Glue tank for producing latex gloves
By setting up a partition and an overflow cavity structure in the glue tank for latex glove production, the problem of difficult removal of floating impurities in the rubber material is solved, enabling effective discharge of impurities and reuse of the rubber material, thereby improving the production quality of gloves and the ease of maintenance of the glue tank.
Patent Information
- Application Number
- CN202520472708.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-18
- Publication Date
- 2026-02-24
- Estimated Expiration
- 2035-03-18
AI Technical Summary
In existing latex glove production tanks, impurities floating on the surface of the rubber material are difficult to remove effectively, which makes it easy for defects to form in the gloves.
Design a latex glove production tank. The tank is divided into a glue inlet chamber and a working chamber by a partition. The glue material entering the working chamber through the feed port forms an overflow port in the overflow chamber, making it easier to discharge floating impurities. After being filtered by a filter screen, the glue material can be reused.
It effectively removes floating impurities from the rubber compound, improves the production quality of gloves, and simplifies the cleaning and maintenance process of the rubber tank.
Smart Images

Figure CN223933997U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of glue tank devices, and in particular to a glue tank for latex glove production. Background Technology
[0002] Latex, a natural or synthetic polymer elastomer, is widely used in the manufacture of gloves due to its excellent elasticity and wearing comfort. Latex gloves, as an important hand protection product, play an irreplaceable role in various industries.
[0003] In the production process of latex gloves, the hand mold is driven by a chain to move. The hand mold is immersed in the rubber tank and then comes out, so that a layer of rubber material can be adsorbed on the surface of the hand mold. Then it enters the vulcanization box for vulcanization, thus forming a glove on the surface of the hand mold. Finally, the formed glove is removed from the hand mold.
[0004] Current glue tanks are typically rectangular in shape, with the hand mold entering from one end and exiting from the other. A feed inlet is installed on the side wall of the tank to supply the glue. During production, some impurities may fall into the glue tank, or glue adhering to the inner wall may solidify into flakes that fall into and float in the glue. These substances, when adhering to the hand mold, can easily create defects in the gloves. However, in the current glue tank structure, it is difficult to remove floating impurities from the glue surface, thus leaving room for improvement.
[0005] Practical content
[0006] To facilitate the better removal of some floating impurities in the rubber compound, this application provides a rubber tank for latex glove production.
[0007] The technical solution adopted in this application is as follows:
[0008] A latex glove production tank includes a tank body with a detachable partition that divides the tank body into a glue inlet chamber and a working chamber. A distance is left between one end of the partition and the inner wall of the tank body to form a feed inlet. A feed pipe for supplying glue is installed on the inner wall of the glue inlet chamber. An overflow plate is installed in the inner wall of the working chamber, forming an overflow cavity between the overflow plate and the inner wall of the tank body. The overflow cavity is located at the end of the working chamber away from the feed inlet, and an overflow outlet is formed between the upper end of the overflow plate and the upper end of the partition.
[0009] By adopting the above technical solution, the rubber material enters from the inlet cavity and then enters the working cavity through the feed port. Therefore, the flow direction of the rubber material in the working cavity can flow from the feed port to the overflow cavity, and some floating impurities can more easily flow out from the overflow port.
[0010] Optionally, the depth of the glue inlet cavity gradually increases towards the feed inlet, and the depth of the working cavity gradually increases towards the overflow cavity, and the depth of the glue inlet cavity at the feed inlet is not less than the depth of the working cavity at the feed inlet.
[0011] By adopting the above technical solution, the depth gradually increases from the feeding chamber to the working chamber, which is more conducive to the movement of the rubber material in this direction, thereby further enabling the floating impurities to flow out from the overflow port.
[0012] Optionally, a filter screen is installed in the inner wall of the overflow cavity.
[0013] By adopting the above technical solution, the rubber material can be filtered, making it easier to reuse the outflowing rubber material and send it into the glue inlet chamber.
[0014] Optionally, the partition includes multiple splicing plates, and each splicing plate is connected to the side wall of the trough with an installation rod. A positioning element is connected to the splicing plate. When the installation rod is connected to the splicing plate, the positioning element connects adjacent splicing plates together.
[0015] By adopting the above technical solution, the splicing panels are installed in the groove using mounting rods, and adjacent splicing panels are connected by positioning components, thereby improving the stability of the splicing panels after installation.
[0016] Optionally, the positioning element includes a positioning post horizontally slidably disposed on one side of the splicing plate and a first elastic element; the splicing plate has a sliding groove for the positioning post to slide in, and the first elastic element is installed in the sliding groove; a trigger element is installed in the splicing plate, and when the mounting rod is installed on the splicing plate, the trigger element can drive one end of the positioning post to slide out of the sliding groove, and the first elastic element provides the force for the positioning post to slide into the sliding groove; a slot is provided on the side of the splicing plate away from the positioning post for the positioning post on an adjacent splicing plate to be inserted.
[0017] By adopting the above technical solution, when the positioning post is inserted into the slot on the adjacent splicing plate, the adjacent splicing plates can be connected together, thereby improving the stability of the overall partition.
[0018] Optionally, the splicing plate is provided with a mounting groove, which is connected to the sliding groove, and one end of the positioning post can extend into the mounting groove; the triggering element includes a trigger rod vertically slidably connected in the mounting groove and a second elastic element installed between the lower end of the trigger rod and the mounting groove; when the mounting rod is installed on the splicing plate, it can push the trigger rod downward and drive the positioning post to slide away from the mounting groove, and the second elastic element is compressed.
[0019] By adopting the above technical solution, the mounting rod and the trigger rod are linked together, so that the mounting rod can drive the trigger rod to slide. The trigger rod and the positioning post cooperate, so that the trigger rod slides and drives the positioning post to slide, so that one end of the positioning post is inserted into the slot in the adjacent splicing plate.
[0020] Optionally, a first stud is installed on the groove, the first stud passes through one end of the mounting rod, and the first stud is threadedly connected to a first screw block for abutting against the mounting rod; a second stud is installed on the splicing plate, the second stud passes through the mounting rod, and the second stud is threadedly connected to a second screw block that abuts against the mounting rod.
[0021] By adopting the above technical solution, the mounting rod can be positioned using the first and second screw blocks, and the connection between the mounting rod and the groove and splicing plate is convenient and simple.
[0022] Optionally, under the action of the second elastic element, the upper end of the trigger rod extends beyond the upper end of the splicing plate, and the side wall of the mounting rod is provided with an extension plate. When the mounting rod is installed on the splicing plate, the extension plate can drive the trigger rod to move downward.
[0023] By adopting the above technical solution, after the mounting rod is installed on the splicing plate, it can drive the trigger rod to move downward and push the positioning column to slide.
[0024] Optionally, the side wall of the trigger rod is provided with an arc-shaped groove, and one end of the positioning post abuts in the arc-shaped groove.
[0025] Optionally, the mounting rod is provided with two limiting blocks, which form a space for the splicing plate to be snapped into place.
[0026] By adopting the above technical solutions, the stability of the splicing panels after installation can be improved.
[0027] In summary, this application includes at least one of the following beneficial effects:
[0028] 1. The rubber compound flows from the feed inlet into the working chamber and then flows out from the overflow outlet, which makes the rubber compound more fluid and allows some floating impurities to be discharged from the overflow outlet.
[0029] 2. The partition is composed of multiple splicing plates, which are easy to install and have high stability after installation, making it convenient for the tank to be disassembled and cleaned. Attached Figure Description
[0030] Figure 1 This is a structural schematic diagram of an embodiment of this application;
[0031] Figure 2 This is an exploded view of the mounting rod in an embodiment of this application;
[0032] Figure 3 This is a cross-sectional schematic diagram of the splicing plate in the embodiments of this application.
[0033] Explanation of reference numerals in the attached drawings: 1. Tank; 2. Inlet cavity; 3. Working cavity; 4. Feed inlet; 5. Feed pipe; 6. Overflow plate; 7. Divider; 71. Splicing plate; 8. Filter screen; 9. Mounting rod; 10. Positioning component; 101. Positioning post; 102. First elastic component; 11. Sliding groove; 12. Trigger component; 121. Trigger rod; 122. Second elastic component; 13. Mounting groove; 14. First stud; 15. First screw block; 16. Second stud; 17. Second screw block; 18. Extension plate; 19. Arc groove; 20. Limiting block; 21. Overflow cavity; 22. Slot. Detailed Implementation
[0034] The present application will be further described in detail below with reference to the accompanying drawings.
[0035] This application discloses a glue tank for latex glove production. (See also...) Figure 1 The glue tank includes a tank body 1, which has a rectangular parallelepiped structure. A partition 7 is installed in the tank body 1. The partition 7 is distributed along the length of the tank body 1. One end of the partition 7 abuts against the inner end face of the tank body 1, and there is a certain gap between the other end and the inner wall of the tank body 1, thus forming a feed inlet 4.
[0036] The partition 7 divides the space in the tank 1 into an inlet chamber 2 and a working chamber 3. An inlet pipe 5 is installed on the inner wall of the inlet chamber 2, through which the adhesive is fed into the inlet chamber 2 and flows into the working chamber 3 through the inlet port 4. Driven by a chain, the hand mold first enters the tank 1 from the end near the inlet port 4 and then exits from the other end, passing through the working chamber 3. An overflow plate 6 is installed in the working chamber 3, forming an overflow cavity 21 between the overflow plate 6, the inner wall of the tank 1, and the partition 7. The overflow cavity 21 is located at the end of the working chamber 3 furthest from the inlet port 4. The upper end of the overflow plate 6 is lower than the upper end of the partition 7, thus forming an overflow port, allowing the adhesive in the working chamber 3 to overflow into the overflow cavity 21 through the upper end of the overflow plate 6.
[0037] The flow direction of the adhesive in the tank 1 is as follows: it flows from the inlet 4 into the working chamber 3 through the inlet cavity 2, and then flows into the overflow cavity 21 through the overflow port. Some floating impurities in the adhesive are more easily carried into the overflow cavity 21 with the adhesive, thus being discharged more quickly and reducing the impact on the gloves. A filter screen 8 is horizontally fixed in the overflow cavity 21. The filter screen 8 can filter impurities in the adhesive, so that the adhesive in the overflow cavity 21 can be reused and pumped into the inlet cavity 2. Furthermore, the depth of the inlet cavity 2 gradually increases towards the inlet 4, and the depth of the working chamber 3 gradually increases towards the overflow cavity 21. The depth of the inlet cavity 2 at the inlet 4 is not less than the depth of the working chamber 3 at the inlet 4. Therefore, the adhesive can more easily enter the working chamber 3 from the inlet cavity 2. Therefore, the connection between the impregnation cavity 2 and the working chamber 3 has a stepped structure, and the partition 7 abuts against this stepped position.
[0038] Reference Figure 1 and Figure 2 The partition 7 includes multiple splicing plates 71, which are sequentially abutted against each other to form the partition 7. An mounting rod 9 is installed between each splicing plate 71 and the side wall of the tank 1 to fix the splicing plate 71 in place. Figure 3 The splicing panel 71 is also equipped with a positioning component 10. When adjacent splicing panels 71 are pressed together, they can be connected by the positioning component 10, which further improves the stability of the splicing panels 71 when they are connected together.
[0039] Reference Figure 2 and Figure 3 A sliding groove 11 is provided on one side of the splicing plate 71, extending horizontally. Multiple sliding grooves 11 are provided vertically; in this embodiment, two sliding grooves 11 are provided. The positioning element 10 includes a positioning post 101 slidably installed in the sliding groove 11 and a first elastic element 102 installed between the positioning post 101 and the inner wall of the sliding groove 11. The first elastic element 102 is a spring. The first elastic element 102 is sleeved on the outer wall of the positioning post 101. The sliding groove 11 has an enlarged diameter portion, thereby providing space for the first elastic element 102 to be installed. For ease of installation, the splicing plate 71 can be a half-splicing structure. A slot 22 is provided on the other side wall of the splicing plate 71. When the splicing plates 71 abut against each other, the slot 22 can correspond to the positioning post 101. Slots 22 can also be opened on the inner wall of the tank 1 for the positioning post 101 on the first splicing block 71 to be inserted; and slots 22 are not opened on the side wall of the splicing plate 71 near the feed port 4 to reduce the amount of adhesive material deposited in the slots 22.
[0040] A trigger 12 is installed on the splicing plate 71, which can drive the positioning post 101 to slide. Under the action of the first elastic member 102, the positioning post 101 is housed in the sliding post. When the mounting rod 9 is installed on the splicing plate 71, the trigger 12 can drive the positioning post 101 to slide, and one end of the positioning post 101 is inserted into the adjacent slot 22. At this time, the first elastic member 102 is in a compressed state.
[0041] Reference Figure 2 and Figure 3 The splicing plate 71 has a mounting groove 13 extending vertically. The trigger element 12 includes a trigger rod 121 vertically slidably mounted in the mounting groove 13 and a second elastic element 122 mounted on the lower end of the trigger rod 121. The second elastic element 122 is a spring, with one end connected to the bottom surface of the mounting groove 13 and the other end connected to the lower end face of the trigger rod 121. Under the action of the second elastic element 122, the upper end of the trigger rod 121 extends beyond the upper end face of the splicing plate 71. The mounting groove 13 and the sliding groove 11 are connected. The side wall of the trigger rod 121 has an arc-shaped groove 19, and one end of the positioning rod abuts in the arc-shaped groove 19. When the trigger rod 121 moves downward, it can push the positioning post 101 to slide through the arc-shaped groove 19, and one end of the positioning post 101 is inserted into the adjacent slot 22. To facilitate the sliding of the positioning post 101, a ball bearing can be provided at the end of the positioning post 101.
[0042] Reference Figure 1 and Figure 2 A first stud 14 is vertically fixed to the upper end of the groove 1, and a first screw block 15 is threaded onto the first stud 14. The first stud 14 passes through the mounting rod 9, and the first screw block 15 can abut against the mounting rod 9, thereby positioning the mounting rod 9. A second stud 16 is vertically fixed to the upper end of the splicing plate 71, and a second screw block 17 is threaded onto the second stud 16. The second stud 16 passes through the mounting rod 9, so that the second screw block 17 can abut against the mounting rod 9, thereby positioning the splicing plate 71 through the mounting rod 9.
[0043] Reference Figure 2 and Figure 3 An extension plate 18 is fixed to one end of the mounting rod 9 near the second stud 16. When the mounting rod 9 is installed on the splicing plate 71, the extension plate 18 abuts against the upper end of the trigger rod 121 and pushes the trigger rod 121 to slide downward. When the mounting rod 9 is removed, the trigger rod 121 is reset, thereby causing the positioning post 101 to slide out of the slot 22.
[0044] In a further embodiment, in order to improve the stability of the splicing panel 71, two limiting blocks 20 are fixed on the lower surface of the mounting block, and a space is formed between the two limiting blocks 20 for the splicing panel 71 to abut against. Under the action of the limiting blocks 20, the splicing panel 71 is less likely to shake.
[0045] The implementation principle of a latex glove production tank according to an embodiment of this application is as follows: During operation, the rubber material continuously enters from the impregnation chamber 2 and flows into the working chamber 3, finally being discharged from the overflow chamber 21. Therefore, impurities present in the flow of the rubber material are more easily discharged from the overflow chamber 21. The partition 7 is composed of multiple splicing plates 71, and is easy to install and disassemble, facilitating cleaning and maintenance.
[0046] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.
Claims
1. A latex glove production tank, comprising a tank body (1), characterized in that: The tank (1) is detachably provided with a partition (7), which divides the tank (1) into a glue inlet chamber (2) and a working chamber (3). A distance is left between one end of the partition (7) and the inner wall of the tank (1) to form a feed inlet (4). The inner wall of the glue inlet chamber is equipped with a feed pipe for the glue to flow in. An overflow plate (6) is installed in the inner wall of the working chamber (3). An overflow cavity (21) is formed between the overflow plate (6) and the inner wall of the tank (1). The overflow cavity (21) is located at the end of the working chamber (3) away from the feed inlet (4), and an overflow port is formed between the upper end of the overflow plate (6) and the upper end of the partition (7).
2. The latex glove production glue tank according to claim 1, characterized in that: The depth of the glue inlet cavity (2) gradually increases towards the feed inlet (4), and the depth of the working cavity (3) gradually increases towards the overflow cavity (21). The depth of the glue inlet cavity (2) at the feed inlet (4) is not lower than the depth of the working cavity (3) at the feed inlet (4).
3. The latex glove production glue tank according to claim 2, characterized in that: A filter screen (8) is installed in the inner wall of the overflow chamber (21).
4. The latex glove production glue tank according to claim 2, characterized in that: The partition (7) consists of multiple splicing plates (71), and each splicing plate (71) is connected to the side wall of the groove (1) by an installation rod (9). A positioning element (10) is connected to the splicing plate (71). When the installation rod (9) is connected to the splicing plate (71), the positioning element (10) connects the adjacent splicing plates (71) together.
5. A latex glove production trough according to claim 4, characterized in that: The positioning component (10) includes a positioning post (101) and a first elastic element (102) that are horizontally slidably disposed on one side of the splicing plate (71); the splicing plate (71) has a sliding groove (11) for the positioning post (101) to slide, and the first elastic element (102) is installed in the sliding groove (11); a trigger element (12) is installed in the splicing plate (71), and when the mounting rod (9) is installed on the splicing plate (71), one end of the positioning post (101) can be driven to slide out of the sliding groove (11) by the trigger element (12), and the first elastic element (102) provides the force for the positioning post (101) to slide into the sliding groove (11). A slot (22) is provided on the side of the splicing plate (71) away from the positioning post (101) for the positioning post (101) on the adjacent splicing plate (71) to be inserted.
6. A latex glove production trough according to claim 5, characterized in that: The splicing plate (71) is equipped with an installation groove (13), which is connected to the sliding groove (11), and one end of the positioning post (101) can extend into the installation groove (13); the trigger (12) includes a trigger rod (121) vertically slidably connected in the installation groove (13) and a second elastic member (122) installed between the lower end of the trigger rod (121) and the installation groove (13); when the installation rod (9) is installed on the splicing plate (71), it can push the trigger rod (121) to move downward and drive the positioning post (101) to slide away from the installation groove (13), and the second elastic member (122) is compressed.
7. A latex glove production trough according to claim 6, characterized in that: A first stud (14) is installed on the groove (1), the first stud (14) passes through one end of the mounting rod (9), and the first stud (14) is threadedly connected to a first screw block (15) for abutting against the mounting rod (9); a second stud (16) is installed on the splicing plate (71), the second stud (16) passes through the mounting rod (9), and the second stud (16) is threadedly connected to a second screw block (17) for abutting against the mounting rod (9).
8. A latex glove production trough according to claim 7, characterized in that: Under the action of the second elastic member (122), the upper end of the trigger rod (121) extends beyond the upper end of the splicing plate (71). The side wall of the mounting rod (9) is provided with an extension plate (18). When the mounting rod (9) is installed on the splicing plate (71), the extension plate (18) can drive the trigger rod (121) to move downward.
9. A glue tank for latex glove production according to claim 8, characterized in that: The side wall of the trigger rod (121) is provided with an arc-shaped groove (19), and one end of the positioning post (101) abuts in the arc-shaped groove (19).
10. A latex glove production trough according to claim 8, characterized in that: The mounting rod (9) is provided with two limiting blocks (20), which form a space for the splicing plate (71) to be snapped in.