A high-frequency heat-sealing mold for a pure mesh double-stranded water pool and its production process

By designing a high-frequency thermal clamping mold with a rotating auxiliary mechanism, the safety and efficiency of manual removal and flipped thermal clamping materials are solved, and the automatic removal of materials and convenient cleaning of molds are achieved.

CN118952680BActive Publication Date: 2025-05-09淮安市东亚塑胶制品有限公司
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Patent Information

Application Number
CN202411315722.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-09-20
Publication Date
2025-05-09
Estimated Expiration
2044-09-20

AI Technical Summary

Technical Problem

During the high-frequency thermal bonding process of pure clamping double-pull belt pool, manual removal and turning of thermal bonding of the pool can easily lead to material damage and workers' scalding, while the mold maintains a high temperature, affecting production efficiency.

Method used

A high-frequency thermal mold is designed including a support seat, a pressing mechanism, a support frame, a slide rail, a drive mechanism, a mold unit and an auxiliary mechanism. The servo motor drives the motor shaft and the fixed plate to rotate, so that the mold unit can be rotated, so that the hot-connected pool material can be automatically removed and manual contact is avoided.

Benefits of technology

The automatic removal of the pool material after heat-connection is achieved, avoiding damage and scalds caused by artificial contact, improving production efficiency, and facilitating the cleaning and maintenance of the mold.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a pure clamping mesh double-drawn pool high-frequency heat-sealing mold and a production process thereof, which relate to the field of high-frequency heat-sealing molds, including a support seat, the top of the support seat is fixedly connected with a pressing mechanism, the outer surface of the support seat is fixedly connected with a support frame, the bottom of the support frame is evenly provided with supporting feet, the two sides of the support frame are symmetrically provided with slide rails, the bottom of the support frame is fixedly connected with a driving mechanism, the top of the slide rail is slidably connected with a mold unit, the end of the support frame away from the support seat is fixedly connected with an auxiliary machine, the mold unit will clamp the pool material, and then the driving mechanism will drive the mold unit to move to the pressing mechanism, the pressing mechanism will press the heat-sealing part of the pool material, and after the heat sealing is completed, the driving mechanism will drive the mold unit to return and contact with the auxiliary mechanism, and the auxiliary mechanism will tilt the mold unit.
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Description

Technical Field

[0001] The invention relates to the technical field of high-frequency heat-sealing moulds, in particular to a high-frequency heat-sealing mould for a pure clamped net double-drawn belt water pool and a production process thereof. Background Art

[0002] The high-frequency heat-sealing mold for pure mesh double-drawn water pool is a tool used for processing specific products. High-frequency heat sealing uses high-frequency electromagnetic fields to make material molecules move violently, thereby generating heat and achieving material fusion. When high-frequency current is introduced into the mold through the electrode connection part of the mold, a high-frequency electromagnetic field will be generated inside the mold. Under the action of the high-frequency electromagnetic field, the polar molecules in the pure mesh double-drawn water pool material will quickly orient and move rapidly with the change of the electromagnetic field. The friction between the molecules generates heat, which heats the material to the melting point, thereby achieving heat sealing.

[0003] When heat-sealing the pure mesh double-stretch pool material, it is necessary to first heat-seal the inner surrounding material of the pool, and then lay the outer surrounding material of the pool on the heat-sealed inner surrounding material for secondary heat-sealing. In this process, it is necessary to manually take out the heat-sealed inner surrounding material of the pool and turn it over. This process not only easily tears the inner surrounding material of the pool, but the mold will also maintain a high temperature for a period of time, and may also scald the workers who take the material. Summary of the invention

[0004] In view of the deficiencies of the prior art, the technical solution adopted by the present invention to solve the technical problems is as follows: the pure clamping net double-drawn belt water pool high-frequency heat-sealing mold described in the present invention comprises a support seat, the top of the support seat is fixedly connected with a pressing mechanism, the outer surface of the support seat is fixedly connected with a support frame, the bottom of the support frame is evenly provided with support feet, the two sides of the support frame are symmetrically provided with slide rails, the bottom of the support frame is fixedly connected with a driving mechanism, the top of the slide rail is slidably connected with a mold unit, and the end of the support frame away from the support seat is fixedly connected with an auxiliary machine;

[0005] The mold unit comprises a movable plate, side plates are fixedly connected to both sides of the movable plate, rollers are rotatably connected to the bottom of the side plates, a power source is fixedly connected to the top of the side plate on one side, a sagging plate is fixedly connected to the outer surface of the side plate on the other side, a support column 1 is fixedly connected to the bottom of the sagging plate, a positioning block is fixedly connected to one end of the support column 1 away from the sagging plate, a guide plate is fixedly connected to the side of the movable plate away from the pressing mechanism, and a mold mechanism is evenly arranged on the top of the movable plate;

[0006] The auxiliary mechanism includes a support plate 2, the inner wall of which is fixedly connected to a servo motor 1, the output end of which is fixedly connected to a motor shaft 1, the end of which is away from the servo motor 1 and is fixedly connected to a fixing plate, and a cross groove is provided on the side of the fixing plate away from the motor shaft 1.

[0007] Preferably, the outer surface of the roller contacts the top of the slide rail, and one end of the second support plate is fixedly connected to the outer surface of the support frame.

[0008] Preferably, the mold mechanism includes a support block, which is evenly arranged on the top of the movable plate, and an electrode plate is symmetrically arranged on the top of the support block. An inner groove is arranged on the opposite surface of the electrode plate, and a cleaning mechanism is slidably connected to the inner groove, and a clamping mechanism is evenly arranged on the outer surface of the electrode plate.

[0009] Preferably, the cleaning mechanism includes a sliding weight, the outer surface of which is fixedly connected to a support plate 1, brushes are evenly arranged on both sides of the support plate 1, a scraper is symmetrically arranged on the top of the support plate 1, and the bottom of the scraper is in contact with the top of the electrode plate.

[0010] Preferably, the clamping mechanism includes an L-shaped plate, the outer surface of the L-shaped plate is fixedly connected to support column 2, the end of the L-shaped plate close to support column 2 is fixedly connected to a telescopic spring, the telescopic spring is sleeved on support column 2, the side of the telescopic spring close to the electrode plate is fixedly connected to a sliding plate 1, the inner wall of the sliding plate 1 is slidably connected to the outer surface of support column 2, the top of the sliding plate 1 is fixedly connected to a clamping plate, the outer surface of the clamping plate is fixedly connected to an electromagnetic plate, the outer surface of the clamping plate on the other side is fixedly connected to a magnetic block, the electromagnetic plate close to the power supply is fixedly connected to an electric wire 1, the outer surface of the electromagnetic plate is fixedly connected to an electric wire 2, and adjacent electromagnets are connected through electric wires 2.

[0011] Preferably, the bottom of the support seat is fixedly connected to the top of the movable plate, the outer surface of the sliding weight is slidably connected to the outer surface of the inner groove, and the outer surface of the L-shaped plate is fixedly connected to the side of the electrode plate away from the inner groove.

[0012] Preferably, the driving mechanism includes a support plate three, the bottom of the support plate three is fixedly connected to the bottom of the support frame, the top of the support plate three is fixedly connected to a servo motor two, the output end of the servo motor two is fixedly connected to a motor shaft two, the end of the motor shaft two away from the servo motor two is fixedly connected to a gear one, a fixed block is symmetrically arranged on the top of the support frame, the inner wall of the fixed block is rotatably connected to a rotating rod, the outer surface of the rotating rod is fixedly connected to a gear two, the gear two is meshed with a track, the outer surface of the track is meshed with gear two, and the bottom of the guide plate is fixedly connected to the outer surface of the track.

[0013] Preferably, the pressing mechanism includes three support columns, which are evenly arranged on the top of the support seat, the top of the three support columns is fixedly connected to a top plate, the top of the top plate is fixedly connected to a hydraulic device, the inner wall of the top plate is evenly provided with telescopic rods, the bottom of the telescopic rods is fixedly connected to a pressing plate, the bottom of the pressing plate is evenly provided with a heat-sealing surface, and the bottom of the top plate is fixedly connected to a debris removal mechanism.

[0014] Preferably, the impurity removal mechanism includes a support plate four, the top of the support plate four is fixedly connected to the bottom of the top plate, the inner wall of the support plate four is fixedly connected to a servo motor three, the output end of the servo motor three is fixedly connected to a screw rod, the outer surface of the screw rod is threadedly connected to a sliding plate two, and a scratch plate is evenly arranged on the top of the sliding plate two, and the outer surface of the scratch plate is in contact with the bottom of the heat-sealed surface.

[0015] A pure clamped net double-stretched pool production process comprises the following steps:

[0016] S1: First put the inner surrounding material of the pool into the mold mechanism, and the clamping mechanism will fix the inner surrounding material of the pool.

[0017] S2: The driving mechanism moves the mold unit to the pressing mechanism, and the hydraulic device controls the pressing mechanism to press the heat-sealing surface against the pool material. At the same time, the motor plate is energized to generate a high-frequency magnetic field. The high-frequency electromagnetic field causes the material molecules to move violently, thereby generating heat and achieving the fusion of the pool material.

[0018] S3: The driving mechanism drives the heat-sealed inner peripheral material of the water pool to move to the auxiliary mechanism and connects the auxiliary mechanism with the mold unit. The auxiliary mechanism drives the mold unit to rotate, making it convenient to take out the heat-sealed inner peripheral material;

[0019] S4: Turn over the heat-sealed inner peripheral material and put it back into the flattened mold unit, then spread one side of the pool outer peripheral material, and then perform S2 and S3 steps in sequence, so as to achieve comprehensive heat sealing of the pure mesh double-stranded pool material.

[0020] The beneficial effects of the present invention are as follows:

[0021] 1. The present invention sets an auxiliary mechanism, and the support column 1 and the positioning block enter the cross slot of the fixed plate. The servo motor drives the motor shaft 1 and the fixed plate to rotate, thereby driving the mold unit to rotate, so that the heat-sealed pool material is automatically moved out of the mold unit, preventing people from being scalded or tearing the pool material when taking it, and also facilitating the cleaning mechanism to clean the electrode plate.

[0022] 2. The present invention provides a clamping mechanism, and conventional knob clamping may become loose during the movement of the mold unit. At the same time, electromagnetic clamping facilitates the movement of the heat-sealed material out of the mold unit without the need for manual removal of the clamping.

[0023] 3. The present invention sets a cleaning mechanism, the sliding weight will slide downward along the inner groove, the brush will brush the opposite surfaces of the two electrode plates, and the scraper on the top will also scratch the tops of the two electrode plates, which can not only enable the sliding weight to push the heat-sealed material to move, but also can remove the waste that is not fully heat-sealed and attached to the electrode plates.

[0024] 4. The present invention provides a debris removal mechanism, which causes the scratch plate and the heat-sealed surface to scratch, thereby squeezing out dust and foreign matter adhering to the heat-sealed surface and debris generated by previous heat sealing, thereby preventing the different shapes of the heat-sealed surfaces and the uniformity of heat sealing from causing inconsistent sealing of the water pool and resulting in local water leakage. BRIEF DESCRIPTION OF THE DRAWINGS

[0025] Figure 1 It is a structural schematic diagram of the present invention.

[0026] Figure 2 It is a bottom view of the structure of the present invention.

[0027] Figure 3 It is a structural schematic diagram of the mold unit of the present invention.

[0028] Figure 4 It is a structural schematic diagram of the mold mechanism of the present invention.

[0029] Figure 5 It is a structural schematic diagram of the clamping mechanism of the present invention.

[0030] Figure 6 It is a structural schematic diagram of the cleaning mechanism of the present invention.

[0031] Figure 7 It is a structural schematic diagram of the auxiliary mechanism of the present invention.

[0032] Figure 8 It is a structural schematic diagram of the driving mechanism of the present invention.

[0033] Fig. 9yes Figure 8 Enlarged view of point A in the middle.

[0034] Fig.10 It is a structural schematic diagram of the pressing mechanism of the present invention.

[0035] Fig.11 It is a structural schematic diagram of the impurity removal mechanism of the present invention.

[0036] Fig.12 It is a production process flow chart of the present invention.

[0037] In the figure: 1, support seat; 2, pressing mechanism; 3, support frame; 4, support foot; 5, slide rail; 6, driving mechanism; 7, mold unit; 8, auxiliary mechanism; 71, moving plate; 72, side plate; 73, roller; 74, guide plate; 75, mold mechanism; 76, power supply; 77, drooping plate; 78, support column 1; 79, positioning block; 751, support block; 752, electrode plate; 753, inner groove; 754, cleaning mechanism; 755, clamping mechanism; 7551, L-shaped plate; 7552, telescopic spring; 7553, support column 2; 7554, sliding plate 1; 7555, clamping plate; 7556, electromagnetic plate; 7557, wire 1; 7558, wire 2; 75 59. Magnetic block; 7541. Sliding weight; 7542. Support plate one; 7543. Brush; 7544. Scraper; 81. Support plate two; 82. Servo motor one; 83. Motor shaft one; 84. Fixed plate; 85. Cross slot; 61. Support plate three; 62. Servo motor two; 63. Motor shaft two; 64. Gear one; 65. Fixed block; 66. Rotating rod; 67. Gear two; 68. Track; 21. Support column three; 22. Top plate; 23. Hydraulic device; 24. Telescopic rod; 25. Pressing plate; 26. Heat sealing surface; 27. De-impurity mechanism; 271. Support plate four; 272. Servo motor three; 273. Screw; 274. Sliding plate two; 275. Scratch plate. DETAILED DESCRIPTION

[0038] The present invention is further described in detail below in conjunction with the accompanying drawings and specific embodiments. The embodiments of the present invention are provided for the purpose of illustration and description, and are not intended to be exhaustive or to limit the present invention to the disclosed forms. Many modifications and variations will be apparent to those of ordinary skill in the art. The embodiments are selected and described in order to better illustrate the principles and practical applications of the present invention, and to enable those of ordinary skill in the art to understand the present invention and thereby design various embodiments with various modifications suitable for specific uses.

[0039] Example 1, using Figure 1-Figure 12 A pure mesh double-strand water pool high-frequency heat-sealing mold and its production process according to one embodiment of the present invention are described as follows.

[0040] like Figure 1-Figure 2 As shown, a pure clamping net double-drawn belt pool high-frequency heat-sealing mold of the present invention comprises a support seat 1, a pressing mechanism 2 is fixedly connected to the top of the support seat 1, a support frame 3 is fixedly connected to the outer surface of the support seat 1, support feet 4 are evenly arranged at the bottom of the support frame 3, slide rails 5 are symmetrically arranged on both sides of the support frame 3, a driving mechanism 6 is fixedly connected to the bottom of the support frame 3, a mold unit 7 is slidably connected to the top of the slide rail 5, and an auxiliary machine is fixedly connected to the end of the support frame 3 away from the support seat 1;

[0041] When the present invention is working, the pool material is first placed on the mold unit 7, and the mold unit 7 will clamp the pool material. Then the driving mechanism 6 will drive the mold unit 7 to move to the pressing mechanism 2, and the pressing mechanism 2 will press the heat-sealed part of the pool material. After the heat sealing is completed, the driving mechanism 6 will drive the mold unit 7 to return and contact with the auxiliary mechanism 8, and the auxiliary mechanism 8 will tilt the mold unit 7 to facilitate the removal of the pool material from the mold unit 7.

[0042] like Figure 3 As shown, the mold unit 7 includes a movable plate 71, side plates 72 are fixedly connected to both sides of the movable plate 71, rollers 73 are rotatably connected to the bottom of the side plates 72, a power supply 76 is fixedly connected to the top of the side plate 72 on one side, a sagging plate 77 is fixedly connected to the outer surface of the side plate 72 on the other side, a support column 78 is fixedly connected to the bottom of the sagging plate 77, a clamping block 79 is fixedly connected to one end of the support column 78 away from the sagging plate 77, a guide plate 74 is fixedly connected to the side of the movable plate 71 away from the pressing mechanism 2, and a mold mechanism 75 is evenly arranged on the top of the movable plate 71;

[0043] like Figure 8-Figure 9 As shown, the driving mechanism 6 includes a support plate three 61, the bottom of the support plate three 61 is fixedly connected to the bottom of the support frame 3, the top of the support plate three 61 is fixedly connected to a servo motor two 62, the output end of the servo motor two 62 is fixedly connected to a motor shaft two 63, the end of the motor shaft two 63 away from the servo motor two 62 is fixedly connected to a gear one 64, and a fixed block 65 is symmetrically arranged on the top of the support frame 3. The inner wall of the fixed block 65 is rotatably connected to a rotating rod 66, and the outer surface of the rotating rod 66 is fixedly connected to a gear two 67, and the gear two 67 is meshed with a track 68, and the outer surface of the track 68 is meshed with the gear two 67, and the bottom of the guide plate 74 is fixedly connected to the outer surface of the track 68.

[0044] Servo motor 2 62 will drive motor shaft 2 63 to rotate, thereby driving gear 1 64 to rotate and causing track 68 to rotate. Gear 2 67 on both sides will control the rotation direction of track 68. The guide plate 74 fixedly connected to track 68 will also be driven, thereby achieving horizontal movement, and ultimately driving the movement of the moving plate 71, and the rollers 73 on both sides will also move along the guide rails.

[0045] like Figure 7 As shown, the auxiliary mechanism 8 includes a support plate 81, the inner wall of the support plate 81 is fixedly connected to a servo motor 82, the output end of the servo motor 82 is fixedly connected to a motor shaft 83, the end of the motor shaft 83 away from the servo motor 82 is fixedly connected to a fixing plate 84, and a cross groove 85 is provided on the side of the fixing plate 84 away from the motor shaft 83.

[0046] After the inner and outer materials of the pool are heat-sealed respectively, as the driving mechanism 6 drives the movable plate 71 to move, the support column 78 and the locking block 79 will enter the cross groove 85 of the fixed plate 84, and then the servo motor will drive the motor shaft 83 and the fixed plate 84 to rotate, thereby driving the mold unit 7 to rotate, so that the heat-sealed pool material is automatically moved out of the mold unit 7, preventing manual handling from being scalded or tearing the pool material, and also facilitating the cleaning of the electrode plate 752 by the cleaning mechanism 754.

[0047] The outer surface of the roller 73 contacts the top of the slide rail 5 , and one end of the second support plate 81 is fixedly connected to the outer surface of the support frame 3 .

[0048] like Figure 4 As shown, the mold mechanism 75 includes a support block 751, which is evenly arranged on the top of the movable plate 71. The electrode plate 752 is symmetrically arranged on the top of the support block 751. The opposite surface of the electrode plate 752 is provided with an inner groove 753, and a cleaning mechanism 754 is slidably connected to the inner groove 753. The outer surface of the electrode plate 752 is evenly provided with a clamping mechanism 755.

[0049] like Figure 6 As shown, the cleaning mechanism 754 includes a sliding weight 7541, the outer surface of which is fixedly connected to a support plate 7542, brushes 7543 are evenly arranged on both sides of the support plate 7542, and a scraper 7544 is symmetrically arranged on the top of the support plate 7542, and the bottom of the scraper 7544 is in contact with the top of the electrode plate 752.

[0050] During the process of the auxiliary mechanism 8 driving the mold unit 7 to rotate, when the movable plate 71 rotates ninety degrees, due to the effect of gravity, the sliding weight 7541 at the top will slide downward along the inner groove 753. During the sliding process, the brush 7543 will brush the opposite surfaces of the two electrode plates 752, and the scraper 7544 on the top will also scratch the tops of the two electrode plates 752, which can not only enable the sliding weight 7541 to push the heat-sealed material to move, but also remove the waste chips that are not fully heat-sealed and attached to the electrode plates 752, to prevent these waste chips from participating in the heat sealing of other positions during subsequent heat sealing, resulting in inconsistent thickness of the heat-sealed parts and different heat-sealing effects.

[0051] The specific workflow is as follows:

[0052] During operation, firstly, the inner material of the pool is placed into the mold mechanism. The driving mechanism 6 will drive the mold unit 7 to move to the pressing mechanism 2 to achieve heat sealing. After the heat sealing of the inner material is completed, the driving mechanism 6 will drive the heat-formed inner material of the pool to move out. Then the support column 78 and the positioning block 79 enter the cross groove 85 of the fixed plate 84. Then the servo motor will drive the motor shaft 83 and the fixed plate 84 to rotate, thereby driving the mold unit 7 to rotate, so that the heat-sealed pool material is automatically moved out of the mold unit 7, preventing people from being scalded or tearing the pool material. In the process of the auxiliary mechanism 8 driving the mold unit 7 to rotate, when the moving plate 71 rotates ninety degrees, Afterwards, due to the effect of gravity, the sliding weight 7541 at the top will slide downward along the inner groove 753. During the sliding process, the brush 7543 will brush the opposite surfaces of the two electrode plates 752, and the scraper 7544 at the top will also scratch the tops of the two electrode plates 752. This can not only enable the sliding weight 7541 to push the heat-sealed material to move, but also remove the waste that is not fully heat-sealed and attached to the electrode plate 752. After that, the heat-sealed inner peripheral material is turned over and placed on the flattened movable plate 71 again, and the other end of the heat-sealed material is clamped on the electrode plate 752, and the pool peripheral material is spread on the electrode plate 752, and then the above-mentioned heat-sealing operation is performed.

[0053] Example 2, using Figure 1-Figure 12 A pure mesh double-strand water pool high-frequency heat-sealing mold and its production process according to one embodiment of the present invention are described as follows.

[0054] like Figure 5As shown, a pure clamping net double-drawn pool high-frequency heat-sealing mold of the present invention, based on the first embodiment, the clamping mechanism 755 includes an L-shaped plate 7551, the outer surface of the L-shaped plate 7551 is fixedly connected to the second support column 7553, the end of the L-shaped plate 7551 close to the second support column 7553 is fixedly connected to the telescopic spring 7552, the telescopic spring 7552 is sleeved on the second support column 7553, the side of the telescopic spring 7552 close to the electrode plate 752 is fixedly connected to the sliding plate 1 7554, the sliding plate 1 7554 The inner wall is slidably connected to the outer surface of the second support column 7553, the top of the sliding plate 1 7554 is fixedly connected with a clamping plate 7555, the outer surface of the clamping plate 7555 is fixedly connected with an electromagnetic plate 7556, the outer surface of the clamping plate 7555 on the other side is fixedly connected with a magnetic block 7559, the electromagnetic plate 7556 close to the power supply 76 is fixedly connected with an electric wire 1 7557, the outer surface of the electromagnetic plate 7556 is fixedly connected with an electric wire 2 7558, and adjacent electromagnets are connected via electric wire 2 7558.

[0055] After the water pool material is pulled out from between the two electrode plates 752, it needs to be fixed. When the water pool material is placed manually, the pulling force of the telescopic spring 7552 separates the sliding plate 1 7554 and the clamping plate 7555 from the electrode plate 752, which is convenient for the manual placement of the water pool material. Then the power supply 76 will energize the electromagnetic plate 7556 through the wire 1 7557 and the wire 2 7558, so that the electromagnetic plate 7556 attracts the magnetic block 7559 on the other side, so that the clamping plates 7555 on both sides fix the water pool material to the top of the electrode plate 752. The conventional knob clamping may become loose during the movement of the mold unit 7. At the same time, the electromagnetic clamping also facilitates the movement of the heat-sealed material out of the mold unit 7 without the need for manual removal of the clamping.

[0056] The bottom of the support seat 1 is fixedly connected to the top of the movable plate 71 , the outer surface of the sliding weight 7541 is slidably connected to the outer surface of the inner groove 753 , and the outer surface of the L-shaped plate 7551 is fixedly connected to the side of the electrode plate 752 away from the inner groove 753 .

[0057] like Fig.10 As shown, the pressing mechanism 2 includes a support column three 21, which is evenly arranged on the top of the support seat 1, and the top of the support column three 21 is fixedly connected to a top plate 22, and the top of the top plate 22 is fixedly connected to a hydraulic device 23, and the inner wall of the top plate 22 is evenly provided with a telescopic rod 24, and the bottom of the telescopic rod 24 is fixedly connected to a pressing plate 25, and the bottom of the pressing plate 25 is evenly provided with a heat-sealing surface 26, and the bottom of the top plate 22 is fixedly connected to a debris removal mechanism 27.

[0058] The hydraulic device 23 controls the telescopic rod 24 to extend and retract downward and enables the heat-sealing surface 26 to contact the heat-sealing material on the electrode plate 752 .

[0059] like Fig.11 As shown, the impurity removal mechanism 27 includes a support plate 4 271, the top of the support plate 4 271 is fixedly connected to the bottom of the top plate 22, the inner wall of the support plate 4 271 is fixedly connected to a servo motor 3 272, the output end of the servo motor 3 272 is fixedly connected to a screw rod 273, the outer surface of the screw rod 273 is threadedly connected to a sliding plate 274, and the top of the sliding plate 274 is evenly provided with a scratch plate 275, and the outer surface of the scratch plate 275 is in contact with the bottom of the heat-sealed surface 26.

[0060] Before the heat sealing surface 26 presses the pool material, the servo motor three 272 will drive the screw 273 to rotate, thereby driving the sliding plate two 274 to move, and causing the scratch plate 275 to scratch the heat sealing surface 26, thereby squeezing out the dust and foreign matter attached to the heat sealing surface 26 and the debris generated by the previous heat sealing. The presence of foreign matter will cause the shape of the heat sealing surface 26 to be different, and the pressure generated by the heat sealing surface 26 will also be different, resulting in uneven heat sealing, causing inconsistent sealing of the pool, and prone to local water leakage.

[0061] like Fig.12 As shown, a pure clamped net double-stranded pool production process includes the following steps:

[0062] S1: First, put the inner surrounding material of the pool into the mold mechanism, and the clamping mechanism 755 will fix the inner surrounding material of the pool.

[0063] S2: The driving mechanism 6 moves the mold unit 7 to the pressing mechanism 2, and the hydraulic device 23 controls the pressing mechanism 2 to press the heat-sealing surface 26 against the pool material. At the same time, the motor plate is energized to generate a high-frequency magnetic field. The high-frequency electromagnetic field causes the material molecules to move violently, thereby generating heat to achieve the fusion of the pool material.

[0064] S3: The driving mechanism 6 drives the heat-sealed inner peripheral material of the pool to move to the auxiliary mechanism 8 and connects the auxiliary mechanism 8 with the mold unit 7. The auxiliary mechanism 8 drives the mold unit 7 to rotate, so as to facilitate the removal of the heat-sealed inner peripheral material;

[0065] S4: Turn over the heat-sealed inner peripheral material and put it back into the flattened mold unit 7, then spread one side of the pool outer peripheral material, and then perform steps S2 and S3 in sequence, so as to achieve comprehensive heat sealing of the pure mesh double-stranded pool material.

[0066] Obviously, the described embodiments are only some embodiments of the present invention, not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field and related fields without creative work should fall within the scope of protection of the present invention. The structures, devices and operating methods not specifically described and explained in the present invention are implemented according to the conventional means in the field unless otherwise specified and limited.

Claims

1. A pure clamping net double-strand water pool high-frequency heat-sealing mold, comprising a support seat (1), characterized in that: The top of the support seat (1) is fixedly connected to a pressing mechanism (2), the outer surface of the support seat (1) is fixedly connected to a support frame (3), the bottom of the support frame (3) is evenly provided with support feet (4), the two sides of the support frame (3) are symmetrically provided with slide rails (5), the bottom of the support frame (3) is fixedly connected to a driving mechanism (6), the top of the slide rail (5) is slidably connected to a mold unit (7), and the end of the support frame (3) away from the support seat (1) is fixedly connected to an auxiliary mechanism; The mold unit (7) comprises a movable plate (71), the two sides of the movable plate (71) are fixedly connected to side plates (72), the bottom of the side plate (72) is rotatably connected to a roller (73), the top of the side plate (72) on one side is fixedly connected to a power source (76), the outer surface of the side plate (72) on the other side is fixedly connected to a drooping plate (77), the bottom of the drooping plate (77) is fixedly connected to a support column 1 (78), the end of the support column 1 (78) away from the drooping plate (77) is fixedly connected to a positioning block (79), the side of the movable plate (71) away from the pressing mechanism (2) is fixedly connected to a guide plate (74), and the top of the movable plate (71) is evenly provided with a mold mechanism (75); The auxiliary mechanism (8) comprises a second support plate (81), the inner wall of the second support plate (81) being fixedly connected to a servo motor (82), the output end of the servo motor (82) being fixedly connected to a motor shaft (83), one end of the motor shaft (83) away from the servo motor (82) being fixedly connected to a fixing plate (84), and a cross groove (85) being provided on a side of the fixing plate (84) away from the motor shaft (83); The mold mechanism (75) comprises a support block (751), the support block (751) is evenly arranged on the top of the movable plate (71), an electrode plate (752) is symmetrically arranged on the top of the support block (751), an inner groove (753) is arranged on the opposite surface of the electrode plate (752), a cleaning mechanism (754) is slidably connected to the inner groove (753), and a clamping mechanism (755) is evenly arranged on the outer surface of the electrode plate (752); The cleaning mechanism (754) comprises a sliding weight (7541), the outer surface of the sliding weight (7541) is fixedly connected to a support plate (7542), brushes (7543) are evenly arranged on both sides of the support plate (7542), and a scraper (7544) is symmetrically arranged on the top of the support plate (7542), and the bottom of the scraper (7544) is in contact with the top of the electrode plate (752); The clamping mechanism (755) comprises an L-shaped plate (7551), the outer surface of the L-shaped plate (7551) is fixedly connected to a second support column (7553), one end of the L-shaped plate (7551) close to the second support column (7553) is fixedly connected to a telescopic spring (7552), the telescopic spring (7552) is sleeved on the second support column (7553), the side of the telescopic spring (7552) close to the electrode plate (752) is fixedly connected to a first sliding plate (7554), the inner wall of the first sliding plate (7554) and the outer surface of the second support column (7553) are fixedly connected to each other. A sliding connection is provided, wherein the top of the sliding plate 1 (7554) is fixedly connected with a clamping plate (7555), the outer surface of the clamping plate (7555) is fixedly connected with an electromagnetic plate (7556), the outer surface of the clamping plate (7555) on the other side is fixedly connected with a magnetic block (7559), the electromagnetic plate (7556) close to the power source (76) is fixedly connected with a wire 1 (7557), the outer surface of the electromagnetic plate (7556) is fixedly connected with a wire 2 (7558), and adjacent electromagnetic magnets are connected via wires 2 (7558).

2. According to claim 1, a pure clamping net double-strand water pool high-frequency heat-sealing mold, characterized in that: The outer surface of the roller (73) contacts the top of the slide rail (5), and one end of the second support plate (81) is fixedly connected to the outer surface of the support frame (3).

3. According to claim 1, a pure clamping net double-stranded water pool high-frequency heat-sealing mold is characterized by: The bottom of the support seat (1) is fixedly connected to the top of the movable plate (71), the outer surface of the sliding weight (7541) is slidably connected to the outer surface of the inner groove (753), and the outer surface of the L-shaped plate (7551) is fixedly connected to a side of the electrode plate (752) away from the inner groove (753).

4. According to claim 1, a pure clamping net double-stranded water pool high-frequency heat-sealing mold is characterized by: The driving mechanism (6) comprises a support plate three (61), the bottom of the support plate three (61) is fixedly connected to the bottom of the support frame (3), the top of the support plate three (61) is fixedly connected to a servo motor two (62), the output end of the servo motor two (62) is fixedly connected to a motor shaft two (63), one end of the motor shaft two (63) away from the servo motor two (62) is fixedly connected to a gear one (64), a fixed block (65) is symmetrically arranged on the top of the support frame (3), the inner wall of the fixed block (65) is rotatably connected to a rotating rod (66), the outer surface of the rotating rod (66) is fixedly connected to a gear two (67), the gear two (67) is meshedly connected to a crawler (68), the outer surface of the crawler (68) is meshed with the gear two (67), and the bottom of the guide plate (74) is fixedly connected to the outer surface of the crawler (68).

5. According to claim 1, a pure clamping net double-strand water pool high-frequency heat-sealing mold, characterized in that: The pressing mechanism (2) comprises a support column three (21), the support column three (21) being evenly arranged on the top of the support seat (1), the top of the support column three (21) being fixedly connected to a top plate (22), the top of the top plate (22) being fixedly connected to a hydraulic device (23), the inner wall of the top plate (22) being evenly provided with telescopic rods (24), the bottom of the telescopic rods (24) being fixedly connected to a pressing plate (25), the bottom of the pressing plate (25) being evenly provided with a heat-sealing surface (26), and the bottom of the top plate (22) being fixedly connected to a debris removal mechanism (27).

6. A pure mesh double-stranded water pool high-frequency heat-sealing mold according to claim 5, characterized in that: The impurity removal mechanism (27) comprises a support plate four (271), the top of the support plate four (271) is fixedly connected to the bottom of the top plate (22), the inner wall of the support plate four (271) is fixedly connected to a servo motor three (272), the output end of the servo motor three (272) is fixedly connected to a screw rod (273), the outer surface of the screw rod (273) is threadedly connected to a sliding plate two (274), and a scratch plate (275) is evenly arranged on the top of the sliding plate two (274), and the outer surface of the scratch plate (275) is in contact with the bottom of the heat-sealed surface (26).

7. A production process of a pure mesh double-stranded water pool is realized by using a high-frequency heat-sealing mold for a pure mesh double-stranded water pool according to any one of claims 1 to 6, characterized in that: The following steps are involved: S1: First, the inner material of the pool is placed into the mold mechanism, and the clamping mechanism (755) fixes the inner material of the pool; S2: The driving mechanism (6) moves the mold unit (7) into the pressing mechanism (2), and the hydraulic device (23) controls the pressing mechanism (2) to press the heat-sealing surface (26) against the water pool material, and at the same time, the electrode plate is energized to generate a high-frequency magnetic field. The high-frequency electromagnetic field causes the molecules of the material to move violently, thereby generating heat and achieving fusion of the water pool material; S3: The driving mechanism (6) drives the heat-sealed inner peripheral material of the water pool to move to the auxiliary mechanism (8) and connects the auxiliary mechanism (8) to the mold unit (7). The auxiliary mechanism (8) drives the mold unit (7) to rotate, so as to facilitate the removal of the heat-sealed inner peripheral material; S4: Turn over the heat-sealed inner peripheral material and put it back into the flattened mold unit (7), then lay one side of the pool outer peripheral material, and then perform steps S2 and S3 in sequence, so as to achieve comprehensive heat sealing of the pure mesh double-stretch pool material.

Citation Information

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