Conveying device of nuclear track membrane controlled atmosphere window component

By designing the conveying device of the nuclear pore membrane air conditioning window member, the blowing and pushing mechanisms are used to achieve automatic and accurate conveying, the problem of inaccurate conveying of the bottom part in the prior art is solved, and the production efficiency and installation efficiency are improved.

CN120172075APending Publication Date: 2025-06-20INST OF AUTOMATION CHINESE ACAD OF SCI (LUOYANG) ROBOTICS & INTELLIGENT EQUIP INNOVATION INST
View PDF 1 Cites 0 Cited by

Patent Information

Application Number
CN202510499300.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-21
Publication Date
2025-06-20

AI Technical Summary

Technical Problem

In the prior art, the bottom part of the nuclear pore membrane air conditioning window cannot be transported to the designated position, resulting in installation errors and damage to raw materials, seriously affecting the installation efficiency.

Method used

A conveying device for a nuclear pore membrane air conditioning window member is designed, including a conveying plate, an anti-stack pressure plate and a push mechanism. The air blowing mechanism enables the transport of components along the conveyor plate, and each component is pushed to the next station by using the push mechanism, realizing automatic and accurate conveying.

Benefits of technology

It realizes automatic and precise transportation of components, meets the transportation needs of batch components, greatly improves production efficiency, and avoids installation errors and raw material damage.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120172075A_ABST
    Figure CN120172075A_ABST
Patent Text Reader

Abstract

The invention discloses a conveying device for a nuclear track membrane air-conditioning window component. The conveying device comprises a conveying plate, an anti-stacking pressing plate and a pushing mechanism. Components enter the position between the conveying plate and the anti-stacking pressing plate from the left side of the conveying plate, the components are conveyed along the conveying plate through the blowing mechanism, and after each component is conveyed to a designated station, each component is pushed to the next station through the pushing mechanism. And the conveying requirement of batched components can be met, and the production efficiency is greatly improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The invention belongs to the technical field of the production of nuclear pore membrane air-adjusting windows, and particularly relates to a conveying device for components of a nuclear pore membrane air-adjusting window. Background Art

[0002] With the gradual development of the nuclear pore membrane air-adjusting window technology, nuclear pore membrane air-adjusting windows have begun to be widely used in industries such as fruit preservation, seafood preservation, and logistics transportation. The use of air-adjusting windows can greatly extend the preservation period of fruits, seafood, etc., and indirectly reduce the economic losses caused by too short a preservation period.

[0003] The nuclear pore membrane air-adjusting window is assembled by multiple components in sequence. The components include a bottom piece, a nuclear pore membrane, and a fastener. The nuclear pore membrane is press-fitted between the bottom piece and the fastener. When assembling all the components of the nuclear pore membrane air-adjusting window, it usually relies on manual installation, which has too low installation efficiency, cannot meet the usage requirements, and results in a high usage cost of the air-adjusting window, which is not conducive to large-scale promotion.

[0004] For the Chinese invention patent with the publication number CN 118650903 A, a nuclear pore membrane air-adjusting valve assembly production line, this patent discloses the use of an automated production line for the automated assembly of the bottom piece, nuclear pore membrane, and fastener of the nuclear pore membrane air-adjusting window. However, when conveying and assembling the bottom piece of the nuclear pore membrane air-adjusting valve, it often cannot be conveyed to the designated position, resulting in installation errors and damage to raw materials, seriously affecting the installation efficiency. Summary of the Invention

[0005] In order to solve the technical problem in the prior art that the bottom piece of the nuclear pore membrane air-adjusting window cannot be conveyed to the designated position, resulting in installation errors and damage to raw materials, the purpose of the present invention is to provide a conveying device for components of a nuclear pore membrane air-adjusting window.

[0006] In order to achieve the above-mentioned invention purpose, the present invention adopts the following technical solutions: A conveying device for components of a nuclear pore membrane air-adjusting window includes a conveying plate, an anti-overlapping pressing plate, and a pushing mechanism; the conveying plate, on the right side of the upper surface thereof, there is a mounting plate one for installing the anti-overlapping pressing plate, and on the front side of the upper surface of the conveying plate, there is a mounting plate two for installing the pushing mechanism; The anti-overlapping pressing plate is located on the upper surface of the conveying plate and is fixedly connected to the mounting plate 1. On the lower surface of the anti-overlapping pressing plate, there are a number of anti-overlapping blocks 21, and a material pushing channel is formed between adjacent anti-overlapping blocks. A component conveying channel is opened on the lower surface of the anti-overlapping pressing plate, and the component conveying channel penetrates through the anti-overlapping blocks from left to right; The pushing mechanism is composed of a push plate, a push rod, a first cylinder and a slide rail. A slide rail is arranged on the lower surface of the push plate. One end of the push rod is slidably assembled left and right on the slide rail. The other end of the push rod is provided with a pushing component corresponding to the material pushing port opened on the front end surface of the anti-overlapping pressing plate. The pushing component corresponds to the pushing channel. The driving end of the first cylinder is fixedly installed on the upper surface of the push plate.

[0007] Furthermore, a blowing mechanism for blowing air into the component conveying channel is arranged on the upper surface of the anti-overlapping pressing plate. The blowing mechanism includes an air pump and a blowing pipe connected to the air pump. The blowing pipe is communicated with the air blowing holes opened on the upper surface of the anti-overlapping pressing plate. The air blowing holes penetrate through the upper and lower surfaces of the anti-overlapping pressing plate and correspond to the component conveying channel.

[0008] Furthermore, an anti-offset material blocking mechanism is arranged on the upper surface of the anti-overlapping pressing plate. The anti-offset material blocking mechanism includes a second cylinder, a base and a material blocking plate. The driving end of the second cylinder is connected downward to the upper surface of the base. A material blocking plate is arranged on the lower surface of the base. The material blocking plate passes downward through the anti-overlapping pressing plate and is located on the rear side of the conveying plate. The material blocking plate corresponds to the pushing channel.

[0009] Furthermore, the pushing component includes a pushing block and a pulley 31 arranged at the upper end of the pushing block. The pulley 31 is rollingly assembled in the pushing channel.

[0010] Furthermore, a feeding stop mechanism is arranged on the left side of the push plate. The feeding stop mechanism includes a stop plate, and the conveying of the component is blocked by moving the stop plate forward to the left side of the conveying plate.

[0011] Furthermore, a photoelectric switch for detecting the component is arranged on the left side of the upper surface of the conveying plate.

[0012] Furthermore, a plurality of blowing pipes are provided. The plurality of blowing pipes are arranged at intervals along the component conveying channel on the upper surface of the anti-overlapping pressing plate.

[0013] Furthermore, a support seat is arranged on the upper surface of the anti-overlapping pressing plate. The second cylinder is installed on the support seat.

[0014] Due to the adoption of the above technical solutions, the present invention can produce the following beneficial effects: The component enters from the left side of the conveying plate between the conveying plate and the anti-overlapping pressing plate. The conveying of the component along the conveying plate is realized through the blowing mechanism. When each component is conveyed to the designated station, each component is pushed to the next station through the pushing mechanism. The present invention realizes the automatic and precise conveying of the component, and can meet the conveying requirements of a batch of components, greatly improving the production efficiency. Description of the Drawings

[0015] Figure 1 is a schematic structural diagram of the present invention; Figure 2 Schematic structural diagram of the conveying plate in the present invention; Figure 3 Schematic structural diagram of the anti-overlapping pressing plate in the present invention; Figure 4 Schematic structural diagram of the pushing mechanism in the present invention; Figure 5 Schematic structural diagram of the anti-offset material blocking mechanism in the present invention; Figure 6 Schematic structural diagram of the feeding stop mechanism in the present invention; Figure 7 Schematic structural diagram of the components of the nuclear pore membrane air-adjusting window; In the figure: 1, conveying plate; 11, first mounting plate; 12, second mounting plate; 13, mounting hole; 2, anti-overlapping pressing plate; 21, anti-overlapping block; 22, material pushing channel; 23, sliding groove; 24, air blowing hole; 25, component conveying channel; 3, pushing mechanism; 31, pushing plate; 32, slide rail; 33, push rod; 34, material pushing block; 35, pulley; 36, first cylinder; 4, feeding stop mechanism; 41, stop plate; 42, connecting plate; 5, anti-offset material blocking mechanism; 51, material blocking plate; 52, base; 53, second cylinder; 54, support seat; 6, air blowing pipe; 7, photoelectric switch; 8, component. Detailed implementation manners

[0016] The technical solutions of the present invention will be further described in detail below with reference to the accompanying drawings and embodiments.

[0017] As Figure 1 , 2 shown, a conveying device for components of a nuclear pore membrane air-adjusting window includes a conveying plate 1, an anti-overlapping pressing plate 2 and a pushing mechanism 3; a first mounting plate 11 for mounting the anti-overlapping pressing plate is arranged on the right side of the upper surface of the conveying plate 1, and a second mounting plate 12 for mounting the pushing mechanism 3 is arranged on the front side of the upper surface of the conveying plate 1; the first mounting plate 11, the second mounting plate 12 and the conveying plate 1 are integrally processed and formed, and moreover, the first mounting plate 11 and the second mounting plate 12 protrude from the upper surface of the conveying plate 1, so that the first mounting plate 11 can play a role in blocking the component 8.

[0018] As Figure 3 shown, the anti-overlapping pressing plate 2 is located on the upper surface of the conveying plate and is fixedly connected to the first mounting plate 11. A plurality of anti-overlapping blocks 21 are arranged on the lower surface of the anti-overlapping pressing plate 2, a material pushing channel 22 is formed between adjacent anti-overlapping blocks, and a component conveying channel 25 is formed on the lower surface of the anti-overlapping pressing plate 2. The component conveying channel 25 penetrates through all the anti-overlapping blocks 21 from left to right.

[0019] The anti-overlapping block 21 on the anti-overlapping pressure plate 2 is located on the upper surface of the conveying plate 1. A relatively narrow space is formed between the anti-overlapping pressure plate and the conveying plate, so that the component 8 will not be overlapped due to vibration and other factors during the conveying process.

[0020] As Figure 4 shown, the pushing mechanism 3 is composed of a push plate 31, a push rod 33, a first cylinder 36 and a slide rail 32. The slide rail 32 is arranged on the lower surface of the push plate 31. One end of the push rod 33 is slidably fitted on the slide rail 32, and the push rod 33 can slide left and right on the slide rail 32. The other end of the push rod 33 is provided with a pushing component corresponding to the pushing port opened on the front end surface of the anti-overlapping pressure plate 2. The pushing component corresponds to the pushing channel 22, and the driving end of the first cylinder 36 is fixedly installed on the upper surface of the push plate 31.

[0021] The pushing component includes a pushing block 34 and a pulley 35 arranged at the upper end of the pushing block. The pulley 35 is rollingly fitted in the pushing channel 22.

[0022] When pushing the component 8, the first cylinder 36 drives the push plate 31 to move forward. The push plate 31 drives the push rod 33 and the pushing component to move forward. The pulley 35 on the pushing component moves forward along the pushing channel and pushes the component 8 on the conveying plate to the next station through the pushing block 34.

[0023] An air blowing mechanism for blowing air into the component conveying channel is arranged on the upper surface of the anti-overlapping pressure plate. The air blowing mechanism includes an air pump and a blow pipe 6 connected to the air pump. The blow pipe 6 is communicated with a blow hole 24 opened on the upper surface of the anti-overlapping pressure plate 2. The blow hole 24 penetrates through the upper and lower surfaces of the anti-overlapping pressure plate and corresponds to the component conveying channel 25. A plurality of blow pipes are provided, and the plurality of blow pipes are arranged at intervals along the component conveying channel on the upper surface of the anti-overlapping pressure plate.

[0024] After the component 8 is conveyed from the previous station to the conveying plate 1, the component 8 can only move a certain distance in the component conveying channel 25 between the conveying plate 1 and the anti-overlapping pressure plate 2 under the action of inertia and cannot completely reach the installation plate 1 on the right side. Therefore, by arranging the blow pipe 6 to blow air on the component, the component is blown to the right side. As a preference of the present invention, the blow hole is inclined to the right side, and a certain angle is formed between the blow hole and the conveying plate, so as to facilitate the blowing of the component.

[0025] As Figure 5As shown in the figure, an anti-offset material blocking mechanism 5 is provided on the upper surface of the anti-overlapping material pressing plate 2. The anti-offset material blocking mechanism 5 includes a second cylinder 53, a base 52 and a material blocking plate 51. The driving end of the second cylinder 53 is connected downward to the upper surface of the base 52. A support seat 54 is provided on the upper surface of the anti-overlapping material pressing plate 2, and the second cylinder 53 is installed on the support seat 54. A material blocking plate 51 is provided on the lower surface of the base 52. The material blocking plate 51 passes downward through the sliding groove 23 opened on the anti-overlapping material pressing plate 2 and is located on the rear side of the conveying plate 1. The material blocking plate corresponds to the pushing channel 22.

[0026] During the conveying process of the component 8 in the component conveying channel, since the component is blown to the right, in order to prevent the component 8 from shifting to the rear side of the conveying plate 1, the second cylinder 53 drives the base 52 to move downward, and the base 52 drives the material blocking plate 51 to move downward through the anti-overlapping material pressing plate 2 and then move to the rear side of the conveying plate 1, playing a role in preventing the component from shifting; As a preference of the present invention, a plurality of the material blocking plates 51 and the sliding grooves 23 are correspondingly provided.

[0027] A feeding stop mechanism 4 is provided on the left side of the pushing plate 31. The feeding stop mechanism includes a stop plate 41, and the conveying of the component is blocked by moving the stop plate 41 forward to the left side of the conveying plate.

[0028] A connecting plate 42 is provided at the front end of the stop plate 41. The connecting plate 42 is fixedly connected to the pushing plate 31. During the process of the pushing plate driving the push rod to move forward to push the component, the stop plate moves forward to the left side surface of the conveying plate. Since the process of the component being conveyed from the previous station to the conveying plate is continuous, therefore, in order to prevent a component from being conveyed onto the conveying plate during the process of pushing the component, the subsequent component conveying is blocked by the stop plate. After the pushing of the component is completed and returns, the stop plate is driven backward to the initial position.

[0029] A photoelectric switch for detecting the component is provided on the left side of the upper surface of the conveying plate. The photoelectric switch is used to detect whether the component is conveyed in place on the conveying plate. After being in place, the pushing mechanism acts to push the component.

[0030] The photoelectric switch is installed in the installation hole 13 opened on the upper surface of the conveying plate. A plurality of components on the conveying plate are pushed simultaneously. Therefore, in order to detect whether the components at each position are in place, a plurality of the photoelectric switches are evenly spaced along the conveying direction.

[0031] In the present invention, a controller is also provided. The input end of the controller is electrically connected to the photoelectric switch, and the output end of the controller is electrically connected to the first cylinder, the second cylinder and the air pump. The wiring structure and control principle of the controller are well known to those skilled in the art and will not be described in detail here.

[0032] The working principle of a conveying device for nuclear pore membrane air-adjusting window components of the present invention is as follows: The component 8 is conveyed from the previous process onto the conveying plate 1. The component 8 enters between the anti-overlapping pressing plate 2 and the conveying plate 1 by inertia. The second cylinder in the anti-offset material blocking mechanism 5 acts, driving the material blocking plate to move downward to the rear side of the conveying plate. Then, the air blowing mechanism blows the component 8. After the components 8 are conveyed to the designated positions one by one, when the photoelectric switch located at the leftmost side of the conveying plate detects the component 8, it indicates that the component conveying channel 22 is already full of components. Then, the second cylinder drives the material blocking plate to move upward and separate from the conveying plate. At the same time, the pushing mechanism acts. The push rod drives the material pushing assembly to move along the pushing channel and push the component to the next station. During the process of the material pushing assembly pushing the component, the stop baffle moves forward to the left side of the conveying plate. At this time, the subsequently conveyed components are blocked and cannot enter the conveying plate. After the component pushing is completed, the push rod and the material pushing assembly in the pushing mechanism reset. The second cylinder drives the material blocking plate to move downward to the initial position, thus completing one component conveying process. Then, the subsequent component conveying is carried out reciprocally.

[0033] The above is only the preferred embodiment of the present invention. Therefore, all equivalent changes or modifications made according to the structures, features, and principles described in the scope of the present invention patent application are included in the scope of the present invention patent application.

Claims

1. A conveying device for a nuclear pore membrane gas-conditioning window component, comprising a conveying plate, an anti-stack pressing plate and a pushing mechanism; characterized in that: The conveying plate has a first mounting plate for mounting an anti-stacked material pressing plate on the right side of its upper surface, and a second mounting plate for mounting a pushing mechanism on the front side of the upper surface of the conveying plate; The anti-stacking pressure plate is located on the upper surface of the conveying plate and is fixedly connected to the mounting plate. A plurality of anti-stacking blocks are arranged on the lower surface of the anti-stacking pressure plate, and a pushing channel is formed between adjacent anti-stacking blocks. A component conveying channel is opened on the lower surface of the anti-stacking pressure plate, and the component conveying channel runs through the anti-stacking blocks from left to right. The pushing mechanism is composed of a pushing plate, a pushing rod, a cylinder 1 and a slide rail. The slide rail is arranged on the lower surface of the pushing plate. One end of the pushing rod is slidably mounted on the slide rail. The other end of the pushing rod is provided with a pushing assembly corresponding to the pushing opening opened on the front end surface of the anti-stacking pressure plate. The pushing assembly corresponds to the pushing channel. The driving end of the cylinder 1 is fixedly mounted on the upper surface of the pushing plate.

2. The conveying device of the nuclear pore membrane gas-conditioning window component according to claim 1, characterized in that: A blowing mechanism for blowing air into the component conveying channel is arranged on the upper surface of the anti-stacking pressure plate, the blowing mechanism includes an air pump and a blowing pipe connected to the air pump, the blowing pipe is connected to the blowing holes opened on the upper surface of the anti-stacking pressure plate, the blowing holes penetrate the upper and lower surfaces of the anti-stacking pressure plate and correspond to the conveying channel.

3. The conveying device of the nuclear pore membrane gas-conditioning window component according to claim 1, characterized in that: An anti-deviation material blocking mechanism is arranged on the upper surface of the anti-stacking pressure plate, and the anti-deviation material blocking mechanism includes cylinder 2, a base and a material blocking plate. The driving end of cylinder 2 is downwardly connected to the upper surface of the base, and a material blocking plate is arranged on the lower surface of the base. The material blocking plate passes downward through the anti-stacking pressure plate and is located on the rear side of the conveying plate, and the material blocking plate corresponds to the pushing channel.

4. The conveying device of the nuclear pore membrane gas-conditioning window component according to claim 1, characterized in that: The pushing assembly comprises a pushing block and a pulley arranged at the upper end of the pushing block, and the pulley is rollingly mounted in the pushing channel.

5. The conveying device of the nuclear pore membrane gas-conditioning window component according to claim 1, characterized in that: A loading stop mechanism is arranged on the left side of the push plate, and the loading stop mechanism comprises a stop plate, and the stop plate moves forward to the left side of the conveying plate to block the conveying of the component.

6. The conveying device of the nuclear pore membrane gas-conditioning window component according to claim 1, characterized in that: A photoelectric switch for detecting the member is provided on the left side of the upper surface of the conveying plate.

7. The conveying device of the nuclear pore membrane gas-conditioning window component according to claim 2, characterized in that: There are multiple air blowing pipes, which are arranged at intervals on the upper surface of the anti-stackage pressing plate along the conveying channel.

8. The conveying device of the nuclear pore membrane gas-conditioning window component according to claim 2, characterized in that: A support seat is arranged on the upper surface of the anti-stackage pressure plate, and the second cylinder is installed on the support seat.

Citation Information

Patent Citations

  • Nuclear track membrane air regulating valve assembly production line

    CN118650903A