Anaerobic adhesive flattening device

By designing a combination of support base, drive device and flattening device, multiple pressure columns are used to realize the synchronous pressing of multiple metal balls, which solves the problems of low efficiency and precision of existing devices, and realizes efficient and uniform anaerobic adhesive flattening and anaerobic bonding.

CN224103557UActive Publication Date: 2026-04-10BEIJING JINGDIAO GRP CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-18
Publication Date
2026-04-10

AI Technical Summary

Technical Problem

Existing anaerobic adhesive flattening devices have low efficiency and precision, and cannot meet the requirements for flattening multiple metal balls simultaneously, especially curved surfaces. Furthermore, existing devices cannot achieve efficient curing in an oxygen-free environment.

Method used

An anaerobic adhesive flattening device was designed, comprising a support base, a drive device, a material storage device, and a flattening device. Multiple metal balls are pressed synchronously by setting multiple pressure columns, ensuring the bonding of anaerobic adhesive in an anaerobic environment. The combination of a press-fit telescopic cylinder and a sliding pressure plate achieves efficient flattening of multiple metal balls.

Benefits of technology

It achieves efficient and uniform flattening of multiple metal spheres, ensuring that the anaerobic adhesive cures under anaerobic conditions, improving assembly efficiency and precision, and is suitable for anaerobic adhesive bonding of spherical and plate-shaped metals.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides an anaerobic adhesive flattening device. The anaerobic adhesive flattening device comprises a supporting seat, the driving device is mounted on the supporting seat; the flattening device is mounted on the supporting seat and is used for driving the plurality of pressing columns to move up and down; and the material storage device is connected to the driving device in a sliding mode, and the material storage device is located below the multiple pressing columns in the working process. The utility model belongs to the field of flattening devices, and aims to solve the problems of low flattening efficiency and low precision of anaerobic adhesive in the prior art. The anaerobic adhesive flattening device has the technical effects that the flattening efficiency is relatively high, and the precision is relatively high.
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Description

TECHNICAL FIELD

[0001] The utility model relates to a flattening device technical field especially relates to an anaerobic adhesive flattening device. BACKGROUND

[0002] In the development of high-precision products, it is often necessary to use anaerobic adhesive to bond two metal objects. However, anaerobic adhesive is a high-strength, high-adhesion glue that can quickly solidify after contact with metal and isolation from air, with the properties of fast curing, high strength, and high temperature resistance, and is widely used in the field of metal bonding. In this assembly, the selected bonding glue is 680 anaerobic adhesive. This glue will not solidify under aerobic conditions, and can only solidify in an anaerobic environment, usually requiring a gap of less than 0.25mm between the two bonded parts.

[0003] In the existing bonding process, manual bonding is usually used, and metal blocks are used for flattening to create an anaerobic environment in the bonding area, which cannot guarantee efficiency and accuracy.

[0004] The existing flattening device is only suitable for flat flattening operation and is not suitable for curved flattening of metal balls, and cannot meet the demand of flattening multiple metal balls at the same time. SUMMARY

[0005] The anaerobic adhesive flattening device provided by the utility model solves the defects of low flattening efficiency and low accuracy in the prior art, and realizes an anaerobic adhesive flattening device with high flattening efficiency and high accuracy.

[0006] The anaerobic adhesive flattening device provided by the utility model comprises:

[0007] a support seat;

[0008] a drive device mounted on the support seat;

[0009] a flattening device mounted on the support seat and used to drive the plurality of pressing columns to move up and down;

[0010] a storage device slidably connected to the drive device, which is located below the plurality of pressing columns during operation.

[0011] In addition, the anaerobic adhesive flattening device according to the utility model can also have the following additional technical features:

[0012] In some embodiments of the utility model, the flattening device comprises:

[0013] a fixing frame mounted on the support seat;

[0014] a pressing telescopic cylinder mounted on the fixing frame;

[0015] The sliding pressing plate is connected with the telescopic rod part of the telescopic cylinder, and the plurality of pressing columns are installed on the sliding pressing plate.

[0016] In some embodiments of the utility model, the fixing frame comprises:

[0017] The guide shaft is connected with the support base at one end, and the sliding pressing plate is slidably connected with the guide shaft.

[0018] The fixed plate is connected with the other end of the guide shaft, and the sliding pressing plate is located between the fixed plate and the support base.

[0019] In some embodiments of the utility model, the driving device comprises:

[0020] The guide rail is installed on the support base.

[0021] The sliding block is slidably connected with the guide rail, and the material storage device is installed on the sliding block.

[0022] In some embodiments of the utility model, the driving device further comprises:

[0023] The telescopic cylinder is installed on the support base, and the telescopic rod part of the telescopic cylinder is connected with the bottom surface of the material storage device.

[0024] In some embodiments of the utility model, further comprising:

[0025] The buffer limiting assembly is provided with two buffer limiting assemblies on the support base, and the material storage device and the flattening device are located between the two buffer limiting assemblies.

[0026] In some embodiments of the utility model, each buffer limiting assembly comprises:

[0027] The buffer limiting plate is installed on the support base.

[0028] The buffer is installed on the buffer limiting plate.

[0029] In some embodiments of the utility model, each buffer limiting assembly further comprises:

[0030] The limiting block is installed on the buffer limiting plate.

[0031] In some embodiments of the utility model, the material storage device comprises:

[0032] The material moving plate is installed on the sliding block, and the telescopic rod part of the telescopic cylinder is connected with the material moving plate.

[0033] The material tray is installed on the material moving plate.

[0034] In some embodiments of the utility model, the pressing column comprises:

[0035] The first compression spring is connected with the sliding pressing plate at one end.

[0036] a rod body connected to the other end of the first compression spring;

[0037] a second compression spring, one end of which is connected to the support base, and the other end of which is connected to the rod body.

[0038] In summary, the present application has the following beneficial technical effects: the plurality of compression columns are arranged to simultaneously press the anaerobic glue of the plurality of metal balls, so that the pressing force is uniform, and the plurality of metal balls are flattened; finally, the anaerobic glue can be used to anaerobically bond the spherical metal, and can also be used to anaerobically bond the plate-shaped or block-shaped metal, which is very convenient and fast, and the precision is ensured while the plurality of metal balls are efficiently flattened. BRIEF DESCRIPTION OF DRAWINGS

[0039] Various other advantages and benefits will become apparent to those of ordinary skill in the art upon reading the following detailed description of the preferred embodiments. The accompanying drawings are included to provide a description of the preferred embodiments and are not intended to limit the scope of the present application. Moreover, the same reference numerals are used throughout the same figures. In the drawings:

[0040] Figure 1 A perspective view of an anaerobic glue flattening device according to some embodiments of the present application is schematically shown.

[0041] Figure 2 A perspective view of an anaerobic glue flattening device according to some embodiments of the present application is schematically shown.

[0042] Figure 3 A perspective view of an anaerobic glue flattening device according to some embodiments of the present application is schematically shown.

[0043] Figure 4 A perspective view of an anaerobic glue flattening device according to some embodiments of the present application is schematically shown.

[0044] Figure 5 A cross-sectional view of the combination between the compression column and the mounting plate of an anaerobic glue flattening device according to some embodiments of the present application is schematically shown.

[0045] Figure 6 A first view of a perspective view of the rod body of a compression column of an anaerobic glue flattening device according to some embodiments of the present application is schematically shown.

[0046] Figure 7 A second view of a perspective view of the rod body of a compression column of an anaerobic glue flattening device according to some embodiments of the present application is schematically shown.

[0047] Figure 8 A schematic structural view of a to-be-pressed component of an anaerobic adhesive pressing device according to some embodiments of the present application is shown schematically.

[0048] Reference signs:

[0049] 1, support seat, 11, base plate, 12, support plate, 13, mounting plate, 2, driving device, 21, driving telescopic cylinder, 22, guide rail, 23, sliding block, 24, support flange, 3, pressing device, 31, fixed plate, 32, sliding pressing plate, 33, pressing telescopic cylinder, 34, guide shaft, 36, circlip, 4, storage device, 41, tray, 411, tray body, 412, handle, 413, stop lever, 414, placing groove, 42, material moving plate, 5, buffer limiting assembly, 51, buffer limiting plate, 52, limiting block, 53, buffer, 6, pressing column, 61, first compression spring, 62, rod body, 621, lower rod, 622, upper rod, 623, clamping groove, 63, second compression spring, 7, to-be-pressed component, 71, base, 72, metal ball, 8, positioning pin. DETAILED DESCRIPTION

[0050] Exemplary embodiments of the present disclosure will be described in greater detail below with reference to the accompanying drawings. While exemplary embodiments of the present disclosure are shown in the drawings, it is understood that the present disclosure can be embodied in various forms without being limited by the embodiments set forth herein. Rather, these embodiments are provided so that the present disclosure will be thoroughly and completely understood, and will fully convey the scope of the present disclosure to those skilled in the art.

[0051] It is to be understood that the terminology used herein is for the purpose of describing particular example embodiments only and is not intended to be limiting. As used herein, the singular forms "a", "an" and "the" are intended to include the plural forms as well, unless the context clearly indicates otherwise. The terms "comprises", "comprising", "includes", "including" and "has" are inclusive and therefore specify the presence of stated features, steps, operations, elements, and / or components, but do not preclude the presence or addition of one or more other features, steps, operations, elements, components, and / or groups thereof. The method steps, processes, and operations described herein are not to be construed as necessarily requiring their performance in the particular order in which they are described, unless specifically identified as an order dependent step. It is also to be understood that additional or alternative steps can be employed.

[0052] Although the terms first, second, third, etc. can be used herein to describe various elements, components, regions, layers and / or sections, these elements, components, regions, layers and / or sections should not be limited by these terms. These terms can be only used to distinguish one element, component, region, layer or section from another region, layer or section. Terms such as "first", "second", and other numerical terms when used herein do not connote an order or sequence unless specifically stated by the context. Thus, a first element, component, region, layer or section discussed below could be termed a second element, component, region, layer or section without departing from the teachings of the example embodiments.

[0053] For ease of description, spatially relative terms can be used herein for describing an element's or feature's relationship to another element or feature as shown in the figures. Such spatially relative terms include "inner", "outer", "beneath", "below", "lower", "above", "upper", and the like. Such spatially relative terms can be used to describe a position as

[0054] In the development of high-precision products, a certain to-be-pressed assembly 7 including a base 71 and metal balls 72 is assembled, and the specific structure is as shown in Figure 8 The base 71 is made of aluminum alloy, and three groups of openings are uniformly arranged on the base 71, and each group of openings has two metal ball 72 mounting holes. The metal balls 72 need to be respectively bonded in the openings of the base 71 by using anaerobic glue. After assembly, the parallelism of the six metal balls 72 and the difference between the spacings of each group of metal balls 72 are required to be within 6 um.

[0055] Anaerobic glue is a kind of glue with high strength and high viscosity. It can quickly solidify after contacting with metal and being isolated from air, and has the performance of fast solidification, high strength and high temperature resistance, and is widely used in the field of metal bonding. In this assembly, the selected bonding glue is 680 anaerobic glue. The glue cannot be solidified under aerobic conditions, and can only be solidified in an anaerobic environment. Generally, the gap between two bonding parts is required to be less than 0.25 mm.

[0056] In the existing bonding process, manual bonding is usually used, and a metal block is used for flattening to create an anaerobic environment for the bonding area. The existing flattening device 3 is only suitable for flat flattening operation and is not suitable for curved flattening of the metal ball 72, and is mainly used for flattening treatment of multi-layer ceramic sheets, and cannot meet the demand for simultaneous flattening of multiple metal balls 72.

[0057] Therefore, how to improve the assembly efficiency while meeting the curing conditions of the anaerobic adhesive bonding metal ball 72 has become a problem to be solved in the current actual assembly process.

[0058] As Figures 1 to 7 shown, according to the embodiment of the first aspect of the utility model, an anaerobic adhesive flattening device is provided, which comprises a support seat 1, a driving device 2, a storage device 4, a flattening device 3 and a pressing column 6. The driving device 2 and the flattening device 3 are both installed on the support seat 1, the flattening device 3 is located above the driving device 2, the storage device 4 is slidably connected to the driving device 2, and the flattening device 3 is provided with a plurality of pressing columns 6. The flattening device 3 is used to drive the plurality of pressing columns 6 to move up and down. When working, the storage device 4 is located below the flattening device 3 and directly below the plurality of pressing columns 6.

[0059] In the above embodiment, it should be noted that the lower end faces of the plurality of pressing columns 6 are coplanar; the support seat 1 comprises a base plate 11, a support plate 12 and a mounting plate 13, the number of support plates 12 is two, and the two support plates 12 are installed between the base plate 11 and the mounting plate 13, the support plate 12 and the base plate 11 are connected by screwing, welding, clamping or riveting, the support plate 12 and the mounting plate 13 are connected by screwing, welding, clamping or riveting, the driving device 2 is installed on the base plate 11, the flattening device 3 is installed on the mounting plate 13, and the pressing column 6 is inserted into the mounting plate and is slidably connected to the mounting plate 13. When working, the storage device 4 is placed with the base 71 of the to-be-pressed assembly 7, the metal ball 72 preliminarily bonded by anaerobic adhesive on the base 71, and then the driving device 2 is started to drive the storage device 4 to move to the lower side of the pressing column 6 so that the upper side of each metal ball 72 is directly opposite to one pressing column 6, and then the flattening device 3 works to drive the plurality of pressing columns 6 to slide to the metal ball 72 after passing through the mounting plate 13 so that the anaerobic adhesive of the plurality of metal balls 72 can be in an anaerobic bonding environment, thereby ensuring that the gap between the metal ball 72 and the base 71 is small and the anaerobic adhesive can be better cured.

[0060] The technical effects achieved by the above embodiment are that: the anaerobic glue of the plurality of metal balls 72 can be simultaneously pressed by the plurality of pressing columns 6, so that the pressing force is uniform, and the plurality of metal balls 72 are flattened; the anaerobic glue can be used for anaerobic bonding of spherical metal and plate-shaped or block-shaped metal, which is very convenient and efficient, and the precision is guaranteed while the plurality of metal balls are efficiently flattened.

[0061] Optionally, as shown in Figure 1 and Figure 4 , the flattening device 3 comprises a pressing telescopic cylinder 33, a fixed frame and a sliding pressing plate 32, the fixed frame is installed on the support seat 1, the pressing telescopic cylinder 33 is installed on the fixed frame, the telescopic rod part of the pressing telescopic cylinder 33 is connected with the sliding pressing plate 32, and the plurality of pressing columns 6 are all installed on the sliding pressing plate 32.

[0062] In the above optional embodiment, it should be noted that the pressing telescopic cylinder 33 is one of a pneumatic cylinder, a hydraulic cylinder or an electric telescopic rod, the fixed frame is fixed on the support plate 12 of the support seat 1 by screwing, welding or clamping, the pressing telescopic cylinder 33 is installed on the fixed frame by screwing, welding or clamping, and the plurality of pressing columns 6 are all connected with the sliding pressing plate 32 by screwing, welding or clamping.

[0063] The beneficial effects of the above optional embodiment are that: the pressing telescopic cylinder 33 and the sliding pressing plate 32 are cooperatively arranged to realize synchronous pressing work of the plurality of pressing columns 6, so that the plurality of metal balls 72 or metal blocks are simultaneously flattened, and the assembly efficiency is increased.

[0064] Optionally, as shown in Figure 1 and Figure 4 , the fixed frame comprises a fixed plate 31 and a guide shaft 34, one end of the guide shaft 34 is connected with the support seat 1, the other end of the guide shaft 34 is connected with the fixed plate 31, and the sliding pressing plate 32 is slidably connected with the guide shaft 34 and located between the fixed plate 31 and the support seat 1.

[0065] In the above optional embodiment, it should be noted that a clasp spring 36 and a bearing are further included, the bearing is a roller bearing or a thrust bearing, and the bearing can move relative to the axial direction of the guide shaft 34; the bearing and the sliding pressing plate 32 are clamped by the clasp spring 36.

[0066] Two polyurethane pads are arranged between the fixed plate 31 and the sliding pressing plate 32 to limit the movement of the pressing telescopic cylinder 33.

[0067] The guide shaft 34 can be installed on the mounting plate 13 by screwing, welding or clamping.

[0068] In addition, the sliding of the sliding pressing plate 32 can also be realized in the form of the guide rail 22 sliding block 23, specifically, the guide shaft 34 is replaced by the guide rail 22, the sliding block 23 is installed on the sliding pressing plate 32, and then the sliding block 23 is in sliding connection with the guide rail 22.

[0069] The beneficial effect of the above-mentioned optional embodiment is that the reliable movement of the sliding pressing plate 32 is realized through the setting of the guide shaft 34, thereby realizing the reliable movement of the pressing column 6.

[0070] Optionally, as shown in Figure 1 and Figure 2 The driving device 2 comprises a guide rail 22 and a sliding block 23, the guide rail 22 is installed on the support base 1, the sliding block 23 is in slidable connection with the guide rail 22, and the storage device 4 is installed on the sliding block 23.

[0071] In the above-mentioned optional embodiment, it should be noted that the guide rail 22 is installed on the base plate 11 by screwing, welding or clamping, etc.

[0072] The beneficial effect of the above-mentioned optional embodiment is that the reliable relative left and right movement of the storage device 4 with respect to the base plate 11 is realized through the structure of the sliding rail sliding block 23.

[0073] Optionally, as shown in Figure 1 and Figure 2 The driving device 2 further comprises a driving telescopic cylinder 21, the driving telescopic cylinder 21 is installed on the support base 1, and the telescopic rod part of the driving telescopic cylinder 21 is connected with the bottom surface of the storage device 4.

[0074] In the above-mentioned optional embodiment, it should be noted that the support flange 24 is further included, and the driving telescopic cylinder 21 is installed on the base plate 11 through the support flange 24.

[0075] The driving telescopic cylinder 21 is one of an electric telescopic rod, a hydraulic cylinder or an air cylinder, preferably, the driving telescopic cylinder 21 is an air cylinder.

[0076] The beneficial effect of the above-mentioned optional embodiment is that the left and right movement of the storage device 4 can be automatically moved without manual pushing through the setting of the driving telescopic cylinder 21.

[0077] Optionally, as shown in Figure 1 and Figure 2 Further comprising a buffer limiting component 5, two buffer limiting components 5 are arranged on the support base 1 in an interval, and the storage device 4 and the flattening device 3 are located between the two buffer limiting components 5.

[0078] Optionally, as shown in Figure 1 and Figure 2As shown in the drawings, each buffer limiting component 5 comprises a buffer limiting plate 51 and a buffer 53, the buffer limiting plate 51 is installed on the support base 1, and the buffer 53 is installed on the buffer limiting plate 51.

[0079] In the above-mentioned optional embodiment, it should be noted that the buffer 53 can be one of a hydraulic buffer 53, a spring buffer 53 or a polyurethane buffer 53, and the hydraulic buffer 53 is preferred.

[0080] The buffer limiting plate 51 is installed on the base plate 11 by screwing, welding or clamping, etc., a through hole is formed in the buffer limiting plate 51 of one of the buffer limiting components 5, and the telescopic rod part of the driving telescopic cylinder 21 is connected to the material storage device 4 through the through hole.

[0081] The above-mentioned optional embodiment has the beneficial effect that when the material storage device 4 moves to the contact position of the buffer 53, the buffer 53 slows down the material storage device 4, plays a buffering role, thereby reducing the vibration and noise when the telescopic cylinder moves and returns, and improving the stability and service life of the tooling.

[0082] Optionally, as shown in Figure 1 and Figure 2 each buffer limiting component 5 further comprises a limiting block 52, and the limiting block 52 is installed on the limiting plate.

[0083] In the above-mentioned optional embodiment, it should be noted that the limiting block 52 and the limiting plate are connected by screwing, welding or clamping, etc.

[0084] The above-mentioned optional embodiment has the beneficial effect that when the material storage device 4 moves to the position contacting the limiting block 52, the material storage device 4 can stop, thereby avoiding excessive movement of the material storage device 4.

[0085] Optionally, as shown in Figures 1 to 3 the material storage device 4 comprises a material disc 41 and a material moving plate 42, the material moving plate 42 is installed on the sliding block 23, the telescopic rod part of the driving telescopic cylinder 21 is connected to the material moving plate 42, and the material disc 41 is installed on the material moving plate 42.

[0086] In the above-mentioned optional embodiment, it should be noted that the material disc 41 comprises a disc body 411 and a handle 412, the handle 412 is arranged on both sides of the disc body 411, a plurality of placing grooves 414 are formed in the disc body 411, the disc body 411 is connected to the material moving plate 42 by clamping or lapping, and the placing grooves 414 are used for placing the base 71 of the to-be-crimped component 7.

[0087] The plurality of placing grooves 414 can be provided with a stop rod 413 according to actual needs to fix the to-be-crimped component 7.

[0088] Further comprising a positioning pin 8, one end of the positioning pin 8 is fixedly connected with the moving plate 42, and the other end is inserted on the disc body 411 of the tray 41.

[0089] The optional embodiment has the beneficial effect that the tray 41 and the moving plate cooperatively provide a reliable placement space for the to-be-crimped assembly 7.

[0090] Optionally, as shown in Figure 1 and Figures 5 to 7 , the pressing column 6 comprises a first compression spring 61, a rod body 62 and a second compression spring 63, one end of the first compression spring 61 is connected with the sliding pressing plate 32, the other end of the first compression spring 61 is connected with the rod body 62, the rod body 62 is inserted on the support seat 1, one end of the second compression spring 63 is connected with the support seat 1, and the other end of the second compression spring 63 is connected with the rod body 62.

[0091] In the above optional embodiment, it should be noted that the rod body 62 is inserted on the mounting plate 13 of the support seat 1; specifically, the rod body 62 comprises a lower rod 621 and an upper rod 622, when the cross-sectional shape of the rod body 62 is circular, the diameter of the upper rod 622 is greater than that of the lower rod 621, and when the cross-sectional shape of the rod body 62 is polygonal, the side length of the upper rod 622 is greater than that of the lower rod 621, so that a stepped structure is formed between the upper rod 622 and the lower rod 621, a clamping groove 623 is formed at the end of the upper rod 622 away from the lower rod 621, a plurality of grooves are formed on the lower surface of the sliding pressing plate 32, one end of the first compression spring 61 is inserted in the groove of the sliding pressing plate 32, the other end of the first compression spring 61 is inserted in the clamping groove 623, a plurality of grooves are also formed on the upper surface of the mounting plate 13, one end of the second compression spring 63 is inserted in the groove of the mounting plate 13, the second compression spring 63 is sleeved on the lower rod 621, and the other end of the second compression spring 63 abuts against the stepped structure.

[0092] The first compression spring 61 exerts a pressing force on the pressing column 622, and the second compression spring 63 serves as a buffer and resets the pressing column 6.

[0093] The optional embodiment has the beneficial effect that the first compression spring 61 and the second compression spring 63 are arranged to provide a part of the downward movement pressing force of the pressing column 6 when performing the flattening work, the second compression spring 63 has a certain buffering effect, and the working reliability of the pressing column 6 is ensured.

[0094] In addition, the working principle of the device is that first, the metal ball 72 with the bottom surface coated with anaerobic adhesive is placed in the mounting hole of the base 71, and then the four to-be-flattened to-be-crimped assemblies 7 are placed on the tray 41.

[0095] Then, the press-fitting telescopic cylinder 33 is started to drive the flattening device 3 to move downward, and the end surface of the pressing column 6 is in contact with the metal ball 72 to press the metal ball 72.

[0096] Finally, the press-fitting telescopic cylinder 33 and the driving telescopic cylinder 21 are closed in sequence, and after the press-fitting telescopic cylinder 33 and the driving telescopic cylinder 21 are reset, the tray 41 is pushed out, and finally the to-be-pressed assembly 7 is taken out in sequence, and the flattening operation of the anaerobic adhesive metal ball 72 is completed.

[0097] It should be noted that, taking a to-be-pressed assembly 7 requiring six metal balls 72 to be installed as an example, for the flattening of one to-be-pressed assembly 7, six pressing columns 6 are arranged above the to-be-pressed assembly 7 to press the six metal balls 72 respectively, so as to ensure that all the metal balls 72 are in complete contact with the base 71, thereby reducing the gap of the contact area.

[0098] In addition, a plurality of groups of pressing columns 6 can be arranged on the sliding pressing plate 32, and the number of each group of pressing columns 6 is six, and the same number of placing grooves 414 can be formed on the tray to improve the pressing efficiency. The specific operation steps are as follows:

[0099] Firstly, the metal ball 72 coated with glue is placed in the mounting hole of the base 71, and then a plurality of to-be-flattened to-be-pressed assemblies 7 are placed on the placing grooves 414 of the tray 41. Then, the driving telescopic cylinder 21 is started to move the tray 41 to the position directly below the flattening device 3. Subsequently, the press-fitting telescopic cylinder 33 is started, and the pressing column 6 moves downward under the driving of the press-fitting telescopic cylinder 33, and the pressing column 6 is in contact with the metal ball 72 to press it. After completion, the press-fitting telescopic cylinder 33 and the driving telescopic cylinder 21 are closed in sequence, and after the press-fitting telescopic cylinder 33 and the driving telescopic cylinder 21 are reset, the tray 41 is pushed out and the to-be-pressed assembly 7 is taken out, thereby completing the flattening operation of the anaerobic adhesive metal ball 72.

[0100] Finally, a plurality of groups of pressing rods are arranged to press the corresponding metal balls 72 under the driving of the press-fitting telescopic cylinder 33, so that each metal ball 72 can be in complete contact with the base 71. The pressing force is provided by the spring force generated after the first pressing spring 61 and the second pressing spring 63 are compressed. The advantage of selecting the spring force as the pressing force is its stability, which can effectively avoid fluctuations caused by external conditions, thereby ensuring the stability and reliability of the device.

[0101] The above is only a preferred specific embodiment of the present application, but the protection scope of the present application is not limited to this. Any changes or replacements easily thought of by those skilled in the art within the technical range disclosed by the present application should be covered within the protection scope of the present application. Therefore, the protection scope of the present application should be subject to the protection scope of the claims.

Claims

1. An anaerobic adhesive flattening device characterized by, The utility model relates to a kind of material storage device, including: Support seat (1); Driving device (2), is installed on the support seat (1); Flattening device (3), is installed on the support seat (1) and is used to drive multiple compression columns (6) to move up and down; Material storage device (4), slidably connected on the driving device (2), when working, the material storage device (4) is located below multiple compression columns (6).

2. The anaerobic adhesive flattening device of claim 1, wherein, The flattening device (3) includes: Fixed frame, is installed on the support seat (1); Compression telescopic cylinder (33), is installed on the fixed frame; Sliding pressure plate (32) is connected with the telescopic rod portion of the compression telescopic cylinder (33), and multiple compression columns (6) are all installed on the sliding pressure plate (32).

3. The anaerobic adhesive flattening device of claim 2, wherein, The fixed frame includes: Guide shaft (34), one end is connected with the support seat (1), and the sliding pressure plate (32) is slidably connected with the guide shaft (34); Fixed plate (31) is connected with the other end of the guide shaft (34), and the sliding pressure plate (32) is located between the fixed plate (31) and the support seat (1).

4. The anaerobic adhesive flattening device of claim 1, wherein, The driving device (2) includes: Guide rail (22), is installed on the support seat (1); Sliding block (23) is slidably connected with the guide rail (22), and the material storage device (4) is installed on the sliding block (23).

5. The anaerobic adhesive flattening device of claim 4, wherein, The driving device (2) further includes: Driving telescopic cylinder (21), is installed on the support seat (1), and the telescopic rod portion of the driving telescopic cylinder (21) is connected with the bottom surface of the material storage device (4).

6. The anaerobic adhesive lamination apparatus according to any one of claims 1 to 4, wherein Further including: Buffering and limiting component (5), two buffering and limiting components (5) are arranged at intervals on the support seat (1), and the material storage device (4) and the flattening device (3) are located between the two buffering and limiting components (5).

7. The anaerobic adhesive flattening device of claim 6, wherein, Each buffering and limiting component (5) includes: Buffering and limiting plate (51), is installed on the support seat (1); Buffer (53), is installed on the buffering and limiting plate (51).

8. The anaerobic adhesive flattening device of claim 7, wherein, Each buffering and limiting component (5) further includes: Limiting block (52), is installed on the buffering and limiting plate (51).

9. The anaerobic adhesive flattening device of claim 5, wherein, The material storage device (4) includes: Material moving plate (42), is installed on the sliding block (23), and the telescopic rod portion of the driving telescopic cylinder (21) is connected with the material moving plate (42); Material disc (41), is installed on the material moving plate (42).

10. The anaerobic adhesive flattening device of claim 2, wherein, The compression column (6) includes: First compression spring (61), one end is connected with the sliding pressure plate (32); Rod body (62), is connected with the other end of the first compression spring (61); Second compression spring (63), one end is connected with the support seat (1), and the other end is connected with the rod body (62).