Material guiding assembly of stamping device and stamping device

By designing a guide component with adjustable inclination angle, the problem of difficult to determine the inclination angle of the guide device is solved, the stable guidance and efficient cleaning of waste are achieved, and the working efficiency of the stamping device is improved.

CN223197918UActive Publication Date: 2025-08-08GREE ELECTRICAL APPLIANCE WUHU +1
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Patent Information

Application Number
CN202422520880.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-17
Publication Date
2025-08-08
Estimated Expiration
2034-10-17

AI Technical Summary

Technical Problem

The inclination angle of existing material guide devices is difficult to determine, which causes waste to pop out or stagnate during the material guide process, affecting stamping accuracy and cleaning efficiency.

Method used

A guide assembly that can adjust the inclination angle is designed, including a guide member and an adjustment mechanism, to control the guide speed of the waste by adjusting the inclination angle of the first guide section to avoid the waste from ejecting or stagnation.

Benefits of technology

Effectively reduce the risk of waste ejection or stagnation, improve stamping accuracy and cleaning efficiency, and reduce manual cleaning work.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a material guiding assembly of a stamping device and the stamping device, and relates to the technical field of machining. The material guiding assembly comprises a material guiding part, the two ends of the material guiding part are used for being connected with a waste channel of a stamping device and a conveying mechanism respectively, the material guiding part comprises a first material guiding section, the first material guiding section obliquely extends between a machining mechanism and the conveying mechanism, and the downward inclination angle of the first material guiding section can be adjusted; and the adjusting mechanism is connected with the first material guiding section, and the adjusting mechanism is configured to enable the first material guiding section to rotate so as to adjust the declination angle of the first material guiding section. The downward inclination angle of the first material guiding section can be conveniently adjusted through the adjusting mechanism, the speed of waste materials is adjusted, the risk that the waste materials pop out of the material guiding device is reduced, the waste materials can be guided to the conveying mechanism, and the waste materials are prevented from staying on the material guiding part.
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Description

Technical Field

[0001] The utility model relates to the technical field of mechanical processing, in particular to a material guiding component of a punching device and a punching device. Background Art

[0002] When using a processing mechanism to stamp a workpiece, stamping waste is generated. If there is too much stamping waste, the stamping accuracy will be greatly reduced. In order to prevent the residual stamping waste from affecting the subsequent stamping work, the stamping waste needs to be cleaned up in time.

[0003] In the prior art, to remove stamping waste from the die of a processing mechanism, a waste channel is provided on the die, and a material guide device is provided at the waste channel of the die. The material guide device is used to guide the waste from the processing mechanism to a collection device. The material guide device is generally tilted downward to transfer the waste to the collection device by gravity for recovery.

[0004] However, the downward inclination angle of the guide is difficult to determine. On the one hand, if the guide is set too steep, the waste will easily slide down too quickly and some of the waste will bounce out of the receiving device; on the other hand, if the guide is set too slowly, the waste will stay on the guide. Utility Model Content

[0005] The utility model provides a material guiding component of a punching device and a punching device, which are used for conveniently adjusting the guiding speed of waste materials and preventing the waste materials from flying out or stagnating during the material guiding process.

[0006] The utility model provides a material guide assembly of a stamping device, comprising: a material guide member, wherein the two ends of the material guide member are respectively used to be connected to the stamping device and the conveying mechanism, the material guide member comprises a first material guide section, the first material guide section extends obliquely between the processing mechanism and the conveying mechanism, and the inclination angle of the first material guide section is adjustable; and an adjustment mechanism, the adjustment mechanism is connected to the first material guide section, and the adjustment mechanism is configured to enable the first material guide section to rotate so as to adjust the inclination angle of the first material guide section.

[0007] In one embodiment, the adjustment mechanism is configured to adjust the inclination angle of the first guide segment by pushing the first guide segment to rotate, or the adjustment mechanism is configured to adjust the inclination angle of the first guide segment by driving the rotating shaft of the first guide segment to rotate.

[0008] In one embodiment, the adjustment mechanism includes a telescopic member and a first connecting member, the telescopic member is installed on the processing mechanism, the first connecting member is installed at the end of the telescopic member away from the processing mechanism, the telescopic member is used to drive the first connecting member away from or closer to the processing mechanism in a horizontal direction, and the side of the first material guide section away from the processing mechanism is supported on the first connecting member.

[0009] In one embodiment, the material guiding assembly includes a plurality of the material guiding members, and the first material guiding section of each of the material guiding members is connected to the first connecting member.

[0010] In one embodiment, the material guide member also includes a second material guide segment smoothly connected to the first material guide segment, the first material guide segment and the second material guide segment are integrally formed, the second material guide segment is used to be installed in the waste channel of the processing mechanism, the first material guide segment extends out of the waste channel, and the side of the first material guide segment away from the second material guide segment is tilted downward under the action of gravity, and the adjustment mechanism is connected to the side of the first material guide segment away from the second material guide segment.

[0011] In one embodiment, material blocking edges are provided on two opposite sides of the first material guiding section, and the first material guiding section and the material blocking edges on both sides thereof are surrounded to form a material guiding trough.

[0012] In a second aspect, the present invention further provides a stamping device, which includes:

[0013] A processing mechanism, wherein the processing mechanism is equipped with a lower mold assembly;

[0014] a conveying mechanism located on one side of the processing mechanism;

[0015] And the material guiding assembly as claimed in the claim above, wherein both ends of the material guiding member of the material guiding assembly are respectively connected to the lower mold assembly and the conveying mechanism.

[0016] In one embodiment, a plurality of waste channels are opened in the lower mold assembly, a partition is provided between two adjacent waste channels, and each of the material guide members corresponds to one waste channel.

[0017] In one embodiment, the conveying mechanism includes a first frame provided on one side of the processing mechanism, a conveyor belt is provided on the first frame, and the conveyor belt is located below the first material guiding section.

[0018] In one embodiment, the conveying mechanism also includes a collecting funnel installed on the first frame, the collecting funnel is located below the first material guide section, and the collecting funnel is located above the conveyor belt, and a collecting channel is formed inside the collecting funnel, the inlet of the collecting channel faces the first material guide section, the outlet of the collecting channel faces the conveyor belt, and the inner diameter of the collecting channel gradually decreases from top to bottom.

[0019] Compared to the prior art, the present invention has the advantage that the downward inclination angle of the first material guide section can be reduced using the adjustment mechanism, making the first material guide section slower and thus reducing the risk of waste material being ejected from the first material guide section. Furthermore, when waste material accumulates, the downward inclination angle of the first material guide section can be increased using the adjustment mechanism, thereby directing waste material remaining on the material guide device toward the conveyor mechanism. In other words, the material guide assembly provided by the present invention not only reduces the risk of waste material being ejected from the material guide assembly, but also uniformly directs waste material toward the conveyor mechanism, preventing waste material from stagnating on the material guide member. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] The present invention will be described in more detail below based on embodiments with reference to the accompanying drawings.

[0021] Figure 1 This is a schematic diagram of the main structure of the punching device in the embodiment of the present utility model;

[0022] Figure 2 It is a right side structural schematic diagram of the punching device in the embodiment of the present utility model;

[0023] Figure 3 This is a schematic diagram of the exploded structure of the lower mold assembly and the upper mold in the embodiment of the present utility model;

[0024] Figure 4 This is a schematic diagram of the main structure when the material guide member is installed on the lower mold assembly in the embodiment of the present utility model;

[0025] Figure 5 This is a schematic structural diagram of the lower die assembly and the upper die in the embodiment of the present invention when performing stamping work;

[0026] Figure 6 This is a schematic diagram of the left structure when the material guide member is installed on the lower mold assembly in the embodiment of the present utility model;

[0027] Figure 7 1 is a schematic top view of the material guide member in an embodiment of the present utility model;

[0028] Figure 8 It is a schematic diagram of the main structure of the material guide member in the embodiment of the present utility model.

[0029] Reference numerals:

[0030] 100. Processing organizations;

[0031] 200, lower mold assembly; 210, support base; 211, waste channel; 212, partition; 220, lower mold; 221, waste port;

[0032] 300, conveying mechanism; 310, first frame; 320, conveyor belt; 330, collecting hopper; 331, inlet; 332, outlet;

[0033] 400, material guide; 410, first material guide section; 420, second material guide section; 430, material blocking edge;

[0034] 500, adjustment mechanism; 510, telescopic member; 520, first connecting member; 530, second connecting member;

[0035] 600, upper mold;

[0036] 700. Workpiece. DETAILED DESCRIPTION

[0037] The present invention will be further described below with reference to the accompanying drawings.

[0038] In the first aspect, the present invention provides a material guide assembly for a punching device, see Figure 1 and Figure 2 As shown, the material guiding assembly includes: a material guiding member 400 and an adjusting mechanism 500 .

[0039] The material guiding member 400 includes a first material guiding section 410 . The first material guiding section 410 extends obliquely between the processing mechanism 100 and the conveying mechanism 300 , and the inclination angle of the first material guiding section 410 is adjustable.

[0040] The adjusting mechanism 500 is connected to the first guiding segment 410 . The adjusting mechanism 500 is configured to rotate the first guiding segment 410 to adjust the tilt angle of the first guiding segment.

[0041] Specifically, the processing mechanism 100 can be set upstream of the conveying mechanism 300, and the material generated by the processing mechanism 100 can be guided into the conveying mechanism 300 by the material guide 400 set between the processing mechanism 100 and the conveying mechanism 300. The material here can be a product produced by stamping, or it can be waste generated by stamping.

[0042] Alternatively, the processing mechanism 100 can also be set downstream of the conveying mechanism 300. By setting a material guide 400 between the processing mechanism 100 and the conveying mechanism 300, the unprocessed workpiece 700 in the conveying mechanism 300 can be guided to the processing mechanism 100 and processed by the processing mechanism 100.

[0043] Of course, a material guide component can also be set upstream of the processing mechanism 100 to guide the workpiece 700 in the upstream conveying mechanism 300, and a material guide component can also be set downstream of the processing mechanism 100 to guide the material generated by the processing mechanism 100 to the downstream conveying mechanism 300.

[0044] That is to say, although the material guide assembly of the present invention is designed for the waste guiding speed, the material guide assembly is not limited to guiding waste, and can also be used to guide unprocessed workpieces 700 or guided completed workpieces 700.

[0045] Combine Figure 3 As shown, the processing mechanism 100 is installed with a lower die assembly 200. When the processing mechanism 100 is used to drive the upper die 600 to move downward to stamp the workpiece 700, the workpiece 700 can be placed on the lower die assembly 200 of the processing mechanism 100, and the stamping waste after stamping will fall into the waste channel 211 of the lower die assembly 200.

[0046] A conveying mechanism 300 is provided on one side of the processing mechanism 100 , and the stamping waste can be collected in one place through the conveying mechanism 300 to prevent workers from coming into contact with sharp stamping waste.

[0047] The guide member 400 of the guide assembly is installed at the waste channel 211. The guide member 400 has a first guide section 410 extending toward the conveying mechanism 300. The first guide section 410 can guide the stamping waste in the waste channel 211 to the conveying mechanism 300 whose height is lower than the waste channel 211.

[0048] Since the downward inclination angle of the first guide section 410 of the guide member 400 is adjustable, and the processing mechanism 100 is also equipped with an adjustment mechanism 500, the adjustment mechanism 500 is connected to the first guide section 410, and the downward inclination angle of the first guide section 410 can be adjusted by the adjustment mechanism 500.

[0049] In general scenarios, the adjustment mechanism 500 can be used to reduce the downward inclination angle of the first material guide section 410, making the first material guide section 410 relatively flat, thereby preventing the waste on the first material guide section 410 from sliding down too quickly and bouncing off the conveyor mechanism 300 while falling into the conveyor mechanism 300. When waste stagnates on the first material guide section 410, the adjustment mechanism 500 can be used to increase the downward inclination angle of the first material guide section 410, making the first material guide section 410 steeper. This allows the waste stagnant on the first material guide section 410 to move downward smoothly, preventing it from continuing to stagnate on the first material guide section 410.

[0050] That is to say, the stamping device provided in this embodiment can not only reduce the risk of waste material popping out of the conveying mechanism 300, but also reduce the risk of waste material stagnation on the material guide 400, thereby better guiding the stamping waste material and reducing the work of manual cleaning.

[0051] See also Figure 6 As shown, in some implementations, the guide member 400 also includes a second guide segment 420 smoothly connected to the first guide segment 410, the first guide segment 410 and the second guide segment 420 are integrally formed, the second guide segment 420 is installed in the waste channel 211, the first guide segment 410 extends out of the waste channel 211, and the side of the first guide segment 410 away from the second guide segment 420 is tilted downward under the action of gravity, and the adjustment mechanism 500 is connected to the side of the first guide segment 410 away from the second guide segment 420.

[0052] Because the second guide section 420 extends into the waste channel 211, the waste can fall directly onto the second guide section 420 of the guide member 400 when it falls into the waste channel 211. Because the first guide section 410 and the second guide section 420 are smoothly connected, the waste on the second guide section 420 can be smoothly transferred to the first guide section 410. The downwardly inclined first guide section 410 guides the waste to the conveying mechanism 300, thereby achieving waste collection. In addition, because the first guide section 410 and the second guide section 420 are integrally formed, when the downward inclination angle of the first guide section 410 is adjusted using the adjustment mechanism 500, the angle change of the first guide section 410 can be transmitted to the second guide section 420, causing the second guide section 420 to vibrate and drive the waste above it to vibrate. Compared with a second guide section 420 that is separately arranged, the probability of waste accumulating on the second guide section 420 is reduced.

[0053] It is understandable that, in some implementations, the stamping device further includes a control module and a detection module, and the control module is electrically connected to the adjustment mechanism 500 , so that the control module can control the action of the adjustment mechanism 500 .

[0054] Specifically, the detection module can be used to measure the waste accumulation above the guide member 400. When the detection module detects that the waste accumulation on the first guide segment 410 reaches a first threshold, the adjustment mechanism 500 can be controlled to activate the first guide segment 410, thereby adjusting the downward inclination angle of the first guide segment 410. This causes the waste stuck in the first guide segment 410 to slide downward as the downward inclination angle of the first guide segment 410 increases. When the detection module detects that the waste accumulation on the first guide segment 410 is less than a second threshold, the adjustment mechanism 500 can be controlled to activate the first guide segment 410, thereby slowing the inclination angle of the first guide segment 410 and preventing the waste on the first guide segment 410 from sliding down too quickly. In other words, the coordination of the detection module, the control module, and the adjustment mechanism 500 can ensure that the waste accumulation on the first guide segment 410 is within a range from the second threshold to the first threshold, allowing the waste on the first guide segment 410 to be guided to the conveyor mechanism 300 at a slower speed.

[0055] It is understandable that the detection module can use a camera to capture images of the waste on the first guide section 410, and then identify the accumulation of waste on the first guide section 410. The detection module can also use a pressure detector arranged under the first guide section 410 to identify the accumulation of waste on the first guide section 410 by measuring the downward pressure exerted on the first guide section 410.

[0056] Of course, in some implementations, only the control module may be provided without the detection module. By connecting the control module to the processing mechanism 100, the control module can obtain the stamping timing of the processing mechanism 100. The control module is configured to control the adjustment mechanism 500 to reduce the downward inclination angle of the first material guide plate when the processing mechanism 100 is stamping, and to control the adjustment mechanism 500 to gradually increase the downward inclination angle of the first material guide section 410 after the processing mechanism 100 completes the stamping work, so that the waste accumulated in the first material guide section 410 after stamping can gradually slide downward into the collection assembly.

[0057] See also Figure 2 、 Figure 4 as well as Figure 5 As shown, in some implementations, the adjustment mechanism 500 includes a telescopic member 510 and a first connecting member 520. The telescopic member 510 is installed on the processing mechanism 100, and the first connecting member 520 is installed at one end of the telescopic member 510 away from the processing mechanism 100. The telescopic member 510 is used to drive the first connecting member 520 away from or close to the processing mechanism 100 in a horizontal direction, and the side of the first guide section 410 away from the second guide section 420 is supported on the first connecting member 520.

[0058] That is, in some embodiments, the downward inclination angle of the first guide segment 410 is adjusted using a horizontally retractable telescopic member 510. When the downward inclination angle of the first guide segment 410 needs to be adjusted to a smaller value, the telescopic member 510 can be extended to push the first guide segment 410, causing the first connecting member 520 to gradually move away from the second guide segment 420, thereby gradually raising the end of the first guide segment 410 away from the first guide segment 410, thereby adjusting the inclination angle of the first guide segment 410. When the downward inclination angle of the first guide segment 410 needs to be increased, the telescopic member 510 can be retracted to cause the first connecting member 520 to gradually move closer to the second guide segment 420, thereby causing the support point of the first guide segment 410 to gradually move closer to the second guide segment 420, causing the first guide segment 410 to sag under the action of gravity, thereby completing the inclination angle adjustment of the first guide segment 410.

[0059] The telescopic member 510 can be an electric cylinder or a hydraulic cylinder. For a processing mechanism 100 driven by hydraulic pressure, the hydraulic oil of the processing mechanism 100 can be led into the telescopic member 510 with the hydraulic cylinder to realize sharing of the hydraulic oil.

[0060] Of course, in other implementations, a steering wheel motor can be used to directly drive the rotation of the first guide segment 410 to achieve angle adjustment of the first guide segment 410. Specifically, the first guide segment 410 is directly rotatably connected to the support base, and the rotating shaft of the first guide segment 410 is connected to the steering wheel motor. The steering wheel motor is used to drive the rotating shaft of the first guide segment 410 to rotate, thereby achieving angle adjustment of the first guide segment 410. In other words, the adjustment mechanism 500 is configured to adjust the inclination angle of the first guide segment 410 by driving the rotating shaft of the first guide segment 410 to rotate.

[0061] In some implementations, the material guide 400 is made of thin iron sheet, which is not only relatively soft and can bend under the action of gravity to achieve the drooping of the first material guide section 410, but also has better toughness than cloth, can avoid the formation of sunken pits due to the accumulation of waste materials, and can make the waste above slide more smoothly from the first material guide section 410.

[0062] In some implementations, the first connecting member 520 installed on the telescopic member 510 can be set as a rotating member, so that when the first connecting member 520 is moved horizontally, the first connecting member 520 can roll along the surface of the first guide segment 410, thereby converting the sliding friction between the first connecting member 520 and the first guide segment 410 into rolling friction, reducing the friction between the two, and thereby more smoothly adjusting the downward inclination angle of the first guide segment 410.

[0063] In some implementations, the second guide section 420 of the material guide member 400 is inserted into the waste channel 211 and can be slid out of the waste channel 211 by sliding the second guide section 420, thereby achieving removal of the material guide member 400. To prevent the material guide member 400 from sliding out of the waste channel 211, a locking structure can be provided in the waste channel 211 to secure the second material guide section 420 in the waste channel 211. Specifically, a connecting bolt can be provided in the waste channel 211, and a limiting hole can be provided in the second material guide section 420. By moving the second material guide section 420, the limiting hole can be positioned outside the connecting bolt, thereby preventing the material guide member 400 from sliding.

[0064] In some implementations, in order to prevent the first material guiding segment 410 from being scratched when the adjustment mechanism 500 adjusts the inclination angle of the first material guiding segment 410 , the first connecting member 520 may be made of a rubber material.

[0065] In some implementations, the stamping device includes multiple material guides 400, and the first material guide section 410 of each material guide 400 is connected to the first connecting member 520. In other words, the telescopic member 510 can be used to drive the first connecting member 520 to move, thereby achieving synchronous adjustment of multiple material guides 400, thereby reducing the number of devices and improving the efficiency of angle adjustment.

[0066] In some implementations, a waste port 221 is further provided on the top of the lower mold assembly 200 . The waste port 221 is located above the waste channel 211 and is in communication with the waste channel 211 .

[0067] The second material guiding section 420 is located below the waste opening 221 .

[0068] That is, the stamping waste will fall from the waste opening 221 into the second guide section 420 located in the waste channel 211. In some implementations, the lower die assembly 200 includes a support base 210 and a lower die 220, the waste channel 211 is disposed in the support base 210, and the waste opening 221 is disposed in the lower die 220 and penetrates the lower die 220.

[0069] The lower mold 220 is detachably mounted on the top of the support base 210 , and the lower mold 220 can be replaced to adapt to the processing of different workpieces 700 .

[0070] See also Figure 1As shown, in some implementations, multiple waste channels 211 are defined within the lower mold assembly 200, with partitions 212 disposed between adjacent waste channels 211. Each guide member 400 corresponds to a waste channel 211. That is, at most one guide member 400 is installed in each waste channel 211, and the partitions 212 are used to separate the guide members 400. The width of the guide member 400 can be set slightly smaller than the width of the waste channel 211, for example, 5 mm smaller than the width of the waste channel 211. This allows the second guide segment 420 of the guide member 400 to be easily inserted into the corresponding waste channel 211, while also narrowing the gap between the waste channel 211 and the second guide segment 420, preventing the second guide segment 420 from dangling in the waste channel 211. In other words, the positioning of each guide member 400 is achieved by the partitions 212 disposed between adjacent waste channels 211.

[0071] It should be noted that, due to the different stamping positions of the workpieces 700, the waste falling areas of different workpieces 700 are also different. In order to adapt to the adjustment of the waste falling area, a material guide 400 can be installed in each waste channel 211. In other implementations, it is also possible to install the material guide 400 only in part of the waste channels 211 according to the actual material falling situation, and not install the material guide 400 in the other part of the waste channels 211 where the waste will not fall. Figure 3 as well as Figure 4 As shown, in some implementations, seven waste channels 211 are provided on the support base 210 , and the material guides 400 are installed in only five of the waste channels 211 , while the material guides 400 are not installed in the other two waste channels 211 .

[0072] See also Figure 1 as well as Figure 7 As shown, in some implementations, the first guide section 410 and the second guide section 420 of the guide member 400 are both configured as plate-like structures, so that the guide member 400 can cause the suspended first guide section 410 to droop downward under the action of gravity. It is understood that in other implementations, the first guide section 410 can also be configured as a cylindrical structure to prevent waste from flowing out of the waste channel 211 and out of both sides of the first guide section 410, thereby reducing the risk of waste splashing. In order to allow the cylindrical first guide section 410 to droop naturally, the side of the second guide section 420 adjacent to the first guide section 410 can be made of a soft material such as rubber, so that the deformation of the soft material can achieve the downward tilt of the first guide section 410.

[0073] See also Figure 1 as well as Figure 4As shown, in some implementations, the first connecting member 520 is connected to the second connecting member 530 at both opposite ends, and the second connecting member 530 is connected to the processing mechanism 100 at a side away from the first connecting member 520. By providing the second connecting member 530 on the first connecting member 520, the stability of the first connecting member 520 can be improved.

[0074] Among them, the second connecting member 530 can adopt a rope structure, and the end of the second connecting member 530 away from the first connecting member 520 can be rolled up at the processing mechanism 100. When the telescopic member 510 drives the first connecting member 520 to move away from the second guide section 420, the second connecting member 530 can be lengthened to adapt to the displacement of the first connecting member 520.

[0075] See also Figure 4 、 Figure 7 as well as Figure 8 As shown, in some implementations, material retaining edges 430 are provided on opposite sides of the first material guide section 410. The first material guide section 410 and the retaining edges 430 on both sides together form a material guide trough. The material retaining edges 430 can intercept waste material and restrict it to move along the material guide trough, reducing the risk of the material guide trough slipping out of the sides of the first material guide section 410.

[0076] It can be understood that for the first guide section 410 extending along the first direction, the material blocking edge 430 can be set to extend along the first square, and the two material blocking edges 430 can be arranged along the second direction perpendicular to the first direction to avoid the material blocking edge 430 affecting the transportation of waste on the first guide section 410.

[0077] In some implementations, the material blocking edge 430 extends from the first material guide segment 410 toward the second material guide segment 420 and extends all the way to the end of the second material guide segment 420 away from the first material guide segment 410. In other words, the material blocking edge 430 can not only intercept waste materials on the first material guide segment 410, but also intercept waste materials on the second material guide segment 420.

[0078] In some implementations, the height of the material-blocking edge 430 is greater than the thickness of the waste material, so as to better intercept the waste material and prevent the waste material from directly rushing out of the material-blocking edge 430 when sliding down.

[0079] See also Figure 6 as well as Figure 7As shown, the material-blocking edge 430, the first material-guide section 410, and the second material-guide section 420 of the material-guide member 400 are integrally formed. By integrally forming, a gap is avoided between the material-blocking edge 430 and the first material-guide section 410, thereby reducing the risk of waste materials slipping through the gap. In other implementations, the material-blocking edge 430 can be made of a material different from that of the first material-guide section 410, such as a material-blocking edge 430 made of a rubber material, and mounted on opposite sides of the first material-guide section 410 by bonding or other methods. Compared to the material-blocking edge 430 made of an iron material, the material-blocking edge 430 made of a rubber material can absorb the kinetic energy of the waste materials when in contact with the waste materials, thereby preventing the waste materials from rushing out of the material-blocking edge 430 due to excessive speed.

[0080] In a second aspect, a stamping device is also provided, which includes a processing mechanism 100, a conveying mechanism 300 and the above-mentioned material guiding assembly.

[0081] The processing mechanism 100 is installed with a lower mold assembly 200 and a lower mold assembly 200 .

[0082] The conveying mechanism 300 is located on one side of the processing mechanism 100 , and opposite ends of the material guiding member 400 of the material guiding assembly are respectively connected to the processing mechanism 100 and the conveying mechanism 300 .

[0083] The processing mechanism 100 may be arranged upstream of the conveying mechanism 300 , so that the guide member 400 arranged between the processing mechanism 100 and the conveying mechanism 300 can be used to guide the waste material or the processed workpiece 700 .

[0084] The processing mechanism 100 may also be arranged downstream of the conveying mechanism 300 , so that the unprocessed workpiece 700 can be guided by using the material guide 400 arranged between the processing mechanism 100 and the conveying mechanism 300 .

[0085] When in use, the workpiece 700 can be punched by the processing mechanism 100 , and the waste can be collected by the conveying mechanism 300 .

[0086] In some implementations, the conveyor mechanism 300 includes a first frame 310 disposed on one side of the processing mechanism 100. A conveyor belt 320 is mounted on the first frame 310 and positioned below the first guide section 410. Specifically, after the first guide section 410 guides the waste material to the conveyor mechanism 300, the conveyor belt 320 of the conveyor mechanism 300 can be used to transport the waste material to the next workstation. The conveyor belt 320 continuously transports the collected waste material, preventing waste material overflow due to insufficient volume compared to collecting waste material in a fixed-volume box.

[0087] In some implementations, the conveyor belt 320 is used to transport waste to recycling equipment so that the collected waste can be directly put into the recycling equipment for recycling. The use of the conveyor belt 320 of the material collecting device eliminates the work of manually carrying waste, thereby improving the efficiency of waste recycling.

[0088] In addition, compared with other waste transportation methods such as vehicle transportation and robot transportation, the conveyor belt 320 itself can carry the waste. While transporting the previous batch of waste, it can also ensure that subsequent waste can still fall on the conveyor belt 320, realizing uninterrupted transfer.

[0089] In some implementations, in order to prevent the falling waste from bouncing out of the collection device, a baffle may be installed above the first frame 310 and disposed on one side of the conveyor belt 320 .

[0090] See also Figure 1 as well as Figure 2 As shown, in some implementations, the conveying mechanism 300 also includes a collection funnel 330 installed on the first frame 310, the collection funnel 330 is located below the first guide section 410, and the collection funnel 330 is located above the conveyor belt 320, and an collection channel is formed inside the collection funnel 330, the material inlet 331 of the collection channel faces the first guide section 410, and the material outlet 332 of the collection channel faces the conveyor belt 320, and the inner diameter of the collection channel gradually decreases from top to bottom.

[0091] After the first guide section 410 is used to guide the waste to the collection funnel 330, the waste will enter the collection channel from the inlet 331 of the collection channel. Since the inner diameter of the collection channel gradually decreases from top to bottom, the waste can be guided to the outlet 332 of the collection channel with the help of the collection funnel 330, and the waste can flow from the outlet 332 of the collection funnel 330 to the conveyor belt 320.

[0092] That is to say, in the present application, the waste can be accurately guided to the conveyor belt 320 through the collecting channel whose inner diameter gradually decreases from top to bottom, thereby improving the accuracy of waste transportation.

[0093] In some implementations, the first guiding sections 410 of each material guiding member 400 extend toward the same collecting hopper 330 , so that the waste on each material guiding member 400 can be guided to the conveyor belt 320 on the first frame 310 by the same collecting hopper 330 .

[0094] It is understood that multiple collecting hoppers 330 can be provided on the first frame 310, and each collecting hopper 330 can be associated with a first guide section 410 of a guide member 400, so that the waste collected by each guide member 400 is guided to different positions of the conveyor belt 320 through different collecting hoppers 330. Compared with using a single collecting hopper 330 to collect waste, providing multiple collecting hoppers 330 can achieve waste classification. To prevent the waste collected by the various collecting hoppers 330 from mixing together, the conveyor belt 320 can be shut down when collecting waste. When waste needs to be transported, the adjustment mechanism 500 is used to raise the second guide section 420 and start the conveyor belt 320 at the same time to prevent the waste from falling when the conveyor belt 320 is transporting the waste.

[0095] Since multiple collecting funnels 330 can be provided to classify waste materials, waste materials of different specifications and materials are prevented from being mixed together, thereby facilitating subsequent waste classification and recycling, and waste materials of different uses can be transported to different recycling equipment for recycling.

[0096] While the present invention has been described with reference to preferred embodiments, various modifications may be made and equivalent components may be substituted without departing from the scope of the present invention. In particular, the various technical features described in the various embodiments may be combined in any manner, provided no structural conflicts exist. The present invention is not limited to the specific embodiments disclosed herein, but encompasses all technical solutions within the scope of the claims.

Claims

1. A material guide assembly for a stamping device, characterized in that: It includes: a material guide member, wherein both ends of the material guide member are respectively used to be connected to the punching device and the conveying mechanism, the material guide member includes a first material guide segment, the first material guide segment extends obliquely between the processing mechanism and the conveying mechanism, and the inclination angle of the first material guide segment is adjustable; and An adjusting mechanism is connected to the first material guiding section, and the adjusting mechanism is configured to enable the first material guiding section to rotate so as to adjust an inclination angle of the first material guiding section.

2. The material guide assembly according to claim 1, characterized in that The adjusting mechanism is configured to adjust the inclination angle of the first guide segment by pushing the first guide segment to rotate, or the adjusting mechanism is configured to adjust the inclination angle of the first guide segment by driving the rotating shaft of the first guide segment to rotate.

3. The material guide assembly according to claim 2, characterized in that: The adjustment mechanism includes a telescopic member and a first connecting member. The telescopic member is installed on the processing mechanism. The first connecting member is installed at the end of the telescopic member away from the processing mechanism. The telescopic member is used to drive the first connecting member away from or closer to the processing mechanism in the horizontal direction. The side of the first material guide section away from the processing mechanism is supported on the first connecting member.

4. The material guide assembly according to claim 3, characterized in that The material guiding assembly includes a plurality of the material guiding members, and the first material guiding section of each of the material guiding members is connected to the first connecting member.

5. The material guide assembly according to claim 2, characterized in that: The material guide member also includes a second material guide segment smoothly connected to the first material guide segment, the first material guide segment and the second material guide segment are integrally formed, the second material guide segment is used to be installed in the waste channel of the processing mechanism, the first material guide segment is used to extend out of the waste channel, the side of the first material guide segment away from the second material guide segment is tilted downward under the action of gravity, and the adjustment mechanism is connected to the side of the first material guide segment away from the second material guide segment.

6. The material guide assembly according to claim 1, characterized in that Material blocking edges are provided on opposite sides of the first material guiding section, and the first material guiding section and the material blocking edges on both sides thereof are surrounded to form a material guiding trough.

7. A punching device, characterized in that: It includes: A processing mechanism, wherein the processing mechanism is equipped with a lower mold assembly; a conveying mechanism located on one side of the processing mechanism; And the material guiding assembly according to any one of claims 1 to 6, wherein the opposite ends of the material guiding member of the material guiding assembly are respectively connected to the lower mold assembly and the conveying mechanism.

8. The punching device according to claim 7, characterized in that: A plurality of waste channels are provided in the lower die assembly, a partition is provided between two adjacent waste channels, and each of the material guide members corresponds to one waste channel.

9. The punching device according to claim 7, characterized in that: The conveying mechanism includes a first frame arranged on one side of the processing mechanism. A conveyor belt is arranged on the first frame, and the conveyor belt is located below the first material guiding section.

10. The punching device according to claim 9, characterized in that The conveying mechanism also includes a material collection funnel installed on the first frame, the material collection funnel is located below the first material guide section, and the material collection funnel is located above the conveyor belt. A material collection channel is formed inside the material collection funnel, the material inlet of the material collection channel faces the first material guide section, the material outlet of the material collection channel faces the conveyor belt, and the inner diameter of the material collection channel gradually decreases from top to bottom.