Separated storage device for storing getter

By designing a partitioned storage device, the problems of insufficient getter storage and incomplete vacuum treatment are solved, and efficient getter storage and vacuum treatment are achieved.

CN223291333UActive Publication Date: 2025-09-02ANHUI YOUYAN ASPIRATION NEW MATERIALS CO LTD
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Patent Information

Application Number
CN202422050845.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-23
Publication Date
2025-09-02
Estimated Expiration
2034-08-23

AI Technical Summary

Technical Problem

The existing getter storage device has a single storage method, insufficient storage capacity, and the internal gas cannot be completely removed during vacuum treatment, which affects the use effect of getter.

Method used

A partition storage device is designed, including a box, a thermal insulation layer, a vacuum ion pump, a dryer, a cooling port and a variety of storage mechanisms. Through a partition storage plate and a ventilation hole structure, the storage capacity is increased and the gas is completely removed during vacuum treatment.

Benefits of technology

The storage volume of getter is greatly increased, and the internal gas can be removed more thoroughly during vacuum treatment to ensure the effectiveness of getter use.

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Abstract

The partitioned storage device comprises a box body, a heat preservation layer, a dryer, a vacuum ion pump, a plurality of cooling openings, a lighting lamp and a plurality of storage mechanisms, the heat preservation layer is arranged in the box body, and the storage mechanisms are oppositely arranged at the left end and the right end in the box body; the vacuum ion pump is arranged in the middle of the multiple storage mechanisms, the dryer is arranged above the vacuum ion pump, each cooling opening is formed above the corresponding storage mechanism, and the illuminating lamp is arranged above the dryer. According to the scheme, the storage capacity is greatly improved, and meanwhile all gas can be pumped away more thoroughly during vacuum treatment.
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Description

Technical Field

[0001] The utility model relates to the technical field of getter storage, in particular to a partitioned storage device for storing getter. Background Art

[0002] Getters, also known as degassing agents, are materials in vacuum technology that can effectively adsorb and immobilize certain gas molecules. Getter materials are typically porous. When reactive gas molecules collide with the clean surface of the getter material, some are adsorbed (physical adsorption). Others react chemically with the getter material to form stable solid solutions (chemical adsorption). Gas molecules then continuously diffuse into the material, thereby removing significant amounts of reactive gas. Due to the diverse shapes of getters, existing systems typically store them together.

[0003] Existing getter storage devices have the following shortcomings:

[0004] 1. The existing getter storage device has a relatively simple storage method and a relatively general storage capacity, which cannot meet more storage needs.

[0005] 2. Secondly, the storage of the getter must meet vacuum conditions. The storage device is located inside the entire storage equipment and is tightly sealed. Therefore, when the storage equipment is vacuum treated, the gas in the storage device cannot be completely removed, which will affect the use effect of the getter over time.

[0006] For this, a solution is needed. Utility Model Content

[0007] (1) Technical problems solved

[0008] In view of the deficiencies in the prior art, the present invention provides a partitioned storage device for storing getter to solve the problems raised in the above background technology.

[0009] (2) Technical solution

[0010] In order to achieve the above objectives, the present invention is implemented through the following technical solutions:

[0011] A partitioned storage device for storing getter, comprising a box, an insulation layer, a dryer, a vacuum ion pump, a plurality of cooling ports, a lighting lamp, and a plurality of storage mechanisms, wherein the insulation layer is disposed inside the box, the plurality of storage mechanisms are disposed oppositely at the left and right ends of the box, the vacuum ion pump is disposed between the plurality of storage mechanisms, the dryer is disposed above the vacuum ion pump, each cooling port is disposed above each storage mechanism, and the lighting lamp is disposed above the dryer;

[0012] The storage mechanism includes a storage box body, several small storage slots, several large storage slots, several small storage plates, several large storage plates and partitions. Several of the small storage slots are evenly arranged in the upper half of the box body, and several of the large storage slots are equidistantly arranged in the lower half of the box body. Each of the small storage plates is arranged inside each of the small storage slots, and each of the large storage plates is arranged inside each of the large storage slots. The partitions are respectively arranged between each upper and lower two small storage slots and between each upper and lower two large storage slots; the small storage plate includes a small plate body, several baffles, an insert assembly and a front baffle. Several of the baffles are arranged in a rectangular structure on the four edges of the small plate body, the insert assembly is evenly arranged on the small plate body, and the front baffle is arranged in a shovel-shaped structure at the front end of the small plate body.

[0013] Preferably, the large storage plate includes a large plate body, several baffle plates 2, a front baffle plate 2, a picking plate and several storage strips, several of the baffle plates 2 are in the form of rectangular structures and are arranged on the four edges of the large plate body, the front baffle plate 2 is in the form of a rectangular structure and is arranged on the front end top of the large plate body, the picking plate is in the form of a rectangular structure and is arranged at the front end of the large plate body, and several of the storage strips are in the form of trapezoidal three-dimensional structures and are evenly arranged on the top of the large plate body and are integrally formed.

[0014] Preferably, the large plate body, the plurality of baffles 2, the front baffle 2, the taking plate and the plurality of storage strips are integrally formed, and the height of the plurality of baffles 2 and the front baffle 2 is greater than the height of the storage strips.

[0015] Preferably, the partition includes a plate body, a fixing plate and a plurality of ventilation holes, the fixing plates are oppositely arranged on the left and right sides of the bottom of the plate body and are integrally formed, and the plurality of ventilation holes are evenly arranged inside the plate body in an elliptical hollow three-dimensional structure.

[0016] Preferably, the small plate body, the plurality of baffles, the insert assembly and the front baffle are integrally formed.

[0017] Preferably, the plug block assembly includes several large plug blocks, several small plug blocks, a pressure block and several slots. The pressure block is arranged on the small plate body in an arc-shaped structure. Several small plug blocks are arranged equidistantly on the left and right ends of the pressure block in an arc-shaped structure. Several large plug blocks are arranged equidistantly on the left and right ends of the pressure block in an arc-shaped structure and are located at the outer ends of the small plug blocks. The outer ends of the large plug blocks are all connected and fixed to the baffle. Each of the slots is arranged between every two large plug blocks, small plug blocks and pressure blocks. Several large plug blocks, several small plug blocks and pressure blocks are arranged as a whole in an arc-shaped structure.

[0018] (3) Beneficial effects

[0019] The utility model provides a partitioned storage device for getter storage, which has the following beneficial effects:

[0020] 1. This solution improves the internal structure of the storage plate, so that it can accommodate more getters in the same space compared to the general structure, greatly increasing the storage capacity.

[0021] 2. At the same time, the structure of the partition is improved to match each storage plate to accommodate more specifications of getters. The vent holes opened can match each storage tank to more thoroughly deal with the gas inside the device during vacuum treatment. BRIEF DESCRIPTION OF THE DRAWINGS

[0022] Figure 1 This is a schematic diagram of the overall structure of the utility model;

[0023] Figure 2 This is a schematic diagram of the storage mechanism structure of the utility model;

[0024] Figure 3 This is a schematic diagram of the structure of the small storage board of the utility model;

[0025] Figure 4 This is a schematic diagram of the structure of the large storage board of the utility model;

[0026] Figure 5 This is a schematic diagram of the internal side structure of the large storage board of the utility model;

[0027] Figure 6 This is a schematic diagram of the partition structure of the utility model.

[0028] In the figure, 1-box; 2-insulation layer; 3-dryer; 4-vacuum ion pump; 5-several cooling ports; 6-lighting lamp; 7-several storage mechanisms; 71-storage box; 72-several small storage slots; 73-several large storage slots; 74-several small storage boards; 741-small board; 742-several baffles 1; 743-plug-in assembly; 7431-several large plug-ins; 7432-several small plug-ins; 7433 pressure block; 7434-several slots; 744-front baffle 1; 75-several large storage boards; 751-large board; 752-several baffles 2; 753-front baffle 2; 754-taking plate; 755-several storage strips; 76-partition; 761-board; 762-fixing plate; 763-several ventilation holes. DETAILED DESCRIPTION

[0029] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0030] See also Figure 1-6 , the embodiment of the utility model provides a technical solution to achieve this: it includes a partitioned storage device for storing an absorbent, characterized in that it includes a box body 1, an insulation layer 2, a dryer 3, a vacuum ion pump 4, a plurality of cooling ports 5, an illuminating lamp 6 and a plurality of storage mechanisms 7, the insulation layer 2 is arranged inside the box body 1, the plurality of storage mechanisms 7 are arranged oppositely at the left and right ends of the box body 1, the vacuum ion pump 4 is arranged in the middle of the plurality of storage mechanisms 7, the dryer 3 is arranged above the vacuum ion pump 4, each cooling port 5 is arranged above each storage mechanism 7, and the illuminating lamp 6 is arranged above the dryer 3.

[0031] The core of the storage mechanism 7 includes a storage box 71, several small storage slots 72, several large storage slots 73, several small storage plates 74, several large storage plates 75 and partitions 76. Several small storage slots 72 are evenly arranged in the upper half of the box 71, and several large storage slots 73 are equidistantly arranged in the lower half of the box 71. Each small storage plate 74 is arranged inside each small storage slot 72, and each large storage plate 75 is arranged inside each large storage slot 73. Partitions 76 are respectively arranged between each upper and lower small storage slots 72 and between each upper and lower large storage slots 73. The small storage plate 74 includes a small plate body 741, a plurality of baffles 742, an insert assembly 743, and a front baffle 744. The baffles 742 are rectangular parallelepiped structures arranged on the four edges of the small plate body 741, the insert assemblies 743 are evenly arranged on the small plate body 741, and the front baffle 744 is a shovel-shaped structure arranged at the front end of the small plate body 741. The small plate body 741, the baffles 742, the insert assembly 743, and the front baffle 744 are integrally formed.

[0032] The large storage panel 75 includes a large panel body 751, several second baffles 752, a second front baffle 753, a retrieval plate 754, and several storage strips 755. The second baffles 752 are rectangular parallelepiped structures arranged on the four edges of the large panel body 751, the second front baffle 753 is rectangular parallelepiped structure arranged at the front top of the large panel body 751, the retrieval plate 754 is rectangular parallelepiped structure arranged at the front end of the large panel body 751, and the several storage strips 755 are evenly arranged on the top of the large panel body 751 in a trapezoidal three-dimensional structure. The large panel body 751, several second baffles 752, the second front baffle 753, the retrieval plate 754, and the several storage strips 755 are integrally formed, and the height of the second baffles 752 and the second front baffle 753 is greater than the height of the storage strips 755.

[0033] The partition 76 includes a plate body 761, a fixed plate 762 and a plurality of ventilation holes 763. The fixed plates 762 are oppositely arranged on the left and right sides of the bottom of the plate body 761 and are integrally formed. The plurality of ventilation holes 763 are evenly arranged inside the plate body 761 in an elliptical hollow three-dimensional structure.

[0034] The plug block assembly 743 includes several large plug blocks 7431, several small plug blocks 7432, a pressure block 7433 and several slots 7434. The pressure block 7433 is arranged on the small plate body 741 in an arc-shaped structure. Several small plug blocks 7432 are arranged equidistantly on the left and right ends of the pressure block 7433 in an arc-shaped structure. Several large plug blocks 7431 are arranged equidistantly on the left and right ends of the pressure block 7433 in an arc-shaped structure and are located at the outer ends of the small plug blocks 7432. The outer ends of the large plug blocks 7431 are all connected and fixed to the baffle 1 742. Each slot 7434 is arranged between every two large plug blocks 7431, the small plug blocks 7432 and the pressure block 7433. The several large plug blocks 7431, the several small plug blocks 7432 and the pressure block 7433 are arranged as a whole in an arc-shaped structure.

[0035] When it is necessary to store strip-shaped, sheet-shaped, or strip-shaped getters in the box body 1, the small storage plate 74 can be pulled out by the front baffle 1 744, and then these getters can be placed inside. The sheet-shaped getters can be placed directly flat on the small plate 741, and the strip-shaped getters can be selectively inserted upright into the slots 7434 of the appropriate height according to their own width for convenient storage. At the same time, if each slot 7434 is filled with strip-shaped getters of the appropriate height, the entire plug-in assembly 743 will present a more specific arc, and strip-shaped getters can be placed on it for storage. This design can achieve storage at multiple angles in a space to maximize space utilization, greatly increasing the storage capacity.

[0036] Furthermore, when it is necessary to store spherical desorbents in the box body 1, the large storage plate 75 can be pulled out by the front baffle 2 753. There is a certain interval between each storage bar 755 inside it, and the trapezoidal three-dimensional structure of the storage bar 755 can accommodate more spherical desorbents when they are arranged one by one than when they are arranged as rectangular blocks. Because balls also have different sizes, when accommodating larger volumes of spherical desorbents, the storage plates generally arranged as rectangular blocks will have the phenomenon of balls squeezing each other, resulting in the inability to store them normally. When the storage bars 755 of this embodiment hold a row of spherical getters, their trapezoidal waist and the vertical surface or vertex of the other storage bar 755 secure two points of the circle, preventing longitudinal movement. The larger the circumference of the ball, the higher the point of the trapezoidal waist and the other vertical surface it supports. Furthermore, the trapezoidal top has a certain length, effectively separating the front and rear balls, thus accommodating spherical getters of different sizes. Furthermore, since there are no obstructions within a row, a large number of spherical getters can be placed, and the baffles prevent the spherical getters from falling out of the large storage bar 75.

[0037] After the getter is placed, it is pushed into the current storage slot. The housing 1 is then closed, and an external controller activates the dryer 3 and vacuum ion pump 4 to dry and vacuum the interior. When the temperature is high, the external chiller can be controlled to introduce cool air through the cooling port 5 to achieve temperature control. Furthermore, the multiple vents 763 in the partition 76, combined with the unsealed areas of each storage slot, allow for more thorough removal of internal gas during vacuum processing.

[0038] Working principle: When it is necessary to store strip-shaped, sheet-shaped or strip-shaped getters in the box body 1, the small storage plate 74 can be pulled out by the front baffle 1 744, and then these getters can be placed inside. The sheet-shaped getters can be placed directly flat on the small plate 741, and the strip-shaped getters can be selectively inserted upright into the slot 7434 of the appropriate height according to their own width, and the strip-shaped getters can be placed on top of them. When it is necessary to store spherical getters in the box body 1, the large storage plate 75 can be pulled out by the front baffle 2 753 and placed between every two storage bars 755. After the getters are placed, they are pushed into the current storage slot, and then the box body 1 is closed and the external control machine successively turns on the dryer 3 and the vacuum ion pump 4 to dry and vacuum the interior. When the temperature is high, the external refrigerator can be controlled to let in cold air through the cooling port 5 to achieve the temperature control effect. In addition, the several vent holes 763 in the partition 76 cooperate with the unsealed part of each storage groove to more thoroughly remove the internal gas during vacuum treatment.

[0039] The utility model comprises: 1-box; 2-insulation layer; 3-dryer; 4-vacuum ion pump; 5-several cooling ports; 6-illumination lamp; 7-several storage mechanisms; 71-storage box; 72-several small storage slots; 73-several large storage slots; 74-several small storage boards; 741-small board; 742-several baffles; 743-insert block assembly; 7431-several large insert blocks; 7432-several small insert blocks; 7433 pressure block; 7434-several slots; 744-front baffle; 75-several large storage boards; 751-large Plate body; 752-several baffles 2; 753-front baffle 2; 754-taking plate; 755-several storage strips; 76-partition; 761-plate body; 762-fixing plate; 763-several vents. These components are all universal standard parts or components known to those skilled in the art. Their structures and principles can be known to those skilled in the art through technical manuals or conventional experimental methods. The problems solved by the present invention are: 1. The existing absorbent storage device has a relatively simple storage method and a relatively general storage capacity, which cannot meet more storage needs. 2. Secondly, the storage of the absorbent must meet vacuum conditions. The storage device is located inside the entire storage device and is tightly packaged. Therefore, when the storage device is vacuum-treated, the gas in the storage device cannot be completely disposed of, which will affect the use effect of the absorbent over time. The present invention greatly increases the storage capacity through the mutual cooperation of the above-mentioned components, and can also more thoroughly extract all gases during vacuum treatment.

[0040] The above shows and describes the basic principles and main features of the present invention and the advantages of the present invention. It is obvious to those skilled in the art that the present invention is not limited to the details of the above exemplary embodiments and that the present invention can be implemented in other specific forms without departing from the spirit or essential characteristics of the present invention. Therefore, from all perspectives, the embodiments should be regarded as illustrative and non-restrictive. The scope of the present invention is defined by the appended claims rather than the above description, and it is intended that all changes that fall within the meaning and range of equivalents of the claims be included in the present invention. Any reference signs in the claims should not be construed as limiting the claim to which they relate.

[0041] In addition, it should be understood that although this specification is described in terms of implementation methods, not every implementation method contains only one independent technical solution. This narrative method of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment can also be appropriately combined to form other implementation methods that can be understood by those skilled in the art.

Claims

1. A compartmentalized storage device for getter storage, characterized in that: The invention comprises a box (1), a heat-insulating layer (2), a dryer (3), a vacuum ion pump (4), a plurality of cooling ports (5), a lighting lamp (6) and a plurality of storage mechanisms (7), wherein the heat-insulating layer (2) is arranged inside the box (1), the plurality of storage mechanisms (7) are arranged oppositely at the left and right ends inside the box (1), the vacuum ion pump (4) is arranged in the middle of the plurality of storage mechanisms (7), the dryer (3) is arranged above the vacuum ion pump (4), each cooling port (5) is arranged above each storage mechanism (7), and the lighting lamp (6) is arranged above the dryer (3); The storage mechanism (7) comprises a storage box (71), a plurality of small storage slots (72), a plurality of large storage slots (73), a plurality of small storage plates (74), a plurality of large storage plates (75) and a partition (76), wherein the plurality of small storage slots (72) are evenly arranged in the upper half of the storage box (71), the plurality of large storage slots (73) are equidistantly arranged in the lower half of the storage box (71), each of the small storage plates (74) is arranged inside each of the small storage slots (72), and each of the large storage plates (75) is arranged inside each of the large storage slots (73). The partitions (76) are respectively arranged between each upper and lower two small storage grooves (72) and between each upper and lower two large storage grooves (73); the small storage plate (74) includes a small plate body (741), a plurality of baffles (742), an insert assembly (743) and a front baffle (744); the plurality of baffles (742) are arranged on the four edges of the small plate body (741) in a rectangular parallelepiped structure, the insert assembly (743) is evenly arranged on the small plate body (741), and the front baffle (744) is arranged at the front end of the small plate body (741) in a shovel-shaped structure.

2. A partitioned storage device for getter storage according to claim 1, characterized in that: The large storage plate (75) includes a large plate body (751), a plurality of baffle plates (752), a front baffle plate (753), a pick-up plate (754) and a plurality of storage strips (755), wherein the plurality of baffle plates (752) are arranged on the four edges of the large plate body (751) in a rectangular parallelepiped structure, the front baffle plate (753) is arranged on the front end top of the large plate body (751) in a rectangular parallelepiped structure, the pick-up plate (754) is arranged on the front end of the large plate body (751) in a rectangular parallelepiped structure, and the plurality of storage strips (755) are evenly arranged on the top of the large plate body (751) in a trapezoidal three-dimensional structure and are integrally formed.

3. A partitioned storage device for getter storage according to claim 2, characterized in that: The large plate body (751), a plurality of baffles (752), a front baffle (753), a taking plate (754) and a plurality of storage strips (755) are integrally formed, and the height of the plurality of baffles (752) and the front baffle (753) is greater than the height of the storage strips (755).

4. The partitioned storage device for getter storage according to claim 1, characterized in that: The partition (76) includes a plate body (761), a fixing plate (762) and a plurality of vent holes (763). The fixing plates (762) are arranged oppositely on the left and right sides of the bottom of the plate body (761) and are integrally formed. The plurality of vent holes (763) are evenly arranged inside the plate body (761) in an elliptical hollow three-dimensional structure.

5. The partitioned storage device for getter storage according to claim 1, characterized in that: The small plate body (741), a plurality of baffles (742), an insert assembly (743) and a front baffle (744) are integrally formed.

6. The partitioned storage device for getter storage according to claim 5, characterized in that: The plug assembly (743) includes a plurality of large plugs (7431), a plurality of small plugs (7432), a pressure block (7433) and a plurality of slots (7434). The pressure block (7433) is arranged on the small plate (741) in an arc-shaped structure. The plurality of small plugs (7432) are arranged at the left and right ends of the pressure block (7433) in an arc-shaped structure and are equidistant from each other. The plurality of large plugs (7431) are arranged at the left and right ends of the pressure block (7433) in an arc-shaped structure and are equidistant from each other. The left and right ends of the block (7433) are located at the outer ends of the small plug block (7432), the outer ends of the large plug block (7431) are connected and fixed to the baffle (742), each of the slots (7434) is set between every two large plug blocks (7431) and small plug blocks (7432) and the pressure block (7433), and the plurality of large plug blocks (7431), the plurality of small plug blocks (7432) and the pressure block (7433) are arranged as a whole in an arc-shaped structure.