Molding equipment

By using a protective cover to shield the horizontal transmission components and the chip collection box in the paper-plastic production equipment, the problem of chip contamination caused by friction of the transmission components is solved, ensuring the cleanliness of the pulp tank and the quality of the finished product.

CN223766659UActive Publication Date: 2026-01-06GUANGDONG HANSEN INTELLIGENT EQUIP CO LTD
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Patent Information

Application Number
CN202520029216.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-07
Publication Date
2026-01-06
Estimated Expiration
2035-01-07

AI Technical Summary

Technical Problem

During the production of paper-plastic products, debris generated by friction in the transmission components of the translation mechanism falls into the pulp tank, affecting the cleanliness of the pulp tank and the quality of the finished product.

Method used

A protective cover is used to shield the horizontal transmission components to prevent debris from entering the slurry tank. Debris generated by the lifting transmission components is collected by a debris collection box, and the slurry tank is kept clean by a spraying mechanism.

Benefits of technology

This effectively reduces the risk of debris entering the slurry tank, ensuring the cleanliness of the slurry tank and thus improving the quality of the finished product.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223766659U_ABST
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Abstract

The utility model discloses forming equipment. The forming equipment comprises a rack, a pulp chest, a mounting seat, a horizontal driving mechanism, a lifting driving mechanism, an upper die mechanism and a lower die mechanism, the pulp tank is arranged on the rack; the horizontal driving mechanism comprises a horizontal transmission assembly, a protective cover and a horizontal driver; the horizontal transmission assembly is in transmission connection with the mounting seat; the horizontal driver is in driving connection with the horizontal transmission assembly; the horizontal transmission assembly is arranged on the rack, and at least part of the horizontal transmission assembly is located above the pulp chest; the protective cover is arranged on the outer side of the horizontal transmission assembly in a covering manner, and the protective cover is shielded between the horizontal transmission assembly and the pulp chest; the lifting driving mechanism is arranged on the mounting seat; the upper die mechanism is connected with the lifting driving mechanism; and the lower die mechanism is arranged in the pulp tank. The outer side of the horizontal transmission assembly is covered with the protective cover, and the protective cover can shield the position between the horizontal transmission assembly and the pulp chest, so that chippings on the horizontal transmission assembly are prevented from falling into the pulp chest, the cleanliness of the pulp chest is guaranteed, and therefore the quality of finished products is guaranteed.
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Description

Technical Field

[0001] This application relates to the field of pulp molding technology, and in particular to a molding device. Background Technology

[0002] In the production process of paper-plastic products, a lifting mechanism drives the upper mold to descend, allowing it to enter the pulp tank and close with the lower mold located within the tank to form a wet preform. After the wet preform is formed, the lifting mechanism drives the upper mold to rise, carrying the wet preform out of the pulp tank. A translation mechanism then drives the upper mold away from the pulp tank and discharges the wet preform into a drying mechanism to dry it into a dry preform. In related technologies, the translation mechanism has a driver and a transmission component. During the operation of the translation mechanism, friction in the transmission component generates debris. This debris falling into the pulp tank affects the cleanliness of the tank and thus the quality of the finished paper-plastic product. Utility Model Content

[0003] This application aims to address at least one of the technical problems existing in the prior art. To this end, this application proposes a molding device that can reduce the risk of debris falling into the slurry tank.

[0004] The molding equipment according to an embodiment of this application includes: a frame, a slurry tank, a mounting base, a horizontal drive mechanism, a lifting drive mechanism, an upper mold mechanism, and a lower mold mechanism.

[0005] A slurry tank is disposed on the frame; a horizontal drive mechanism includes a horizontal transmission assembly, a protective cover, and a horizontal driver; the horizontal transmission assembly is drively connected to the mounting base, and the horizontal driver is drively connected to the horizontal transmission assembly, so as to drive the mounting base to move along a first direction through the horizontal transmission assembly, so that the mounting base can move to a first position and a second position; the horizontal transmission assembly is disposed on the frame, and the horizontal transmission assembly is at least partially located above the slurry tank; the protective cover is disposed on the outside of the horizontal transmission assembly, and the protective cover shields between the horizontal transmission assembly and the slurry tank; a lifting drive mechanism is disposed on the mounting base; an upper mold mechanism is connected to the lifting drive mechanism, and the lifting drive mechanism is used to drive the upper mold mechanism to lift and lower; a lower mold mechanism is disposed in the slurry tank, and is used to close the mold with the upper mold mechanism; wherein, when the mounting base moves to the first position, the upper mold mechanism is located above the slurry tank; when the mounting base moves to the second position, the projection of the upper mold mechanism and the slurry tank on the horizontal plane is offset.

[0006] The molding apparatus according to the embodiments of this application has at least the following beneficial effects: A horizontal driver drives a mounting base to move along a first direction via a horizontal transmission assembly, moving the mounting base to a first position. The mounting base then moves the upper mold mechanism above the slurry tank. A lifting drive mechanism drives the upper mold mechanism to descend, allowing it to enter the slurry tank and cooperate with the lower mold mechanism to form a wet blank. The lifting drive mechanism then drives the upper mold mechanism to rise, carrying the wet blank away from the slurry tank. Subsequently, the horizontal driver drives the mounting base to move along the first direction via the horizontal transmission assembly, moving the mounting base to a second position. At this position, the projections of the upper mold mechanism and the slurry tank on the horizontal plane are offset, meaning the upper mold mechanism carries the wet blank away from above the slurry tank, facilitating the transfer of the wet blank to the next workstation. It should be understood that during the process of the horizontal drive moving the mounting base through the horizontal transmission assembly, the horizontal transmission assembly will generate some debris due to friction. In order to facilitate the mounting base to move the upper mold mechanism above and away from the slurry pool, the horizontal transmission assembly is at least partially located above the slurry pool. A protective cover is installed on the outside of the horizontal transmission assembly. The protective cover can block the space between the horizontal transmission assembly and the slurry pool to prevent debris on the horizontal transmission assembly from falling into the slurry pool, thus ensuring the cleanliness of the slurry pool and ensuring the quality of the finished product.

[0007] According to some embodiments of this application, the horizontal transmission assembly includes a first slide block, a first slide rail, a first rack, a first transmission gear, and a first transmission rod. The first slide rail and the first rack are both fixed to the frame. Two first slide rails and two first racks are provided, each located between the two first slide rails. The first slide rails and the first racks are distributed along a second direction, which is perpendicular to the first direction. At least one first slide block is slidably connected to each first slide rail, and the first slide block is fixedly connected to the mounting base. The horizontal driver is fixedly connected to the mounting base, and the driving end of the horizontal driver is connected to the first transmission rod. Two first transmission gears are provided, each located on the first transmission rod and meshing with one of the first racks. The protective cover covers the area below the first slide rails and the first rack.

[0008] According to some embodiments of this application, the horizontal drive and the lifting drive mechanism are both located in the middle of the mounting base and between the two first racks; the first transmission rod passes through the horizontal drive, and the two first transmission gears are respectively disposed at both ends of the first transmission rod.

[0009] According to some embodiments of this application, the lifting drive mechanism includes a lifting driver and a lifting transmission assembly. Both the lifting driver and the lifting transmission assembly are disposed on the mounting base. The lifting transmission assembly is drively connected to the upper mold mechanism, and the lifting driver is drively connected to the lifting transmission assembly, so as to drive the upper mold mechanism to lift and lower through the lifting transmission assembly. When the mounting base moves to the first position, the projection of the lifting driver and the slurry pool on the horizontal plane is offset or partially overlaps.

[0010] According to some embodiments of this application, when the mounting base moves to a first position, the lifting drive overlaps with the projection of the slurry tank on a horizontal plane, wherein the mounting base forms a receiving groove, and the portion of the projection of the lifting drive and the slurry tank on a horizontal plane that overlaps is received in the receiving groove.

[0011] According to some embodiments of this application, a chip collection box is provided below the lifting transmission assembly.

[0012] According to some embodiments of this application, the chip box is fixed to the upper mold mechanism.

[0013] According to some embodiments of this application, the lifting transmission assembly includes a second slide rail, a second slide block, a second rack, and a second transmission gear. The second slide rail is fixed to the mounting base, and the second rack is fixed to the side of the upper mold mechanism near the mounting base. Two second slide rails are provided and extend along the height direction. The second rack is located between the two second slide rails. The second rack and the second slide rails are distributed along a second direction, which is perpendicular to the first direction. The second transmission gear is located between the two second slide rails and meshes with the second rack. The lifting driver is fixed to the mounting base, and the driving end of the lifting driver passes through the groove wall of the receiving groove and is connected to the second transmission gear. At least one second slide block is slidably connected to each second slide rail, and the second slide block is fixedly connected to the upper mold mechanism. The chip box is located below the second slide rail and the second rack, and the chip box extends along the second direction.

[0014] According to some embodiments of this application, the upper mold mechanism includes a first connecting part, a second connecting part, and an upper template. The first connecting part extends along the height direction and is connected to the driving end of the lifting drive mechanism. One end of the second connecting part is connected to the first connecting part. The second connecting part extends along the horizontal direction. The upper template is disposed on the second connecting part, and the lower end of the upper template is provided with a plurality of protrusions.

[0015] According to some embodiments of this application, a spraying mechanism is also included, which is disposed on the frame and is used to spray the slurry tank.

[0016] According to some embodiments of this application, the spraying mechanism includes a spray pipe, a nozzle, and a spray driver. The spray pipe is connected to a plurality of nozzles, and the spray driver is connected to the spray pipe to drive the spray pipe to move along a first direction.

[0017] Additional aspects and advantages of this application will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of this application. Attached Figure Description

[0018] The present application will be further described below with reference to the accompanying drawings and embodiments, wherein:

[0019] Figure 1 This is a schematic diagram of the molding equipment according to an embodiment of this application;

[0020] Figure 2 This is a partial front view of the molding equipment according to an embodiment of this application;

[0021] Figure 3 for Figure 1 A schematic diagram showing the connection between the mounting base, the horizontal drive mechanism, the lifting drive mechanism, and the upper mold mechanism;

[0022] Figure 4 for Figure 1 A schematic diagram showing the connection of the mounting base, horizontal drive mechanism, lifting drive mechanism, and upper mold mechanism in another direction;

[0023] Figure 5 for Figure 4 Exploded view of the lifting drive mechanism;

[0024] Figure 6 for Figure 1 A side view of the mounting base, horizontal drive mechanism, lifting drive mechanism, and upper mold mechanism from another direction.

[0025] Figure label:

[0026] 100 racks;

[0027] 200mm slurry tank;

[0028] Mounting base 300; first position 310, second position 320; receiving groove 330;

[0029] Horizontal drive mechanism 400, horizontal transmission assembly 410, first slide block 411, first slide rail 412, first rack 413, first transmission gear 414, first transmission rod 415; protective cover 420, horizontal driver 430;

[0030] Lifting drive mechanism 500, lifting transmission assembly 510, second slide rail 511, second slide block 512, second rack 513, second transmission gear 514; lifting driver 520;

[0031] Upper mold mechanism 600, first connecting part 610, second connecting part 620, upper template 630, protrusion 631; chip box 640;

[0032] Lower mold mechanism 700;

[0033] Spraying mechanism 800. Detailed Implementation

[0034] The embodiments of this application are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this application, and should not be construed as limiting this application.

[0035] In the description of this application, it should be understood that the orientation descriptions, such as up, down, front, back, left, right, etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this application.

[0036] In the description of this application, "several" means one or more, "multiple" means two or more, "greater than," "less than," and "exceeding" are understood to exclude the stated number, while "above," "below," and "within" are understood to include the stated number. The use of "first" and "second" in the description is merely for distinguishing technical features and should not be construed as indicating or implying relative importance, or implicitly indicating the number of indicated technical features, or implicitly indicating the order of the indicated technical features.

[0037] In the description of this application, unless otherwise expressly defined, terms such as "setup," "installation," and "connection" should be interpreted broadly, and those skilled in the art can reasonably determine the specific meaning of the above terms in this application in conjunction with the specific content of the technical solution.

[0038] In the description of this application, the terms "one embodiment," "some embodiments," "illustrative embodiment," "example," "specific example," or "some examples," etc., refer to specific features, structures, materials, or characteristics described in connection with that embodiment or example, which are 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 may be combined in any suitable manner in one or more embodiments or examples.

[0039] Reference Figures 1 to 2 The molding equipment according to an embodiment of this application includes: a frame 100, a slurry tank 200, a mounting base 300, a horizontal drive mechanism 400, a lifting drive mechanism 500, an upper mold mechanism 600, and a lower mold mechanism 700.

[0040] The pulp tank 200 is mounted on the frame 100; the horizontal drive mechanism 400 includes a horizontal transmission assembly 410, a protective cover 420, and a horizontal driver 430; the horizontal transmission assembly 410 is drively connected to the mounting base 300, and the horizontal driver 430 is drively connected to the horizontal transmission assembly 410, so that the mounting base 300 can be moved along a first direction via the horizontal transmission assembly 410, thereby enabling the mounting base 300 to move to a first position 310 and a second position 320; the horizontal transmission assembly 410 is mounted on the frame 100, and at least partially located above the pulp tank 200; the protective cover 420 covers the horizontal transmission assembly. The outer side of component 410, and the protective cover 420 shields between the horizontal transmission assembly 410 and the slurry pool 200; the lifting drive mechanism 500 is disposed on the mounting base 300; the upper mold mechanism 600 is connected to the lifting drive mechanism 500, and the lifting drive mechanism 500 is used to drive the upper mold mechanism 600 to rise and fall; the lower mold mechanism 700 is disposed in the slurry pool 200, and is used to close the mold with the upper mold mechanism 600; wherein, when the mounting base 300 moves to the first position 310, the upper mold mechanism 600 is located above the slurry pool 200; when the mounting base 300 moves to the second position 320, the projection of the upper mold mechanism 600 and the slurry pool 200 on the horizontal plane are offset.

[0041] Understandably, one operating process of the molding equipment of this application is as follows: the horizontal driver 430 drives the mounting base 300 to move along the first direction via the horizontal transmission assembly 410, so that the mounting base 300 moves to the first position 310. The mounting base 300 drives the upper mold mechanism 600 to move above the slurry tank 200. The lifting drive mechanism 500 drives the upper mold mechanism 600 to descend. The upper mold mechanism 600 enters the slurry tank 200 and cooperates with the lower mold mechanism 700 to form a wet blank. The lifting drive mechanism 500 drives the upper mold mechanism 600 to rise, and the upper mold mechanism 600 carries the wet blank away from the slurry tank 200. Subsequently, the horizontal driver 430 drives the mounting base 300 to move along the first direction via the horizontal transmission assembly 410, so that the mounting base 300 moves to the second position 320. At this time, the projection of the upper mold mechanism 600 and the slurry tank 200 on the horizontal plane is offset, that is, the upper mold mechanism 600 carries the wet blank away from above the slurry tank 200, so that the upper mold mechanism 600 can transfer the wet blank to the next station. It should be understood that during the process of the horizontal drive 430 driving the mounting base 300 to move through the horizontal transmission assembly 410, the horizontal transmission assembly 410 will generate some debris due to friction. In order to facilitate the mounting base 300 to drive the upper mold mechanism 600 to move above the slurry tank 200, the horizontal transmission assembly 410 is at least partially located above the slurry tank 200. A protective cover 420 is provided on the outside of the horizontal transmission assembly 410. The protective cover 420 can block the horizontal transmission assembly 410 and the slurry tank 200 to prevent the debris on the horizontal transmission assembly 410 from falling into the slurry tank 200, thus ensuring the cleanliness of the slurry tank 200 and ensuring the quality of the finished product.

[0042] Reference Figure 3 According to some embodiments of this application, the horizontal transmission assembly 410 includes a first slide block 411, a first slide rail 412, a first rack 413, a first transmission gear 414, and a first transmission rod 415. The first slide rail 412 and the first rack 413 are both fixed to the frame 100. Two racks are provided for each of the first slide rails 412 and the first rack 413. The two racks 413 are located between the two first slide rails 412, and the first slide rails 412 and the first racks 413 are distributed along a second direction, which is perpendicular to the first direction. Straight; each first slide rail 412 is slidably connected to at least one first slide block 411, and the first slide block 411 is fixedly connected to the mounting base 300; the horizontal driver 430 is fixedly connected to the mounting base 300, and the driving end of the horizontal driver 430 is connected to the first transmission rod 415. There are two first transmission gears 414, which are disposed on the first transmission rod 415 and respectively mesh with a first rack 413; the protective cover 420 covers the bottom of the first slide rail 412 and the first rack 413.

[0043] Understandably, the horizontal actuator 430 drives the first transmission rod 415 to rotate, thereby rotating the first transmission gear 414 mounted on the first transmission rod 415. Since the first transmission gear 414 meshes with the first rack 413, and the first rack 413 extends along the first direction, when the first transmission gear 414 rotates, it rolls on the first rack 413, thereby driving the horizontal actuator 430 to translate along the first direction via the first transmission rod 415. Because the horizontal actuator 430 is fixedly connected to the mounting base 300, it can drive the mounting base 300 to translate along the first direction. Since the first slide rail 412 also extends along the first direction, and the mounting base 300 is fixedly connected to the first slide block 411, when the mounting base 300 translates along the first direction, the first slide block 411 and the first slide rail 412 slide in a sliding engagement to guide the movement of the mounting base 300. Furthermore, the two first racks 413 are located between the two first slide rails 412, which ensures that the mounting base 300 is subjected to uniform force and moves stably. It can also be understood that the protective cover 420 is positioned below the first slide rails 412 and the first racks 413. Debris generated during the sliding engagement of the first slide block 411 and the first slide rail 412, and debris generated during the transmission engagement of the first rack 413 and the first transmission gear 414, will fall into the protective cover 420, preventing it from falling into the slurry pool 200 and ensuring the cleanliness of the slurry pool 200.

[0044] Reference Figure 3 According to some embodiments of this application, the horizontal drive 430 and the lifting drive mechanism 500 are both located in the middle of the mounting base 300 and between the two first racks 413; the first transmission rod 415 passes through the horizontal drive 430, and the two first transmission gears 414 are respectively disposed at both ends of the first transmission rod 415.

[0045] It is understood that both the horizontal actuator 430 and the lifting drive mechanism 500 are located in the middle of the mounting base 300 to ensure smooth movement of the mounting base 300 and stable lifting of the upper mold mechanism 600 when the lifting drive mechanism 500 drives the upper mold mechanism 600. Furthermore, a gap is formed between the two first racks 413, allowing the lifting drive mechanism 500 to pass between them, thus positioning it in the middle of the mounting base 300. Then, the first transmission rod 415 passes through the horizontal actuator 430, and the first transmission gears 414 are respectively located at both ends of the first transmission rod. The horizontal actuator 430 can drive one first transmission rod 415 to rotate the two first transmission gears 414, and the two first transmission gears 414 can mesh with the first racks 413 located on both sides of the horizontal actuator 430. The horizontal actuator 430 is supported between the two first racks 413 by one first transmission rod 415 and two first transmission gears 414, resulting in stable force distribution.

[0046] Reference Figure 1 and Figure 4 According to some embodiments of this application, the lifting drive mechanism 500 includes a lifting driver 520 and a lifting transmission assembly 510. Both the lifting driver 520 and the lifting transmission assembly 510 are disposed on the mounting base 300. The lifting transmission assembly 510 is connected to the upper mold mechanism 600, and the lifting driver 520 is connected to the lifting transmission assembly 510 so as to drive the upper mold mechanism 600 to rise and fall through the lifting transmission assembly 510. When the mounting base 300 moves to the first position 310, the projection of the lifting driver 520 and the slurry tank 200 on the horizontal plane is offset or partially overlaps.

[0047] Understandably, when the mounting base 300 moves to the first position 310, the upper mold mechanism 600 is located above the slurry tank 200. At this time, the lifting drive 520 needs to drive the upper mold mechanism 600 to rise and fall via the lifting transmission assembly 510, so that the upper mold mechanism 600 cooperates with the lower mold mechanism 700 to form a wet blank and remove the wet blank from the slurry tank 200. When the mounting base 300 moves to the first position 310, the projections of the lifting drive 520 and the slurry tank 200 on the horizontal plane are offset or partially overlapped (i.e., partially offset). As a result, most of the debris generated by the lifting drive 520 during operation will fall outside the slurry tank 200, further reducing the risk of debris falling into the slurry tank 200.

[0048] Reference Figure 1 and Figure 3 According to some embodiments of this application, when the mounting base 300 moves to the first position 310, the lifting drive 520 overlaps with the projection of the slurry tank 200 on the horizontal plane, wherein the mounting base 300 forms a receiving groove 330, and the overlapping portion of the projection of the lifting drive 520 and the slurry tank 200 on the horizontal plane is received in the receiving groove 330.

[0049] Understandably, when the mounting base 300 moves to the first position 310, the projections of the lifting drive 520 and the slurry tank 200 on the horizontal plane overlap, meaning there is some non-overlap. This reduces the travel distance of the lifting drive 520 in the first direction, thereby reducing the space occupied by the horizontal transmission assembly 410. The mounting base 300 has a receiving groove 330, where the overlapping portion of the projections of the lifting drive 520 and the slurry tank 200 on the horizontal plane is received. Thus, debris formed from the non-overlapping portions of the projections of the lifting drive 520 and the slurry tank 200 on the horizontal plane will fall outside the slurry tank 200, while debris formed from the overlapping portions will fall into the receiving groove 330, ensuring the cleanliness of the slurry tank 200.

[0050] Reference Figure 6According to some embodiments of this application, a chip box 640 is provided below the lifting transmission assembly 510.

[0051] Understandably, by providing a chip collection box 640 below the lifting transmission assembly 510, the debris generated by the lifting transmission assembly 510 during operation can fall into the chip collection box 640 below, thus preventing the debris from falling into the slurry pool 200.

[0052] Reference Figure 6 According to some embodiments of this application, the chip box 640 is fixed to the upper mold mechanism 600.

[0053] It is understandable that the chip box 640 is set on the upper mold mechanism 600. During the process of the lifting transmission component 510 driving the upper mold mechanism 600 to rise and fall, the chip box 640 can be driven to rise and fall, so as to ensure that the chip box 640 is always located below the lifting transmission component 510.

[0054] Reference Figure 5 According to some embodiments of this application, the lifting transmission assembly 510 includes a second slide rail 511, a second slide block 512, a second rack 513, and a second transmission gear 514. The second slide rail 511 is fixed to the mounting base 300, and the second rack 513 is fixed to the side of the upper mold mechanism 600 near the mounting base 300. Two second slide rails 511 are provided and extend along the height direction. The second rack 513 is located between the two second slide rails 511. The second rack 513 and the second slide rail 511 are distributed along a second direction, which is perpendicular to the first direction. The second transmission gear 514 is located between the two second slide rails 511 and meshes with the second rack 513. The lifting driver 520 is fixed to the mounting base 300, and the driving end of the lifting driver 520 passes through the groove wall of the receiving groove 330 and is connected to the second transmission gear 514. At least one second slide block 512 is slidably connected to each second slide rail 511, and the second slide block 512 is fixedly connected to the upper mold mechanism 600. The chip box 640 is located below the second slide rails 511 and the second rack 513, and the chip box 640 extends along the second direction.

[0055] It is understood that the driving end of the lifting actuator 520 is connected to the second transmission gear 514. When the second transmission gear 514 rotates, it meshes with the second rack 513 distributed along the height direction. Since the second rack 513 is fixedly connected to the upper mold mechanism 600, during the rotation of the second transmission gear 514, it rolls relative to the second rack 513 along the height direction, causing the second rack 513 and the second transmission gear 514 to move relative to each other in the height direction, thereby raising and lowering the upper mold mechanism 600 relative to the mounting base 300. It should be understood that since the second slide rail 511 is fixed to the mounting base 300 and the second slide block 512 is connected to the upper mold mechanism 600, the second slide block 512 can slide relative to the second slide rail 511 when the upper mold mechanism 600 raises and lowers relative to the mounting base 300. The sliding engagement of the second slide rail 511 and the second slide block 512 guides the raising and lowering process of the upper mold mechanism 600. It should also be understood that, since the second slide rail 511 and the second rack 513 are distributed along the second direction, extending the chip box 640 along the second direction, the debris generated during the sliding engagement of the second slide rail 511 and the second slide block 512, and the transmission engagement of the second rack 513 and the second transmission gear 514, can all fall into the chip box 640. Furthermore, since the lifting drive 520 is partially housed within the receiving groove 330, and the upper mold mechanism 600, the second slide rail 511, the second rack 513, and the second transmission gear 514 are all located on the side of the mounting base 300 opposite to the receiving groove 330, by having the driving end of the lifting drive 520 pass through the groove wall of the receiving groove 330, it is ensured that the lifting drive 520 can be connected to the second transmission gear 514.

[0056] Reference Figure 6 According to some embodiments of this application, the upper mold mechanism 600 includes a first connecting part 610, a second connecting part 620, and an upper template 630. The first connecting part 610 extends along the height direction and is connected to the driving end of the lifting drive mechanism 500. One end of the second connecting part 620 is connected to the first connecting part 610. The second connecting part 620 extends along the horizontal direction. The upper template 630 is disposed on the second connecting part 620. The lower end of the upper template 630 is provided with a plurality of protrusions 631.

[0057] Understandably, the first connecting portion 610 is used to connect with the drive end of the lifting drive mechanism 500. Specifically, the first connecting portion 610 connects with the second slide rail 511 and the second rack 513. The first connecting portion 610 extends along the height direction to ensure sufficient connection area between the first connecting portion 610 and the second slide rail 511 and the second rack 513, thereby improving the connection stability between the upper mold mechanism 600 and the lifting drive mechanism 500. The second connecting portion 620 extends horizontally to ensure sufficient connection area between the second connecting portion 620 and the upper template 630, thereby improving the connection stability between the second connecting portion 620 and the upper template 630. The protrusion 631 at the lower end of the upper template 630 can mate with the cavity in the lower mold mechanism 700 to form a wet blank. Furthermore, one end of the second connecting portion 620 is connected to the first connecting portion 610, so that the first connecting portion 610 and the second connecting portion 620 are approximately L-shaped. When the horizontal drive mechanism 400 drives the mounting base 300 to the second position 320, since the second connecting portion 620 extends along the first direction, the second connecting portion 620 can move the upper mold plate 630 away from the slurry pool 200, thereby reducing the travel of the upper mold mechanism 600 along the first direction.

[0058] Reference Figure 1 According to some embodiments of this application, a spraying mechanism 800 is also included, which is disposed on the frame 100 and is used to spray the slurry tank 200.

[0059] Understandably, the spraying mechanism 800 can spray the slurry tank 200 to cool the upper mold mechanism 600 and to clean the slurry tank 200 after production is completed.

[0060] The embodiments of this application have been described in detail above with reference to the accompanying drawings. However, this application is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of this application. Furthermore, unless otherwise specified, the embodiments and features described in the embodiments of this application can be combined with each other.

Claims

1. A forming apparatus, characterised in that, The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine.

2. The molding apparatus of claim 1, wherein The application relates to a horizontal and vertical driving mechanism for a pulp molding machine.

3. The molding apparatus of claim 2, wherein The application relates to a horizontal and vertical driving mechanism for a pulp molding machine.

4. The molding apparatus of claim 1, wherein The application relates to a horizontal and vertical driving mechanism for a pulp molding machine.

5. The forming apparatus of claim 4 wherein, The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. 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The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine. The application relates to a horizontal and vertical driving mechanism for a pulp molding machine.

6. The molding apparatus of claim 4, wherein The lifting transmission assembly is provided with a chip container below.

7. The molding apparatus of claim 6, wherein The chip container is fixed to the upper die mechanism.

8. The molding apparatus of claim 6, wherein The lifting transmission assembly comprises a second sliding rail, a second sliding seat, a second rack and a second transmission gear. The second sliding rail is fixed to the mounting seat. The second rack is fixed to the upper die mechanism near one side of the mounting seat. The second sliding rail is provided with two sliding rails extending in the height direction. The second rack is located between the two second sliding rails. The second rack and the second sliding rail are distributed in the second direction which is perpendicular to the first direction. The second transmission gear is located between the two second sliding rails and is engaged with the second rack. The lifting driver is fixed to the mounting seat. The driving end of the lifting driver is connected with the second transmission gear through the slot wall of the accommodating slot. Each second sliding rail is correspondingly provided with at least one second sliding seat. The second sliding seat is fixedly connected with the upper die mechanism. The chip container is located below the second sliding rail and the second rack and extends in the second direction.

9. The molding apparatus of claim 1 wherein, The upper die mechanism comprises a first connecting part, a second connecting part and an upper die plate. The first connecting part extends in the height direction and is connected with the driving end of the lifting driving mechanism. One end of the second connecting part is connected with the first connecting part. The second connecting part extends in the horizontal direction. The upper die plate is arranged on the second connecting part. The lower end of the upper die plate is provided with a plurality of protrusions.

10. The molding apparatus of claim 1, wherein The spraying mechanism is arranged on the rack and is used for spraying the slurry pool.