Room temperature vulcanizing conveying device
Patent Information
- Application Number
- CN202522033937.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-22
- Publication Date
- 2026-09-08
- Estimated Expiration
- 2035-09-22
AI Technical Summary
然而,该类基于热固化原理的设备在实际应用中仍存在以下显著缺陷:
本实用新型中采用多根平行设置的支撑轨使得产品在支撑轨上呈S形回流输送,并在输送过程中逐步固化,设备布局灵活,减少占用生产空间,利于生产线集约化布置;
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Figure CN224727705U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of material conveying technology, and in particular relates to a room temperature curing conveying device. Background Technology
[0002] In existing technologies, using dispensing or adhesive bonding processes to achieve a fixed connection between two independent components is a common method to ensure that products have good sealing and airtightness. However, in actual production processes, problems such as incomplete colloid coating, uneven colloid layer, or missing colloid often lead to a large number of unqualified products in subsequent sealing or airtightness tests, requiring rework or even scrapping, which seriously affects production efficiency and product yield.
[0003] To reduce the defect rate caused by incomplete curing of the adhesive, a dedicated curing step is usually added between the dispensing or bonding process and the performance testing process. Existing technologies include curing ovens to accelerate adhesive curing, such as the equipment proposed in Chinese patent CN221017138U, "A Compact Parallel Delivery Adhesive Curing Oven," which can improve curing efficiency to some extent. However, such thermosetting-based equipment still has the following significant drawbacks in practical applications: 1. Poor equipment layout flexibility: curing ovens usually need to be arranged in a straight line, occupying a large production space and not conducive to the intensive layout of the production line.
[0004] 2. Due to the limitations of the thermosetting mechanism, the product to be treated must have certain heat resistance, which limits its application in heat-sensitive materials or components.
[0005] 3. After curing, the product needs to undergo a natural or forced cooling stage, which prolongs the production cycle and has an adverse effect on the overall processing efficiency.
[0006] 4. The operation process poses safety risks such as high-temperature burns, requiring a high degree of standardization and vigilance from personnel, and has poor tolerance for errors.
[0007] 5. The curing oven itself is expensive and consumes a lot of energy, which increases the overall production cost.
[0008] Therefore, there is an urgent need to develop a new curing technology or equipment that can achieve efficient, safe, and low-cost colloid curing while avoiding the above-mentioned problems, so as to improve product quality and production efficiency. Utility Model Content
[0009] The purpose of this invention is to solve the above-mentioned problems in the prior art and to provide a room temperature curing conveying device.
[0010] The objective of this utility model is achieved through the following technical solution: A room-temperature curing conveying device includes two parallel base plates and a set of support rails parallel to the base plates. A side-pushing mechanism is provided between the ends of two adjacent support rails. Each side-pushing mechanism corresponds to a vertical-pushing mechanism, and both the side-pushing and vertical-pushing mechanisms are mounted on the base plates. A set of carriers for placing products are closely arranged on the support rails. The outermost vertical-pushing mechanism drives the carrier at its end to move along the direction of the support rail until the carrier moves to the side-pushing mechanism, and then the side-pushing mechanism drives the carrier to move in a direction perpendicular to the support rail. Another vertical-pushing mechanism then drives the carrier to move to another support rail. The carrier and product are conveyed in an S-shape, allowing the colloid on the product to gradually cure during conveying.
[0011] Preferably, the support rail includes a first outer support rail, a second outer support rail, and an inner support rail; the first outer support rail and the second outer support rail are located outside a set of inner support rails; the length of the first outer support rail and the second outer support rail is approximately equal to the distance between the two side-pushing mechanisms disposed on the base plate, and the length of the first outer support rail and the second outer support rail is greater than the length of the inner support rail; one end of the first outer support rail, the second outer support rail, and the inner support rail are flush.
[0012] Preferably, the side-push mechanism includes a side-push base plate, a side-push cylinder disposed on the outside of the side-push base plate, and a side-push plate disposed on the output end of the side-push cylinder; the side-push base plate is located at the ends of two adjacent first support rails and the inner support rail, or two inner support rails, and the side-push base plate is fixed above the base plate by support columns.
[0013] Preferably, the side-push cylinder includes a first side-push cylinder and a second side-push cylinder. The first cylinder is located at one end of the first outer support rail, the second outer support rail, and the inner support rail that are flush with each other. The second side-push cylinder is located at the other end of the inner support rail. Both the first side-push cylinder and the second side-push cylinder are provided with the side-push plate, and the moving direction of the side-push plate on the first side-push cylinder is opposite to the moving direction of the side-push plate on the second side-push cylinder.
[0014] Preferably, the vertical push mechanism includes at least a first vertical push assembly disposed at one end of the side push base plate; the first vertical push assembly includes a first vertical push cylinder fixed below the base plate, a sliding assembly driven by the first vertical push cylinder to move along the setting direction of the support rail, and a first vertical push plate fixed above the sliding assembly; the first vertical push plate is U-shaped or L-shaped.
[0015] Preferably, a return bottom plate is provided between the ends of the two first outer support rails and the second outer support rails that protrude from the inner support rails; the length of the return bottom plate is equivalent to the maximum distance between the first outer support rails and the second outer support rails; the side push mechanism is located at the end of the return bottom plate to drive the carrier to move into or out of the return bottom plate and return to the first outer support rails.
[0016] Preferably, the vertical push mechanism further includes a second vertical push assembly disposed at one end of the return base plate; the second vertical push assembly includes a second vertical push cylinder fixed below the base plate, a sliding assembly driven by the second vertical push cylinder to move along the setting direction of the return base plate, and a second vertical push plate fixed above the sliding assembly; the second vertical push plate is L-shaped.
[0017] Preferably, the sliding assembly includes a slide rail fixed to the upper surface of the base plate, at least one slider disposed on the slide rail, and a slide rail connecting plate fixed to the slider; the slide rail connecting plate is connected to the second vertical push plate through a fixing seat; the output ends of the first vertical push cylinder and the second vertical push cylinder are both fixed with connecting plates, and the connecting plates pass through the openings in the base plate; the top of the connecting plate is connected to the slide rail connecting plate.
[0018] Preferably, both the side-push base plate and the return base plate are provided with baffles to prevent the vehicle from falling off.
[0019] Preferably, a set of conveying rollers is engaged on the support rail, and the bottom of the carrier is in contact with the conveying rollers; at least one set of through-beam modules is also provided on the support rail.
[0020] The advantages of this utility model's technical solution are mainly reflected in: In this utility model, multiple parallel support rails are used to make the product flow back and be conveyed in an S-shape on the support rails, and gradually solidify during the conveying process. The equipment layout is flexible, reduces the production space occupied, and is conducive to the intensive layout of the production line. A set of carriers for carrying products to be cured are closely arranged on the first outer support rail, the second outer support rail, and the inner support rail to meet the needs of large-volume curing and conveying. During the movement, the side push mechanism and the vertical push mechanism work together to switch each carrier and the product to be cured on different support rails. No additional stoppers are required during this process, and the upper and lower conveyor lines do not need to be started or stopped during the entire conveying process. The whole process is compact and efficient. Conveying rollers are installed on the first outer support rail, the second outer support rail, and the inner support rail. The conveying rollers can effectively reduce the friction of the carrier during movement and improve the conveying efficiency. Attached Figure Description
[0021] Figure 1 : A perspective view of a preferred embodiment of the present invention; Figure 2 Top view of a preferred embodiment of this utility model; Figure 3 Left end view of a preferred embodiment of this utility model; Figure 4 : Front view of a preferred embodiment of this utility model; Figure 5 : Right end view of a preferred embodiment of this utility model. Detailed Implementation
[0022] The purpose, advantages, and features of this utility model will be illustrated and explained through the following non-limiting description of preferred embodiments. These embodiments are merely typical examples of applying the technical solutions of this utility model, and all technical solutions formed by equivalent substitutions or equivalent transformations fall within the scope of protection claimed by this utility model.
[0023] In the description of the solution, it should be noted that the terms "center," "upper," "lower," "left," "right," "front," "rear," "vertical," "horizontal," "inner," and "outer," etc., indicating the orientation or positional relationship, are based on the orientation or positional relationship shown in the accompanying drawings and are only for the convenience and simplification of description. They 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, and therefore should not be construed as a limitation of this utility model. Furthermore, the terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance. Also, in the description of the solution, with the operator as a reference, the direction closer to the operator is the proximal end, and the direction farther from the operator is the distal end.
[0024] like Figure 1 As shown, this utility model discloses a room-temperature curing conveying device, including two parallel base plates 1 and a set of support rails 2 parallel to the base plates 1. A set of carriers 3 for placing products are closely arranged on the support rails 2; furthermore, a set of conveying rollers are engaged on the support rails 2, and during conveying, the conveying rollers contact the bottom of the carriers 3 to reduce friction and improve movement efficiency. Even further, the support rails 2 are preferably made of aluminum profiles to reduce the load on the base plates 1 and meet the requirements of lightweight construction. In addition, the conveying rollers in this utility model are preferably non-powered, reducing structural complexity and lowering costs.
[0025] Specifically, such as Figure 1As shown, the support rail 2 includes a first outer support rail 201, a second outer support rail 202, and an inner support rail 203. There is at least one inner support rail 203, and the first outer support rail 201 and the second outer support rail 202 are located outside a set of inner support rails 203. Further, the lengths of the first outer support rail 201 and the second outer support rail 202 are approximately equal to the distance between the two side-pushing mechanisms 21 disposed on the base plate, and preferably, in this invention, the lengths of the first outer support rail 201 and the second outer support rail 202 are designed to be greater than the length of the inner support rail 203. Simultaneously, it is preferable that one end of the first outer support rail 201, the second outer support rail 202, and the inner support rail 203 are flush. The use of multiple parallel support rails in this invention allows the product to flow back in an S-shape on the support rails and gradually solidify during the conveying process. This results in flexible equipment layout, reduces the occupied production space, and facilitates the intensive arrangement of the production line.
[0026] like Figure 1 As shown, a side-pushing mechanism 21 is provided between the ends of two adjacent support rails 2, and the side-pushing mechanism 21 is disposed on the base plate 1. Specifically, the side-pushing mechanism 21 includes a side-pushing base plate 210, a side-pushing cylinder 211 disposed outside the side-pushing base plate 210, and a side-pushing plate 212 disposed at the output end of the side-pushing cylinder 211. The side-pushing base plate 210 is located at the ends of two adjacent first support rails 201 and the inner support rails 203, or the two inner support rails 203, as shown. Figure 3 As shown, the side-push base plate 210 is fixed above the base plate 1 by the support column 102.
[0027] Furthermore, in combination Figure 1 and Figure 2As shown, the side-push cylinder 211 includes a first side-push cylinder and a second side-push cylinder. The first cylinder is located at one end flush with the first outer support rail 201, the second outer support rail 202, and the inner support rail 203. The second side-push cylinder is located at the other end of the inner support rail 203. Both the first and second side-push cylinders are equipped with side-push plates 212, and the movement direction of the side-push plate 212 on the first side-push cylinder is opposite to that on the second side-push cylinder. The side-push plate 212 is inverted L-shape. In the initial state, the side-push plate 212 is located outside the corresponding first outer support rail 201, second outer support rail 202, or inner support rail 203, and the cylinder shaft of the side-push cylinder 211 extends outwards. In use, the side-push mechanism 21 is activated, which moves the side-push plate 212 closer to the main body of the side-push cylinder 211. At the same time, the carrier 3, which has moved to the end of the first outer support rail 201, the second outer support rail 202, or the inner support rail 203, is placed on the side-push base plate 210. The side-push cylinder 211 then moves the carrier 3 to the end of the inner support rail 203, the second outer support rail 202, or the first outer support rail 201, thereby enabling the carrier to move between two adjacent support rails 2 and allowing the colloid to gradually solidify during the movement.
[0028] Combination Figure 2 and Figure 5 As shown, each of the side-pushing mechanisms 21 corresponds to a vertical-pushing mechanism 22, and the vertical-pushing mechanism 22 is also disposed on the base plate 1. The vertical-pushing mechanism 22 includes at least a first vertical-pushing assembly disposed at one end of the side-pushing base plate 210. Specifically, the first vertical-pushing assembly includes a first vertical-pushing cylinder 221 fixed below the base plate 1, a sliding assembly 222 driven by the first vertical-pushing cylinder 221 to move along the setting direction of the support rail 2, and a first vertical-pushing plate 223 fixed above the sliding assembly 222.
[0029] Furthermore, such as Figure 4 As shown, the sliding assembly 222 includes a slide rail 2221 fixed to the upper surface of the base plate 1, at least one slider 2222 disposed on the slide rail 2221, and a slide rail connecting plate 2223 fixed to the slider 2222. The slide rail connecting plate 2223 is connected to the second vertical push plate 223 through a fixing seat 2220. The output ends of the first vertical push cylinder 221 and the second vertical push cylinder 231 are both fixed with connecting plates 220, which penetrate through the opening on the base plate 1; the top of the connecting plate 220 is connected to the slide rail connecting plate 2223. The sliding assembly 222 enables the connection between the staggered vertical push cylinders and the vertical push plate, reduces friction during movement, and makes the movement more stable and smooth.
[0030] like Figure 1 or Figure 2 As shown, a return bottom plate 4 is provided between the ends of the two first outer support rails 201 and the second outer support rail 202 that protrude from the inner support rail 203; and the return bottom plate 4 is coplanar with the upper surface of the conveying roller. Furthermore, the length of the return bottom plate 4 is approximately equal to the maximum distance between the first outer support rail 201 and the second outer support rail 202. The side-push mechanism 21 is located at the end of the return bottom plate 4 to drive the carrier 3 to move into or out of the return bottom plate 4 and return to the first outer support rail 201. Both the side-push bottom plate 210 and the return bottom plate 4 are provided with baffles 2101 to prevent the carrier 3 from falling. In this invention, the product on the first outer support rail 201 can be moved to the second outer support rail 202 via the return bottom plate 4, enabling loading and unloading operations on the same support rail, improving operational portability while reducing floor space occupation.
[0031] Furthermore, in combination Figure 2 and Figure 5 As shown, the vertical push mechanism 22 further includes a second vertical push assembly disposed at one end of the return base plate 4. The second vertical push assembly includes a second vertical push cylinder 231 fixed below the base plate 1, a sliding assembly 222 driven by the second vertical push cylinder 231 to move along the setting direction of the return base plate 4, and a second vertical push plate 233 fixed above the sliding assembly 222. In this utility model, the first vertical push plate 223 is preferably U-shaped or L-shaped; the second vertical push plate 233 is preferably L-shaped. Further, the first vertical push plate 223 is an asymmetrical U-shape, that is, the length of one side wall of the vertical push plate 223 is less than the length of the other side wall, and the longer side wall is fixed to the sliding assembly 222, while the shorter side wall pushes the carrier 3 located on the side push base plate 210 into the support rail 2 coaxially disposed therewith. Furthermore, in this invention, the height of the first vertical push plate 223 and the second vertical push plate 233 is preferably designed to be higher than the height of the side push plate 212 to avoid interference between them during operation. Simultaneously, the lower surfaces of the first vertical push plate 223 and the second vertical push plate 233 are not higher than the upper surface of the carrier 3 to ensure that the vertical push mechanism can effectively drive the carrier 3 and the products it carries to move.
[0032] The outermost vertical push mechanism 22 drives the end carrier 3 to move along the direction of the support rail 2 until the carrier 3 moves to the side push mechanism 21. The side push mechanism 21 then drives the carrier 3 to move in a direction perpendicular to the support rail 2, and another vertical push mechanism 22 drives the carrier 3 to move onto another support rail 2. The carrier 3 and the product are conveyed in an S-shape, allowing the colloid on the product to gradually solidify during the conveying process. Specifically, before the side push cylinder 211 is activated, the first vertical push cylinder 221 and the second vertical push cylinder 231 are activated simultaneously. The first vertical push cylinder 221 drives the first vertical push plate 223 to move outward of the side push base plate 210 until the inner wall of the first vertical push plate 223 is located on the outer side of the side push base plate 210. The second vertical push cylinder 231 drives the second vertical push plate 233 and the outer side of the support rail 2 to move until the inner wall of the second vertical push plate 233 is located on the outer side of the support rail 2. After the side push cylinder 211 drives the side push plate 212 to complete one reciprocating motion, the first vertical push cylinder 221 drives the first vertical push plate 223 and the second vertical push cylinder 231 drives the second vertical push plate 233 to reset, realizing the switching of the carrier 3 between the two support rails 2.
[0033] like Figure 1 As shown, at least one set of through-beam modules 5 is also provided on the support rail 2. Furthermore, the through-beam modules 5 are preferably located on both sides of the first outer support rail 201 or the second outer support rail 202, and above the support rail 2, to detect whether the carrier 3 is carrying a product, and to issue a feeding reminder after detecting a product to be fed.
[0034] This utility model has many other embodiments. All technical solutions formed by equivalent transformation or equivalent transformation fall within the protection scope of this utility model.
Claims
1. A room temperature curing conveying device, characterized in that: It includes two parallel base plates (1) and a set of parallel support rails (2) on the base plates (1); a side-pushing mechanism (21) is provided between the ends of two adjacent support rails (2); each side-pushing mechanism (21) corresponds to a vertical pushing mechanism (22), and both the side-pushing mechanism (21) and the vertical pushing mechanism (22) are provided on the base plates (1); a set of carriers (3) for placing products are closely arranged on the support rails (2); the outermost vertical pushing mechanism (2) 2) Drive the carrier (3) located at the end to move along the setting direction of the support rail (2) until the carrier (3) moves to the side push mechanism (21), and the side push mechanism (21) drives the carrier (3) to move in a direction perpendicular to the support rail (2), and then the other vertical push mechanism (22) drives the carrier (3) to move to another support rail (2); the carrier (3) and the product are transported in an S-shape, so that the colloid on the product gradually solidifies during the transport process.
2. The ambient temperature curing conveying device according to claim 1, characterized in that: The support rail (2) includes a first outer support rail (201), a second outer support rail (202), and an inner support rail (203); the first outer support rail (201) and the second outer support rail (202) are located outside a set of inner support rails (203); the length of the first outer support rail (201) and the second outer support rail (202) is approximately equal to the distance between the two side-pushing mechanisms (21) disposed on the base plate, and the length of the first outer support rail (201) and the second outer support rail (202) is greater than the length of the inner support rail (203); one end of the first outer support rail (201), the second outer support rail (202), and the inner support rail (203) are flush.
3. The ambient temperature curing conveying device according to claim 2, characterized in that: The side-push mechanism (21) includes a side-push base plate (210), a side-push cylinder (211) disposed on the outside of the side-push base plate (210), and a side-push plate (212) disposed at the output end of the side-push cylinder (211); the side-push base plate (210) is located at the ends of two adjacent first outer support rails (201) and inner support rails (203), or two inner support rails (203), and the side-push base plate (210) is fixed above the base plate (1) by a support column (102).
4. The ambient temperature curing conveying device according to claim 3, characterized in that: The side-push cylinder (211) includes a first side-push cylinder and a second side-push cylinder. The first side-push cylinder is located at one end of the first outer support rail (201), the second outer support rail (202), and the inner support rail (203) that are flush with each other. The second side-push cylinder is located at the other end of the inner support rail (203). The first side-push cylinder and the second side-push cylinder are both provided with the side-push plate (212), and the moving direction of the side-push plate (212) on the first side-push cylinder is opposite to the moving direction of the side-push plate (212) on the second side-push cylinder.
5. The ambient temperature curing conveying device according to claim 4, characterized in that: The vertical push mechanism (22) includes at least a first vertical push assembly disposed at one end of the side push base plate (210); The first vertical push assembly includes a first vertical push cylinder (221) fixed below the base plate (1), a sliding assembly (222) driven by the first vertical push cylinder (221) to move along the setting direction of the support rail (2), and a first vertical push plate (223) fixed above the sliding assembly (222); the first vertical push plate (223) is U-shaped or L-shaped.
6. The ambient temperature curing conveying device according to claim 5, characterized in that: A return bottom plate (4) is provided between the two first outer support rails (201) and the second outer support rail (202) protruding from the end of the inner support rail (203); the length of the return bottom plate (4) is equivalent to the maximum distance between the first outer support rail (201) and the second outer support rail (202); the side push mechanism (21) is located at the end of the return bottom plate (4) to drive the carrier (3) to move into or out of the return bottom plate (4) and return to the first outer support rail (201).
7. The ambient temperature curing conveying device according to claim 6, characterized in that: The vertical push mechanism (22) also includes a second vertical push group disposed at one end of the return bottom plate (4); The second vertical push assembly includes a second vertical push cylinder (231) fixed below the base plate (1), a sliding assembly (222) driven by the second vertical push cylinder (231) to move along the setting direction of the return base plate (4), and a second vertical push plate (233) fixed above the sliding assembly (222); the second vertical push plate (233) is L-shaped.
8. The ambient temperature curing conveying device according to claim 7, characterized in that: The sliding assembly (222) includes a slide rail (2221) fixed to the upper surface of the base plate (1), at least one slider (2222) disposed on the slide rail (2221), and a slide rail connecting plate (2223) fixed to the slider (2222); the slide rail connecting plate (2223) is connected to the second vertical push plate (233) through a fixing seat (2220); the output ends of the first vertical push cylinder (221) and the second vertical push cylinder (231) are both fixed with connecting plates (220), and the connecting plates (220) penetrate through the opening on the base plate (1); the top of the connecting plate (220) is connected to the slide rail connecting plate (2223).
9. The ambient temperature curing conveying device according to claim 8, characterized in that: Both the side-push bottom plate (210) and the return bottom plate (4) are provided with baffles (2101) to prevent the vehicle (3) from falling off.
10. The ambient temperature curing conveying device according to claim 9, characterized in that: A set of conveying rollers is engaged on the support rail (2), and the bottom of the carrier (3) is in contact with the conveying rollers; at least one set of through-beam modules (5) is also provided on the support rail (2).
Citation Information
Patent Citations
A compact parallel conveying adhesive curing oven
CN221017138U