A bubbler assembly machine

Through the automated assembly and recycling system of the bubbler assembly machine, the problem of inaccurate assembly of the bubbler is solved, the installation stability and assembly efficiency are improved, and the efficient recycling and utilization of unqualified products is achieved.

CN117124077BActive Publication Date: 2025-08-29YICHUN WOQING INTELLIGENT EQUIPMENT CO LTD
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
CN202311339114.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-10-12
Publication Date
2025-08-29
Estimated Expiration
2043-10-12

AI Technical Summary

Technical Problem

In the prior art, during the assembly process of the bubbler, due to the small product accessories and the difficulty of manual assembly line assembly, the assembly is inaccurate or mismatch, which affects the installation stability and usage performance.

Method used

A bubbler assembly machine is adopted to automatically assemble the bubbler body through rotating discs, adjustment components and detection components, ensuring that the convex strips on the first filter plate are inserted into the grooves on the second filter plate, and the unqualified products are classified and recycled by the recycling components.

Benefits of technology

The installation stability and use performance of the bubbler body are improved, the output rate of unqualified products is reduced, and the assembly efficiency and recycling efficiency of unqualified products are improved.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN117124077B_ABST
    Figure CN117124077B_ABST
Patent Text Reader

Abstract

The present application relates to a bubbler assembly machine and the technical field of bubbler assembly, which includes a processing table, the processing table is provided with a rotating disk and a first driving member for driving the rotating disk, the rotating disk is provided with a processing groove for inserting the lower cover, the processing table is provided with a splicing structure for assembling the bubbler body, the processing table is provided with a discharging assembly and a detection assembly; the processing table is provided with an adjustment assembly, the adjustment assembly includes a movable plate and a first power member for driving the movable plate to move up and down, the movable plate is provided with an elastic extrusion member located above the processing groove and a first power source for driving the elastic extrusion member to rotate, the elastic extrusion member is used to insert the convex strip on the first filter plate into the groove on the second filter plate; the present application uses the setting of the adjustment assembly to enable the convex strip on the first filter plate to be inserted into the groove on the second filter plate, thereby improving the installation stability and usage performance of the subsequent bubbler body.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present application relates to the technical field of bubbler assembly, and in particular to a bubbler assembly machine. Background Art

[0002] As living standards continue to improve, people are increasingly prioritizing quality of life. Faucets are the most common water flow control switches in daily life. Due to shortcomings such as rapid flow, high volume, and splashing, traditional faucets are gradually being replaced by newer models featuring aerators. As a key component, aerators are widely used in various faucets. They not only effectively reduce water flow, preventing splashing, but also significantly conserve water.

[0003] In the related art, refer to Figure 1 A faucet aerator includes a bubbler body 8, which includes an upper cover 82 and a lower cover 81 that are clamped together, and a first filter plate 83 and a second filter plate 84 are installed between the upper cover 82 and the lower cover 81. The first filter plate 83 is provided with a convex strip, and the second filter plate 84 is provided with a groove for inserting the convex strip. A conical cover 85 is embedded in the side of the upper cover 82 away from the lower cover 81, and a plurality of filter holes are provided on the upper cover 82, the lower cover 81 and the conical cover 85.

[0004] Since the diameter of a typical faucet opening is relatively small, the size of the aforementioned bubbler is also usually relatively small. The aforementioned faucet body is assembled from a plurality of parts, and the faucet body is generally assembled manually on an assembly line. On the one hand, due to the small size of the product parts, manual assembly on the assembly line is difficult. On the other hand, workers who have been working on the assembly line for a long time are prone to laziness, and may place the ridges on the first filter plate into the grooves on the second filter plate without inserting the ridges on the first filter plate into the grooves on the second filter plate. This may result in inaccurate or mismatched pairing of the bubbler body after assembly, which may cause the bubbler body to be loosely installed or unable to be used normally. There is room for improvement. Summary of the Invention

[0005] The purpose of the present application is to provide a bubbler assembly machine to solve the problems in the above-mentioned related technologies. During the assembly process, on the one hand, due to the small size of the product accessories, manual assembly on the assembly line is difficult to operate; on the other hand, workers may become lazy after long-term assembly line operation, and may place the two as a whole into the upper cover without inserting the ridges on the first filter plate into the grooves on the second filter plate, which will lead to inaccurate or mismatched pairing after the bubbler body is assembled, which may cause the bubbler body to be loosely installed or unable to be used normally.

[0006] The present application provides a bubbler assembly machine that adopts the following technical solutions:

[0007] A bubbler assembly machine includes a processing table, a rotating disk and a first driving member for driving the rotating disk are provided on the processing table, a processing groove for inserting a lower cover is provided on the processing table, a splicing structure for assembling a bubbler body is provided on the processing table, a discharging assembly and a detection assembly are provided on the processing table; an adjustment assembly is provided on the processing table, the adjustment assembly includes a movable plate and a first power member for driving the movable plate to move up and down, an elastic extrusion member located above the processing groove and a first power source for driving the elastic extrusion member to rotate are provided on the movable plate, and the elastic extrusion member is used to insert the convex strip on the first filter plate into the groove on the second filter plate.

[0008] By adopting the above technical solution, when assembling the bubbler body, the parts constituting the bubbler body are first spliced ​​together through the splicing structure, and finally the assembled product is inspected by the detection component, and then the assembled bubbler body is discharged by the discharging component; when the processing groove on the rotating disk rotates to the bottom of the elastic extrusion member, the first power member drives the elastic extrusion member and the movable plate to move as a whole in the direction close to the processing groove, so that the elastic extrusion member is pressed against the second filter plate, and then the extrusion assembly is started to press against the outer peripheral surface of the lower cover in the processing groove, and then the first power source is started to drive the elastic extrusion member to rotate synchronously, and then the second filter plate in the processing groove is driven to rotate, so that the convex strips on the first filter plate are inserted into the grooves on the second filter plate, thereby reducing the possibility of defective products due to improper installation of the first filter plate and the second filter plate, reducing the output rate of defective products, and improving the installation stability and performance of the subsequent bubbler body.

[0009] Optionally, the elastic extrusion member includes a sleeve and a connecting rod, the interior of the sleeve is provided with an installation cavity and an elastic member located inside the installation cavity, the connecting rod can be inserted into the sleeve and move along the length direction of the sleeve, the end of the sleeve away from the connecting rod is provided with an abutment block located above the processing groove, one end of the abutment block is inserted into the interior of the sleeve and slides along the length direction of the sleeve, and the two ends of the elastic member respectively abut the ends of the connecting rod and the abutment block inserted into the installation cavity.

[0010] By adopting the above technical solution, when the elastic extrusion member squeezes the second filter plate in the processing groove, the elastic extrusion member moves as a whole in the direction close to the processing groove, the elastic member in the sleeve is compressed, and the end of the abutment block away from the connecting rod is pressed against the second filter plate. When the abutment block rotates and drives the second filter plate to rotate, the convex strip on the first filter plate coincides with the groove on the second filter plate, and then the elastic member in the compressed state further squeezes the abutment block, so that the convex strip on the first filter plate is inserted into the groove on the second filter plate, thereby realizing the position adjustment of the first filter plate and the second filter plate, and reducing the output rate of defective products after the bubbler body is assembled.

[0011] Optionally, a fixed disk located above the rotating disk is fixedly installed on the processing table, and an extrusion assembly is provided on the fixed disk. The extrusion assembly includes an extrusion plate and a second driving source for driving the extrusion plate to move back and forth in a direction close to the processing groove. The second driving source is fixed on the fixed disk, and an extrusion groove adapted to the outer peripheral surface of the lower cover is provided on the side of the extrusion plate close to the processing groove.

[0012] By adopting the above technical solution, when the adjustment component adjusts the position of the first filter plate and the second filter plate, the second driving source on the fixed plate is started to drive the extrusion plate to move in the direction close to the processing groove, so that the side wall of the extrusion groove on the extrusion plate is pressed against the lower cover in the processing groove, thereby reducing the possibility of the lower cover rotating with the second filter plate, reducing the time required for adjusting the position of the first filter plate and the second filter plate, and improving the adjustment efficiency of the first filter plate and the second filter plate.

[0013] Optionally, a support plate is provided on the processing table, and the discharging assembly includes a clamping claw and a movable part fixed on the side of the support plate, the clamping claw is provided with a clamping cylinder, and the movable part is used to drive the clamping claw to reciprocate in the direction close to the processing groove, and the processing table is provided with a collection box for collecting unqualified products and a discharge channel for collecting qualified products.

[0014] By adopting the above technical solution, after the bubbler body is assembled, the moving part is started to drive the clamping claw to move back and forth in the direction close to the processing groove, and then the clamping claw is used to clamp the assembled bubbler body in the processing groove, and the unqualified products detected by the detection component are clamped into the collection box, and the qualified products are clamped to the discharge channel for discharge, so as to realize the classified discharge of the assembled bubbler body, avoid the qualified and unqualified products from being mixed together and difficult to distinguish, and facilitate the subsequent recycling of unqualified products.

[0015] Optionally, a first inclined plate and a second inclined plate are provided on the inner wall of the collection box, the first inclined plate and the inner wall of the collection box together constitute a first drop-out port, the second inclined plate and the inner wall of the collection box together constitute a second drop-out port, a first control valve for controlling the opening and closing of the first drop-out port and a second control valve for controlling the opening and closing of the second drop-out port are provided on the inner wall of the collection box, and a recovery component is provided under the collection box.

[0016] By adopting the above technical solution, when the unqualified products are clamped inside the collection box, they first fall onto the first inclined plate. When the unqualified products fall onto the first inclined plate, they can slide along the inclined direction of the first inclined plate to the lowest point of the first inclined plate, reducing the possibility of the unqualified products directly colliding vertically with the inner wall of the collection box and then popping out. After a certain amount of unqualified products accumulate on the first inclined plate, the first control valve is started to open the first blanking port so that they are temporarily stored between the first inclined plate and the second inclined plate. When the recycling component needs to be used to collect them, the second control valve is started to discharge the unqualified products between the first inclined plate and the second inclined plate from the collection box and recycle them using the recycling component. With this arrangement, the unqualified products can be processed quantitatively, and the unqualified products in the collection box can also be cleaned in time, thereby improving the collection and processing efficiency of the unqualified products in the collection box.

[0017] Optionally, there is a temporary storage chamber between the first inclined plate and the second inclined plate, and the collection box is provided with a stirring assembly on the inner wall of the temporary storage chamber. The stirring assembly includes a stirring shaft located in the temporary storage chamber and a first motor fixed on the outer side of the collection box, and the first motor is used to drive the stirring shaft to rotate.

[0018] By adopting the above technical solution, when unqualified products fall into the temporary storage chamber, since the unqualified bubbler assembly is loose, the first motor is started to drive the stirring shaft to stir, so as to preliminarily disassemble the unqualified products in the temporary storage chamber, which is convenient for the subsequent disassembly and recycling of the unqualified products.

[0019] Optionally, the stirring shaft is provided with a plurality of flexible stirring blades.

[0020] By adopting the above technical solution, when stirring the defective products in the temporary storage chamber, the flexible stirring blades stir the defective products, thereby reducing the possibility of damage to the parts assembling the bubbler body due to stirring, improving the integrity of the defective parts, and improving the subsequent recycling efficiency of the defective products.

[0021] Optionally, a mounting table is provided on the side of the processing table, and the recycling assembly includes a conveyor belt fixed on the mounting table and a second motor for driving the conveyor belt to rotate. A portion of the conveyor belt is located below the collection box, and several recycling boxes that can be moved to below the second drop port are placed on the conveyor belt.

[0022] By adopting the above technical solution, after the recycling box moves to the bottom of the second blanking port, the second control valve is started to open the second blanking port, and the unqualified products in the temporary storage chamber fall into the recycling box. Then the conveyor belt accumulates and drives the recycling box to move, and moves the recycling box to an area where it is convenient for the staff to plug it in, so as to facilitate the recycling of unqualified products.

[0023] Optionally, a processing platform is provided on the side of the mounting platform, and a first pushing member for pushing the recycling box from the conveyor belt to the processing platform is provided on the mounting platform.

[0024] By adopting the above technical solution, when the recycling box on the conveyor belt moves to the side of the processing table, the first pushing member is activated to push the recycling box on the conveyor belt to the processing table. The staff can process the defective products next to the processing table without the need for the staff to manually remove the recycling box from the conveyor belt, thereby improving the processing efficiency of defective products.

[0025] Optionally, a placement platform for placing empty recycling boxes is provided on the side of the mounting platform, a conveyor belt and a third motor for driving the conveyor belt are provided on the placement platform, and a second pushing member for pushing the empty recycling box placed on the conveyor belt onto the conveyor belt is provided on the side of the placement platform.

[0026] By adopting the above technical solution, several empty recycling boxes can be placed on the conveyor belt in advance. When a new recycling box needs to be placed on the conveyor belt, the second pushing member is started to push the empty recycling box on the conveyor belt onto the conveyor belt, thereby realizing automatic feeding of the empty recycling box.

[0027] In summary, this application includes at least one of the following beneficial technical effects:

[0028] 1. By adjusting the setting of the component, the positions of the first filter plate and the second filter plate are adjusted so that the convex strips on the first filter plate are inserted into the grooves on the second filter plate, thereby reducing the possibility of defective products due to improper installation of the first filter plate and the second filter plate, reducing the output rate of defective products, and improving the installation stability and performance of the subsequent bubbler body.

[0029] 2. Through the setting of the recovery component, the first inclined plate and the second inclined plate, the defective products can be processed quantitatively, and the defective products in the collection box can be cleaned in time, so that certain defective products are temporarily stored between the first inclined plate and the second inclined plate. When the recovery component is needed to collect them, the second control valve is started to discharge the defective products between the first inclined plate and the second inclined plate from the collection box and recycle them using the recovery component, thereby improving the collection efficiency of defective products in the collection box. BRIEF DESCRIPTION OF THE DRAWINGS

[0030] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the following briefly introduces the drawings required for use in the description of the embodiments. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without any creative work.

[0031] Figure 1It is a schematic diagram of an explosion structure in the background art;

[0032] Figure 2 This is a schematic diagram of the overall structure of Example 1 of the present application;

[0033] Figure 3 This is a partial cross-sectional structural diagram of the installation and cooperation between the rotating disk and the first driving member embodied in Example 1 of the present application;

[0034] Figure 4 This is a structural diagram of the installation distribution of the splicing structure according to Example 1 of the present application;

[0035] Figure 5 This is a partial structural diagram of the installation and coordination of the first splicing component in Example 1 of the present application;

[0036] Figure 6 This is a partial cross-sectional structural diagram of the installation and coordination of the adjustment assembly according to Example 1 of the present application;

[0037] Figure 7 yes Figure 6 A magnified schematic diagram of part A;

[0038] Figure 8 This is a partial cross-sectional structural diagram of the installation and coordination of the discharge assembly in Example 1 of the present application;

[0039] Figure 9 This is a partial structural diagram of the installation and distribution of the recycling components in Example 2 of the present application;

[0040] Figure 10 This is a partial cross-sectional structural diagram of the installation and coordination of the stirring assembly according to the second embodiment of the present application;

[0041] Figure 11 This is a partial structural diagram of the installation and coordination of the recycling component in Example 2 of the present application;

[0042] Figure 12 This is a partial structural diagram of the installation and cooperation of the first pusher in Example 2 of the present application;

[0043] Figure 13 This is a schematic diagram of the partial structure of the installation and cooperation of the second pusher in Example 2 of the present application.

[0044] In the figure, 1, processing table; 11, rotating disk; 111, processing tank; 12, first driving member; 13, fixed disk; 14, support arm; 15, extrusion assembly; 151, extrusion plate; 152, second driving source; 16, support plate; 17, control panel; 2, splicing structure; 21, first splicing assembly; 211, vibration disk; 212, feed channel; 213, clamping member; 22, second splicing assembly; 23, third splicing assembly; 24, first Four splicing components; 25, the fifth splicing component; 3, detection component; 31, the first detection part; 311, the detection plate; 312, the first cylinder; 313, the detection camera; 32, the second detection part; 4, the discharge component; 41, the moving part; 42, the clamping claw; 43, the clamping cylinder; 44, the stirring component; 441, the first motor; 442, the stirring shaft; 443, the flexible stirring blade; 45, the discharge channel; 46, the collection box; 461, the first Inclined plate; 462, second inclined plate; 463, first blanking port; 464, second blanking port; 465, temporary storage chamber; 47, first control valve; 48, second control valve; 5, regulating assembly; 51, movable plate; 52, first power member; 53, elastic extrusion member; 531, sleeve; 5311, mounting chamber; 532, connecting rod; 533, elastic member; 534, abutment block; 54, first power source; 6, recovery assembly; 61, conveyor belt ;62. Second motor;7. Mounting table;71. Processing table;72. First pusher;721. Second cylinder;722. First push plate;73. Placement table;731. Conveyor belt;732. Third motor;74. Second pusher;741. Second push plate;742. Third cylinder;75. ​​Recovery box;8. Bubble generator body;81. Lower cover;82. Upper cover;83. First filter plate;84. Second filter plate;85. Conical cover. DETAILED DESCRIPTION

[0045] The present application is further described in detail below in conjunction with all the accompanying drawings.

[0046] Example 1:

[0047] Reference Figure 2 and Figure 3 A bubbler assembly machine includes a processing table 1 and a control panel 17 fixed on the processing table 1. The processing table 1 is provided with a rotating disk 11 and a first driving member 12 for driving the rotating disk 11. The rotating disk 11 is provided with a lower cover 81 (see Figure 1 ) is inserted into the processing groove 111, and the processing table 1 is provided with a processing groove 111 for assembling the bubbler body 8 (see Figure 1 ) splicing structure 2, wherein the processing table 1 is provided with a detection component 3 for detecting whether the assembly is qualified and a bubbler body 8 (see Figure 1 ) The discharge assembly 4 is removed from the processing tank 111.

[0048] Reference Figure 3 and Figure 4 The first driving member 12 is installed in the stepping motor inside the processing table 1, which is used to drive the rotation of the rotating disk 11. This is a conventional structure and will not be described in detail here. The splicing structure 2 includes a first splicing component 21, a second splicing component 22, a third splicing component 23, a fourth splicing component 24 and a fifth splicing component 25 distributed circumferentially around the rotating disk 11. The first splicing component 21 is used to connect the lower cover 81 (see Figure 1 ) is placed inside the processing groove 111 of the rotating disk 11, and the second splicing component 22 is used to connect the first filter plate 83 (see Figure 1 ) is placed on the lower cover 81 (see Figure 1 ) inside, the third splicing assembly 23 is used to connect the second filter plate 84 (see Figure 1 ) is placed on the first filter plate 83 (see Figure 1 ) on the upper side, the fourth splicing assembly 24 is used to connect the upper cover 82 (see Figure 1 ) is placed on the first filter plate 83 (see Figure 1 ) above, the fifth splicing assembly 25 is used to connect the conical cover 85 (see Figure 1 ) is fixed on the upper cover 82 (see Figure 1 )'s upper side.

[0049] Reference Figure 4 and Figure 5 The first splicing assembly 21 includes a vibration plate 211 and a feed channel 212 connected to the vibration plate 211. At the same time, a cover 82 (see FIG. 2 ) for the inner portion of the feed channel 212 is provided on the processing table 1. Figure 1 ) is clamped to the clamping piece 213 in the processing groove 111 on the rotating disk 11, wherein the clamping piece 213 can be clamped by a suction cup or a pneumatic clamping claw, and then driven by the installation cooperation of the cylinder or the motor to move the suction cup or the pneumatic clamping claw back and forth in the direction close to the processing groove 111, thereby removing the upper cover 82 (see Figure 1 ) is placed inside the processing groove 111 on the rotating disk 11. This is a conventional structure and will not be described in detail here. The second splicing component 22, the third splicing component 23, the fourth splicing component 24 and the fifth splicing component 25 are all vibrating disks 211 to realize their feeding, and then the bubbler body 8 (see Figure 1 ) parts are clamped, and then the suction cup or pneumatic clamp is driven to move back and forth in the direction close to the processing groove 111 through the installation cooperation of the cylinder or motor. These are all conventional structures and will not be described in detail here.

[0050] Reference Figure 4 and Figure 6 The processing table 1 is fixed with a support arm 14 located between the third splicing component 23 and the fourth splicing component 24 by bolts, and the support arm 14 is provided with a first filter plate 83 (see Figure 1) The upper rib is inserted into the second filter plate 84 (see Figure 1 ) in the upper groove, wherein the adjusting component 5 includes a movable plate 51 and a first power member 52 for driving the movable plate 51 to move up and down, the first power member 52 is a cylinder, and the first power member 52 is fixed to the side of the support arm 14, and at the same time, an elastic extrusion member 53 located above the processing groove 111 and a first power source 54 for driving the elastic extrusion member 53 to rotate are provided on the movable plate 51, the first power member 52 is a motor, and the output shaft of the motor drives the elastic extrusion member 53 to rotate synchronously.

[0051] Reference Figure 6 and Figure 7 The elastic extrusion member 53 includes a sleeve 531 and a connecting rod 532. The sleeve 531 includes two left and right parts fixed to each other by welding or glue. The interior of the sleeve 531 is provided with a mounting cavity 5311 and an elastic member 533 located inside the mounting cavity 5311. The elastic member 533 is a compression spring in a compressed state. The connecting rod 532 can be inserted into the sleeve 531 and move along the length direction of the sleeve 531. The end of the sleeve 531 away from the connecting rod 532 is provided with an abutment block 534 located above the processing groove 111. One end of the abutment block 534 is inserted into the sleeve 531 and slides along the length direction of the sleeve 531. The abutment block 534 and the connecting rod 532 are inserted into the sleeve 5 The outer peripheral surface of the end of 31 is provided with a convex ring to prevent itself from naturally escaping from the installation cavity 5311, and the outer peripheral surface of the end of the connecting rod 532 and the abutment block 534 inserted into the installation cavity 5311 is provided with a guide bar (not shown in the figure), and the inner wall of the installation cavity 5311 is provided with a guide groove for inserting the guide bar, so as to prevent the connecting rod 532 and the abutment block 534 from rotating relative to the sleeve 531, so that the connecting block and the abutment block 534 can only slide in the installation cavity 5311 along the length direction of the sleeve 531; after the compression spring is installed, it is in a compressed state, and the two ends of the compression spring are respectively abutted with the end of the connecting rod 532 and the abutment block 534 inserted into the installation cavity 5311.

[0052] When the processing groove 111 on the rotating disk 11 rotates to the bottom of the elastic extrusion member 53, the first power member 52 drives the sleeve 531 to move in the direction close to the processing groove 111, and the compression spring is compressed and the bottom side of the abutment block 534 is pressed against the second filter plate 84 in the processing groove 111. Then, the first power source 54 is started to drive the connecting rod 532, the sleeve 531 and the abutment block 534 to rotate synchronously, thereby driving the second filter plate 84 in the processing groove 111 to rotate, so that the convex strip on the first filter plate 83 is inserted into the groove on the second filter plate 84, thereby realizing the position adjustment of the first filter plate 83 and the second filter plate 84.

[0053] Reference Figure 6A fixed disk 13 located above the rotating disk 11 is fixedly provided on the processing table 1, and an extrusion assembly 15 is provided on the rotating disk 11, which is pressed against the outer peripheral surface of the lower cover 81 in the processing groove 111, wherein the extrusion assembly 15 includes an extrusion plate 151 and a second driving source 152 fixed on the fixed disk 13, and the second driving source 152 is a cylinder fixed on the fixed disk 13, which is used to drive the extrusion plate 151 to move back and forth in the direction close to the processing groove 111 below the elastic extrusion member 53, and the side of the extrusion plate 151 close to the processing groove 111 is provided with an extrusion groove adapted to the outer peripheral surface of the lower cover 81; starting the second driving source 152 drives the extrusion plate 151 to move to press the outer peripheral surface of the lower cover 81 in the processing groove 111, thereby reducing the possibility of the lower cover 81 rotating synchronously with the elastic extrusion member 53.

[0054] Reference Figure 4 The detection assembly 3 includes a first detection member 31 and a second detection member 32 fixed on the processing table 1, wherein the first detection member 31 is located between the second splicing assembly 22 and the third splicing assembly 23, and is used to detect the lower cover 81 (see Figure 1 ) and the first filter plate 83 (see Figure 1 ) assembly, the second detection member 32 is located between the adjustment component 5 and the fourth splicing component 24, and is used to detect the first filter plate 83 (see Figure 1 ) and the second filter plate 84 (see Figure 1 ) for testing.

[0055] Reference Figure 8 , the first detection member 31 (see Figure 4 ) and the second detection member 32 both include a detection plate 311 and a first cylinder 312 fixed on the processing table 1, and a detection camera 313 located above the processing groove 111 is fixed on the detection plate 311, and the first cylinder 312 can drive the detection camera to move back and forth in a direction close to the processing groove 111.

[0056] Reference Figure 8 The processing table 1 is provided with a support plate 16, and the discharge assembly 4 includes a clamping claw 42 and a moving member 41 fixed to the side of the support plate 16. The clamping claw 42 is provided with a clamping cylinder 43. The clamping cylinder 43 drives the clamping claw 42 to move the assembled bubbler body 8 (see FIG. 1 ) in the processing tank 111. Figure 1) to grab out, the moving member 41 is used to drive the clamping claw 42 to move back and forth in the direction close to the processing groove 111; the moving member 41 includes a horizontal cylinder and a vertical cylinder. The horizontal cylinder is fixed to the support plate 16 and is used to drive the vertical cylinder and the movable plate 51 to move horizontally as a whole. The vertical cylinder is used to drive the clamping claw 42 on the movable plate 51 to move up and down. This is a conventional structure and will not be described in detail here. At the same time, the processing table 1 is provided with a collection box 46 for collecting defective products and a discharge channel 45 for collecting qualified products. The discharge channel 45 can extend to a processing box (not shown) for further collecting qualified products.

[0057] The implementation principle of the embodiment of this application is:

[0058] During the assembly process of the bubbler body 8, the assembly and fixation of the bubbler body 8 is achieved by means of the splicing structure 2 on the processing table 1; when the processing groove 111 rotates to the bottom of the adjustment component 5, the first power member 52 is started, and the first power member 52 drives the sleeve 531 to move in the direction close to the processing groove 111, and the compression spring is compressed and the bottom side of the abutment block 534 is pressed against the second filter plate 84 in the processing groove 111, and then the first power source 54 is started to drive the connecting rod 532, the sleeve 531 and the abutment block 534 to move simultaneously. The filter 83 is then moved to the second filter plate 84 in the processing groove 111, and the convex strips on the first filter plate 83 are inserted into the grooves on the second filter plate 84, thereby adjusting the positions of the first filter plate 83 and the second filter plate 84. When the processing groove 111 is rotated to the bottom of the discharge assembly 4, the bubbler body 8 assembled in the processing groove 111 is qualified. The clamping claws 42 are used to clamp the qualified ones to the discharge channel 45 for discharge, and the unqualified ones are clamped to the collection box 46 for collection, so as to facilitate subsequent processing.

[0059] Example 2:

[0060] Reference Figure 9 The difference between the embodiment of the present application and embodiment 2 is that a mounting platform 7 is provided on the side of the processing table 1, and a recycling component 6 is provided on the mounting platform 7. The recycling component 6 is used to recycle the defective products inside the collection box 46.

[0061] Reference Figure 9 and Figure 10A first inclined plate 461 and a second inclined plate 462 are welded and fixed on the inner wall of the collection box 46. The second inclined plate 462 is located below the first inclined plate 461. A temporary storage cavity 465 is formed between the first inclined plate 461 and the second inclined plate 462. The first inclined plate 461 and the inner wall of the collection box 46 together form a first drop opening 463. The second inclined plate 462 and the inner wall of the collection box 46 together form a second drop opening 464. The inner wall of the collection box 46 is provided with a first opening for controlling the opening and closing of the first drop opening 463. The control valve 47 and the second control valve 48 for controlling the opening and closing of the second drop-out port 464, the first control valve 47 and the second control valve 48 are both solenoid valves. When a certain amount of unqualified products are stored inside the collection box 46, the first drop-out port 463 is opened, the second drop-out port 464 is closed, and the unqualified products are collected into the temporary storage chamber 465, and then the first drop-out port 463 is closed, and the second drop-out port 464 is opened, and the unqualified products are discharged through the second drop-out port 464 and collected by the recovery component 6.

[0062] Reference Figure 10 , the collection box 46 is provided with a stirring assembly 44 on the inner wall of the temporary storage chamber 465, wherein the stirring assembly 44 includes a stirring shaft 442 located in the temporary storage chamber 465 and a first motor 441 fixed to the outer side of the collection box 46, the first motor 441 is used to drive the stirring shaft 442 to rotate, and at the same time, a plurality of flexible stirring blades 443 are provided on the stirring shaft 442, and the flexible stirring blades 443 are made of rubber; after the unqualified products are stored in the temporary storage chamber 465, the first motor 441 is started to drive the stirring shaft 442 and the flexible stirring blades 443 to rotate, so as to remove the unqualified bubbler body 8 (see Figure 1 ) to facilitate subsequent recycling of parts.

[0063] Reference Figure 11 The recycling assembly 6 includes a conveyor belt 61 fixed to the upper side of the mounting table 7 and a second motor 62 that drives the conveyor belt 61 to rotate, wherein the conveyor belt 61 is arranged around the four edges of the upper side of the mounting table 7, a portion of the conveyor belt 61 is placed inside the processing table 1 and below the collection box 46, a number of recycling boxes 75 are placed on the conveyor belt 61, and a baffle (not shown in the figure) is installed at the end edge of the conveyor belt 61 to prevent the recycling box 75 on the conveyor belt 61 from sliding off. The recycling box 75 can move with the conveyor belt 61 to the second drop opening 464 on the collection box 46 (see Figure 10 ) below, with this arrangement, the temporary storage chamber 465 (see Figure 10 ) The defective products in the recycling box 75 can fall into the inside of the recycling box 75. In other embodiments, the conveyor belt 61 can also be composed of a roller path of several driving rollers, as long as it can drive the recycling box 75 to move around the upper edge of the mounting platform 7.

[0064] Reference Figure 11 and Figure 12Two processing tables 71 for disassembling defective products are provided on the side of the mounting table 7. The staff can disassemble the defective products on the processing table 71. The mounting table 7 is provided with a first pushing member 72 for pushing the recycling box 75 from the conveyor belt 61 to the processing table 71. The first pushing member 72 includes a first pushing plate 722 and a second cylinder 721 fixed to the mounting table 7. When the second cylinder 721 is activated, the recycling box 75 on the conveyor belt 61 can be pushed to the upper side of the processing table 71, making it convenient for subsequent staff to disassemble the defective products on the processing table 71.

[0065] Reference Figure 13 A placing platform 73 for placing an empty recycling box 75 is provided on the side of the mounting platform 7. A conveyor belt 731 and a third motor 732 for driving the conveyor belt 731 are provided on the placing platform 73. A second pushing member 74 for pushing the empty recycling box 75 onto the conveyor belt 61 is provided on the side of the placing platform 73. The second pushing member 74 includes a second push plate 741 and a third cylinder 742 fixed on the placing platform 73; the third cylinder 742 can drive the second push plate 741 to move back and forth in the direction close to the conveyor belt 61, thereby realizing the feeding of the empty recycling box 75.

[0066] Unless otherwise defined, the terms or scientific terms used in this application should have the usual meanings understood by people with ordinary skills in the field to which this application belongs. The "first", "second", "third" and similar words used in this application do not indicate any order, quantity or importance, but are only used to distinguish different components. "A" or "one" and other similar words do not indicate a quantity limit, but rather indicate the existence of at least one. "Include" or "comprising" and other similar words mean that the elements or objects appearing before "include" or "comprising" cover the elements or objects listed after "include" or "comprising" and their equivalents, and do not exclude other elements or objects. "Up", "down", "left", "right" and the like are only used to indicate relative positional relationships. When the absolute position of the described object changes, the relative positional relationship may also change accordingly.

[0067] The examples of this specific embodiment are all preferred embodiments of this application and are not intended to limit the scope of protection of this application. Identical components are represented by the same reference numerals. Therefore, any equivalent changes made based on the structure, shape, and principle of this application should be included in the scope of protection of this application.

Claims

1. A bubbler assembly machine, comprising a processing table (1), the processing table (1) being provided with a rotating disk (11) and a first driving member (12) for driving the rotating disk (11), the rotating disk (11) being provided with a processing groove (111) for inserting a lower cover (81), the processing table (1) being provided with a splicing structure (2) for assembling a bubbler body (8), the processing table (1) being provided with a discharging assembly (4) and a detection assembly (3); It is characterized by: The splicing structure (2) comprises a first splicing assembly (21) distributed circumferentially around the rotating disk (11) for placing the lower cover (81) inside the processing groove (111) of the rotating disk (11), a second splicing assembly (22) for placing the first filter plate (83) inside the lower cover (81), a third splicing assembly (23) for placing the second filter plate (84) on the upper side of the first filter plate (83), a fourth splicing assembly (24) for placing the upper cover (82) above the first filter plate (83), and a fifth splicing assembly (25) for fixing the conical cover (85) on the upper side of the upper cover (82); A support arm (14) located between the third splicing assembly (23) and the fourth splicing assembly (24) is fixed to the processing table (1) by bolts, and an adjustment assembly (5) is provided on the support arm (14) for inserting the convex strip on the first filter plate (83) into the groove on the second filter plate (84); the adjustment assembly (5) comprises a movable plate (51) and a first power member (52) for driving the movable plate (51) to move up and down, the movable plate (51) is provided with an elastic extrusion member (53) located above the processing groove (111) and a first power source (54) for driving the elastic extrusion member (53) to rotate, and the elastic extrusion member (53) is used to insert the convex strip on the first filter plate (83) into the groove on the second filter plate (84); The elastic extrusion member (53) includes a sleeve (531) and a connecting rod (532); a mounting cavity (5311) and an elastic member (533) located inside the mounting cavity (5311) are provided inside the sleeve (531); the connecting rod (532) can be inserted into the sleeve (531) and move along the length direction of the sleeve (531); an end of the sleeve (531) away from the connecting rod (532) is provided with an abutment block (534) located above the processing groove (111); one end of the abutment block (534) is inserted into the sleeve (531) and slides along the length direction of the sleeve (531); and two ends of the elastic member (533) respectively abut against the ends of the connecting rod (532) and the abutment block (534) inserted into the mounting cavity (5311); When the processing groove (111) on the rotating disk (11) rotates to the bottom of the elastic extrusion member (53), the first power member (52) drives the sleeve (531) to move in the direction close to the processing groove (111), and the compression spring is compressed and the bottom side of the abutment block (534) is pressed against the second filter plate (84) in the processing groove (111). Then, the first power source (54) is started to drive the connecting rod (532), the sleeve (531) and the abutment block (534) to rotate synchronously, thereby driving the second filter plate (84) in the processing groove (111) to rotate, so that the convex strip on the first filter plate (83) is inserted into the groove on the second filter plate (84), thereby realizing the position adjustment of the first filter plate (83) and the second filter plate (84).

2. A bubbler assembly machine according to claim 1, characterized in that: A fixed disk (13) located above the rotating disk (11) is fixedly provided on the processing table (1), and an extrusion assembly (15) is provided on the fixed disk (13). The extrusion assembly (15) comprises an extrusion plate (151) and a second driving source (152) for driving the extrusion plate (151) to reciprocate in a direction close to the processing groove (111). The second driving source (152) is fixed on the fixed disk (13), and an extrusion groove adapted to the outer peripheral surface of the lower cover (81) is provided on the side of the extrusion plate (151) close to the processing groove (111).

3. The bubbler assembly machine according to claim 1, characterized in that: The processing table (1) is provided with a support plate (16), the discharging assembly (4) comprises a clamping claw (42) and a moving part (41) fixed to the side of the support plate (16), the clamping claw (42) is provided with a clamping cylinder (43), the moving part (41) is used to drive the clamping claw (42) to reciprocate in a direction close to the processing groove (111), and the processing table (1) is provided with a collection box (46) for collecting unqualified products and a discharging channel (45) for collecting qualified products.

4. The bubbler assembly machine according to claim 3, characterized in that: A first inclined plate (461) and a second inclined plate (462) are provided on the inner wall of the collection box (46); the first inclined plate (461) and the inner wall of the collection box (46) together form a first drop opening (463); the second inclined plate (462) and the inner wall of the collection box (46) together form a second drop opening (464); a first control valve (47) for controlling the opening and closing of the first drop opening (463) and a second control valve (48) for controlling the opening and closing of the second drop opening (464) are provided on the inner wall of the collection box (46); and a recovery component (6) is provided below the collection box (46).

5. The bubbler assembly machine according to claim 4, characterized in that: A temporary storage chamber (465) is provided between the first inclined plate (461) and the second inclined plate (462). The collection box (46) is provided with a stirring assembly (44) on the inner wall of the temporary storage chamber (465). The stirring assembly (44) includes a stirring shaft (442) located in the temporary storage chamber (465) and a first motor (441) fixed to the outer side of the collection box (46). The first motor (441) is used to drive the stirring shaft (442) to rotate.

6. The bubbler assembly machine according to claim 5, characterized in that: The stirring shaft (442) is provided with a plurality of flexible stirring blades (443).

7. The bubbler assembly machine according to claim 4, characterized in that: A mounting platform (7) is provided on the side of the processing table (1), and the recovery component (6) includes a conveyor belt (61) fixed on the mounting platform (7) and a second motor (62) for driving the conveyor belt (61) to rotate. A portion of the conveyor belt (61) is located below the collection box (46), and a plurality of recovery boxes (75) that can be moved to below the second drop port (464) are placed on the conveyor belt (61).

8. The bubbler assembly machine according to claim 7, characterized in that: A processing platform (71) is provided on the side of the mounting platform (7), and a first pushing member (72) for pushing the recovery box (75) from the conveyor belt (61) to the processing platform (71) is provided on the mounting platform (7).

9. The bubbler assembly machine according to claim 8, characterized in that: A placement platform (73) for placing an empty recycling box (75) is provided on the side of the mounting platform (7), a conveyor belt (731) and a third motor (732) for driving the conveyor belt (731) are provided on the placement platform (73), and a second pushing member (74) for pushing the empty recycling box (75) placed on the conveyor belt (731) onto the conveyor belt (61) is provided on the side of the placement platform (73).

Citation Information

Patent Citations

  • Material taking and feeding device for bubbler assembling equipment

    CN212333936U

  • Locking nut combination machine

    CN217991546U