A cleaning mop magnetic attraction panel processing and forming equipment and a processing method thereof
Patent Information
- Application Number
- CN202410130481.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-01-30
- Publication Date
- 2026-09-08
- Estimated Expiration
- 2044-01-30
AI Technical Summary
[0003]由于清洁拖把磁吸面板结构复杂,上面筋条较多,在注塑成型时需要冷却机构辅助进行冷却,实现快速成型,现有的注塑冷却机构多为单一的风冷或水冷,结构简单、散热效果不理想,严重影响产品的成型效率
[0020] Compared to single-mode water cooling and air cooling, this cleaning mop magnetic panel processing and molding equipment and its processing method combine water cooling and air cooling. It absorbs heat from the water flow through a cooling plate and then dissipates heat from both the water flow and the cooling plate through air, greatly improving the water cooling effect and ensuring the molding efficiency of the product inside the cavity. In addition, the lifting filter plate automatically cleans the main filter screen during demolding without affecting the operation of the fan. It can be used for a long time without stopping the machine for manual cleaning, further ensuring processing efficiency.
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Figure CN118386501B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of injection molding equipment technology, specifically to a cleaning mop magnetic panel processing and molding equipment and its processing method. Background Technology
[0002] Magnetic panels for cleaning mops are generally manufactured using injection molding. The working principle of an injection molding machine is similar to that of a syringe; it uses the thrust of a screw (or plunger) to inject pre-plasticized molten (i.e., viscous) plastic into a closed mold cavity. After solidification, the finished product is obtained. However, existing injection molding equipment for magnetic panels for cleaning mops has the following shortcomings:
[0003] Because the magnetic panel of the cleaning mop has a complex structure with many ribs, a cooling mechanism is needed to assist in cooling during injection molding to achieve rapid molding. Existing injection molding cooling mechanisms are mostly simple air cooling or water cooling, which have simple structures and unsatisfactory heat dissipation effects, seriously affecting the molding efficiency of the product. Summary of the Invention
[0004] To achieve the above objectives, the present invention provides the following technical solution: a cleaning mop magnetic panel processing and forming equipment and processing method thereof, comprising a forming mechanism, wherein the forming mechanism comprises a lower mold, an upper mold disposed on the top of the lower mold, and a cooling pipe disposed inside the lower mold and the upper mold, wherein the two ends of the cooling pipe are provided with a water inlet end and a water outlet end, one side of the lower mold is connected to the cooling mechanism through a fixing plate, and one side of the upper mold is provided with a lifting plate extending to the top of the cooling mechanism;
[0005] The cooling mechanism includes a water tank, a pump box on one side of the water tank, and a pump with its output end connected to the water inlet end inside the pump box. The water tank contains, from top to bottom, a collection chamber, a cooling chamber, and a water storage chamber. The pump's input end is connected to the water storage chamber, and its outlet end is connected to the collection chamber. A fan is installed on one side of the inner wall of the cooling chamber. A filter plate is embedded on one side of the water tank. The filter plate contains a main filter screen opposite the fan and an auxiliary filter screen located below the main filter screen. The top of the filter plate is fixedly connected to the bottom of a lifting plate. A collection baffle is provided on one side of the filter plate between the main filter screen and the auxiliary filter screen. A vibrating head is embedded on one side of the water tank. Vibrating ribs are provided inside both the main and auxiliary filter screens. A circular arc groove is formed on one side of each vibrating rib. One end of the vibrating head extends into one of the circular arc grooves. An exhaust pipe is provided on the side of the water tank away from the filter plate.
[0006] As a preferred embodiment of the present invention, the two ends of the collection enclosure extend to the bottom of both sides of the auxiliary filter screen, the collection enclosure is in the shape of an inverted U, and the top of the collection enclosure is arc-shaped.
[0007] As a preferred embodiment of the present invention, the inner wall of the collection enclosure is inclined toward the filter plate, and a guide arc plate is provided inside the collection enclosure, with one end of the guide arc plate fixedly connected to one side of the filter plate.
[0008] As a preferred embodiment of the present invention, the cooling cavity is provided with at least one cooling plate, and at least one water-passing cylinder is bent on the cooling plate. The water-passing cylinder is arc-shaped, with one end higher and the other end lower, and the higher end of the water-passing cylinder faces the fan.
[0009] As a preferred embodiment of the present invention, a water baffle is provided on the side of the cooling plate away from the fan. The water baffle is wavy. At least two demisting plates are provided inside the cooling cavity. The demisting plates are located on one side of the water baffle, and the demisting plates have Z-shaped demisting holes inside.
[0010] As a preferred embodiment of the present invention, the number of the vibrating heads is not less than one, and the multiple vibrating heads are respectively located above and below the fan. A spring is provided at the end of the vibrating head away from the arc groove. A hydraulic cylinder is provided at the top of the fixed plate, and the top of the hydraulic cylinder is connected to the bottom of the lifting plate.
[0011] As a preferred embodiment of the present invention, flexible hoses are provided on both the inlet and outlet ends corresponding to the upper mold, and a telescopic cylinder is provided inside the exhaust pipe. The top of the telescopic cylinder is fixedly connected to the bottom of the lifting plate, and an exhaust net corresponding to the telescopic cylinder is embedded on the top of the lifting plate.
[0012] As a preferred embodiment of the present invention, a storage trough is provided on one side of the water tank, located above and below the blower. A sealing gasket is provided inside the storage trough, with one end connected to one side of the filter plate. A plurality of drain holes are provided at equal intervals at the bottom of the inner wall of the collection cavity, and a water inlet is provided at the top of the collection cavity.
[0013] As a preferred embodiment of the present invention, a water collection baffle is provided at the bottom of the water storage cavity, a filter screen is movably engaged inside the water storage cavity, a baffle for limiting the position of the filter screen is provided on one side of the water tank, cavities are provided inside both the lower mold and the upper mold, molded products are provided inside the cavities, at least one stabilizing cylinder is provided around the lower mold, a stabilizing rod is movably provided inside the stabilizing cylinder and its top end is fixedly connected to the upper mold, and a gating system is provided inside the upper mold.
[0014] A processing method for a cleaning mop magnetic panel forming device includes the following steps:
[0015] S1. Injection molding: After the upper mold and lower mold are closed, molten material is poured through the sprue and enters the cavity.
[0016] S2. Cavity cooling: Cooling water is added to the water storage chamber through the water inlet. The pump is started, and the pump draws water from the water storage chamber and delivers it to the cooling pipe through the water inlet. The cooling pipe cools the cavity, allowing the product inside the cavity to be formed quickly. The water that has undergone heat exchange in the cooling pipe flows into the collection chamber through the water outlet. The water in the collection chamber flows to the cooling plate through the drain hole and finally flows back into the water storage chamber.
[0017] S3. Water cooling: The fan is started to draw in external air through the main filter and enter the interior of the cooling chamber. The air entering the cooling chamber simultaneously cools the cooling plate and the water flow. The demisting plate removes water vapor from the heat-exchanged gas. After removing water vapor, the air is discharged through the exhaust pipe and the telescopic pipe.
[0018] S4. Product forming: After the product inside the cavity is formed, the hydraulic cylinder is activated to drive the upper mold and the lifting plate to rise, thereby achieving demolding. After demolding, the formed product inside the cavity can be removed.
[0019] Compared with the prior art, the present invention provides a processing equipment and method for forming magnetic panels for cleaning mops, which has the following beneficial effects:
[0020] Compared to single-mode water cooling and air cooling, this cleaning mop magnetic panel processing and molding equipment and its processing method combine water cooling and air cooling. It absorbs heat from the water flow through a cooling plate and then dissipates heat from both the water flow and the cooling plate through air, greatly improving the water cooling effect and ensuring the molding efficiency of the product inside the cavity. In addition, the lifting filter plate automatically cleans the main filter screen during demolding without affecting the operation of the fan. It can be used for a long time without stopping the machine for manual cleaning, further ensuring processing efficiency. Attached Figure Description
[0021] Figure 1 This is a schematic diagram of the structure of a cleaning mop magnetic panel processing and forming equipment and processing method proposed in this invention;
[0022] Figure 2 This is a schematic diagram of the pump box structure of a cleaning mop magnetic panel processing and forming equipment and processing method proposed in this invention;
[0023] Figure 3 This is a structural side view of a cleaning mop magnetic panel processing and forming equipment and processing method proposed in this invention;
[0024] Figure 4This is a schematic diagram of the cooling pipe structure of a cleaning mop magnetic panel processing and forming equipment and processing method proposed in this invention.
[0025] Figure 5 This is a schematic diagram of the filter plate structure of a cleaning mop magnetic panel processing and forming equipment and processing method proposed in this invention.
[0026] Figure 6 This is a side view of the cooling plate structure of a cleaning mop magnetic panel processing and forming equipment and processing method proposed in this invention;
[0027] Figure 7 This is a schematic diagram of the cooling plate structure of a cleaning mop magnetic panel processing and forming equipment and processing method proposed in this invention.
[0028] Figure 8 This is a cross-sectional view of the filter plate structure of a cleaning mop magnetic panel processing and forming equipment and processing method proposed in this invention;
[0029] Figure 9 This is a cross-sectional view of the vibrating head structure of a cleaning mop magnetic panel processing and forming equipment and processing method proposed in this invention;
[0030] Figure 10 This is a top sectional view of the cooling pipe structure of a cleaning mop magnetic panel processing and forming equipment and processing method proposed in this invention;
[0031] Figure 11 This is a schematic diagram of the cavity structure of a cleaning mop magnetic panel processing and forming equipment and processing method proposed in this invention;
[0032] Figure 12 This is a cross-sectional view of the exhaust pipe structure of the cleaning mop magnetic panel processing and forming equipment and processing method proposed in this invention;
[0033] Figure 13 This is a schematic diagram of the formed product structure of the cleaning mop magnetic panel processing and forming equipment and processing method proposed in this invention;
[0034] Figure 14 This is a bottom view of the molded product structure of the cleaning mop magnetic panel processing equipment and processing method proposed in this invention.
[0035] In the diagram: 1. Molding mechanism; 11. Lower mold; 12. Upper mold; 13. Fixing plate; 131. Hydraulic cylinder; 14. Lifting plate; 15. Cavity; 16. Molded product; 17. Stabilizing cylinder; 171. Stabilizing rod; 18. Cooling pipe; 181. Water inlet; 182. Water outlet; 183. Hose; 19. Exhaust screen; 2. Cooling mechanism; 21. Water tank; 211. Pump box; 212. Pump; 213. Storage slot; 214. Sealing gasket; 215. 216. Vibrating head; 217. Exhaust pipe; 218. Telescopic cylinder; 22. Collection chamber; 23. Cooling chamber; 24. Water storage chamber; 241. Filter screen; 242. Baffle; 25. Cooling plate; 251. Water passage cylinder; 252. Water baffle; 26. Demister plate; 261. Demister hole; 27. Fan; 28. Filter plate; 281. Main filter screen; 282. Auxiliary filter screen; 283. Vibration rib; 284. Limiting strip; 29. Collection enclosure; 291. Guide arc plate. Detailed Implementation
[0036] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0037] Please see Figure 1-14 A cleaning mop magnetic panel processing and forming equipment and its processing method are disclosed. The equipment includes a forming mechanism 1. The forming mechanism 1 includes a lower mold 11, an upper mold 12 disposed on the top of the lower mold 11, and a cooling pipe 18 disposed inside the lower mold 11 and the upper mold 12. The cooling pipe 18 has a water inlet end 181 and a water outlet end 182 at both ends. The cooling mechanism 2 is connected to one side of the lower mold 11 through a fixing plate 13. A lifting plate 14 extending to the top of the cooling mechanism 2 is disposed on one side of the upper mold 12.
[0038] The cooling mechanism 2 includes a water tank 21. A pump box 211 is provided on one side of the water tank 21. A pump 212 with its output end connected to the water inlet end 181 is installed inside the pump box 211. The water tank 21 has a collection chamber 22, a cooling chamber 23, and a water storage chamber 24 arranged sequentially from top to bottom inside the water tank 21. The input end of the pump 212 is connected to the water storage chamber 24, and the water outlet end 182 is connected to the collection chamber 22. A fan 27 is installed on one side of the inner wall of the cooling chamber 23. A filter plate 28 is embedded on one side of the water tank 21. The filter plate 28 has a main filter screen 281 opposite to the fan 27 and an auxiliary filter screen 282 located below the main filter screen 281. The top of the filter plate 28 is fixedly connected to the bottom of the lifting plate 14. A collection enclosure 29 is provided on one side of the filter plate 28, located between the main filter screen 281 and the auxiliary filter screen 282. A vibrating head 215 is embedded on one side of the water tank 21. Vibrating ribs 283 are provided inside both the main filter screen 281 and the auxiliary filter screen 282. A circular arc groove is formed on one side of each vibrating rib 283. One end of the vibrating head 215 extends into one of the circular arc grooves. An exhaust pipe 216 is provided on the side of the water tank 21 away from the filter plate 28. Limit strips 284 are also provided at both ends of the filter plate 28 to ensure the stability of the filter plate 28 during its rising and falling processes. (See reference...) Figure 10 The lower mold 11 has two sets of cooling pipes 18 inside. The upper mold 12 has the same number of cooling pipes 18 as the lower mold 11. There are two pump boxes 211, which are located on both sides of the fixed plate 13. The two pumps 212 correspond to the two sets of cooling pipes 18 respectively.
[0039] As a specific technical solution in this embodiment, the two ends of the collection enclosure 29 extend to the bottom sides of the auxiliary filter screen 282. The collection enclosure 29 is generally U-shaped, and the top of the collection enclosure 29 is arc-shaped. The inner wall of the collection enclosure 29 is inclined towards the filter plate 28. A guide arc plate 291 is provided inside the collection enclosure 29. One end of the guide arc plate 291 is fixedly connected to one side of the filter plate 28. (Refer to...) Figure 5 Dust shaken off when the main filter 281 rises falls into the collection enclosure 29. (See reference...) Figure 8 The guide arc plate 291 guides the dust, and the inner wall of the collection enclosure 29 is inclined, so that the dust enters the lowest part of the inner side of the collection enclosure 29 and is blocked by the guide arc plate 291. This design means that the dust falling into the collection enclosure 29 will not overflow from the collection enclosure 29 even if it is vibrated. The top of the collection enclosure 29 is arc-shaped, so the dust can slowly slide to both sides of the collection enclosure 29 with vibration. The inverted U-shaped design of the collection enclosure 29 means that the dust will not adhere to the auxiliary filter screen 282 when it slides down from both sides of the collection enclosure 29.
[0040] As a specific technical solution of this embodiment, the cooling chamber 23 is provided with at least one cooling plate 25, and at least one water-passing cylinder 251 is bent on the cooling plate 25. The water-passing cylinder 251 is arc-shaped, with one end higher and the other end lower. The higher end of the water-passing cylinder 251 faces the fan 27. When the water flows down from the cooling plate 25, the fan 27 is started. The fan 27 draws in external air through the main filter screen 281 to cool the cooling plate 25 and cool the cooling water at the same time. The water-passing cylinder 251 not only increases the contact area between the cooling plate 25 and the water flow, but also absorbs the heat in the water flow. The inclined water-passing cylinder 251 is affected by the wind force, which makes the water flow on it generate a downward pressure, which accelerates the water flow and ensures the water flow delivery efficiency.
[0041] As a specific technical solution in this embodiment, a water-blocking baffle 252 is provided on the side of the cooling plate 25 away from the fan 27. The water-blocking baffle 252 is wavy. At least two demisting plates 26 are provided inside the cooling cavity 23. The demisting plates 26 are located on one side of the water-blocking baffle 252. The demisting plates 26 have Z-shaped demisting holes 261 inside. The water flow on the water pipes 251 is blown by the wind and flows onto the water-blocking baffle 252. The water-blocking baffle 252 is used to block the water flow. The shape of the water-blocking baffle 252 is the same as that of the multiple water pipes 251 on the cooling plate 25. The demisting plates 26 are used to filter water vapor without affecting the discharge of heat dissipation gas. See reference. Figure 7 and Figure 12 The Z-shaped demisting holes 261 are set at an angle to further intercept water vapor.
[0042] As a specific technical solution in this embodiment, the number of vibrating heads 215 is not less than one, and the multiple vibrating heads 215 are respectively located above and below the fan 27. A spring is provided at the end of the vibrating head 215 away from the arc groove. A hydraulic cylinder 131 is provided at the top of the fixed plate 13. The top of the hydraulic cylinder 131 is connected to the bottom of the lifting plate 14. During demolding, the hydraulic cylinder 131 is activated to drive the lifting plate 14 to rise. The upper mold 12 and the lifting plate 14 move accordingly to achieve demolding. At the same time as the lifting plate 14 rises, it drives the filter plate 28 to rise. (See reference...) Figure 9 The filter plate 28 drives the arc groove on the vibrating rib 283 to continuously abut against the vibrating head 215, causing the vibrating head 215 to retract and compress the spring and advance and impact the arc groove, causing the vibrating rib 283 and the filter plate 28 to vibrate continuously. Dust on the main filter screen 281 and the auxiliary filter screen 282 will fall off. The setting of the sealing gasket 214 can effectively prevent dust on the auxiliary filter screen 282 from falling into the inside of the collection groove 213 and contacting the inside of the auxiliary filter screen 282. Dust on the main filter screen 281 falls into the inside of the collection enclosure 29 and will not fall onto the auxiliary filter screen 282.
[0043] As a specific technical solution in this embodiment, hoses 183 are provided on both the inlet end 181 and the outlet end 182 corresponding to the upper mold 12. A telescopic cylinder 217 is provided inside the exhaust pipe 216. The top of the telescopic cylinder 217 is fixedly connected to the bottom of the lifting plate 14. An exhaust net 19 corresponding to the telescopic cylinder 217 is embedded in the top of the lifting plate 14. When the upper mold 12 needs to move upward during mold opening, the hoses 183 on the inlet end 181 and the outlet end 182 corresponding to the upper mold 12 can adapt to the upward and downward movement of the upper mold 12 without affecting the water flow. The lifting plate 14... When the lifting mechanism is activated, the telescopic cylinder 217 moves upward inside the exhaust cylinder 216. The exhaust cylinder 216 and the telescopic cylinder 217 not only guide the gas inside the cooling chamber 23 to be discharged, but also increase the stability of the lifting plate 14 during the rising and falling process. The gas treated by the demister plate 26 enters the interior of the exhaust cylinder 216. The gas inside the exhaust cylinder 216 is discharged through the telescopic cylinder 217 and the exhaust net 19. The fan 27 draws in the air with a lower temperature at the bottom, and the hotter gas is directly discharged above the upper mold 12 through the exhaust net 19, without affecting the air at the air extraction position of the fan 27, thus further ensuring the cooling efficiency.
[0044] As a specific technical solution of this embodiment, a storage groove 213 is provided on one side of the water tank 21, located above and below the fan 27. A sealing gasket 214 is provided inside the storage groove 213, with one end connected to one side of the filter plate 28. A number of drain holes are provided at equal intervals on the bottom of the inner wall of the collection cavity 22. A water inlet is provided on the top of the collection cavity 22. The silicone gasket is provided to prevent the inner side of the auxiliary filter screen 282 from being disturbed by dust.
[0045] As a specific technical solution in this embodiment, a water collection baffle is provided at the bottom of the water storage cavity 24, and a filter screen 241 is movably engaged inside the water storage cavity 24. A baffle 242 for limiting the position of the filter screen 241 is provided on one side of the water tank 21. Both the lower mold 11 and the upper mold are provided with cavities 15, and a molded product 16 is provided inside the cavity 15. At least one stabilizing cylinder 17 is provided around the lower mold 11, and the stabilizing cylinder 17 is movably provided with a top end that connects to the upper mold. A stabilizing rod 171 is fixedly connected around the mold 12. The upper mold 12 has an internal sprue. A water collection barrier guides the water flow inside the cooling chamber 23. A filter screen 241 further filters the water flowing from the cooling chamber 23 into the water storage chamber 24, ensuring the water pumped by the pump 212 remains clean, reducing the impact on the precision parts inside the pump 212, and minimizing blockage and corrosion of the cooling pipe 18. The stabilizing rod 171, in conjunction with the stabilizing cylinder 17, further ensures the stability of the upper mold 12 during demolding. (See reference...) Figure 11 ,13 After the upper mold 12 and lower mold 11 are separated, the product inside the cavity 15 is taken out. The cavity 15 can perform injection molding on multiple products at the same time, ensuring product processing efficiency.
[0046] A processing method for a cleaning mop magnetic panel forming device includes the following steps:
[0047] S1. Injection molding: After the upper mold 12 and the lower mold 11 are closed, molten material is poured through the gating system and enters the cavity 15.
[0048] S2. Cooling of cavity 15: Cooling water is added to the interior of water storage chamber 24 through the water inlet. Pump 212 is started. Pump 212 draws water from the interior of water storage chamber 24 and delivers it to cooling pipe 18 through water inlet 181. Cooling pipe 18 cools cavity 15, allowing the product inside cavity 15 to be formed quickly. Water that has undergone heat exchange in cooling pipe 18 flows into the interior of collection chamber 22 through water outlet 182. Water in collection chamber 22 flows onto cooling plate 25 through drain hole and finally flows back into the interior of water storage chamber 24.
[0049] S3. Water cooling: The fan 27 is started to draw in external air through the main filter 281 and enter the interior of the cooling chamber 23. The air entering the cooling chamber 23 simultaneously cools the cooling plate 25 and the water flow. The demisting plate 26 removes water vapor from the heat exchanged gas. After removing water vapor, the air is discharged through the exhaust pipe 216 and the telescopic pipe 217.
[0050] S4. Product forming: After the product inside the cavity 15 is formed, the hydraulic cylinder 131 is activated to drive the upper mold 12 and the lifting plate 14 to rise, thereby achieving demolding. After demolding, the formed product 16 inside the cavity 15 can be taken out.
[0051] In summary, compared to single-mode water cooling and air cooling, this cleaning mop magnetic panel processing and molding equipment and its processing method combine water cooling and air cooling. The cooling plate 25 absorbs heat from the water flow, and the air simultaneously dissipates heat from both the water flow and the cooling plate 25, greatly improving the water cooling effect and ensuring the molding efficiency of the product inside the cavity 15. Furthermore, the lifting filter plate 28 automatically cleans the main filter screen 281 during demolding without affecting the operation of the fan 27, allowing for long-term use without the need for manual cleaning and further ensuring processing efficiency.
[0052] It should be noted that, in this document, terms such as "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitation, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.
[0053] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A device for processing and forming a magnetic panel for a cleaning mop, comprising a forming mechanism (1), characterized in that: The molding mechanism (1) includes a lower mold (11), an upper mold (12) disposed on the top of the lower mold (11), and a cooling pipe (18) disposed inside the lower mold (11) and the upper mold (12). The cooling pipe (18) has an inlet end (181) and an outlet end (182) at both ends. The cooling mechanism (2) is connected to one side of the lower mold (11) through a fixing plate (13). A lifting plate (14) is provided on one side of the upper mold (12) with one end extending to the top of the cooling mechanism (2). The cooling mechanism (2) includes a water tank (21). A pump box (211) is provided on one side of the water tank (21). A pump (212) with its output end connected to the water inlet end (181) is provided inside the pump box (211). The water tank (21) has a collection chamber (22), a cooling chamber (23), and a water storage chamber (24) arranged from top to bottom inside the water tank (21). The input end of the pump (212) is connected to the water storage chamber (24), and the water outlet end (182) is connected to the collection chamber (22). A fan (27) is installed on one side of the inner wall of the cooling chamber (23). A filter plate (28) is embedded on one side of the water tank (21). A main filter screen (28) opposite to the fan (27) is provided inside the filter plate (28). 1) and an auxiliary filter (282) located below the main filter (281). The top of the filter plate (28) is fixedly connected to the bottom of the lifting plate (14). A collection enclosure (29) between the main filter (281) and the auxiliary filter (282) is provided on one side of the filter plate (28). A vibrating head (215) is embedded on one side of the water tank (21). Vibrating ribs (283) are provided inside the main filter (281) and the auxiliary filter (282). A circular arc groove (284) is opened on one side of the vibrating rib (283). One end of the vibrating head (215) extends into the interior of one of the circular arc grooves (284). An exhaust pipe (216) is provided on the side of the water tank (21) away from the filter plate (28). The two ends of the collection enclosure (29) extend to the bottom of both sides of the auxiliary filter screen (282). The collection enclosure (29) is in an inverted U-shape, and the top of the collection enclosure (29) is arc-shaped. The inner wall of the collection enclosure (29) is inclined towards the filter plate (28). A guide arc plate (291) is provided inside the collection enclosure (29). One end of the guide arc plate (291) is fixedly connected to one side of the filter plate (28). The cooling chamber (23) is provided with at least one cooling plate (25). At least one water passage cylinder (251) is bent on the cooling plate (25). The water passage cylinder (251) is arc-shaped, and one end of the water passage cylinder (251) is high and the other end is low. The higher end of the water passage cylinder (251) faces the fan (27).
2. The cleaning mop magnetic panel processing and forming equipment according to claim 1, characterized in that: A water baffle (252) is provided on the side of the cooling plate (25) away from the fan (27). The water baffle (252) is wavy. At least two demisting plates (26) are provided inside the cooling cavity (23). The demisting plates (26) are located on one side of the water baffle (252). The demisting plates (26) have Z-shaped demisting holes (261) inside.
3. The cleaning mop magnetic panel processing and forming equipment according to claim 2, characterized in that: The number of the vibrating heads (215) is not less than one, and the multiple vibrating heads (215) are located above and below the fan (27) respectively. A spring is provided at the end of the vibrating head (215) away from the arc groove (284). A hydraulic cylinder (131) is provided at the top of the fixed plate (13), and the top of the hydraulic cylinder (131) is connected to the bottom of the lifting plate (14).
4. The cleaning mop magnetic panel processing and forming equipment according to claim 3, characterized in that: The inlet (181) and outlet (182) corresponding to the upper mold (12) are both equipped with hoses (183). The inside of the exhaust pipe (216) is equipped with a telescopic cylinder (217). The top of the telescopic cylinder (217) is fixedly connected to the bottom of the lifting plate (14). The top of the lifting plate (14) is equipped with an exhaust net (19) corresponding to the telescopic cylinder (217).
5. The cleaning mop magnetic panel processing and forming equipment according to claim 4, characterized in that: The water tank (21) has a storage trough (213) on one side, located above and below the blower (27). The storage trough (213) has a sealing gasket (214) with one end connected to one side of the filter plate (28). The bottom of the inner wall of the collection cavity (22) has several drain holes at equal intervals. The top of the collection cavity (22) has a water inlet.
6. The cleaning mop magnetic panel processing and forming equipment according to claim 5, characterized in that: The bottom of the water storage chamber (24) is provided with a water collection enclosure. The inside of the water storage chamber (24) is movably connected to a filter screen (241). A baffle (242) for limiting the filter screen (241) is provided on one side of the water tank (21). The inside of the lower mold (11) and the upper mold is provided with a cavity (15). The inside of the cavity (15) is provided with a molded product (16). The lower mold (11) is provided with a ring of at least one stabilizing cylinder (17). The inside of the stabilizing cylinder (17) is provided with a stabilizing rod (171) whose top end is fixedly connected to the ring of the upper mold (12). The inside of the upper mold (12) is provided with a gating system.
7. A processing method based on the cleaning mop magnetic panel processing and forming equipment according to claim 6, characterized in that, Includes the following steps: S1. Injection molding: After the upper mold (12) and the lower mold (11) are closed, molten material is poured through the gating system and enters the cavity (15). S2, Cavity (15) cooling: Cooling water is added to the interior of the water storage chamber (24) through the water inlet. The pump (212) is started. The pump (212) draws water from the interior of the water storage chamber (24) and delivers it to the cooling pipe (18) through the water inlet (181). The cooling pipe (18) cools the cavity (15), allowing the product inside the cavity (15) to be formed quickly. The water in the cooling pipe (18) after heat exchange flows into the interior of the collection chamber (22) through the water outlet (182). The water in the collection chamber (22) flows to the cooling plate (25) through the drain hole and finally flows back into the interior of the water storage chamber (24). S3, Water cooling: The fan (27) is started to draw external air into the cooling chamber (23) through the main filter (281). The air entering the cooling chamber (23) simultaneously cools the cooling plate (25) and the water flow. The demisting plate (26) removes water vapor from the heat exchanged gas. After removing water vapor, the air is discharged through the exhaust pipe (216) and the telescopic pipe (217). S4. Product molding: After the product inside the cavity (15) is molded, the hydraulic cylinder (131) is started to drive the upper mold (12) and the lifting plate (14) to rise, thereby demolding. After demolding, the molded product (16) inside the cavity (15) can be taken out.
Citation Information
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