technology also belongs to the common knowledge in this field. Therefore, the specific structural composition and working principle are not described in detail in this embodiment.
[0036]
[0036] It should be noted that, in this document, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprising", "including" or any other variant thereof are intended to cover non-exclusive inclusion, such that a process, method, article or device comprising a series of elements not only includes those elements but also includes other elements not expressly listed, or further includes elements inherent to such process, method, article or device. Without further limitation, an element defined by the statement "comprising an..." does not exclude the presence of additional identical elements in the process, method, article or device comprising said element.
[0037] Although the embodiments of the present invention have been shown and described, it will be understood by those of ordinary skill in the art that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A highly automated device for collecting and treating waste liquid from textile production, comprising a collecting and treating device (1), characterized in that: The collection and treatment device (1) is composed of a treatment tank 1 (101) and a treatment tank 2 (102); a stirring rod (105) is arranged in the treatment tank 1 (101); a mounting frame (2) is arranged above the treatment tank 1 (101); and a treatment device (3) used in conjunction with the stirring rod (105) is arranged on the mounting frame (2); The processing device (3) comprises a driving mechanism (4), a transmission structure (5) and an infusion mechanism (6); the transmission structure (5) is connected to the driving mechanism (4) and the stirring rod (105); the transmission structure (5) is composed of a transmission sleeve (502) and a transmission shaft (501) connected by splines; the bottom end of the transmission shaft (501) extends into the interior of the processing tank (101) and is fixed to the top end of the stirring rod (105); The processing device (3) further comprises a linkage mechanism for cooperating with the driving mechanism (4) to realize reciprocating motion of the stirring rod (105), wherein the linkage mechanism is composed of a first linkage structure (7) and a second linkage structure (9), a synchronization structure (8) is provided between the driving mechanism (4) and the first linkage structure (7), and the second linkage structure (9) is also connected to the top end of the transmission shaft (501).
2. The highly automated textile production waste liquid collection and treatment equipment according to claim 1, characterized in that: A connecting pipe (103) is fixedly connected between the treatment tank one (101) and the treatment tank two (102); a cover plate (104) is mounted on the top of each of the treatment tanks one (101) and two (102) via bolts; the mounting frame (2) is fixed to the upper surface of the cover plate (104); and a plurality of spray holes (1051) for use with an infusion mechanism (6) are provided inside the stirring rod (105).
3. The highly automated waste liquid collection and treatment equipment for textile production according to claim 2, characterized in that: The transmission sleeve (502) bearing is mounted on the upper surface of the cover plate (104), and the transmission shaft (501) passes through the interior of the cover plate (104). The driving mechanism (4) comprises a dual-axis motor (401) fixed to the outer surface of the mounting frame (2), a worm (402) fixed to the front output shaft of the dual-axis motor (401), and a worm wheel (403) fixed to the outer surface of the transmission sleeve (502), wherein the worm (402) meshes with the worm wheel (403).
4. The highly automated textile production waste liquid collection and treatment equipment according to claim 3, characterized in that: The transmission shaft (501) and the stirring rod (105) are both hollow in the interior. The infusion mechanism (6) comprises a liquid storage box (601) fixed to the outer surface of the mounting frame (2) and a diaphragm structure (602). The diaphragm structure (602) is provided with an infusion hose (603) which is in communication with the transmission shaft (501) and is used in conjunction with the spray hole (1051). One end of the infusion hose (603) is rotatably connected to the top end of the transmission shaft (501). A stirring shaft (604) which extends outside the liquid storage box and is connected to the second linkage structure (9) is rotatably installed in the interior of the liquid storage box (601).
5. The highly automated textile production waste liquid collection and treatment equipment according to claim 4, characterized in that: The diaphragm structure (602) comprises a valve tube (6021) fixed to the outer surface of the mounting frame (2), a pump housing (6022) fixedly connected to the outer surface of the valve tube (6021), a diaphragm (6023) fixed inside the pump housing (6022), and a connecting rod (6026) fixed to one side of the diaphragm (6023) and extending to the outside of the pump housing (6022) and connected to the second linkage structure (9).
6. The highly automated textile production waste liquid collection and treatment equipment according to claim 5, characterized in that: The diaphragm structure (602) further comprises two check valves (6024) elastically hinged inside the valve tube (6021); the upper and lower ends of the valve tube (6021) are fixedly connected with connecting tubes (6025); the top connecting tube (6025) is fixedly connected with the lower surface of the liquid storage tank (601); and the bottom connecting tube (6025) is flange-connected with one end of the infusion hose (603) away from the transmission shaft (501).
7. The highly automated textile production waste liquid collection and treatment equipment according to claim 4, characterized in that: The first linkage structure (7) comprises a rotating disk (701) and a first connecting plate (703) arranged outside the mounting frame (2), and a connecting rod (702) hinged between the rotating disk (701) and the first connecting plate (703); the top end of the transmission shaft (501) is connected to a bearing on the lower surface of the first connecting plate (703); a through hole for connecting an infusion hose (603) to the transmission shaft (501) is provided inside the first connecting plate (703); the first linkage structure (7) further comprises a second connecting plate (704) rotatably mounted on the outer surface of the top end of the transmission shaft (501); the second connecting plate (704) is connected to the second linkage structure (9).
8. The highly automated textile production waste liquid collection and treatment equipment according to claim 7, characterized in that: The second linkage structure (9) comprises a slide seat (901) disposed below the liquid storage tank (601), a vertical plate (902) fixed to the top side of the slide seat (901), a first connecting member (903) disposed between the vertical plate (902) and the stirring shaft (604), and a second connecting member (904) disposed between the slide seat (901) and the connecting rod (6026); The first connecting member (903) comprises a first connecting block (9031) fixed to the outer surface of the stirring shaft (604), a first shaft (9032) fixed to the outer surface of the top end of the vertical plate (902), and a first roller (9033) rotatably mounted on the other end of the first shaft (9032), and a first rolling groove (9034) adapted to the first roller (9033) is provided inside the first connecting block (9031); The second connecting member (904) comprises a second connecting block (9041) fixed to a side of the slide seat (901) close to the infusion mechanism (6), a second shaft rod (9043) fixed to an end of the connecting rod (6026) away from the pump housing (6022), and a second roller (9042) rotating at the other end of the second shaft rod (9043), and a second rolling groove (9044) adapted to the second roller (9042) is provided inside the second connecting block (9041).
9. The highly automated textile production waste liquid collection and treatment equipment according to claim 8, characterized in that: A trigger member is provided between the second connecting plate (704) and the sliding seat (901), the trigger member comprising two abutment blocks (705) fixed to the outer surface of the sliding seat (901), the two abutment blocks (705) being distributed up and down, and a first guide rod (706) penetrating the interior of the second connecting plate (704) being fixed between the two abutment blocks (705); The outer surface of the mounting frame (2) is provided with a guide structure (10) for limiting the position of the slide seat (901); the guide structure (10) comprises a limit platform (1001) fixed to the outer surface of the mounting frame (2) and located below the slide seat (901), a second guide rod (1002) fixed to the bottom side of the slide seat (901), and a buffer spring (1003); the bottom side of the buffer spring (1003) is fixed to the upper surface of the limit platform (1001), and the second guide rod (1002) passes through the inside of the limit platform (1001).
10. The highly automated waste liquid collection and treatment equipment for textile production according to claim 1, characterized in that: The synchronous structure (8) is composed of two synchronous wheels (802) and a synchronous belt (803) that is transmission-connected between the two synchronous wheels (802), and the two synchronous wheels (802) are distributed up and down, a synchronous shaft (801) is fixed between the top synchronous wheel (802) and the rotating disk (701), the bottom synchronous wheel (802) is fixed to the output shaft at the back of the dual-axis motor (401), and the synchronous shaft (801) is connected to the internal bearing of the mounting frame (2).
Citation Information
Patent Citations
Collection apparatus of spandex stock wastewater
CN109989131A