A screw machine

By designing an automated screw-making machine, the automated conveying, clamping, locking, and gluing of workpieces are achieved, solving the problems of manpower waste and low efficiency caused by manual assembly, reducing manufacturing costs and improving assembly efficiency.

CN119115496BActive Publication Date: 2025-12-02GUANGZHOU LIHUI ENVIRONMENTAL PROTECTION TECH
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Patent Information

Application Number
CN202411056413.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-08-02
Publication Date
2025-12-02
Estimated Expiration
2044-08-02

AI Technical Summary

Technical Problem

In existing technologies, manual operation is required during workpiece assembly, resulting in wasted manpower, low efficiency, and high manufacturing costs.

Method used

A screw machine comprising a machine base, a conveying device, a screw locking assembly, and a gluing device was designed to automate the assembly of workpieces through automated conveying, clamping, locking, and gluing processes.

Benefits of technology

It reduced manufacturing costs and improved assembly efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention discloses a screw-making machine, comprising: a machine base; a conveying device cooperating with the machine base, the conveying device including a moving component and two pushing components, the two pushing components being respectively located at both ends of the machine base, the moving component being located above the pushing components and capable of reciprocating along the distance between the two pushing components; at least one screw-locking component and at least one screw-conveying component, the screw-conveying component being configured with the screw-locking component to convey screws to the screw-locking component. This screw-making machine can reduce manufacturing costs and improve assembly efficiency.
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Description

Technical Field

[0001] This invention relates to the field of screw-making machines, and more particularly to a screw-making machine. Background Technology

[0002] When installing two workpieces together, screws are often used to secure the installation. By screwing the screws into the corresponding threaded holes of the two workpieces, the two workpieces are prevented from becoming loose.

[0003] Currently, when assembling products on the market, due to the large number of parts to be assembled, it would be a waste of manpower and time if workers manually assembled each part. This would not only lead to excessively high manufacturing costs but also low work efficiency.

[0004] Therefore, improvements are needed to address the existing problems. Summary of the Invention

[0005] To address the problems existing in the prior art, the present invention provides a screw-making machine that can reduce manufacturing costs and improve assembly efficiency.

[0006] To solve the above-mentioned technical problems, the technical solution of the present invention is as follows:

[0007] A screw-making machine, comprising:

[0008] One machine;

[0009] A conveying device, which cooperates with the machine platform, the conveying device includes a moving component and two pushing components, the two pushing components are respectively located at both ends of the machine platform, the moving component is located above the pushing components, and can reciprocate along the distance between the two pushing components;

[0010] At least one screw locking assembly and at least one screw conveying assembly, wherein the screw conveying assembly is configured with the screw locking assembly to convey screws to the screw locking assembly.

[0011] Preferably, the moving component includes a first connector and a first drive member and a second drive member configured with the first connector. The second drive member can drive the first drive member to reciprocate in the horizontal direction. The first drive member is provided with at least one clamping component, and the first drive member can drive the clamping component to reciprocate in the vertical direction.

[0012] Preferably, the moving component further includes at least one first slide rail and a rack, the first slide rail is provided with at least one first slider that cooperates with the first slide rail, the first connecting member is assembled with the first slider, and the second driving member is provided with a gear that cooperates with the rack to drive the first driving member to reciprocate in the horizontal direction.

[0013] A second connector is provided, which is configured with the first driving member, and the clamping assembly is enabled by the second connector so that the first driving member can drive the clamping assembly to reciprocate in the vertical direction;

[0014] At least one second slide rail is provided between the second connector and the first connector, and at least one second slider is provided on the second slide rail;

[0015] The pushing component includes a fourth driving component and a pushing plate that cooperates with the fourth driving component;

[0016] At least one third slide rail, on which at least one third slider is provided, and the pusher plate is assembled with the third slider.

[0017] Preferably, the machine tool is provided with a first positioning component and a second positioning component;

[0018] The first positioning component includes a third driving member and at least one first limiting member disposed on the machine base;

[0019] The second positioning component includes two tenth driving members and two second limiting members, and the tenth driving member group is provided with a third limiting member;

[0020] An eleventh driving component is configured with one of the tenth driving components to drive the tenth driving component to reciprocate horizontally.

[0021] An eighth driving component is provided with a support plate. A first electric guide rail and a second electric guide rail are respectively provided at both ends of the support plate. One of the tenth driving components and the second limiting component are provided on the first electric guide rail, and the other tenth driving component and the second limiting component are provided on the second electric guide rail.

[0022] A ninth driving component is configured with the first electric guide rail or the second electric guide rail to drive the first electric guide rail or the second electric guide rail to move horizontally.

[0023] Preferably, at least one fifth slide rail is provided between the second electric guide rail and the support plate, and a fifth slider is provided on the fifth slide rail. The second electric guide rail and the fifth slider are assembled together, and the ninth driving member is assembled with the second electric guide rail.

[0024] Preferably, the screw locking assembly includes a fifth driving member, a sixth driving member, a transmission assembly, and a locking cylinder body. The transmission assembly is detachably disposed between the sixth driving member and the locking cylinder body, and the transmission assembly is bendable.

[0025] The fifth driving component can drive the sixth driving component to reciprocate in the vertical direction.

[0026] Preferably, the fifth driving member and the sixth driving member are connected by a first connecting block;

[0027] The main body of the lock cylinder has a first channel and a second channel that are interconnected, and the main body of the lock cylinder is provided with two screw clamps, which are movably mounted on the main body of the lock cylinder.

[0028] A third channel is formed within the two screw clamping members, and the third channel is connected to the first channel. The inner diameter of the third channel is smaller than the inner diameter of the first channel.

[0029] The transmission assembly includes at least one transmission shaft and at least one mounting component configured with the transmission shaft;

[0030] The mounting component includes a first mounting part and a second mounting part, and a mounting block is provided between the first mounting part and the second mounting part. The first mounting part and the second mounting part can be rotatably connected to the mounting block respectively.

[0031] The drive shaft is provided in two parts, the mounting component is provided in two parts, and each mounting block has a protrusion on its side. The first mounting part and the second mounting part are rotatably connected to the mounting block through the protrusion.

[0032] One of the drive shafts is provided with a bit at one end near the lock body, and the bit can extend into the first channel, with a guide tube sleeved on the surface of the bit;

[0033] A third connector is provided, which is assembled with the fifth driving member, and a fourth slide rail is provided between the fifth driving member and the third connector. The fourth slide rail is assembled with the third connector, and at least one fourth slider is provided on the fourth slide rail.

[0034] Two fourth sliders are provided, which are respectively located at both ends of the fourth slide rail. One of the fourth sliders is assembled with the first connecting block, and the other fourth slider is assembled with a second connecting block. The fifth driving member is assembled with the first connecting block and the second connecting block through a lead screw.

[0035] The catheter is provided with at least one third connecting block that mates with the second connecting block, and the third connecting block is movable relative to the second connecting block.

[0036] Preferably, the device also includes an adhesive applicator, which includes a seventh driving member and a housing. The housing has openings at both the top and bottom. An adhesive applicator assembly is disposed inside the housing, and the seventh driving member is assembled with the adhesive applicator assembly.

[0037] Preferably, a guide plate is provided below the adhesive application assembly, the guide plate is assembled with the housing, and the guide plate is inclined.

[0038] The housing includes two oppositely arranged side plates, each side plate having two connecting holes. A first support plate is provided at each end of the side plate. The adhesive application assembly includes an adhesive application component and an adhesive pressing component. The adhesive application component and the adhesive pressing component are rotatably connected to the connecting holes. One of the connecting holes extends horizontally along the side plate to adjust the distance between the adhesive application component and the adhesive pressing component. One of the side plates has an adhesive inlet.

[0039] The side plate is provided with a movable block, which can be assembled with the first support plate or the side plate;

[0040] A second support plate is provided between the seventh driving member and the first support plate, so that the seventh driving member and the first support plate are assembled together.

[0041] The seventh driving component is assembled with the adhesive applicator, and the moving block is assembled with the adhesive pressing component; or the seventh driving component is assembled with the adhesive pressing component, and the adhesive applicator is assembled with the moving block.

[0042] Preferably, the machine tool is also provided with a glue box, a funnel and a regulating valve, as well as two objects that cooperate with the pushing component, and the bottom of the objects is provided with a notch.

[0043] Compared with the prior art, the present invention has the following advantages:

[0044] It can reduce manufacturing costs and improve assembly efficiency. Attached Figure Description

[0045] Figure 1 It is a 3D diagram of a screw-making machine.

[0046] Figure 2 This is the rear view of the screw machine.

[0047] Figure 3 This is a side view of a screw machine.

[0048] Figure 4 This is a partial structural diagram of a screw-making machine.

[0049] Figure 5 This is a schematic diagram of another part of the screw machine's structure.

[0050] Figure 6 This is a schematic diagram of the internal structure of a screw machine.

[0051] Figure 7 This is a 3D view of the screw locking assembly.

[0052] Figure 8 This is a schematic diagram of the transmission component in the screw locking assembly.

[0053] Figure 9 This is a structural diagram of the main body of the locking nozzle in the screw locking assembly.

[0054] Figure 10 This is a cross-sectional view of the main body of the locking cylinder in the screw locking assembly.

[0055] Figure 11 This is a three-dimensional view of the adhesive application device.

[0056] Figure 12 This is a top view of the glue application device.

[0057] Figure 13 This is a schematic diagram of the side plate in the glue application device. Detailed Implementation

[0058] The following is in conjunction with the appendix Figure 1-13 The specific embodiments of the present invention will be further described in detail to make the technical solution of the present invention easier to understand and master.

[0059] In this embodiment, it should be understood that the terms "middle," "upper," "lower," "top," "right side," "end," "front," "back," "center," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing the present invention and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on the present invention.

[0060] Furthermore, unless otherwise specified in this specific embodiment, the connection or fixing method between components can be achieved by bolt fixing, pin fixing, or pin connection commonly used in the prior art. Therefore, it will not be described in detail in this embodiment.

[0061] The following is in conjunction with the appendix Figure 1-13 This application will be described in further detail.

[0062] like Figure 1-6 As shown, a screw-making machine includes:

[0063] A machine base 1 and a conveying device 2, the conveying device 2 cooperating with the machine base 1, the conveying device 2 including a moving component 21 and two pushing components 22, the two pushing components 22 being located at both ends of the machine base 1 respectively, the moving component 21 being located above the pushing components 22 and being able to reciprocate along the distance between the two pushing components 22; at least one screw locking component 3 and at least one screw conveying component 4, the screw locking component 3 cooperating with the machine base 1, the screw conveying component 4 being configured with the screw locking component 3 to convey screws to the screw locking component 3.

[0064] The machine 1 is equipped with a glue box 11 and a funnel 12. The funnel 12 is used to provide glue and is connected to a regulating valve 13 through a delivery pipe (not shown). It also has two placement parts 14 that cooperate with the pushing component 22. One end of the bottom of the placement part 14 is notched. The placement part 14 is used to place workpieces. Specifically, one placement part 14 is used to place small plates and the other placement part 14 is used to place large plates. The notch makes it easy for the pushing component 22 to push the small and large plates out from the notch at the bottom of the placement part 14.

[0065] like Figure 1-6 As shown, the moving component 21 includes a first connecting member 211, a first driving member 212, and a second driving member 213 configured with the first connecting member 211. The second driving member 213 can drive the first driving member 212 to reciprocate in the horizontal direction. The first driving member 212 is equipped with at least one clamping component 23, and the first driving member 212 can drive the clamping component 23 to reciprocate in the vertical direction. The clamping component 23 is used to clamp a small plate. In this embodiment, the first driving member 212 is an electric cylinder, and the second driving member 213 is a planetary reducer.

[0066] like Figure 1-6 As shown, the moving component 21 also includes at least one first slide rail 214 and a rack 215. The first slide rail 214 is provided with at least one first slider 216 that cooperates with the first slide rail 214. The first connecting member 211 is assembled with the first slider 216. The second driving member 213 is provided with a gear 2131 that cooperates with the rack 215 to drive the first driving member 212 to move back and forth in the horizontal direction. The movement is made smoother by the arrangement of the slide rail and the slider.

[0067] A second connector 217 is configured with the first drive member 212. The clamping assembly 23 is driven by the first drive member 212 to reciprocate in the vertical direction via the second connector 217. At least one second slide rail 218 is provided between the second connector 217 and the first connector 211. At least one second slider 219 is provided on the second slide rail 218. The movement is made smoother by the arrangement of the slide rail and the slider.

[0068] like Figure 1-6As shown, the pushing component 22 includes a fourth driving component 221 and a pusher plate 222 that cooperates with the fourth driving component 221;

[0069] At least one third slide rail 223 is provided, and at least one third slider 224 is provided on the third slide rail 223. The push plate 222 is assembled with the third slider 224. The push component 22 is used to push the plate on the object 14 out. Then, the moving component 21 located above the push component 22 clamps the plate through the clamping component 23 to realize the horizontal movement of the plate.

[0070] like Figure 1-6 As shown, the machine tool 1 is provided with a first positioning component 5 and a second positioning component 6. The first positioning component 5 includes a third driving component 51 and at least a first limiting component 52 disposed on the machine tool 1. The third driving component 51 is a cylinder. The third driving component 51 can limit the small plate according to the size of the small plate and cooperate with the first limiting component 52 to prevent the small plate from displacing excessively and avoid the situation where the clamping component 23 cannot clamp the small plate.

[0071] The second positioning component 6 includes two tenth driving members 61 and two second limiting members 62. The tenth driving member 61 is equipped with a third limiting member 63 for fixing the plate. An eleventh driving member 64 is assembled with one of the tenth driving members 61 to drive the tenth driving member 61 to move horizontally back and forth. During unloading, the eleventh driving member 64 can push the tenth driving member 61 away to prevent it from being blocked by the plate when the eighth driving member 65 moves downward. The eleventh driving member 64 can also be used to push the tenth driving member 61 to move horizontally to adapt to plates of different sizes and lengths, improving the practicality of the product. In this embodiment, the tenth driving member and the eleventh driving member are cylinders.

[0072] An eighth driving component 65 is an electric cylinder. A support plate 651 is provided on the eighth driving component 65. The eighth driving component 65 can drive the support plate 651 to move up and down. A first electric guide rail 66 and a second electric guide rail 67 are respectively provided at both ends of the support plate 651. A tenth driving component 61 and a second limiting component 62 are provided on the first electric guide rail 66, and another tenth driving component 61 and the second limiting component 62 are provided on the second electric guide rail 67.

[0073] A ninth driving component 68, which is an electric cylinder, is configured with a first electric guide rail 66 or a second electric guide rail 67 to drive the first electric guide rail 66 or the second electric guide rail 67 to move horizontally. In this embodiment, the ninth driving component 68 is configured with the second electric guide rail 67 to drive the second electric guide rail 67 to move horizontally. It can also further limit the plate according to the size of the plate. It also has the ability to push away the tenth driving component 61 during unloading to prevent the eighth driving component 65 from being blocked by the plate when it moves downward.

[0074] At least one fifth slide rail 69 is provided between the second electric guide rail 67 and the support plate 651. A fifth slider 60 is provided on the fifth slide rail 69, and the second electric guide rail 67 and the fifth slider 60 are assembled together. The arrangement of the slide rail and the slider makes the movement smoother.

[0075] With the conveyor 2 in place, users no longer need to manually move the boards one by one. They only need to sort the boards by size and then place the boards of different sizes into the storage container 14. The moving component 21 and the pushing component 22 can then transport the boards of different sizes, saving time and effort and improving work efficiency.

[0076] like Figure 1 and Figures 7 to 10 As shown, the screw locking assembly 3 includes a fifth driving member 31, a sixth driving member 32, a transmission assembly 33, and a locking nozzle body 34. The fifth driving member 31 is an electric cylinder, the sixth driving member 32 is a servo motor, and the transmission assembly 33 is detachably disposed between the sixth driving member 32 and the locking nozzle body 34. The transmission assembly 33 is also bendable. The fifth driving member 31 and the sixth driving member 32 are connected by a first connecting block 35, and the fifth driving member 31 can drive the sixth driving member 32 to reciprocate in the vertical direction. By bending the transmission assembly 33... The design allows for user adjustment and enables the transmission component 33 to adapt to different distances between screw holes on the sheet metal according to usage requirements. This ensures that even without removing the screw locking component 3, the locking body 34 can better adapt to different distances between screw holes, making operation convenient. Moreover, the existing transmission component 33 has a fixed distance, which is very inconvenient to assemble. This application addresses this by bending the transmission component 33, which allows the transmission component 33 to be bent while retaining its existing working function. One end can be installed first, and then the other end can be installed, making it very convenient for users to disassemble and assemble.

[0077] The locking nozzle body 34 has a first channel 341 and a second channel 342 that are interconnected, and the locking nozzle body 34 is provided with two screw clamps 343. The screw clamps 343 are movably mounted on the locking nozzle body 34. The first channel 341 is used to place the screwdriver bit, and the second channel 342 is used to place the screw.

[0078] A third channel 3431 is formed within the two screw clamps 343, and the third channel 3431 is connected to the first channel 341. The inner diameter of the third channel 3431 is smaller than that of the first channel 341. The setting of the third channel 3431 ensures that the screw can flow smoothly through the first channel 341. The purpose of making the inner diameter of the third channel 3431 smaller than that of the second channel 342 is to make the screw fall more accurately into the third channel 3431, prevent jamming, improve the smoothness of the whole process, and improve the user experience.

[0079] In order to better fix the small and large boards, the screw locking component 3 in this embodiment can also be equipped with a clamping component 23. This clamps the board during the screw tightening process to prevent displacement and better fix the large and small boards. Alternatively, the clamping component 23 can directly press the board without clamping.

[0080] like Figure 8 As shown, the transmission assembly 33 includes at least one transmission shaft 331 and at least one mounting member 332 assembled with the transmission shaft 331; the mounting member 332 includes a first mounting part 3321 and a second mounting part 3322, and a mounting block 3323 is provided between the first mounting part 3321 and the second mounting part 3322, and the first mounting part 3321 and the second mounting part 3322 can be rotatably connected to the mounting block 3323 respectively;

[0081] In this embodiment, there are two drive shafts 331 and two mounting parts 332. Each mounting block 3323 has a protrusion 3324 on its side. The first mounting part 3321 and the second mounting part 3322 are rotatably connected to the mounting block 3323 through the protrusion 3324. One of the drive shafts 331 is provided with a bit 333 at one end near the locking body 34. The bit 333 can extend into the first channel 341. A guide tube 39 is sleeved on the surface of the bit 333.

[0082] like Figure 7 As shown, a third connector 36 is assembled with a fifth drive member 31, and a fourth slide rail 37 is provided between the fifth drive member 31 and the third connector 36. The fourth slide rail 37 is assembled with the third connector 36, and at least one fourth slider 38 is provided on the fourth slide rail 37. The arrangement of the slide rail and the slider makes the movement smoother.

[0083] In this embodiment, there are two fourth sliders 38, which are respectively located at both ends of the fourth slide rail 37. One fourth slider 38 is assembled with the first connecting block 35, and the other fourth slider 38 is assembled with a second connecting block 381. The fifth driving member 31 is assembled with the first connecting block 35 and the second connecting block 381 through the lead screw 311.

[0084] The conduit 39 is provided with at least one third connecting block 391 that cooperates with the second connecting block 381, and the third connecting block 391 can move relative to the second connecting block 381, so that the user can adjust the position according to the needs of use.

[0085] like Figure 11-13As shown, it also includes an adhesive applicator 7, which includes a seventh drive member 71 and a housing 72. The seventh drive member 71 is a speed-regulating motor. The housing 72 has openings at both the top and bottom to facilitate the entry and exit of subsequent adhesive. An adhesive applicator 73 is provided inside the housing 72, and the seventh drive member 71 and the adhesive applicator 73 are assembled together.

[0086] like Figure 11-13 As shown, the seventh drive component 71 can be connected to the glue application assembly 73 via a coupling or the seventh drive component 71 and the glue application assembly 73 can be connected via gear 2131. In this embodiment, the seventh drive component 71 is connected to the glue application assembly 73 via a coupling.

[0087] The housing 72 includes two opposing side plates 721, each with two connecting holes 722. A first support plate 723 is provided at each end of the side plate 721. The adhesive application assembly 73 includes an adhesive application component 731 and an adhesive pressing component 732. The adhesive application component 731 and the adhesive pressing component 732 are rotatably connected to the connecting holes 722. One connecting hole 722 extends horizontally along the side plate 721 to adjust the distance between the adhesive application component 731 and the adhesive pressing component 732, thereby controlling the application of adhesive from the adhesive application component 731. The adhesive dispensing device 7 in this application features a simple adhesive inlet 7211 on one side plate 721 and a movable block 74 on the side plate 721. The movable block 74 can be assembled with the first support plate 723 or the side plate 721. In this embodiment, the seventh drive member 71 is assembled with the adhesive applicator 731, the movable block 74 is assembled with the adhesive pressing member 732, and the movable block 74 is assembled with the first support plate 723. In other embodiments, the seventh drive member 71 is assembled with the adhesive pressing member 732, and the adhesive applicator 731 is assembled with the movable block 74. The adhesive applicator 7 in this application simplifies the control of adhesive dispensing volume, eliminating the need for complete machine replacement. Simply adjusting the horizontal distance of the movable block 74, i.e., adjusting the distance between the adhesive applicator 731 and the adhesive pressing member 732, controls the adhesive dispensing volume of the adhesive applicator 731. This method is simple to operate and highly efficient.

[0088] A second support plate 724 is provided between the seventh drive component 71 and the first support plate 723 so that the seventh drive component 71 and the first support plate 723 can be assembled together, which facilitates the subsequent assembly with the machine base 1 and also facilitates the subsequent maintenance and disassembly of the seventh drive component 71.

[0089] A guide plate 75 is located below the glue application assembly 73. The guide plate 75 is assembled with the housing 72 and is inclined. By tilting the guide plate 75, it is easier for the glue to flow out, improving the stability of the flow and ensuring that the glue flows accurately into the glue box 11. The delivery pipe is connected to the glue inlet 7211 to fix the delivery pipe. A regulating valve 13 is fitted on the delivery pipe to control the glue flow speed. If there is too much glue in the glue box 11, it can be pulled out for processing.

[0090] The screw machine described in this application can effectively reduce manufacturing costs and improve assembly efficiency compared to manual assembly by existing workers.

[0091] Explanation of the principle:

[0092] Add glue into funnel 12, then open regulating valve 13, and the glue flows from delivery pipe onto glue application assembly 73.

[0093] The large and small plates are placed into different placement parts 14 (the placement part 14 located in the first positioning component 5 is used to place the small plate, and the placement part 14 located in the second positioning component 6 is used to place the large plate). Then the push component 22 located at the small plate is activated. The pusher plate 222 pushes the small plate to move from the notch of the placement part 14 and is then stopped by the first limiting member 52.

[0094] The moving component 21 moves down and fixes the small board with the clamping component 23. Then it moves horizontally towards the large board. At this time, it will pass through the glue applicator 7 in the middle of the machine 1 to apply glue to the small board.

[0095] The pushing component 22 located at the large plate also starts when the small plate starts. The pushing plate 222 pushes the large plate to move through the notch of the placement component 14. The large plate is blocked by the second limiting component 62. Then the small plate is placed on the large plate. The second positioning component 6 clamps the two plates of different sizes. The first electric guide rail 66 and the second electric guide rail 67 respectively push the second positioning component 6 to move below the screw locking component 3.

[0096] Because the screw locking assembly 3 can also be equipped with a clamping assembly 23, which can clamp or press, the eighth driving component 65 will drive the entire support plate 651 to move down, disengaging the second positioning assembly 6 from the large and small plates. The first electric guide rail 66 and the second electric guide rail 67 will then drive the second positioning assembly 6 to move backward. After returning to the initial position, the eighth driving component 65 will drive the support plate 651 to move up again for the next plate conveying. At the same time, the screw locking assembly 3 will assemble the large and small plates.

[0097] After the screw locking assembly 3 has finished processing the large and small plates, the first electric guide rail 66 and the second electric guide rail 67 will continue to drive the plates forward. At this time, the second positioning assembly 6 will push the processed large and small plates to the plate discharge end.

[0098] The main technical effects of this invention are reflected in the following aspects:

[0099] It can reduce manufacturing costs and improve assembly efficiency.

[0100] Of course, the above are just typical examples of the present invention. In addition, the present invention may have many other specific embodiments. All technical solutions formed by equivalent substitution or equivalent transformation fall within the scope of protection claimed by the present invention.

Claims

1. A screw-making machine, characterized in that, include: One machine (1); A conveying device (2) is used in conjunction with the machine platform (1). The conveying device (2) includes a moving component (21) and two pushing components (22). The two pushing components (22) are located at both ends of the machine platform (1). The moving component (21) is located above the pushing components (22) and can move back and forth along the distance between the two pushing components (22). At least one screw locking assembly (3) and at least one screw conveying assembly (4), wherein the screw conveying assembly (4) is configured with the screw locking assembly (3) to convey screws to the screw locking assembly (3); A glue application device (7) includes a seventh driving member (71) and a housing (72). The housing (72) has openings at both the top and bottom. A glue application assembly (73) is provided inside the housing (72). The seventh driving member (71) is assembled with the glue application assembly (73). A guide plate (75) is provided below the adhesive application assembly (73). The guide plate (75) is assembled with the housing (72), and the guide plate (75) is inclined. The housing (72) includes two opposing side plates (721), each side plate (721) having two connecting holes (722), and each side plate (721) having a first support plate (723) at both ends. The adhesive application assembly (73) includes an adhesive application component (731) and an adhesive pressing component (732), which are rotatably connected to the connecting holes (722). One of the connecting holes (722) extends horizontally along the side plate (721) to adjust the distance between the adhesive application component (731) and the adhesive pressing component (732). One of the side plates (721) has an adhesive inlet (7211). The side plate (721) is provided with a movable block (74), which can be assembled with the side plate (721) or the first support plate (723); A second support plate (724) is provided between the seventh driving member (71) and the first support plate (723) so that the seventh driving member (71) and the first support plate (723) are assembled together; The seventh driving component (71) is assembled with the adhesive applicator (731), and the moving block (74) is assembled with the adhesive pressing component (732), or the seventh driving component (71) is assembled with the adhesive pressing component (732), and the adhesive applicator (731) is assembled with the moving block (74).

2. The screw machine as described in claim 1, characterized in that: The moving component (21) includes a first connector (211) and a first drive component (212) and a second drive component (213) configured with the first connector (211). The second drive component (213) can drive the first drive component (212) to reciprocate in the horizontal direction. The first drive component (212) is provided with at least one clamping component (23), and the first drive component (212) can drive the clamping component (23) to reciprocate in the vertical direction.

3. The screw machine as described in claim 2, characterized in that: The moving component (21) further includes at least one first slide rail (214) and a rack (215). The first slide rail (214) is provided with at least one first slider (216) that cooperates with the first slide rail (214). The first connecting member (211) is assembled with the first slider (216). The second driving member (213) is provided with a gear (2131) that cooperates with the rack (215) to drive the first driving member (212) to reciprocate in the horizontal direction. A second connector (217) is configured with the first drive member (212), and the clamping assembly (23) is connected to the second connector (217) so that the first drive member (212) can drive the clamping assembly (23) to reciprocate in the vertical direction; At least one second slide rail (218) is provided between the second connector (217) and the first connector (211), and at least one second slider (219) is provided on the second slide rail (218). The pushing component (22) includes a fourth driving component (221) and a pusher plate (222) that cooperates with the fourth driving component (221). At least one third slide rail (223) is provided on the third slide rail (223), and at least one third slider (224) is provided on the third slide rail (223), and the pusher plate (222) is assembled with the third slider (224).

4. The screw-making machine as described in claim 1, characterized in that: The machine tool (1) is provided with a first positioning component (5) and a second positioning component (6). The first positioning component (5) includes a third driving member (51) and at least a first limiting member (52) disposed on the machine base (1). The second positioning component (6) includes two tenth driving members (61) and two second limiting members (62), and the tenth driving members (61) group is provided with a third limiting member (63). An eleventh driving member (64) is configured with one of the tenth driving members (61) to drive the tenth driving member (61) to reciprocate in the horizontal direction; An eighth driving member (65) is provided with a support plate (651). The support plate (651) has a first electric guide rail (66) and a second electric guide rail (67) at both ends. One of the tenth driving members (61) and the second limiting member (62) are provided on the first electric guide rail (66), and the other tenth driving member (61) and the second limiting member (62) are provided on the second electric guide rail (67). A ninth driving member (68) is configured with the first electric guide rail (66) or the second electric guide rail (67) to drive the first electric guide rail (66) or the second electric guide rail (67) to move horizontally.

5. The screw-making machine as described in claim 4, characterized in that: At least one fifth slide rail (69) is provided between the second electric guide rail (67) and the support plate (651). A fifth slider (60) is provided on the fifth slide rail (69). The second electric guide rail (67) and the fifth slider (60) are assembled together. The ninth driving member (68) is assembled with the second electric guide rail (67).

6. The screw-making machine as described in claim 1, characterized in that: The screw locking assembly (3) includes a fifth driving member (31), a sixth driving member (32), a transmission assembly (33) and a locking body (34). The transmission assembly (33) is detachably disposed between the sixth driving member (32) and the locking body (34), and the transmission assembly (33) is bendable. The fifth driving member (31) can drive the sixth driving member (32) to reciprocate in the vertical direction.

7. The screw-making machine as described in claim 6, characterized in that: The fifth driving member (31) and the sixth driving member (32) are connected by a first connecting block (35); The main body (34) of the lock mouth is provided with a first channel (341) and a second channel (342) that are interconnected, and the main body (34) of the lock mouth is provided with two screw clamps (343), which are movably mounted on the main body (34); A third channel (3431) is formed in the two screw clamps (343), and the third channel (3431) is connected to the first channel (341). The inner diameter of the third channel (3431) is smaller than the inner diameter of the first channel (341). The transmission assembly (33) includes at least one transmission shaft (331) and at least one mounting member (332) configured with the transmission shaft (331). The mounting component (332) includes a first mounting part (3321) and a second mounting part (3322), and a mounting block (3323) is provided between the first mounting part (3321) and the second mounting part (3322). The first mounting part (3321) and the second mounting part (3322) can be rotatably connected to the mounting block (3323) respectively. Two drive shafts (331) are provided, two mounting parts (332) are provided, and a protrusion (3324) is provided on the side of each mounting block (3323). The first mounting part (3321) and the second mounting part (3322) are rotatably connected to the mounting block (3323) through the protrusion (3324). One of the drive shafts (331) is provided with a bit (333) at one end near the lock body (34), and the bit (333) can extend into the first channel (341), and a guide tube (39) is sleeved on the surface of the bit (333). A third connector (36) is configured with the fifth drive member (31), and a fourth slide rail (37) is provided between the fifth drive member (31) and the third connector (36). The fourth slide rail (37) is configured with the third connector (36), and at least one fourth slider (38) is provided on the fourth slide rail (37). Two fourth sliders (38) are provided, which are respectively located at both ends of the fourth slide rail (37). One of the fourth sliders (38) is assembled with the first connecting block (35), and the other fourth slider (38) is assembled with a second connecting block (381). The fifth driving member (31) is assembled with the first connecting block (35) and the second connecting block (381) through a lead screw (311). The conduit (39) is provided with at least one third connecting block (391) that cooperates with the second connecting block (381), and the third connecting block (391) is movable relative to the second connecting block (381).

8. The screw machine as described in claim 1, characterized in that: The machine (1) is also provided with a plastic box (11), a funnel (12) and a regulating valve (13), as well as two objects (14) that cooperate with the push assembly (22), and the bottom of the objects (14) is notched.

Citation Information

Patent Citations

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    CN204673264U

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