Sewage treatment equipment for dyed yarn production in textile mill
Through the combined design of a turntable, electric rotating rod, winding plate, ultraviolet lamp mechanism, activated carbon plate and nano-membrane plate, the problems of thread entanglement and blockage in wastewater treatment equipment used in textile production are solved, efficient wastewater purification and sterilization treatment is achieved, and the treatment efficiency and purification effect of the equipment are improved.
Patent Information
- Application Number
- CN202510972263.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-15
- Publication Date
- 2025-10-03
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Existing wastewater treatment equipment used in textile production has the risk of clogging when removing silk threads, resulting in low treatment efficiency and insufficient efficiency in removing yarn from wastewater.
It adopts a combination design of turntable, electric rotating rod, wire winding plate, ultraviolet lamp mechanism, activated carbon plate, nano-membrane plate and other components. The revolution and rotation of the wire winding plate can avoid the entanglement of silk threads. Combined with the double filtration of activated carbon plate and nano-membrane plate, the sewage purification effect is enhanced. The flow-pushing device and anti-stuck seam device are used to optimize the sewage flow and thermal degradation.
It effectively prevents wire entanglement, improves sewage treatment efficiency and purification effect, ensures sewage quality, reduces impurity residue, prevents equipment clogging, and extends equipment service life.
Smart Images

Figure CN120736727A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of sewage treatment, in particular to sewage treatment equipment for dyed yarn production in a textile factory. Background Art
[0002] Most of the sewage is domestic sewage and industrial wastewater in urban areas. However, the current sewage treatment equipment used in textile production is usually insufficient in removing silk-like dirt carried in the sewage, which can easily cause the filter to become clogged, affecting the sewage treatment effect. In addition, the current sewage treatment equipment used in textile production is not efficient in removing yarn, affecting the treatment efficiency.
[0003] Patent announcement number CN220502739U discloses a sewage treatment device for textile production, which relates to the technical field of sewage treatment equipment. It includes a device body, an ultraviolet disinfection lamp and a second drive motor. The outer walls of both sides of the device body are installed with fixed plates, and the inner sides of the fixed plates are installed with lifting rods. The second drive motor is installed below the cover body, and the output end of the second drive motor is connected to a rotating rod through a drive shaft. The outer wall of the rotating rod is evenly connected with winding branches, and a HEPA filter is installed below the water outlet funnel. This patent uses the second drive motor to drive the rotating rod to rotate, so that the rotating rod drives multiple winding branches to rotate simultaneously, winding the silk threads in the sewage, and the first drive motor is used to rotate the screw rod. Through the threaded cooperation between the screw rod and the threaded sleeve, the threaded sleeve drives the winding branches below to move left and right in a circular motion, making the silk thread removal more efficient and solving the problem of inefficient silk thread removal.
[0004] However, the device still has some shortcomings: the device relies on winding branches to wind and collect the silk threads, but in the process of adjusting the orientation through horizontal movement, the winding range inside the sewage is limited to a certain extent, that is, it is easy to increase the probability of silk threads remaining in local areas of sewage, and the remaining silk threads are easy to be entangled or blocked in the filter holes of the filter mechanism during the subsequent filtration process, resulting in a decrease in the sewage flow rate, making it difficult to ensure the sewage treatment efficiency. Summary of the Invention
[0005] In view of the deficiencies in the prior art, the present invention provides a wastewater treatment device for colored yarn production in a textile factory, which solves the problems raised in the above-mentioned background technology.
[0006] To achieve the above objectives, the present invention is implemented through the following technical solutions: A sewage treatment equipment for colored yarn production in a textile factory, comprising a sewage tank, a turntable rotatably installed on the top of the inner wall of the sewage tank, an electric rotating rod rotatably installed at the inner edge of the electric turntable, a plurality of winding plates equidistantly and fixedly installed on the outer wall of the electric rotating rod, an ultraviolet lamp mechanism fixedly installed at the bottom edge of the turntable, an activated carbon plate rotatably installed inside the sewage tank, and filter holes are provided inside the activated carbon plate, a flow-pushing device for promoting sewage surging is provided below the activated carbon plate, an anti-stuck seam device for preventing dirt from remaining at the corners of the sewage tank is provided below the flow-pushing device, a vertical rod is fixedly installed at the center of the bottom of the activated carbon plate, a non-self-locking reciprocating spiral groove is provided on the outer wall of the vertical rod, and a plurality of nano-membrane plates are equidistantly and fixedly installed on the outer wall of the top end of the vertical rod.
[0007] According to the above technical solution, the sewage tank is provided with a water inlet mechanism on the left side, which is connected to the external water pipe and transports sewage. A base is provided at the bottom of the sewage tank, which is used to support and ensure the stability of the sewage tank.
[0008] According to the above technical solution, the top of the turntable is fixedly connected to the output end of the external motor, the winding plate performs circular and rotational motion above the inside of the sewage tank, the ultraviolet lamp mechanism sterilizes the sewage through ultraviolet light when it revolves, the activated carbon plate purifies the sewage, the bottom end of the electric rotating rod moves through the inside of the activated carbon plate, the nano-membrane plate absorbs the dye in the sewage through nano-materials, and the nano-membrane plate is wavy in design, and the sewage is introduced into the sewage tank through the water inlet mechanism. Prior to this, the turntable is caused to rotate along the top of the inner wall of the sewage tank through the output end of the external motor, and the electric turntable installed on the edge is driven when the turntable rotates. The rod moves in a circular motion, and the electric rotating rod is started. When the electric rotating rod rotates inside the turntable, it drives the winding plate to revolve, thereby realizing that the winding plate rotates while moving in a circular motion, and at the same time, the turntable drives the ultraviolet lamp mechanism to revolve; when the electric rotating rod moves in a circular motion, it pushes the activated carbon plate to revolve along the inner wall of the sewage tank, and the activated carbon plate filters the larger dirt in the sewage while purifying the harmful components in the sewage through its own internal activated carbon, and the activated carbon plate drives the vertical rod to rotate, and when the vertical rod rotates, it drives the nano-membrane plate to revolve, and when the nano-membrane plate revolves, it uses its own wave surface to disturb the falling sewage, and absorbs the dye in the sewage through the nano-material.
[0009] According to the above technical solution, the flow-pushing device includes a collar, which passes through the inside of the collar and is movably installed on the outer wall of the reciprocating spiral groove of the vertical rod. The outer wall of the collar is a lamp shell and fixedly installed with a plurality of connecting rods. A heating mechanism is fixedly installed on the end of the connecting rod away from the collar. The outer wall of the heating mechanism is slidably installed on the inner wall of the sewage tank. The heating mechanism promotes the degradation of the dye inside the sewage by heating the sewage. When the vertical rod rotates, it drives the collar to slide upward along its own outer wall through the non-self-locking reciprocating spiral groove on its outer wall. The collar drives the connecting rod to move synchronously, and the connecting rod drives the heating mechanism to move synchronously. After that, when the collar is reset, the heating mechanism is reset synchronously, and this is repeated repeatedly, thereby expanding the motion range of the heating mechanism.
[0010] According to the above technical solution, a conical barrel is fixedly installed at the bottom of the heating mechanism, and the internal inclined surface of the conical barrel effectively pushes the water to move in the direction of the nano-membrane plate. A convex ball rod is fixedly installed at the bottom of the inner wall of the sewage tank, and an arc panel is installed on the inner wall of the conical barrel through spring sliding. Several filter plates are passed through and fixedly installed inside the arc panel.
[0011] According to the above technical solution, the arc panel is reset by spring force, the outer wall of the protrusion of the convex ball rod is located on the movement trajectory of the arc panel near one end of the vertical rod, the bottom of the filter plate contacts the inner wall of the conical barrel, and the heating mechanism drives the conical barrel to move up and down reciprocatingly. When the conical barrel moves upward, it drives the sewage to move toward the nano-membrane plate, thereby accelerating and prolonging the contact frequency between the sewage and the nano-membrane plate. At the same time, when the conical barrel drives the arc panel to move upward, the arc panel contacts the protrusion of the outer wall of the convex ball rod to generate a movement force. At this time, the arc panel drives the filter plate to slide upward along the inner wall of the conical barrel. After that, when the arc panel is pulled to reset by the spring force, it drives the filter plate to reset, and so on.
[0012] According to the above technical solution, the anti-stuck seam device includes two L-shaped plates, the tops of the two L-shaped plates are fixedly installed on the outer wall of the conical barrel, and two screw rods are symmetrically and rotatably installed at the bottom edge of the inner wall of the sewage tank. A rotating wheel is fixedly installed on the outer wall of the bottom end of the screw rod, and a resistance plate is fixedly installed on the outer wall of the rotating wheel. An arc-shaped baffle is installed at the bottom edge of the inner wall of the sewage tank through spring sliding.
[0013] According to the above technical solution, the non-self-locking spiral groove on the outer wall of the screw rod movably penetrates the interior of the L-shaped plate, the bottom of the impeller contacts the bottom of the inner wall of the sewage tank, and the arc baffle is close to one end of the L-shaped plate and is located on the movement trajectory of the resistance plate. When the conical barrel rises, it drives the L-shaped plate to move synchronously along the outer wall of the screw rod, and the L-shaped plate drives the screw rod to generate a rotational force. At this time, the screw rod starts to rotate relying on the bottom of the inner wall of the sewage tank, and the screw rod drives the impeller to rotate. When the impeller rotates, it drives the resistance plate to revolve. When the resistance plate revolves, it will conflict with the arc baffle and start to slide in a circle along the bottom corner of the inner wall of the sewage tank. When the resistance plate is released from the resistance to the arc baffle, the arc baffle is gradually reset by the spring force, and this process repeats.
[0014] According to the above technical solution, a diverter plate is fixedly installed on the side of the arc-shaped baffle away from the inner wall of the sewage tank, and an arc-shaped cotton block is fixedly installed on one end of the diverter plate away from the arc-shaped baffle, and the bottom of the arc-shaped cotton block is in contact with the bottom of the inner wall of the sewage tank, and an extrusion roller is installed on the bottom of the inner wall of the sewage tank through a torsion spring. There is extrusion contact between the arc-shaped cotton block and the outer wall of the extrusion roller, and at the same time, the arc-shaped baffle drives the diverter plate to move synchronously, and the diverter plate drives the arc-shaped cotton block to move in a circular manner. When the arc-shaped cotton block moves, it will pass through the outer wall of the extrusion roller in extrusion contact, and the extrusion friction of the arc-shaped cotton block prompts the extrusion roller to generate a force for self-rotation, and the elastic force of the torsion spring is limited, which increases the friction between the arc-shaped cotton block and the extrusion roller when it moves, and increases the extrusion force on the arc-shaped cotton block. Therefore, with the help of the limitation of the extrusion roller, the arc-shaped cotton block can quickly drain water and intercept tiny impurities in the water.
[0015] The present invention provides a wastewater treatment device for dyed yarn production in a textile factory. It has the following beneficial effects: (1) The present invention cooperates with a turntable, an electric rotating rod, a winding plate, an ultraviolet lamp mechanism, an activated carbon plate, a vertical rod and a nano-membrane plate. The electric rotating rod drives the winding plate to rotate and revolve, thereby avoiding the winding plate from having a dead angle in the sewage tank, preventing the winding plate from being limited in the range of winding the silk threads inside the sewage, reducing the probability of silk thread residue, and ensuring the sewage treatment efficiency and treatment quality. The rotating ultraviolet lamp mechanism sterilizes the sewage uniformly; the activated carbon plate and the nano-membrane plate filter the harmful substances in the sewage twice, thereby improving the purification effect of the sewage quality. At the same time, when the nano-membrane plate rotates, the wave surface design is used to increase the absorption area of the dye in the sewage, thereby preventing the dye from mixing in the water.
[0016] (2) The present invention adopts the arrangement of a flow-pushing device, and cooperates with a vertical rod, a sleeve ring, a connecting rod, a heating mechanism, a conical barrel, a convex ball rod, an arc panel and a filter plate. The heating range of the sewage is expanded by the up and down movement of the heating mechanism, that is, the degradation effect of the heat on the dye in the sewage is expanded, which facilitates the nano-membrane plate to carry out the revolution absorption of the degraded dye component, and the heating mechanism is close to the activated carbon plate to heat and degrade the residual dye inside the filter pores of the activated carbon plate, thereby preventing the activated carbon plate from being contaminated; the filter plate is driven by the arc panel to move and reset, and the filter plate brushes the inner wall of the conical barrel, thereby ensuring the cleanliness of the inner wall of the conical barrel and further accelerating the flow rate of the water source pushed by the conical barrel, so that the dye is more evenly absorbed by the nano-membrane plate.
[0017] (3) The present invention provides an anti-stuck seam device, and cooperates with a conical barrel, an L-shaped plate, a screw, a rotor, a resistance plate, an arc-shaped baffle, a diversion plate, an arc-shaped cotton block and an extrusion roller. The sliding reset of the arc-shaped baffle protects the flowing sewage, thereby preventing the sewage from flowing toward the edge seam of the sewage tank due to the force of falling, and preventing sewage residues from remaining in the edge seams and other difficult-to-clean places inside the sewage tank, thereby avoiding aggravated oxidation erosion of the sewage tank. The extrusion roller limits the arc-shaped cotton block, so that the arc-shaped cotton block can intercept tiny impurities in the water during movement and quickly discharge its own internal water source, thereby preventing water source residue and further improving the cleanliness of sewage treatment and reducing the content of tiny impurities in the water. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 A schematic diagram of the present invention as a whole; Figure 2 A schematic cross-sectional view of the present invention as a whole; Figure 3 This is a schematic diagram of the lower structure of the electric turntable of the present invention; Figure 4 This is a schematic diagram of the bottom view of the structure below the electric turntable of the present invention; Figure 5 Schematic diagram of the flow pushing device of the present invention; Figure 6 This is a schematic cross-sectional view of the flow-pushing device of the present invention; Figure 7 Schematic diagram of the anti-stuck seam device of the present invention; Figure 8 This is a schematic diagram of the anti-stuck seam device from the right side perspective of the present invention.
[0019] In the figure: 1. sewage tank; 2. water inlet mechanism; 3. base; 4. turntable; 5. electric rotating rod; 6. winding plate; 7. ultraviolet lamp mechanism; 8. activated carbon plate; 9. vertical rod; 10. nano membrane plate; 11. flow-pushing device; 111. sleeve ring; 112. connecting rod; 113. heating mechanism; 114. conical barrel; 115. convex ball rod; 116. arc panel; 117. filter plate; 12. anti-stuck seam device; 121. L-shaped plate; 122. screw rod; 123. rotor; 124. resistance plate; 125. arc baffle; 126. diverter plate; 127. arc cotton block; 128. squeezing roller. DETAILED DESCRIPTION
[0020] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.
[0021] See also Figures 1-8One embodiment of the present invention is: a sewage treatment equipment for colored yarn production in a textile factory, comprising a sewage tank 1, a turntable 4 is rotatably installed on the top of the inner wall of the sewage tank 1, an electric rotating rod 5 is rotatably installed at the inner edge of the electric turntable 4, a plurality of winding plates 6 are equidistantly and fixedly installed on the outer wall of the electric rotating rod 5, an ultraviolet lamp mechanism 7 is fixedly installed at the bottom edge of the turntable 4, an activated carbon plate 8 is rotatably installed inside the sewage tank 1, and filter holes are provided inside the activated carbon plate 8, a flow-pushing device 11 for promoting sewage surging is provided below the activated carbon plate 8, an anti-stuck seam device 12 is provided below the flow-pushing device 11 to prevent dirt from remaining at the corners of the sewage tank 1, a vertical rod 9 is fixedly installed at the center of the bottom of the activated carbon plate 8, a non-self-locking reciprocating spiral groove is provided on the outer wall of the vertical rod 9, and a plurality of nano-membrane plates 10 are equidistantly and fixedly installed on the outer wall of the top end of the vertical rod 9.
[0022] The sewage tank 1 is provided with a water inlet mechanism 2 on the left side. The water inlet mechanism 2 is connected to the external water pipe and transports sewage. A base 3 is provided at the bottom of the sewage tank 1. The base 3 is used to support and ensure the stability of the sewage tank 1.
[0023] The top of the turntable 4 is fixedly connected to the output end of the external motor, the winding plate 6 performs circular and rotational motion above the inside of the sewage tank 1, the ultraviolet lamp mechanism 7 sterilizes the sewage through ultraviolet light during its revolution, the activated carbon plate 8 purifies the sewage, the bottom end of the electric rotating rod 5 moves through the inside of the activated carbon plate 8, the nano-membrane plate 10 absorbs the dye in the sewage through nano-materials, and the nano-membrane plate 10 is designed in a wavy shape.
[0024] The electric rotating rod 5 drives the winding plate 6 to revolve and rotate, thereby avoiding the existence of a dead angle of movement of the winding plate 6 inside the sewage tank 1, preventing the winding range of the winding plate 6 on the silk thread inside the sewage from being limited, reducing the probability of silk thread residue, and ensuring the sewage treatment efficiency and quality. The rotating ultraviolet lamp mechanism 7 evenly sterilizes the sewage; the activated carbon plate 8 and the nano-membrane plate 10 are used to filter harmful substances in the sewage twice, thereby improving the purification effect of the sewage quality. At the same time, when the nano-membrane plate 10 revolves, the wave surface design increases the absorption area of the dye in the sewage to prevent the dye from mixing in the water.
[0025] During use, sewage is introduced into the sewage tank 1 through the water inlet mechanism 2. Prior to this, the turntable 4 is prompted to rotate along the top of the inner wall of the sewage tank 1 through the output end of the external motor. When the turntable 4 rotates, it drives the electric rotating rod 5 installed on the edge to perform a circular motion, and the electric rotating rod 5 is started. When the electric rotating rod 5 rotates inside the turntable 4, it drives the winding plate 6 to revolve, thereby achieving the winding plate 6 to rotate while performing a circular motion. At the same time, the turntable 4 drives the ultraviolet lamp mechanism 7 to revolve; when the electric rotating rod 5 moves in a circular motion, it pushes the activated carbon plate 8 to revolve along the inner wall of the sewage tank 1. While filtering larger dirt in the sewage, the activated carbon plate 8 purifies the harmful components in the sewage through its own internal activated carbon, and the activated carbon plate 8 drives the vertical rod 9 to rotate. When the vertical rod 9 rotates, it drives the nano-membrane plate 10 to revolve. When the nano-membrane plate 10 revolves, it uses its own wave surface to disturb the falling sewage and absorbs the dye in the sewage through the nano-material.
[0026] According to the above embodiment, the electric rotating rod 5 drives the winding plate 6 to revolve and rotate, thereby avoiding the existence of a dead angle of movement of the winding plate 6 inside the sewage tank 1, preventing the winding range of the winding plate 6 on the silk thread inside the sewage from being limited, reducing the probability of silk thread residue, and ensuring the sewage treatment efficiency and quality. In addition, the revolving ultraviolet lamp mechanism 7 performs uniform sterilization treatment on the sewage; the activated carbon plate 8 and the nano-membrane plate 10 perform two filtrations on the harmful substances in the sewage, thereby improving the purification effect of the sewage quality. At the same time, when the nano-membrane plate 10 revolves, the wave surface design increases the absorption area of the dye in the sewage to prevent the dye from mixing in the water.
[0027] See also Figures 1-8 , based on the above embodiment, another embodiment of the present invention further includes a flow pushing device 11; The flow-pushing device 11 includes a collar 111, which passes through the inside of the collar 111 and is movably installed on the outer wall of the reciprocating spiral groove of the vertical rod 9. The outer wall of the collar 111 is a lamp shell and fixedly installed with a plurality of connecting rods 112. A heating mechanism 113 is fixedly installed on one end of the connecting rod 112 away from the collar 111. The outer wall of the heating mechanism 113 is slidably installed on the inner wall of the sewage tank 1. The heating mechanism 113 promotes the degradation of the dye inside the sewage by heating the sewage.
[0028] A conical barrel 114 is fixedly installed at the bottom of the heating mechanism 113. The internal inclined surface of the conical barrel 114 effectively pushes the water to move toward the nano-membrane plate 10. A convex ball rod 115 is fixedly installed at the bottom of the inner wall of the sewage tank 1. An arc panel 116 is installed on the inner wall of the conical barrel 114 through a spring sliding. Several filter plates 117 are passed through and fixedly installed inside the arc panel 116.
[0029] The arc panel 116 is reset by the spring force, the outer wall of the protrusion of the convex ball rod 115 is located on the movement track of the arc panel 116 close to the vertical rod 9, and the bottom of the filter plate 117 contacts the inner wall of the conical barrel 114.
[0030] The up and down movement of the heating mechanism 113 expands the heating range of the sewage, that is, expands the degradation effect of the heat on the dye in the sewage, which facilitates the nano-membrane plate 10 to rotate and absorb the degraded dye components. The heating mechanism 113 is close to the activated carbon plate 8 to heat and degrade the dye remaining in the filter pores thereof, thereby preventing the activated carbon plate 8 from being contaminated. The arc panel 116 drives the filter plate 117 to move and reset, and the filter plate 117 brushes the inner wall of the conical barrel 114, ensuring the cleanliness of the inner wall of the conical barrel 114 while further accelerating the flow rate of the water source pushed by the conical barrel 114, so that the dye is more evenly absorbed by the nano-membrane plate 10.
[0031] During use, when the vertical rod 9 rotates, it drives the collar 111 to slide upward along its outer wall through the non-self-locking reciprocating spiral groove on its outer wall. The collar 111 drives the connecting rod 112 to move synchronously, and the connecting rod 112 drives the heating mechanism 113 to move synchronously. Then, when the collar 111 is reset, the heating mechanism 113 is reset synchronously, and this process repeats, thereby expanding the motion range of the heating mechanism 113; the heating mechanism 113 drives the conical barrel 114 to move up and down reciprocatingly. When the conical barrel 114 moves upward, it drives the sewage to move toward the nano-membrane plate 10, thereby accelerating and prolonging the contact frequency between the sewage and the nano-membrane plate 10. At the same time, when the conical barrel 114 drives the arc plate 116 to move upward, the arc plate 116 contacts the protrusion on the outer wall of the convex ball rod 115 to generate a motion force. At this time, the arc plate 116 drives the filter plate 117 to slide upward along the inner wall of the conical barrel 114. Then, when the arc plate 116 is pulled back by the spring force, it drives the filter plate 117 to return to its original position, and this process repeats.
[0032] According to the above embodiment, the up and down movement of the heating mechanism 113 expands the heating range of the sewage, that is, the degradation effect of the heat on the dye in the sewage is expanded, which facilitates the nano-membrane plate 10 to rotate and absorb the degraded dye components, and the heating mechanism 113 is close to the activated carbon plate 8 to heat and degrade the dye remaining inside the filter pores thereof, thereby preventing the activated carbon plate 8 from being contaminated; the filter plate 117 is driven by the arc panel 116 to move and reset, and the filter plate 117 brushes the inner wall of the conical barrel 114, ensuring the cleanliness of the inner wall of the conical barrel 114 while further accelerating the flow rate of the water source pushed by the conical barrel 114, so that the dye is more evenly absorbed by the nano-membrane plate 10.
[0033] See also Figures 1-8 , based on the above embodiment, another embodiment of the present invention further includes an anti-stuck seam device 12; The anti-stuck seam device 12 includes two L-shaped plates 121. The tops of the two L-shaped plates 121 are fixedly mounted on the outer wall of the conical barrel 114. Two screw rods 122 are symmetrically and rotatably mounted on the bottom edge of the inner wall of the sewage tank 1. A rotating wheel 123 is fixedly mounted on the outer wall of the bottom end of the screw rod 122. A resistance plate 124 is fixedly mounted on the outer wall of the rotating wheel 123. An arc-shaped baffle 125 is slidably mounted on the bottom edge of the inner wall of the sewage tank 1 through a spring.
[0034] The non-self-locking spiral groove on the outer wall of the screw rod 122 moves through the interior of the L-shaped plate 121, the bottom of the wheel 123 contacts the bottom of the inner wall of the sewage tank 1, and the arc baffle 125 is located on the movement track of the resistance plate 124 near one end of the L-shaped plate 121.
[0035] A diverter plate 126 is fixedly installed on the side of the arc-shaped baffle 125 away from the inner wall of the sewage tank 1, and a arc-shaped cotton block 127 is fixedly installed on the end of the diverter plate 126 away from the arc-shaped baffle 125. The bottom of the arc-shaped cotton block 127 is in contact with the bottom of the inner wall of the sewage tank 1. An extrusion roller 128 is installed on the bottom of the inner wall of the sewage tank 1 through a torsion spring, and there is extrusion contact between the arc-shaped cotton block 127 and the outer wall of the extrusion roller 128.
[0036] By sliding and resetting the arc-shaped baffle 125, the flowing sewage is protected, preventing the sewage from flowing toward the side seam of the sewage tank 1 due to the falling force, preventing sewage residues from remaining in the side seams inside the sewage tank 1 and other places that are difficult to clean, and avoiding the aggravation of oxidation erosion of the sewage tank 1; by limiting the arc-shaped cotton block 127 by the squeezing roller 128, the arc-shaped cotton block 127 can intercept tiny impurities in the water during movement and quickly discharge the water source inside itself, preventing water source residue, further improving the cleanliness of sewage treatment, and reducing the content of tiny impurities in the water.
[0037] When in use, the conical barrel 114 drives the L-shaped plate 121 to move synchronously along the outer wall of the screw rod 122 when it rises. The L-shaped plate 121 drives the screw rod 122 to generate a rotating force. At this time, the screw rod 122 starts to rotate on its own relying on the bottom of the inner wall of the sewage tank 1, and the screw rod 122 drives the runner 123 to rotate. When the runner 123 rotates, it drives the contact plate 124 to revolve. When the contact plate 124 revolves, it will resist the arc baffle 125 and start to slide in a circular manner along the bottom corner of the inner wall of the sewage tank 1. When the contact plate 124 is freed from the resistance to the arc baffle 125, the arc baffle 125 is gradually reset by the spring force, and moves back to the bottom of the sewage tank 1. Repeat this; at the same time, the arc-shaped baffle 125 drives the diverter plate 126 to move synchronously, and the diverter plate 126 drives the arc-shaped cotton block 127 to perform a circular motion. When the arc-shaped cotton block 127 moves, it will pass through the outer wall of the squeezing roller 128 in squeezing contact. The squeezing friction of the arc-shaped cotton block 127 prompts the squeezing roller 128 to generate a force for self-rotation, and the elastic force of the torsion spring is limited, which increases the friction between the arc-shaped cotton block 127 and the squeezing roller 128 when the arc-shaped cotton block 127 moves, thereby increasing the squeezing force on the arc-shaped cotton block 127. Therefore, with the help of the limitation of the squeezing roller 128, the arc-shaped cotton block 127 can quickly drain water and intercept tiny impurities in the water.
[0038] According to the above embodiment, the sliding reset of the arc-shaped baffle 125 protects the flowing sewage, prevents the sewage from flowing toward the side seam of the sewage tank 1 due to the falling force, prevents sewage residues from remaining in the side seams inside the sewage tank 1 and other places that are difficult to clean, and avoids the aggravation of oxidation erosion of the sewage tank 1; the arc-shaped cotton block 127 is limited by the squeezing roller 128, so that the arc-shaped cotton block 127 can intercept tiny impurities in the water during movement while quickly discharging its own internal water source, preventing water source residue, further improving the cleanliness of sewage treatment, and reducing the content of tiny impurities in the water.
[0039] The above description is only a preferred specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any technician familiar with the technical field, within the technical scope disclosed by the present invention, who makes equivalent replacements or changes based on the technical solution and inventive concept of the present invention, should be covered by the scope of protection of the present invention.
Claims
1. A wastewater treatment device for dyed yarn production in a textile factory, comprising a wastewater tank (1), characterized in that: A turntable (4) is rotatably mounted on the top of the inner wall of the sewage tank (1), an electric rotating rod (5) is rotatably mounted on the inner edge of the electric rotating disk (4), a plurality of winding plates (6) are equidistantly and fixedly mounted on the outer wall of the electric rotating rod (5), an ultraviolet lamp mechanism (7) is fixedly mounted on the bottom edge of the turntable (4), an activated carbon plate (8) is rotatably mounted inside the sewage tank (1), and filter holes are provided inside the activated carbon plate (8), a flow-pushing device (11) for promoting sewage surging is provided below the activated carbon plate (8), an anti-stuck seam device (12) is provided below the flow-pushing device (11) to prevent dirt from remaining at the corners of the sewage tank (1), a vertical rod (9) is fixedly mounted at the center of the bottom of the activated carbon plate (8), a non-self-locking reciprocating spiral groove is provided on the outer wall of the vertical rod (9), and a plurality of nano-membrane plates (10) are equidistantly and fixedly mounted on the outer wall of the top end of the vertical rod (9).
2. The wastewater treatment equipment for dyed yarn production in a textile factory according to claim 1, characterized in that: The sewage tank (1) is provided with a water inlet mechanism (2) on the left side, the water inlet mechanism (2) is connected to an external water pipe and is used to transport sewage, and a base (3) is provided at the bottom of the sewage tank (1), the base (3) is used to support and ensure the stability of the sewage tank (1).
3. The wastewater treatment equipment for dyed yarn production in a textile factory according to claim 2, characterized in that: The top of the turntable (4) is fixedly connected to the output end of the external motor, the winding plate (6) performs circular and rotational motion above the inside of the sewage tank (1), the ultraviolet lamp mechanism (7) sterilizes the sewage through ultraviolet light when it revolves, the activated carbon plate (8) purifies the sewage, the bottom end of the electric rotating rod (5) moves through the inside of the activated carbon plate (8), and the nano-membrane plate (10) absorbs the dye in the sewage through nano-materials, and the nano-membrane plate (10) is designed in a wavy shape.
4. The wastewater treatment equipment for dyed yarn production in a textile factory according to claim 3, characterized in that: The flow pushing device (11) comprises a collar (111), the collar (111) is internally penetrated and movably mounted on the outer wall of the reciprocating spiral groove of the vertical rod (9), the outer wall of the collar (111) is a lamp housing and fixedly mounted with a plurality of connecting rods (112), the connecting rods (112) are fixedly mounted with a heating mechanism (113) at one end away from the collar (111), the outer wall of the heating mechanism (113) is slidably mounted on the inner wall of the sewage tank (1), and the heating mechanism (113) promotes the degradation of the dye inside the sewage by heating the sewage.
5. The wastewater treatment equipment for dyed yarn production in a textile factory according to claim 4, characterized in that: A conical barrel (114) is fixedly mounted on the bottom of the heating mechanism (113); the internal inclined surface of the conical barrel (114) effectively pushes the water flow toward the nano-membrane plate (10); a convex ball rod (115) is fixedly mounted on the bottom of the inner wall of the sewage tank (1); an arc panel (116) is slidably mounted on the inner wall of the conical barrel (114) via a spring; and a plurality of filter plates (117) are penetrated and fixedly mounted inside the arc panel (116).
6. The wastewater treatment equipment for dyed yarn production in a textile factory according to claim 5, characterized in that: The arc panel (116) is reset by the spring force, the outer wall of the protrusion of the convex ball rod (115) is located on the motion track of the arc panel (116) close to one end of the vertical rod (9), and the bottom of the filter plate (117) is in contact with the inner wall of the conical barrel (114).
7. The wastewater treatment equipment for dyed yarn production in a textile factory according to claim 6, characterized in that: The anti-stuck seam device (12) comprises two L-shaped plates (121), the tops of the two L-shaped plates (121) are fixedly mounted on the outer wall of the conical barrel (114), two screw rods (122) are symmetrically and rotatably mounted on the bottom edge of the inner wall of the sewage tank (1), a rotating wheel (123) is fixedly mounted on the outer wall of the bottom end of the screw rod (122), and a contact plate (124) is fixedly mounted on the outer wall of the rotating wheel (123), and an arc-shaped baffle (125) is slidably mounted on the bottom edge of the inner wall of the sewage tank (1) via a spring.
8. The wastewater treatment equipment for dyed yarn production in a textile factory according to claim 7, characterized in that: The non-self-locking spiral groove on the outer wall of the screw rod (122) movably penetrates the interior of the L-shaped plate (121), the bottom of the wheel (123) contacts the bottom of the inner wall of the sewage tank (1), and the arc-shaped baffle (125) is located on the movement trajectory of the contact plate (124) near one end of the L-shaped plate (121).
9. The wastewater treatment equipment for dyed yarn production in a textile factory according to claim 8, characterized in that: A diverter plate (126) is fixedly mounted on one side of the arc-shaped baffle (125) away from the inner wall of the sewage tank (1), and an arc-shaped cotton block (127) is fixedly mounted on one end of the diverter plate (126) away from the arc-shaped baffle (125). The bottom of the arc-shaped cotton block (127) contacts the bottom of the inner wall of the sewage tank (1). A squeezing roller (128) is rotatably mounted on the bottom of the inner wall of the sewage tank (1) via a torsion spring, and there is squeezing contact between the arc-shaped cotton block (127) and the outer wall of the squeezing roller (128).
Citation Information
Patent Citations
Sewage treatment equipment for textile production
CN220502739U