Water circulation filtering system for processing golf ball core
By designing a water circulation filtration system, using filter bags and a drive mechanism to achieve efficient separation of wastewater and waste materials, the problem of water waste and pollution in grinding and processing is solved, water resources are recycled, processing costs are reduced, and environmental friendliness is improved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-02-11
- Publication Date
- 2026-03-31
AI Technical Summary
In the current golf ball core grinding process, solid waste such as suspended rubber fragments in the wastewater are discharged directly without separation, resulting in water pollution and waste of water resources. The grinding wastewater that is not filtered and purified is discarded directly, which increases processing costs and is not environmentally friendly.
Design a water circulation filtration system including a frame, a grinder, a solid-liquid separation device and a circulation pipe. The system achieves efficient separation of wastewater and waste materials through filter bags and a drive mechanism. A drive bar is used to intermittently pressurize the filter bags to promote solid-liquid separation, and the separated water is reused through the circulation pipe.
This technology achieves efficient separation of grinding wastewater and waste materials, reduces water consumption costs, minimizes environmental pollution, and enhances the economic efficiency and environmental friendliness of golf ball core processing.
Smart Images

Figure CN121754936A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of industrial water circulation filtration and solid-liquid separation, and in particular to a water circulation filtration system for processing golf ball cores. Background Technology
[0002] The core of a golf ball is the key component that determines its flight performance and feel. It is typically made of elastic materials such as rubber through processes like molding and high-temperature vulcanization. During the core molding process, due to factors such as mold gaps, material flow characteristics, and uneven vulcanization reactions, burrs, bumps, and other imperfections inevitably appear on the surface of the finished core. These surface defects result in an uneven core surface. If this is directly applied to subsequent processes such as mantle wrapping and outer shell injection molding, it will not only affect the tightness of the bond between the core and the outer layer, increasing the risk of delamination and cracking in the finished golf ball, but it will also disrupt the roundness of the golf ball, thus adversely affecting its flight trajectory and hitting stability.
[0003] To address the aforementioned surface defects in the ball cores, the industry commonly employs a grinding process to treat the surface of the formed ball cores. In practice, the ball core is placed in the grinding station of a grinding machine. Through the relative movement of the grinding components and the ball core surface, burrs, protrusions, and sharp edges are precisely removed, ensuring the ball core surface achieves a smooth and even finish, thus laying a solid foundation for subsequent processing steps.
[0004] During the grinding process of golf ball cores, to prevent the high temperatures generated during grinding from altering the properties of the core material and to promptly remove waste materials such as rubber debris, it is typically necessary to continuously inject cooling water into the grinding area. The cooling water not only lowers the temperature but also washes away waste materials from the core surface, ensuring the continuity and precision of the grinding operation. However, in current golf ball core grinding processes, the wastewater containing waste materials generated after washing is often directly discharged. On the one hand, the direct discharge of suspended solid waste such as rubber debris without separation causes water pollution and fails to meet environmental protection emission requirements; on the other hand, the direct disposal of unfiltered and unpurified grinding wastewater prevents effective water recycling and reuse, significantly increasing water consumption costs during processing.
[0005] Therefore, in response to the problems of water waste, waste pollution and low recycling efficiency in the existing golf ball core grinding process, there is an urgent need to develop a water circulation filtration system that can achieve efficient separation of grinding wastewater and waste materials and water recycling, so as to reduce processing costs, reduce environmental pollution and improve the overall economy and environmental protection of golf ball core processing. Summary of the Invention
[0006] In order to achieve efficient separation of grinding wastewater and waste materials and recycling of water resources, this application provides a water circulation filtration system for processing golf ball cores.
[0007] The water circulation filtration system for processing golf ball cores provided in this application adopts the following technical solution: A water circulation filtration system for processing golf ball cores includes a frame with multiple grinders mounted on it. Each grinder has a discharge port on one side. A wastewater collection channel is located below the discharge port on the frame, used to collect a mixture of wastewater and waste material after grinding. A solid-liquid separation device is located on one side of the frame. The solid-liquid separation device includes a water collection tank mounted on the frame, containing filter bags with openings for water to pass through. A water inlet channel is fixedly connected to the water collection tank, connecting it to a wastewater collection pipe. A support column is located at the bottom of the water collection tank, supporting the bottom of the filter bags. A racket arm is rotatably connected to the support column. A drive mechanism is located on the side wall of the water collection tank, driving the racket arm to reciprocate and apply pressure to the filter bags. A circulation pipe is fixedly connected to the water collection tank, with one end extending away from the water collection tank to the grinders.
[0008] By adopting the above technical solution, when the user uses the grinder, the wastewater and waste material mixture from grinding golf ball cores enters the wastewater collection pipe. The water inlet channel guides the wastewater and waste material mixture in the wastewater collection pipe to the filter bag. The water flows out through the gaps in the filter bag, while the waste material particles, which are larger than the pore size, are intercepted in the filter bag, achieving mud-water separation. The drive mechanism drives the racket arm to reciprocate, and the racket arm applies external pressure from the outside of the filter bag, squeezing the waste material inside the filter bag, promoting faster discharge of residual water and improving solid-liquid separation efficiency. The water collection tank collects the filtered water, and the circulation pipe guides the separated water back to the grinder for reuse, achieving efficient separation of grinding wastewater and waste material and recycling of water resources.
[0009] Optionally, the support column is arranged in a gate shape, and the driving mechanism includes a transmission gear fixedly connected to one end of the support column, a connecting rod fixedly connected to the transmission gear, one end of the flap arm fixedly connected to the connecting rod, and the other end rotatably connected to the support column. The support column is rotatably connected to a transmission shaft, one end of the transmission shaft is fixedly connected to a transmission wheel, and the other end is fixedly connected to a power wheel. The transmission wheel and the drive gear mesh, and all the power wheels on the support columns are meshed with a toothed belt. The outer wall of the water tank is provided with a reversing assembly and a power assembly for driving the toothed belt to reciprocate.
[0010] By adopting the above technical solution, when the user uses the device, the power component drives the reversing component to move, the reversing component drives the toothed belt to move forward or backward, which in turn drives the power wheel to rotate forward and backward, and the drive gear drives the connecting rod to move forward or backward, which in turn drives the beater to intermittently and orderly beat the filter bag. The beater intermittently applies pressure to the outside of the filter bag, squeezing the waste inside the filter bag, promoting the faster discharge of residual water, and improving the solid-liquid separation efficiency.
[0011] Optionally, the power assembly includes a positioning box fixedly connected to the outer wall of the water collection tank, a drive motor fixedly connected to the positioning box, and the output shaft of the drive motor extending into the positioning box and fixedly connected to a main gear; the reversing assembly includes two driven wheels, a first driven wheel and a second driven wheel, rotatably connected to the positioning box. The first driven wheel and the second driven wheel are located on opposite sides of the main gear and simultaneously mesh with the main gear. A first reversing wheel and a second reversing wheel are respectively connected to the first driven wheel and the second driven wheel. A rotating shaft is fixedly connected to the center of the first reversing wheel and the first driven wheel. A rotating shaft is fixedly connected to the center of the second reversing wheel and the second driven wheel. A power shaft is fixedly connected to the center of the power wheel. A universal joint is fixedly connected to the power shaft. A power gear is fixedly connected to the end of the power shaft away from the power wheel. The power gear is located between the first reversing wheel and the second reversing wheel. A rocker arm assembly is provided in the positioning box to drive the power gear to swing and mesh with the first reversing wheel or with the second reversing wheel.
[0012] By adopting the above technical solution, when the user uses the device, the drive motor drives the main gear to rotate, and the main gear drives the two slave gears to move synchronously in opposite directions, thereby driving the first reversing wheel and the second reversing wheel to rotate synchronously in opposite directions. The rocker arm assembly drives the power wheel to mesh with the first reversing wheel, thereby driving the power gear and the power wheel to rotate in one direction. When the rocker arm drives the power wheel to mesh with the second reversing wheel, the second reversing wheel and the first reversing wheel move in opposite directions, that is, they can drive the power gear and the power wheel to move in opposite directions. In other words, through the forward or reverse movement of the first reversing wheel and the second reversing wheel, the rack is driven to move alternately forward and reverse, thereby realizing the intermittent reciprocating motion of the drive lever, indirectly and orderly applying external force to the outer wall of the filter bag, so that the residual water in the filter bag is quickly discharged to the outside.
[0013] Optionally, the rocker arm assembly includes a limiting plate fixedly connected to the positioning box, a guide ridge fixedly connected to the middle of the limiting plate, symmetrical guide slopes on both sides of the guide ridge, a first guide groove and a second guide groove formed between the guide ridge and the limiting plate, a rocker arm rotatably connected to the power shaft, a roller rotatably connected to the bottom of the rocker arm, the roller slidingly connected to the first guide groove or the second guide groove, a guide shaft fixedly connected to the positioning box, a sliding groove opened in the middle of the rocker arm, and the guide shaft slidingly connected to the sliding groove.
[0014] By adopting the above technical solution, when the user uses the device, the drive motor drives the first reversing wheel and the second reversing wheel to rotate in opposite directions. When the power gear meshes with the first reversing wheel, the power gear rotates upward with the first reversing wheel, causing the rotation axis to tilt upward, which in turn causes the swing arm to move upward. The roller slides and connects to the second guide groove. When the power gear rotates to the highest point, the swing arm moves upward to the highest point, and the roller slides to the highest point of the guide ridge. The thrust of the first reversing wheel pushes the power gear to roll in the direction of the second reversing wheel. At this time, the roller slides down from the top of the guide ridge into the first guide groove, that is, the swing arm swings in the opposite direction, pushing the power gear to move in the direction of the second reversing wheel. When the roller slides to the bottom of the first guide groove, the power gear and the second reversing wheel mesh. The rotation directions of the second reversing wheel and the first reversing wheel are opposite, that is, the second reversing gear drives the power gear to rotate in the opposite direction, thereby realizing the orderly forward and reverse rotation of the power gear. Then, through the power wheel, the rack rotates in an orderly forward and reverse direction, thereby driving the flap arm to intermittently and orderly apply pressure to the filter bag.
[0015] Optionally, a return spring is fixedly connected inside the positioning box, with one end of the return spring connected to the middle position of the guide ridge and the other end connected to the end of the swing rod.
[0016] By adopting the above technical solution, when the bottom of the swing arm moves to the top of the guide rod, the tension of the return spring facilitates the swing arm to change direction, sliding from the first guide groove to the second guide groove, or from the second guide groove to the first guide groove, thus facilitating the swing arm to change direction. At the same time, the tension of the return spring facilitates the swing arm to slide to the bottom of the second guide groove and the first guide groove, ensuring that the power gear meshes with the first reversing wheel or the second reversing wheel.
[0017] Optionally, the filter bag has a discharge port on the side away from the water inlet channel, and the water collection tank has a clearance opening on the side corresponding to the discharge port. An automatic sealing mechanism is provided at the discharge port position of the filter bag. The automatic sealing mechanism includes sealing strips fixedly connected to the two symmetrical sides of the discharge port. Both ends of the two sealing strips are hinged to connecting rods. Cylinders are fixedly connected to the two sides of the clearance opening of the water collection tank. The piston rod ends of the two cylinders are arranged opposite each other. The piston rod ends of the cylinders are fixedly connected to hinge seats. The end of the connecting rod away from the sealing strip is hinged to the hinge seat.
[0018] By adopting the above technical solution, when the user uses the filter bag, the piston rod of the cylinder retracts, pulling the connecting rod outward, which in turn causes the sealing strip to come into contact with each other, automatically closing the outlet of the filter bag. When it is necessary to clean the waste material inside the filter bag, the piston rod of the cylinder extends, pushing the connecting rod outward to expand, which in turn causes the sealing strip to separate, automatically opening the outlet.
[0019] Optionally, the filter bag is provided with multiple support rods that extend from the feed inlet of the filter bag into the interior of the filter bag.
[0020] By adopting the above technical solution, during the mud-water separation process, the filter bag will shrink and collapse due to the internal gravity of the mud and water, external squeezing force, or negative pressure during the emptying stage. The support rod extends inward from the feed inlet to form a rigid support frame, supporting the inner cavity of the filter bag and preventing the filter bag walls from sticking together. This maintains the maximum effective filtration area and also guides and disperses the pumped mud and water, thus maintaining the shape stability of the filter bag, ensuring filtration efficiency, and extending the service life of the filter bag.
[0021] Optionally, a filter screen is installed on the frame at the discharge port of the grinder, the filter screen is located at the top of the wastewater collection channel, and a recycling box is installed on the side of the frame corresponding to the filter screen.
[0022] By adopting the above technical solution, when the user uses the grinder, the wastewater and waste material mixture and golf ball cores are discharged from the outlet. The filter screen separates the golf ball cores from the wastewater and waste material mixture, and the golf ball cores blocked by the filter screen automatically roll into the recycling bin for collection. Attached Figure Description
[0023] Figure 1 This is a schematic diagram of the overall structure of an embodiment of this application; Figure 2 This is a cross-sectional view of an embodiment of this application; Figure 3 This is a schematic diagram of a solid-liquid separation device; Figure 4 This is an exploded view created to highlight the drive mechanism; Figure 5 yes Figure 4 Enlarged view of part A; Figure 6 This is a structural diagram designed to highlight the power assembly and the rocker arm assembly.
[0024] Explanation of reference numerals in the attached drawings: 1. Frame; 2. Grinding mill; 21. Filter screen; 22. Recycling box; 3. Wastewater collection channel; 4. Solid-liquid separation device; 41. Water collection tank; 411. Clearance port; 42. Filter bag; 421. Discharge port; 422. Sealing strip; 423. Connecting rod; 424. Cylinder; 425. Hinge seat; 426. Support rod; 43. Water inlet channel; 44. Support column; 45. Pattering rod; 5. Circulation pipe; 6. Drive mechanism; 61. Transmission gear; 62. Connecting rod; 63. Transmission shaft; 64. Transmission wheel; 65. Power wheel; 651. Moving wheel. 652. Force shaft; 66. Universal joint; 67. Toothed belt; 68. Power assembly; 69. Positioning box; 60. Drive motor; 61. Main gear; 62. First driven wheel; 63. Second driven wheel; 64. First reversing wheel; 65. Second reversing wheel; 66. Power gear; 67. Rocker arm assembly; 68. Limiting plate; 69. Guide ridge; 60. Guide slope; 61. First guide groove; 62. Second guide groove; 63. Rocker arm; 64. Sliding groove; 65. Roller; 66. Guide shaft; 67. Return spring. Detailed Implementation
[0025] The following is in conjunction with the appendix Figure 1-6 This application will be described in further detail.
[0026] In this application, unless otherwise expressly specified and limited, the terms "installation," "connection," "linking," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection, an electrical connection, or a communication connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this invention according to the specific circumstances.
[0027] In this application, unless otherwise expressly specified and limited, the "above" or "below" of the second feature can mean that the first and second features are in direct contact, or that the first and second features are in indirect contact through an intermediate medium. In the description of this specification, references to terms such as "an embodiment," "some embodiments," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of this application. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described can be combined in any suitable manner in one or more embodiments or examples.
[0028] This application provides a water circulation filtration system for processing golf ball cores, referring to... Figure 1 and Figure 2 The system includes a frame 1, multiple grinding mills 2, a wastewater collection channel 3, a solid-liquid separation device 4, and a circulation pipe 5. The frame 1 supports the entire system. The multiple grinding mills 2 are mounted on the frame 1 and are used to grind golf ball cores. The wastewater collection channel 3 is located below the feed inlet of the grinding mills 2 on the frame 1 and is used to collect the mixture of wastewater and waste materials after grinding. The solid-liquid separation device 4 is located on one side of the frame 1 and is used to separate the wastewater and waste materials. The circulation pipe 5 connects the solid-liquid separation device 4 and the grinding mills 2 to achieve water resource recycling. This system achieves efficient separation of grinding wastewater and waste materials and water resource recycling. The reason for this is that through the coordinated work of each component, the wastewater and waste materials generated during grinding can be effectively treated and reused.
[0029] Specifically, the grinder 2 is a key piece of equipment for grinding the golf ball core. The grinder 2 typically consists of a motor, a grinding disc, and other components. The motor provides power for the rotation of the grinding disc; different power AC or DC motors can be selected to suit different grinding needs. The surface of the grinding disc usually has a certain degree of roughness to better contact the surface of the golf ball core and achieve the grinding of surface imperfections. The grinding disc can be made of wear-resistant materials such as hard alloy to ensure its service life. During the grinding process, the motor drives the grinding disc to rotate at high speed, and the golf ball core moves relative to the surface of the grinding disc, thereby removing burrs, protrusions, and sharp edges from the surface of the golf ball core.
[0030] Wastewater collection channel 3 is used to collect the mixture of wastewater and waste materials generated after grinding by the grinder 2. Wastewater collection channel 3 can be made of corrosion-resistant materials such as stainless steel to prevent corrosion from wastewater. Its shape can be rectangular or circular, depending on the actual installation space and requirements. The bottom of wastewater collection channel 3 can be sloped to allow the wastewater and waste material mixture to flow smoothly.
[0031] A filter screen 21 is installed on the frame 1 at the feed inlet of the grinder 2. The filter screen 21 is located at the top of the wastewater collection channel 3. A collection box 22 is installed on the side of the frame 1 corresponding to the filter screen 21. The filter screen 21 can be made of metal or plastic and has a certain filtration accuracy. The function of the filter screen 21 is to separate the golf ball cores from the wastewater mixture. The golf ball cores blocked by the filter screen 21 automatically roll into the collection box 22 for collection.
[0032] Reference Figure 2 and Figure 3The solid-liquid separation device 4 includes a water collection tank 41, a filter bag 42, a water inlet channel 43, a support column 44, a flap bar 45, and a drive mechanism 6. The water collection tank 41 collects the filtered water and can be made of materials such as plastic or metal, possessing a certain degree of sealing to prevent water leakage. The filter bag 42 is placed inside the water collection tank 41 and is made of geotextile material such as polyethylene fiber or high-toughness polypropylene yarn. The filter bag 42 has openings for water to pass through. This geotextile material has good filtration performance and corrosion resistance. The filter bag 42 can be cylindrical or square, and its size is determined according to the dimensions of the water collection tank 41. The water inlet channel 43 is fixedly connected to the water collection tank 41 and connects the water collection tank 41 to the wastewater collection pipe. The water inlet channel 43 can be connected by a pipe made of materials such as plastic or rubber, possessing a certain degree of flexibility and corrosion resistance. A support column 44 is located at the bottom of the water collection tank 41, supporting the bottom of the filter bag 42. The support column 44 is gate-shaped and can be made of metal or high-strength plastic. A circulation pipe 5 is fixedly connected to the water collection tank 41. The end of the circulation pipe 5 away from the water collection tank 41 extends to the grinder 2. A water pump is fixedly connected to the circulation pipe 5. The circulation pipe 5 is used to guide the separated water to the grinder 2 for reuse. It is generally made of plastic or metal pipe. The diameter and length of the circulation pipe 5 are designed according to actual needs. To ensure smooth water flow, the inner wall of the circulation pipe 5 can be smoothed to reduce water flow resistance. A flap 45 is rotatably connected to the support column 44. The flap 45 can be made of metal rod and has a certain strength and toughness. A drive mechanism 6 is provided on the side wall of the water collection tank 41 to drive the flap 45 to reciprocate and apply pressure to the filter bag 42.
[0033] The filter bag 42 has a discharge port 421 on the side away from the water inlet channel 43. The water collection tank 41 has a clearance port 411 on the side corresponding to the discharge port 421. The filter bag 42 is provided with a sealing strip 422, a connecting rod 423, a cylinder 424, and a hinge seat 425 at the position of the discharge port 421. The sealing strips 422 are fixedly connected to the two symmetrical sides of the discharge port 421, and the two ends of the two sealing strips 422 are hinged to the connecting rods 423. The water collection tank 41 is fixedly connected to the two sides of the clearance port 411 with cylinders 424. The piston rod ends of the two cylinders 424 are arranged opposite each other, and the piston rod ends of the cylinders 424 are fixedly connected to the hinge seats 425. The end of the connecting rod 423 away from the sealing strip 422 is hinged to the hinge seat 425. By extending and retracting the piston rod of cylinder 424, the sealing strip 422 can be brought into contact with and separated from the filter bag 42, thereby automatically closing or opening the outlet 421 of the filter bag 42.
[0034] Multiple support rods 426 are installed inside the filter bag 42, extending from the water inlet channel 43 into the interior of the filter bag 42. The support rods 426 can be made of metal or plastic and possess a certain degree of rigidity. The function of the support rods 426 is to form a rigid support frame during the mud-water separation process, supporting the inner cavity of the filter bag 42 and preventing the filter bag walls from sticking together, thus maintaining the maximum effective filtration area. They also guide and disperse the pumped mud-water, maintaining the shape stability of the filter bag 42, ensuring filtration efficiency, and extending the service life of the filter bag 42.
[0035] Reference Figure 4 , Figure 5 and Figure 6 The drive mechanism 6 includes a transmission gear 61, a connecting rod 62, a transmission shaft 63, a transmission wheel 64, a power wheel 65, and a toothed belt 66. The transmission gear 61 is fixedly connected to one end of the support column 44. The transmission gear 61 can be a metal gear, offering high transmission accuracy and wear resistance. A connecting rod 62 is fixedly connected to the transmission gear 61, connecting the transmission gear 61 and the lever 45. The connecting rod 62 can be made of metal or plastic. One end of the lever 45 is fixedly connected to the connecting rod 62, and the other end is rotatably connected to the support column 44. The transmission shaft 63 is rotatably connected to the support column 44. The transmission shaft 63 can be a metal shaft, offering good rotational performance. One end of the transmission shaft 63 is fixedly connected to the transmission wheel 64, and the other end is fixedly connected to the power wheel 65. The transmission wheel 64 meshes with the drive gear, and all the power wheels 65 on the support column 44 are meshed with the toothed belt 66. The outer wall of the water tank 41 is equipped with a reversing assembly and a power assembly 67 for driving the toothed belt 66 to reciprocate.
[0036] The power assembly 67 includes a positioning box 671, a drive motor 672, a main gear 673, a first driven wheel 674, a second driven wheel 675, a first reversing wheel 676, a second reversing wheel 677, and a power gear 678. The positioning box 671 is fixedly connected to the outer wall of the water collection tank 41 and is used to install the motor and protect internal gears and other components. The positioning box 671 can be made of metal, providing a certain level of protection. The drive motor 672 is fixedly connected to the outer wall of the positioning box 671. The output shaft of the drive motor 672 extends into the positioning box 671 and is fixedly connected to the main gear 673. The drive motor 672 can be a servo motor of different power to precisely control the speed and direction of rotation. The main gear 673 drives the two driven wheels to move synchronously in opposite directions, thereby driving the first reversing wheel 676 and the second reversing wheel 677 to rotate synchronously in opposite directions. A drive shaft 651 is fixedly connected to the center of the drive wheel 65. A universal joint 652 is fixedly connected to the drive shaft 651. A drive gear 678 is fixedly connected to the end of the drive shaft 651 away from the drive wheel 65. The drive gear 678 is located between the first reversing wheel 676 and the second reversing wheel 677. A rocker arm 686 assembly 68 is provided inside the positioning box 671.
[0037] The rocker arm 686 assembly 68 drives the power wheel 65 to mesh with the first reversing wheel 676 or the second reversing wheel 677, thereby realizing the forward and reverse rotation of the power gear 678. The rocker arm 686 assembly 68 includes a limiting plate 681, a guide rib 682, a guide ramp 683, a first guide groove 684, a second guide groove 685, a rocker arm 686, a roller 687, a guide shaft 688, a return spring 689, etc. The limiting plate 681 is fixedly connected to the positioning box 671. The guide rib 682 is fixedly connected to the middle of the limiting plate 681. Symmetrical guide ramps 683 are opened on both sides of the guide rib 682. The first guide groove 684 and the second guide groove 685 are formed between the guide rib 682 and the limiting plate 681. A rocker arm 686 is rotatably connected to the drive shaft 651. A roller 687 is rotatably connected to the bottom of the rocker arm 686, and the roller 687 is slidably connected in the first guide groove 684 or the second guide groove 685. A guide shaft 688 is fixedly connected to the positioning box 671. A sliding groove 6861 is opened in the middle of the rocker arm 686, and the guide shaft 688 is slidably connected in the sliding groove 6861. One end of the return spring 689 is connected to the middle position of the guide rib 682, and the other end is connected to the end of the rocker arm 686. The function of the return spring 689 is to facilitate the reversing of the rocker arm 686 and ensure the meshing of the drive gear 678 and the reversing wheel.
[0038] The implementation principle of this embodiment is as follows: During the grinding process of golf ball cores, the grinder 2 grinds the cores, and the resulting wastewater and waste mixture is discharged from the discharge port of the grinder 2. The wastewater and waste mixture first passes through the filter screen 21, which separates the golf ball cores, which then roll into the recycling bin 22. The wastewater and waste mixture enters the wastewater collection channel 3, and then flows into the filter bag 42 in the water collection tank 41 through the water inlet channel 43. The filter bag 42 filters the wastewater and waste mixture; the water flows out through the gaps in the filter bag 42, while the waste is intercepted inside the filter bag 42, achieving solid-liquid separation. The drive mechanism 6 drives the racket arm 45 to reciprocate, and the racket arm 45 applies pressure to the filter bag 42, squeezing the waste inside the filter bag 42, promoting faster discharge of residual water and improving the solid-liquid separation efficiency. The water collection tank 41 collects the filtered water, and the circulation pipe 5 guides the separated water back to the grinder 2 for reuse, realizing the recycling of water resources. When it is necessary to clean the waste material inside the filter bag 42, the piston rod of the cylinder 424 extends, pushing the connecting rod 423 outward to expand, causing the sealing strip 422 to separate and automatically opening the discharge port 421 for easy waste removal. The support rod 426 inside the filter bag 42 maintains the shape stability of the filter bag 42, ensuring filtration efficiency and extending the service life of the filter bag. Through the coordinated work of its components, the entire system achieves efficient separation of grinding wastewater and waste materials and the recycling of water resources, reducing processing costs, minimizing environmental pollution, and improving the overall economic and environmental benefits of golf ball core processing.
[0039] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.
Claims
1. A water circulation filtering system for processing golf ball cores, characterized in that: it comprises a rack (1), a plurality of grinding machines (2) are arranged on the rack (1), one side of the grinding machine (2) is provided with a discharge port (421), a wastewater collection channel (3) is arranged below the discharge port (421) of the rack (1), the wastewater collection channel (3) is used for collecting the mixture of wastewater and waste after grinding, and a solid-liquid separation device (4) is arranged on one side of the rack (1); the solid-liquid separation device (4) comprises a water collecting tank (41) arranged on the rack (1), a filter bag (42) is arranged in the water collecting tank (41), the filter bag (42) is provided with gaps for water to pass through, the water collecting tank (41) is fixedly connected with a water inlet channel (43), the water inlet channel (43) is used for connecting the water collecting tank (41) and the wastewater collection pipeline, the bottom of the water collecting tank (41) is provided with a support column (44), the support column (44) is used for abutting and supporting the bottom of the filter bag (42), the support column (44) is rotatably connected with a beating rod (45), a driving mechanism (6) for driving the beating rod (45) to reciprocate and press the filter bag (42) is arranged on the side wall of the water collecting tank (41), and a circulating pipe (5) is fixedly connected to the water collecting tank (41). One end of the circulating pipe (5) away from the water collecting tank (41) extends to the grinding machine (2). the support column (44) is arranged in a door type, the driving mechanism (6) comprises a transmission gear (61) fixedly connected to one end of the support column (44), the transmission gear (61) is fixedly connected with a connecting rod (62), one end of the beating rod (45) is fixedly connected to the connecting rod (62), the other end is rotatably connected to the support column (44), the support column (44) is rotatably connected with a transmission shaft (63), one end of the transmission shaft (63) is fixedly connected with a transmission wheel (64), the other end is fixedly connected with a power wheel (65), the transmission wheel (64) is engaged with the driving gear, and the power wheels (65) on all the support columns (44) are commonly engaged with a toothed belt (66). A reversing assembly and a power assembly (67) for driving the toothed belt (66) to reciprocate are arranged on the outer side wall of the water collecting tank (41).
2. A water recycling filtration system for processing a golf ball core as defined in claim 1, wherein:
3. The water circulation filtering system for processing golf ball cores according to claim 2, characterized in that: the power assembly (67) comprises a positioning box (671) fixedly connected to the outer side wall of the water collecting tank (41), a positioning box (671) fixedly connected to the outer side wall of the water collecting tank (41), a driving motor (672) fixedly connected to the positioning box (671), an output shaft of the driving motor (672) extending into the positioning box (671) and fixedly connected with a main gear (673). The reversing assembly comprises a first driven wheel (674) and a second driven wheel (675) rotatably connected in a positioning box (671), the first driven wheel (674) and the second driven wheel (675) are located on two sides of the main gear (673) and are in mesh with the main gear (673) at the same time, the first driven wheel (674) and the second driven wheel (675) are respectively connected with a first reversing wheel (676) and a second reversing wheel (677), a rotating shaft one is fixedly connected between the center of the first reversing wheel (676) and the first driven wheel (674), a rotating shaft two is fixedly connected between the center of the second reversing wheel (677) and the second driven wheel (675), a power shaft (651) is fixedly connected at the center of the power wheel (65), a universal joint (652) is fixedly connected on the power shaft (651), a power gear (678) is fixedly connected at one end of the power shaft (651) away from the power wheel (65), the power gear (678) is located between the first reversing wheel (676) and the second reversing wheel (677), and a swing rod (686) assembly (68) for driving the power gear (678) to swing and mesh with the first reversing wheel (676) or the second reversing wheel (677) is arranged in the positioning box (671).
4. A water recycling filtration system for processing a golf ball core as defined in claim 2, wherein: The swing rod (686) assembly (68) comprises a limiting plate (681) fixedly connected in the positioning box (671), a guide rib (682) is fixedly connected to the middle portion of the limiting plate (681), symmetrical guide inclined surfaces (683) are formed on the two sides of the guide rib (682), a first guide groove (684) and a second guide groove (685) are formed between the guide rib (682) and the limiting plate (681), a swing rod (686) is rotatably connected to the power shaft (651), a roller (687) is rotatably connected to the bottom of the swing rod (686), the roller (687) is slidably connected in the first guide groove (684) or the second guide groove (685), a guide shaft (688) is fixedly connected to the positioning box (671), a sliding groove (6861) is formed in the middle portion of the swing rod (686), and the guide shaft (688) is slidably connected in the sliding groove (6861).
5. A water recycling filtration system for processing a golf ball core as defined in claim 4, wherein: A reset spring (689) is fixedly connected in the positioning box (671), one end of the reset spring (689) is connected to the middle position of the guide rib (682), and the other end is connected to the end portion of the swing rod (686).
6. The water circulation filtration system for processing golf ball cores according to claim 1, wherein: A discharge port (421) is formed on the side of the filter bag (42) away from the water inlet channel (43), a position giving port (411) is formed on the side of the water collecting tank (41) corresponding to the discharge port (421), and an automatic sealing mechanism is arranged at the position of the filter bag (42) corresponding to the discharge port (421). The self-sealing mechanism comprises sealing strips (422) fixedly connected to the two symmetrical sides of the discharge port (421), both ends of the two sealing strips (422) are hingedly connected with connecting rods (423), the water collecting tank (41) is fixedly connected with air cylinders (424) on the two sides of the accommodation opening (411), the piston rod ends of the two air cylinders (424) are oppositely arranged, the piston rod ends of the air cylinders (424) are fixedly connected with hinged seats (425), and one end of the connecting rod (423) away from the sealing strip (422) is hingedly connected to the hinged seat (425).
7. A water recycling filtration system for processing a golf ball core as defined in claim 1, wherein: A plurality of supporting rods (426) are arranged in the filter bag (42), and the supporting rods (426) extend from the feed port of the filter bag (42) to the inside of the filter bag (42).
8. A water recycling filtration system for processing a golf ball core as defined in claim 1, wherein: The rack (1) is provided with a filter screen (21) at the discharge port (421) of the grinding machine (2), the filter screen (21) is located at the top of the wastewater collecting channel (3), and the rack (1) is provided with a recovery box (22) on the side corresponding to the filter screen (21).