Slideway type material distributing mechanism
By designing the material distribution components and power source of the slide-type material distribution mechanism, multiple screws are cut, solving the problem of screw jamming during screw feeding in the existing technology, and realizing that screws enter the receiving channel one by one, thus improving production efficiency.
Patent Information
- Application Number
- CN202520307268.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-25
- Publication Date
- 2026-01-20
- Estimated Expiration
- 2035-02-25
AI Technical Summary
In existing technologies, when automatic screw tightening devices are feeding screws, multiple screws may enter the receiving channel at the same time, causing screw jamming inside the screw head and reducing production efficiency.
The slide-type material distribution mechanism uses a material distribution component and a power source to drive the material distribution block to move in a direction perpendicular to the material rail, cutting multiple screws and preventing multiple screws from entering the receiving channel at the same time. This includes a cutting plate and guide ramp design to block screws that have not yet entered.
This effectively avoids nail jamming inside the gun head, improves production efficiency, and ensures that screws enter the receiving channel one by one.
Smart Images

Figure CN223812965U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the technical field of the tool of screwing fastener, specifically relates to a slide way formula material distributing mechanism. BACKGROUND
[0002] Screw connection is a common connection mode in the present industrial production. In order to improve production efficiency, automatic screwing device is generally used to complete screw connection between two parts. When using automatic screwing device, screw is first entered into the gun head of screwing device from the material receiving channel, and then is screwed. At present, screws are completed material distribution through the vibration of material track, and enter into the material receiving channel. However, in the prior art, multiple screws exist on the material track at the same time when feeding screws, if single conveying is purely realized by vibration, multiple screws are easily sent into the material receiving channel at the same time, which can cause the phenomenon of screw jamming in the gun head, and reduce production efficiency. CONTENT OF THE UTILITY MODEL
[0003] The utility model provides a slide way formula material distributing mechanism, which can avoid multiple screws from entering the material receiving channel at the same time, and prevent the phenomenon of screw jamming in the gun head.
[0004] To achieve the above object, the utility model provides the following technical scheme:
[0005] A slide way formula material distributing mechanism, comprising a material track, a material distributing assembly, a material receiving assembly and a supporting seat, the material track, the material distributing assembly and the material receiving assembly are all arranged on the supporting seat, one end of the material track corresponding to the position of the material receiving assembly, the material distributing assembly comprises a material distributing block and a power source, the power source is arranged on the supporting seat, the material distributing block is located above the material track and is connected with the power source, the material distributing block comprises a base body and a cutting plate connected with the base body, a first channel is formed in the base body, a second channel is formed between the base body and the plate body of the cutting block, a screw inlet is formed between the end of the cutting block and the base body, the second channel is connected between the first channel and the screw inlet, the power source drives the material distributing block to move along the direction perpendicular to the extension direction of the material track, so that the material distributing block forms a first position and a second position, in the first position, the screw inlet corresponds to the position of the material track, in the second position, the first channel corresponds to the position of the material track, and the cutting plate blocks the screw not entering the material distributing block.
[0006] Preferably, the outer side wall of the cutting plate extends in a straight line.
[0007] Preferably, the inner side wall of the cutting plate is a slope, the thickness between the inner and outer side walls of the material distributing block gradually increases from the direction of the screw inlet to the direction of the first channel.
[0008] Preferably, the side surface of the base body towards the one side of the inner side wall of the cutting plate is parallel to the inner side wall of the cutting plate.
[0009] Preferably, the first channel is formed by the downward recess of the base body.
[0010] Preferably, a guide inclined surface is formed on the base body corresponding to the end of the cutting plate.
[0011] Preferably, a pair of limiting plates are arranged above the material rail, and the limiting plates extend into the distribution block and are arranged above the nail inlet and the second channel as viewed along the side surface of the slide-type distribution mechanism.
[0012] Preferably, a connecting rod is arranged on the power source, a first connecting plate is arranged on the end of the connecting rod away from the power source, and the distribution block is fixed to the first connecting plate.
[0013] Preferably, a first connecting hole is formed on the first connecting plate, the first connecting hole is a strip-shaped hole extending in the vertical direction, and the first connecting bolt passes through the first connecting hole and is connected to the distribution block.
[0014] Preferably, the slide-type distribution mechanism further comprises a first support, the first support comprises a first fixing plate and a first supporting plate, a first adjusting track is formed on the supporting seat, a first fixing bolt passes through the first fixing plate and extends into the first adjusting track, so that the first support is fixed to the supporting seat, the first supporting plate is arranged on the end of the first fixing plate away from the supporting seat, and the power source is fixed to the first supporting plate.
[0015] Compared with the prior art, the slide-type distribution mechanism has the following beneficial effects:
[0016] In summary, in the present application, the slide-type distribution mechanism can avoid multiple screws from entering the material receiving channel at the same time, and prevent the occurrence of the nail jamming phenomenon in the gun head.
[0017] Further, the inclination angle of the material receiving channel can be adjusted through the related structures arranged on the second fixing plate and the second supporting plate of the second support, and further, the height of the material receiving channel can be adjusted through the connecting structure between the third fixing plate and the supporting seat.
[0018] The above description is only a summary of the technical scheme of the present application, in order to more clearly understand the technical means of the present application, the content of the specification can be implemented, and in order to make the above and other purposes, features and advantages of the present application more obvious and easy to understand, the following preferred embodiments are described in detail, and the accompanying drawings are described as follows. Attached Figure Description
[0019] Figure 1 The image shown is a first-view axial side structural schematic diagram of the slide-type material distribution mechanism provided in an embodiment of this utility model.
[0020] Figure 2 As shown Figure 1 A second-view axial side structural diagram of the middle slide-type material distribution mechanism.
[0021] Figure 3 As shown Figure 1 A third-view axial side structural diagram of the middle slide-type material distribution mechanism.
[0022] Figure 4 As shown Figure 1 A schematic diagram of the axonal structure of the middle slide-type material distribution mechanism after removing related auxiliary structures.
[0023] Figure 5 As shown Figure 4 A schematic diagram of the axial structure after removing the material distribution blocks from the relevant structure.
[0024] Figure 6 As shown Figure 1 A schematic diagram of the axonal structure of the split material block from a first-view perspective.
[0025] Figure 7 As shown Figure 6 A schematic diagram of the axonal structure of the split material block from a second perspective.
[0026] Figure 8 The diagram shown is a bottom view of the material distribution block structure.
[0027] Figure 9 The diagram shown is an axonal structural diagram of the support base and the receiving assembly after they are combined.
[0028] Figure 10 The diagram shows the axonal structure of the second and third support plates.
[0029] Figure 11 As shown Figure 9 A schematic diagram of the axonal structure of the central support base.
[0030] Figure 12 The diagram shown is a schematic diagram of the axial structure of the receiving block.
[0031] Figure 13 As shown Figure 12 A schematic diagram of the axial structure of the intermediate feed tube.
[0032] 10, material track; 11, guide rail; 12, gap, 13, pressing plate; 20, material distribution assembly; 21, material distribution block; 211, base body; 212, cutting plate; 213, first channel; 214, second channel; 215, nail inlet; 216, guide slope; 22, power source; 231, connecting rod; 232, first connecting plate; 233, first connecting hole; 234, first connecting bolt; 30, material receiving assembly; 31, material receiving block; 311, material receiving pipe; 3111, air inlet hole; 3112, annular groove; 312, air inlet connector; 32, second support; 321, second fixed plate; 322, second support plate; 3231, second connecting hole; 3232, third connecting hole; 3233, fourth connecting hole; 3234, first adjusting hole; 3235, second connecting bolt; 3236, third connecting bolt; 324, third fixed plate; 325, fourth fixed plate; 326, connecting column; 327, adjusting nut; 328, third support plate; 33, material receiving channel; 40, support seat; 41, first adjusting track; 42, first fixed bolt; 43, second adjusting track; 44, second fixed bolt; 45, positioning hole; 46, third fixed bolt; 50, first support; 51, first fixed plate; 52, first support plate. DETAILED DESCRIPTION
[0033] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the utility model.
[0034] The chute type material distribution mechanism can avoid multiple screws from entering the material receiving channel at the same time, and prevent the occurrence of screw jamming in the gun head.
[0035] As shown in Figures 1 to 6 The screw feeding mechanism provided by the embodiments of the utility model comprises a material track 10, a material distribution assembly 20, a material receiving assembly 30 and a support seat 40. The material track 10, the material distribution assembly 20 and the material receiving assembly 30 are all arranged on the support seat 40. The material track 10 is used for feeding screws, and the screws entering the material track 10 are fed to the material receiving assembly 30 through the material track 10. The screws enter the next process after passing through the material receiving assembly 30. The material distribution assembly 20 is arranged between the material track 10 and the material receiving assembly 30, and the material distribution assembly 20 distributes the screws so that the screws enter the material receiving assembly 30 one by one.
[0036] Please continue to refer to Figures 1 to 3In order to facilitate assembly, the support base 40 can comprise two separate support bases 40. The material track 10 described above can be arranged on one of the support bases 40, and the material distribution assembly 20 and the material receiving assembly 30 can be arranged on the other support base 40.
[0037] It can be understood that the support base 40 can also be arranged as one or further subdivided into more, as required.
[0038] Further, the material track 10 comprises two parallel guide rails 11, and a gap 12 is formed between the two guide rails 11. After the screws enter the material track 10, the plurality of screws are arranged in the gap 12 in sequence. A material receiving channel 33 is formed on the material receiving assembly 30. One end of the gap 12 corresponds to the position of the material receiving channel 33. Preferably, the gap 12 is located above the material receiving channel 33 of the material receiving assembly 30 (see Figure 5 In other words, after the screws fall out of the gap 12, they can fall into the material receiving channel 33 by their own gravity, and then move to the next process.
[0039] The material blowing structure and the related accessory structure of the sensor are also arranged on the material track 10, which are the same as the prior art, and will not be described here.
[0040] Please continue to refer to Figures 3 to 8 The material distribution assembly 20 comprises a material distribution block 21 and a power source 22. The power source 22 is arranged on the support base 40, and the material distribution block 21 is located above the gap 12 of the material track 10 and connected to the power source 22. Preferably, the material distribution block 21 is arranged above the material receiving channel 33 of the material receiving assembly 30.
[0041] The material distribution block 21 comprises a base body 211 and a cutting plate 212 connected to the base body 211. The base body 211 has a first channel 213 for the screws to pass through, the cutting plate 212 has a second channel 214 for the screws to pass through between the plate body and the base body 211, and the end of the cutting plate 212 and the base body 211 form a screw inlet 215. The second channel 214 is connected between the first channel 213 and the screw inlet 215. Compared with the screw inlet 215, the first channel 213 is located closer to the material track 10, specifically, the end of the gap 12 of the material track 10 towards the material receiving assembly 30. After the screws enter the material distribution block 21 from the screw inlet 215, they pass through the second channel 214 and enter the first channel 213. The power source 22 drives the material distribution block 21 to move along a direction perpendicular to the extension direction of the gap 12 on the material track 10, so that the material distribution block 21 forms a first position and a second position.
[0042] In the first position, the screw inlet 215 corresponds to the position of the track 10, in particular the slot 12 of the track 10. The screws can enter the screw inlet 215 under the drive of the track 10. In the second position, the first channel 213 corresponds to the position of the track 10, in particular the slot 12 of the track 10. The cutting plate 212 blocks the screws that do not enter the distribution block 21.
[0043] In the present embodiment, when the track 10 feeds the screws, the plurality of screws arranged in a column move together towards the receiving assembly 30. The power source 22 drives the distribution block 21 to reciprocate. When the distribution block 21 is in the first position, the screw inlet 215 corresponds to the slot 12 of the track 10, and the screws can enter the distribution block 21 through the screw inlet 215. The power source 22 drives the distribution block 21 to move, and the end of the cutting plate 212 cuts the plurality of screws arranged in a column. Since the screws are on the track 10, the screws that enter the distribution block 21 continue to move downstream along the track 10; at the same time, since the distribution block 21 moves perpendicular to the extension direction of the track 10, the screws move from the screw inlet 215 to the first channel 213 relative to the distribution block 21 through the second channel 214. At this time, the second channel 214 corresponds to the track 10, and the distribution block 21 reaches the second position, and the screws are separated from the track 10 through the second channel 214 and enter the receiving assembly 30. At the same time, the cutting plate 212 moves with the power source 22, and the outer side of the cutting plate 212 blocks the screws that do not enter the distribution block 21. After the screws in the distribution block 21 fall into the receiving channel 33, the power source 22 can drive the distribution block 21 to reset, i.e., from the second position to the first position, and new screws can continue to enter the distribution block 21 through the screw inlet 215. Therefore, through the above arrangement of the distribution block 21 and the power source 22, the distribution block 21 can cut the plurality of screws arranged in a column under the drive of the power source 22, prevent multiple screws from entering the receiving channel 33 of the receiving assembly 30 at the same time, and prevent the occurrence of screw jamming in the gun head.
[0044] Further, in the present embodiment, the outer side wall of the cutting plate 212, i.e., the side wall of the cutting plate 212 away from the base 211, extends in a straight line, in other words, the plane where the outer side wall of the cutting plate 212 is perpendicular to the extension direction of the track 10. When the distribution block 21 reciprocates, the screws outside the distribution block 21 are not affected by the movement of the distribution block 21.
[0045] The inner side wall of the cutting plate 212 is inclined towards the base 211, that is, the thickness between the inner and outer side walls of the cutting plate 212 gradually increases from the direction of the screw inlet 215 to the direction of the first channel 213. In other words, the cutting plate 212 can be wedge-shaped. The end of the cutting plate 212 towards the screw inlet is pointed to facilitate the cutting of the screw by the cutting plate 212.
[0046] It is understood that, in order to prevent the screw from moving in the cutting plate 212, the side of the base 211 towards the inner side wall of the cutting plate 212 is parallel to the inner side wall of the cutting plate 212, that is, the width of the second channel 214 is uniform.
[0047] Further, the first channel 213 is recessed downwards from the base 211, that is, a cover plate is formed on the first channel 213 when the base 211 is arranged above the track 10. The cover plate can prevent the screw from jumping up and down in the first channel 213.
[0048] Further, a guide slope 216 is formed on the base 211 corresponding to the end of the cutting plate 212 to guide the screw when the cutting plate 212 moves.
[0049] Please continue to refer to Figure 1 A pressing plate 13 is arranged above the track 10, specifically above the gap 12 of the track 10. When a plurality of screws arranged in a column are arranged in the track 10, the pressing plate 13 can prevent the screws from jumping up and down.
[0050] Further, as viewed from the side of the mechanism, the pressing plate 13 extends into the cutting plate 21 and is arranged above the screw inlet 215 and the second channel 214. When the cutting plate 21 reciprocates, the pressing plate 13 can limit the screws in the screw inlet 215 and the second channel 214 to prevent them from jumping up and down.
[0051] Please continue to refer to Figure 4 and Figure 5 The power source 22 can be arranged on the support seat 40 through the first support 50. The power source 22 is provided with a connecting rod 231, and a first connecting plate 232 is arranged on the end of the connecting rod 231 away from the power source 22. The cutting plate 21 is fixed to the first connecting plate 232, so that the power source 22 can drive the cutting plate 21 to move.
[0052] More specifically, please refer to Figure 5The first connecting plate 232 is provided with a first connecting hole 233 which is a strip hole extending in the vertical direction. A first connecting bolt 234 passes through the first connecting hole 233 and is connected to the distribution block 21, so that the distribution block 21 is fixed to the first connecting plate 232. By setting the first connecting hole 233 as a strip hole extending in the vertical direction, the height of the distribution block 21 when fixed to the first connecting plate 232 can be adjusted as needed, and the spacing between the distribution block 21 and the rail 10 is adjusted.
[0053] It can be understood that when the spacing between the distribution block 21 and the rail 10 is adjusted, the spacing is not greater than the height of the screw protruding from the rail 11.
[0054] Please continue to refer to Figure 5 and Figure 9 In order to better adjust the spacing between the distribution block 21 and the rail 10, the first support 50 includes a first fixing plate 51 and a first support plate 52. The support seat 40 is provided with a first adjusting track 41, and the first fixing bolt 42 passes through the first fixing plate 51 and extends into the first adjusting track 41, so that the first support 50 is fixed to the support seat 40. By adjusting the position of the first fixing bolt 42 in the first adjusting track 41, the fixed height of the first fixing plate 51 can be adjusted in a larger range. The first support plate 52 is arranged on the end of the first fixing plate 51 away from the support seat 40. The power source 22 is fixed to the first support plate 52.
[0055] Please continue to refer to Figures 1 to 5 and Figures 9 to 13 In this embodiment, the receiving assembly 30 includes a receiving block 31 and a second support 32. The receiving channel 33 is formed in the receiving block 31, and the receiving block 31 is fixed to the support seat 40 by the second support 32.
[0056] In the embodiment, the second support 32 comprises a second fixing plate 321 and a second support plate 322. The second fixing plate 321 is adjustably fixed on the support base 40, and the receiving block 31 is fixed on the second support plate 322. A second connecting hole 3231 is formed on the second fixing plate 321, and a third connecting hole 3232 corresponding to the second connecting hole 3231 is formed on the second support plate 322. A fourth connecting hole 3233 is formed on one of the second fixing plate 321 and the second support plate 322, and a first adjusting hole 3234 corresponding to the fourth connecting hole 3233 is formed on the other of the second fixing plate 321 and the second support plate 322. The first adjusting hole 3234 is an arc-shaped long hole, and the center of curvature of the arc-shaped long hole is located at the centers of the second connecting hole 3231 and the third connecting hole 3232. A first fixing member, such as a second connecting bolt 3235, connects the second connecting hole 3231 and the third connecting hole 3232. A second fixing member, such as a third connecting bolt 3236, connects the fourth connecting hole 3233 and the first adjusting hole 3234.
[0057] In the embodiment, the fourth connecting hole 3233 is formed on the second fixing plate 321, and the first adjusting hole 3234 is formed on the second support plate 322.
[0058] When the receiving block 31 is installed, the second connecting bolt 3235 can be inserted into the second connecting hole 3231 and the third connecting hole 3232 to pre-connect the second fixing plate 321 and the second support plate 322 (the pre-connection means that the second fixing plate 321 and the second support plate 322 are connected, but the second fixing plate 321 and the second support plate 322 can rotate relative to each other). At this time, the fourth connecting hole 3233 can correspond to the first adjusting hole 3234, the second support plate 322 is rotated, and the second support plate 322 is adjusted to an appropriate angle. Since the center of curvature of the first adjusting hole 3234 is located at the second connecting hole 3231 and the third connecting hole 3232, the first adjusting hole 3234 always corresponds to the fourth connecting hole 3233 when the second support plate 322 is adjusted. The first adjusting hole 3234 and the fourth connecting hole 3233 are fastened by the third connecting bolt 3236, and the second connecting hole 3231 and the third connecting hole 3232 are fastened by the second connecting bolt 3235 to complete the fastening of the second fixing plate 321 and the second support plate 322.
[0059] Since the receiving block 31 is arranged on the second support plate 322, the angle of the receiving channel 33 in the receiving block 31 can be adjusted by the above adjustment, and the posture of the receiving channel 33 is adjusted by adjusting the height of the second fixing plate 321 on the support base 40, so that the nail outlet of the receiving channel is aligned with the next process.
[0060] It can be understood that the planes in which the plate surfaces of the second fixing plate 321 and the second support plate 322 lie are not perpendicular to the extension direction of the track 10, and preferably, the planes in which the plate surfaces of the second fixing plate 321 and the second support plate 322 lie are parallel to each other and to the extension direction of the track 10.
[0061] Further, in the present embodiment, the second support 32 further comprises a third fixing plate 324, and the second fixing plate 321 is connected to the third fixing plate 324. A second adjusting rail 43 is arranged on the support base 40. A second fixing bolt 44 passes through the third fixing plate 324 and extends into the second adjusting rail 43, so that the third fixing plate 324 is fixed to the support base 40. Through the arrangement of the second adjusting rail 43, the height of the second support 32 on the support base 40 can be adjusted conveniently.
[0062] Further, please continue to refer to Figure 9 and Figure 11 In the present embodiment, the second support 32 further comprises a fourth fixing plate 325, and a plurality of positioning holes 45 are arranged on the support base 40 along the height direction of the support base 40. A third fixing bolt 46 passes through the fourth fixing plate 325 and extends into the positioning hole 45, so that the fourth fixing plate 325 is fixed to the support base 40. The second support 32 further comprises a connecting column 326, the fourth fixing plate 325 is located below the third fixing plate 324, the connecting column 326 passes through the fourth fixing plate 325 and abuts against the lower edge of the third fixing plate 324. An adjusting nut 327 for adjusting the distance between the third fixing plate 324 and the fourth fixing plate 325 is arranged on the connecting column 326.
[0063] Through the arrangement of the fourth fixing plate 325, the plurality of positioning holes 45 and the connecting column 326, the height of the second support 32 on the support base 40 can be adjusted in a larger range, and the height of the third fixing plate 324 is ensured not to change on the support base 40. Specifically, the third fixing plate 324 can be pre-tightened on the support base 40 first; then the third fixing bolt 46 is extended into the positioning hole 45 at a certain height according to needs. Then the third fixing plate 324 is connected to the fourth fixing plate 325 through the connecting column 326. The adjusting nut 327 is adjusted according to needs to change the distance between the third fixing plate 324 and the fourth fixing plate 325. Finally, the third fixing plate 324 is fastened to the support base 40 through the second fixing bolt 44.
[0064] Please continue to refer to Figure 10 The second support 32 further comprises a third support plate 328, the third support plate 328 is connected to the second support plate 322, and the planes in which the plate surfaces of the second support plate 322 and the third support plate 328 lie are perpendicular to each other. The above-mentioned material receiving block 31 is fixed to the third support plate 328.
[0065] Further, the receiving pipe 311 is fixed in the receiving block 31, and the receiving channel 33 is formed in the receiving pipe 311. The air inlet holes 3111 are formed in the receiving pipe 311 and are communicated with the receiving channel 33. The air inlet holes 3111 can inject air flow into the receiving channel 33 after the screws enter the receiving channel 33. In the embodiment, the receiving channel 33 can extend in an inclined manner by adjusting the angle between the second fixed plate 321 and the second support plate 322. Therefore, friction can exist between the screws and the inner wall of the receiving channel 33 when the screws enter the receiving channel 33. The air inlet holes 3111 can accelerate the movement of the screws in the receiving channel 33 by air flow.
[0066] Further, the annular groove 3112 is formed in the outer wall of the receiving pipe 311. The air inlet holes 3111 are formed in the annular groove 3112. The air inlet joint 312 is arranged on the receiving block 31 and corresponds to the annular groove 3112. The air inlet joint 312 is communicated with the annular groove 3112. The air flow can be uniformly injected into the air inlet holes 3111 from the annular groove 3112.
[0067] In summary, in the embodiment, the screw feeding mechanism can avoid the simultaneous entry of the screws into the receiving channel 33 and prevent the occurrence of the screw jamming in the gun head by arranging the distributing assembly 20.
[0068] Further, the posture of the receiving channel 33 can be adjusted by the related structures on the second fixed plate 321 and the second support plate 322 of the second support 32, which facilitates the alignment with the next process and improves the work efficiency. Further, the height of the receiving channel 33 can be adjusted by the connecting structure between the third fixed plate 324 and the support seat 40.
[0069] The above is only an example and description of the structure of the present application. Those skilled in the art can make various modifications, supplements or substitutions of the described specific embodiments or use similar ways to replace them, as long as they do not deviate from the structure of the present application or exceed the scope defined by the present application, and they should belong to the protection scope of the present application.
Claims
1. A slide-type material distribution mechanism, characterized in that: The device includes a material rail, a material distribution assembly, a material receiving assembly, and a support base. The material rail, the material distribution assembly, and the material receiving assembly are all mounted on the support base. The end of the material rail facing the material receiving assembly corresponds to the position of the material receiving assembly. The material distribution assembly includes a material distribution block and a power source. The power source is mounted on the support base, and the material distribution block is located above the material rail and connected to the power source. The material distribution block includes a base and a cutting plate connected to the base. A first channel is formed within the base, and a second channel is formed between the plate of the material distribution block and the base. A nail inlet is formed between the end of the material distribution block and the base. The second channel connects the first channel and the nail inlet. The power source drives the material distribution block to move along a direction perpendicular to the extension of the material rail, so that the material distribution block forms a first position and a second position. In the first position, the nail inlet corresponds to the position of the material rail; in the second position, the first channel corresponds to the position of the material rail. The cutting plate blocks screws that have not entered the material distribution block.
2. The slide-type material distribution mechanism according to claim 1, characterized in that: The outer wall of the cutting plate extends in a straight line.
3. The slide-type material distribution mechanism according to claim 2, characterized in that: The inner wall of the cutting plate is inclined, and the thickness between the inner and outer walls of the material distribution block gradually increases from the direction of the nail inlet to the direction of the first channel.
4. The slide-type material distribution mechanism according to claim 2, characterized in that: The side of the substrate facing the inner wall of the cutting plate is parallel to the inner wall of the cutting plate.
5. The slide-type material distribution mechanism according to claim 1, characterized in that: The first channel is formed by a downward indentation of the substrate.
6. The slide-type material distribution mechanism according to claim 1, characterized in that: A guide slope is formed at a position corresponding to the end of the substrate and the cutting plate.
7. The slide-type material distribution mechanism according to claim 1, characterized in that: A pair of screws are provided above the material rail to limit the pressure plate. Viewed from the side of the slide-type material distribution mechanism, the pressure plate extends into the material distribution block and is located above the nail inlet and the second channel.
8. The slide-type material distribution mechanism according to claim 1, characterized in that: A connecting rod is provided on the power source, and a first connecting plate is provided at the end of the connecting rod away from the power source. The material distribution block is fixed on the first connecting plate.
9. The slide-type material distribution mechanism according to claim 8, characterized in that: A first connecting hole is formed on the first connecting plate. The first connecting hole is a strip-shaped hole extending in the vertical direction. The first connecting bolt passes through the first connecting hole and is connected to the material distribution block.
10. The slide-type material distribution mechanism according to claim 1, characterized in that: The slide-type material distribution mechanism further includes a first bracket, which includes a first fixed plate and a first support plate. A first adjustment track is formed on the support base. A first fixing bolt passes through the first fixed plate and extends into the first adjustment track to fix the first bracket on the support base. The first support plate is disposed on the end of the first fixed plate away from the support base. The power source is fixed on the first support plate.