Device for uninterruptedly feeding and distributing large-batch magnet materials
Through the design of rotary storage barrel and material separation mechanism, combined with the iron discharge table and material extraction mechanism, the large-scale uninterrupted feeding and efficient material separation of magnet materials is achieved, solving the problem of inefficiency of existing equipment and improving the yield rate.
Patent Information
- Application Number
- CN202421809626.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-30
- Publication Date
- 2025-07-11
- Estimated Expiration
- 2034-07-30
AI Technical Summary
The existing magnet material feeding equipment has a small amount of feeding, low efficiency of material separation and feeding, and frequent manual feeding is required, resulting in low crop rate.
The rotary storage cylinder, rotary electric cylinder and material barrier disc are used to achieve automatic discharge using gravity and magnetic suction; an iron discharge table, horizontal distribution cylinder and material distribution slide plate are set up for rapid distribution; the magnet material in the discharge hole is prevented from falling continuously through the sealing slide table; the horizontal collection cylinder, upper and lower collection cylinder and material collection jaws are used for clamping and transfer.
The amount of feeding is increased, manual intervention is reduced, the rhythm and discharge efficiency of the equipment is improved, the efficiency of material separation is enhanced, and the failure of material separation is prevented, and the uninterrupted feeding of magnet materials is achieved.
Smart Images

Figure CN223087052U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of magnet material feeding and distributing devices, in particular to a device for continuously feeding and distributing a large quantity of magnet materials without interruption. Background Art
[0002] Magnets are essential components in many industrial equipment and play an important role in industrial production. During the equipment assembly process, a large number of magnet materials of the same specification are used. These magnet materials of the same specification are distributed and fed through a magnet material feeding device. Since magnets themselves have magnetism, they are prone to adhesion during the distribution process. Therefore, the quality of the magnet material feeding device directly determines the efficiency of industrial production;
[0003] In the prior art, most magnet material feeding devices adopt a magazine-type feeding method, with single-channel feeding, and use a motor to lift the magnet for single-piece feeding and separation. The inventor found in actual applications that the equipment with this structure has a small feeding quantity, and the equipment needs to be manually fed frequently, resulting in a low utilization rate. Pushing the materials upward by the lifting motor causes low discharging efficiency. Therefore, it is very necessary to design a device for continuously feeding and distributing a large quantity of magnet materials without interruption. Summary of the Utility Model
[0004] In order to solve the problems of small feeding quantity and low feeding and distributing efficiency in the prior art's feeding and distributing devices, the utility model provides a device for continuously feeding and distributing a large quantity of magnet materials without interruption;
[0005] The device for continuously feeding and distributing a large quantity of magnet materials without interruption provided by the utility model adopts the following technical solutions:
[0006] A device for continuously feeding and distributing a large quantity of magnet materials without interruption includes an operating table, and further includes:
[0007] A material storage mechanism, the material storage mechanism includes a rotating material storage cylinder, a rotating electric cylinder and a material blocking disc; the material blocking disc is fixedly installed at the top of the operating table, a discharge hole is opened at the bottom of the material blocking disc, a central hole is opened at the center of the material blocking disc, the rotating electric cylinder is fixedly installed at the top of the operating table through bolts, and the output end of the rotating electric cylinder passes through the central hole of the material blocking disc and is rotatably connected with the rotating material storage cylinder;
[0008] An iron discharging table, the iron discharging table is fixedly connected to the top of the operating table and is arranged below the discharge hole at the bottom of the material blocking disc, and a sealing slide for blocking the discharge hole is fixedly installed on the side wall of the iron discharging table through bolts;
[0009] Material distribution mechanism, the material distribution mechanism includes a horizontal material distribution cylinder, a connecting plate and a material distribution slide plate; a horizontal material distribution cylinder is fixedly installed on the top of the operating table, the top of the cylinder body of the horizontal material distribution cylinder is fixedly connected with a material distribution slide plate through a connecting plate, and the material distribution slide plate can slide along the top of the iron material discharging table;
[0010] Material taking mechanism, the material taking mechanism is fixedly installed on the side wall of the vertical installation plate, the material taking mechanism is arranged above the iron material discharging table through the vertical installation plate, and the material taking mechanism includes a horizontal material taking cylinder, a vertical and horizontal material taking cylinder, a connecting plate, a material taking claw and a buffer assembly; a horizontal material taking cylinder is fixedly installed on the side wall of the vertical installation plate, the side wall of the cylinder body of the horizontal material taking cylinder is fixedly installed with a vertical and horizontal material taking cylinder through a connecting plate, the side wall of the cylinder body of the vertical and horizontal material taking cylinder is fixedly installed with a buffer assembly through bolts, and the side wall of the cylinder body of the vertical and horizontal material taking cylinder is movably connected with a material taking claw through the buffer assembly.
[0011] Further, the rotary storage cylinder includes a rotary disk, an annular top plate and a cavity storage rod; the rotary disk is installed at the output end of the rotary electric cylinder through bolts and can rotate with the output end of the rotary electric cylinder, a plurality of material discharging holes are formed in the top of the rotary disk, one end of a cavity storage rod is fixedly connected in each material discharging hole, the other end of the cavity storage rod is fixedly connected with an annular top plate, and a plurality of material feeding holes are formed in the top of the annular top plate, and each material feeding hole corresponds to a cavity storage rod.
[0012] Further, a material guiding hole is formed in the top of the iron material discharging table at a position corresponding to the material discharging hole, a material guiding cylinder is fixedly installed on the top of the operating table at a position corresponding to the material guiding hole, and the output end of the material guiding cylinder extends into the material guiding hole and is flush with the material guiding hole.
[0013] Further, the sealing slide includes a horizontally installed plate, a first slide rail, a first slide table, a sealing slide plate and a fixing plate; the side wall of the iron material discharging table is fixedly installed with a horizontally installed plate, the top of the horizontally installed plate is fixedly connected with a first slide rail, the top of the first slide rail is slidably connected with a first slide table, the top of the first slide table is fixedly connected with a sealing slide plate through bolts, a slide rod is welded on the side wall of the sealing slide plate, the top of the horizontally installed plate is fixedly connected with a fixing plate, a through hole is formed in the side wall of the fixing plate, the slide rod passes through the through hole and slides in the through hole along with the sealing slide plate, a spring is sleeved on the side wall of the slide rod, one end of the spring is welded on the side wall of the sealing slide plate, and the other end of the spring is welded on the side wall of the fixing plate.
[0014] Further, the buffer assembly includes a first mounting plate, a second mounting plate, a second slide rail, a second slide table, a first limiting plate, and a second limiting plate; a first mounting plate is fixedly connected to the side wall of the cylinder body of the vertical material taking cylinder, a first limiting plate and a second limiting plate are respectively fixedly connected to the top wall and the bottom wall of the first mounting plate, a second slide rail is fixedly connected to the side wall of the first mounting plate, a second slide table is slidably connected to the side wall of the second slide rail, a second mounting plate is fixedly connected to the side wall of the second slide table, and a material taking gripper is fixedly installed on the side wall of the second mounting plate.
[0015] Further, the horizontal material distributing cylinder is a slide table cylinder, and the horizontal material taking cylinder is a rodless cylinder.
[0016] Further, the distance between the material blocking disc and the iron material discharging platform is 1.3 times the height of a single magnet material.
[0017] Further, a semi-circular pushing hole for accommodating magnet materials is formed at the top of the material distributing slide plate.
[0018] Further, the number of the cavity storage rods, the feeding holes, and the discharging holes is N, and N≥12.
[0019] In summary, the beneficial effects of the present utility model are as follows:
[0020] By setting the rotating storage cylinder, the present utility model can greatly increase the feeding quantity and no longer requires frequent manual feeding; by setting the rotating electric cylinder and the material blocking disc, the rotating storage cylinder can cooperate with the material blocking disc, and the discharging is automatically realized by using the downward gravity and the suction force of the magnet, effectively improving the beat and discharging efficiency of the equipment and increasing the operation rate; by setting the iron material discharging platform, the horizontal material distributing cylinder, and the material distributing slide plate, the magnet materials falling from the discharging hole can be quickly distributed, improving the material distributing efficiency; by setting the sealing slide table, the discharging hole can be blocked when the material distributing slide plate distributes the magnet materials, preventing the magnet materials in the discharging hole from continuously falling and causing the material distributing failure; by setting the horizontal material taking cylinder, the vertical material taking cylinder, and the material taking gripper, a single magnet material pushed out by the material distributing slide plate can be clamped and transferred for the next process. Description of the Drawings
[0021] Figure 1 is the front view structural schematic diagram of the present utility model;
[0022] Figure 2 is the front view structural schematic diagram of the present utility model;
[0023] Figure 3 is the left view structural schematic diagram of the present utility model;
[0024] Figure 4Schematic diagram of the specific structure of the material blocking disc of the present utility model;
[0025] Figure 5 Schematic diagram of the specific structure of the rotating disc of the present utility model;
[0026] Figure 6 Schematic diagram of the positional relationship between the iron material discharge table and the material guiding cylinder after hiding the material sealing slide table of the present utility model;
[0027] Figure 7 Upper sectional view of the rotating storage cylinder of the present utility model;
[0028] Figure 8 Upper side sectional view of the present utility model;
[0029] Figure 9 For the present utility model Figure 8 Enlarged schematic diagram of the structure of the material sealing slide table in the present utility model;
[0030] Figure 10 Schematic diagram of the specific structure of the buffer assembly of the present utility model.
[0031] As shown in the figure: 1 - operating table, 211 - rotating disc, 212 - annular top plate, 213 - cavity storage rod, 214 - blanking hole, 215 - feeding hole, 22 - rotating electric cylinder, 23 - material blocking disc, 231 - discharge hole, 232 - central hole, 3 - iron material discharge table, 31 - material sealing slide table, 311 - horizontally installed plate, 312 - first slide rail, 313 - first slide table, 314 - material sealing slide plate, 315 - fixing plate, 316 - slide rod, 317 - spring, 32 - material guiding hole, 33 - material guiding cylinder, 41 - horizontal material distributing cylinder, 42 - material distributing slide plate, 43 - semi-circular pushing hole, 51 - vertically installed plate, 52 - horizontal material taking cylinder, 53 - up and down material taking cylinder, 54 - material taking jaw, 6 - buffer assembly, 61 - first installation plate, 62 - second installation plate, 63 - second slide rail, 64 - second slide table, 65 - first limiting plate, 66 - second limiting plate. Specific embodiments
[0032] The following will further describe the present utility model in detail in conjunction with the attached Figure 1 - attached Figure 10 drawings:
[0033] The embodiment of the present utility model discloses a device for continuously feeding and distributing a large number of magnet materials without interruption. As shown in Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 7 , Figure 8 shown, a device for continuously feeding and distributing a large number of magnet materials without interruption of the present utility model includes an operating table 1, and further includes:
[0034] The material storage mechanism, which includes a rotary material storage cylinder, a rotary electric cylinder 22, and a material blocking disc 23; the top of the operation table 1 is fixedly installed with the material blocking disc 23, the bottom of the material blocking disc 23 is provided with a discharge hole 231, and a central hole 232 is provided at the center of the material blocking disc 23. The top of the operation table 1 is fixedly installed with the rotary electric cylinder 22 through bolts. The output end of the rotary electric cylinder 22 passes through the central hole 232 of the material blocking disc 23 and is rotatably connected to the rotary material storage cylinder;
[0035] The iron discharge table 3 is fixedly connected to the top of the operation table 1 and is arranged below the discharge hole 231 at the bottom of the material blocking disc 23. The side wall of the iron discharge table 3 is fixedly installed with a sealing slide table 31 for blocking the discharge hole 231 through bolts;
[0036] The material distribution mechanism, which includes a horizontal material distribution cylinder 41, a connecting plate, and a material distribution slide plate 42; the top of the operation table 1 is fixedly installed with the horizontal material distribution cylinder 41. The top of the cylinder body of the horizontal material distribution cylinder 41 is fixedly connected with the material distribution slide plate 42 through the connecting plate, and the material distribution slide plate 42 can slide along the top of the iron discharge table 3;
[0037] The material taking mechanism is fixedly installed on the side wall of the vertical installation plate 51. The material taking mechanism is arranged above the iron discharge table 3 through the vertical installation plate 51. The material taking mechanism includes a horizontal material taking cylinder 52, a vertical and horizontal material taking cylinder 53, a connecting plate, a material taking gripper 54, and a buffer assembly 6; the side wall of the vertical installation plate 51 is fixedly installed with the horizontal material taking cylinder 52. The side wall of the cylinder body of the horizontal material taking cylinder 52 is fixedly installed with the vertical and horizontal material taking cylinder 53 through the connecting plate. The side wall of the cylinder body of the vertical and horizontal material taking cylinder 53 is fixedly installed with the buffer assembly 6 through bolts, and the side wall of the cylinder body of the vertical and horizontal material taking cylinder 53 is movably connected with the material taking gripper 54 through the buffer assembly 6;
[0038] In this embodiment, the material storage mechanism, the iron discharge table 3, and the material distribution mechanism are all installed on the top of the operation table 1. The material taking mechanism is fixedly arranged beside the operation table 1 through the vertical installation plate 51 and is located above the iron discharge table 3. The specific shape of the material blocking disc 23 is as Figure 4 shown. Only one discharge hole 231 is provided at the bottom of the material blocking disc 23. All the magnet materials in the rotary material storage cylinder fall onto the lower iron discharge table 3 from the discharge hole 231. The rotary electric cylinder 22 is fixedly installed on the top of the operation table 1 through bolts and is located below the material blocking disc 23.
[0039] The material of the iron discharging table 3 is metallic iron or other magnetizable metals. The advantage of this is that the magnet materials in the rotating storage cylinder can be attracted by the iron discharging table 3 and more easily fall onto the surface of the iron discharging table 3, and will be fixed on its surface and not easily fall off; when the material discharging hole 214 of the rotating disk 211 corresponds to the material discharging hole 231 of the baffle disk 23, the magnet materials will fall onto the surface of the iron discharging table 3 under the action of gravity and the magnetic attraction of the iron discharging table 3. It should be noted that the distance between the baffle disk 23 and the iron discharging table 3 should be 1.3 times the height of a single magnet material. The advantage of this is that it can ensure that only one magnet material falls onto the surface of the iron discharging table 3 each time and is pushed out by the material distributing slide plate 42.
[0040] The material distributing mechanism is fixedly installed on the top of the operating table 1. The specific shape of the material distributing slide plate 42 is as Figure 8 shown. The material distributing slide plate 42 is arranged between the iron discharging table 3 and the baffle disk 23. When the horizontal material distributing air cylinder 41 is started, the material distributing slide plate 42 can slide back and forth along the top of the iron discharging table 3 and push the magnet materials from one end of the iron discharging table 3 to the other end. Preferably, a semi-circular material pushing hole 43 for accommodating the magnet materials is provided at the top of the material distributing slide plate 42. When the material distributing slide plate 42 moves to the lower side of the material discharging hole 231, the semi-circular material pushing hole 43 at the edge of the material distributing slide plate 42 is just below the material discharging hole 231. After the magnet materials fall, they will be wrapped by the semi-circular material pushing hole 43 and move along with the material distributing slide plate 42. It should be noted that the material of the material distributing slide plate 42 should be stainless steel or other non-magnetizable metals. In this embodiment, the horizontal material distributing air cylinder 41 is a slide table air cylinder. The slide table air cylinder includes a cylinder body and a cylinder guide rail. Such a structure can ensure the stability of the operation of the cylinder body. Therefore, using a slide table air cylinder in this embodiment will make the movement of the material distributing slide plate 42 smoother.
[0041] The vertical mounting plate 51 is a common component for fixing in large equipment. Its function in this application is to fix the material taking mechanism. At the same time, the material taking mechanism can also be installed on positions such as walls and roofs, as long as the positional relationship between the material taking mechanism and the iron discharging table 3 is ensured. It should be noted that the material of the part of the material taking jaw 54 in contact with the magnet materials should be stainless steel, other non-magnetizable metals or other non-magnetizable non-metallic materials. By setting the horizontal material taking air cylinder 52, the up and down material taking air cylinder 53 and the material taking jaw 54, the single magnet material pushed out by the material distributing slide plate 42 can be clamped and transferred for the next process. Preferably, the horizontal material taking air cylinder 52 is a rodless air cylinder.
[0042] As Figures 1-5As shown in the figure, the rotating storage cylinder includes a rotating disk 211, an annular top plate 212, and a cavity storage rod 213; the rotating disk 211 is installed at the output end of the rotating electric cylinder 22 through bolts and can rotate with the output end of the rotating electric cylinder 22. A plurality of material discharge holes 214 are formed in the top of the rotating disk 211. One end of the cavity storage rod 213 is fixedly connected to each material discharge hole 214. The other end of the cavity storage rod 213 is fixedly connected to the annular top plate 212. A plurality of material loading holes 215 are formed in the top of the annular top plate 212. Each material loading hole 215 corresponds to a cavity storage rod 213; in this embodiment, the shape of the rotating disk 211 is as Figure 5 shown, the shape of the cavity storage rod 213 is as Figure 2 shown, the output end of the rotating electric cylinder 22 is at the top of the rotating electric cylinder 22 and passes through the central hole 232 of the material blocking disk 23. The rotating disk 211 is installed at the output end of the rotating electric cylinder 22 and is located above the material blocking disk 23. The magnet materials in the cavity storage rod 213 will fall onto the top of the material blocking disk 23 through the material discharge holes 214 on the top of the rotating disk 211. Only when the material discharge hole 214 corresponds to the material discharge hole 231 on the material blocking disk 23, the magnet materials will fall onto the surface of the iron material discharge table 3. When the magnet materials in one cavity storage rod 213 are exhausted, the rotating electric cylinder 22 will start again, so that the magnet materials in the next cavity storage rod 213 pass through the material discharge hole 214 and the material discharge hole 231 and fall onto the surface of the iron material discharge table 3. It should be noted that the distance between the rotating disk 211 and the material blocking disk 23 should be less than the height of a single magnet material. The materials of the rotating disk 211, the annular top plate 212, and the cavity storage rod 213 should be stainless steel or other metals that will not be magnetized. Preferably, the number of the cavity storage rods 213, the material loading holes 215, and the material discharge holes 214 is N, and N≥12.
[0043] As Figure 6 , Figure 7 , Figure 8 shown, a material guiding hole 32 is formed at the position corresponding to the material discharge hole 231 on the top of the iron material discharge table 3. A material guiding cylinder 33 is fixedly installed at the position corresponding to the material guiding hole 32 on the top of the operating table 1. The output end of the material guiding cylinder 33 extends into the material guiding hole 32 and is flush with the material guiding hole 32; in this embodiment, the specific positions of the material guiding hole 32 and the material guiding cylinder 33 are as Figure 6As shown, the material guiding hole 32 and the material discharging hole 231 on the material blocking disc 23 are located at the same axial center position. The material guiding cylinder 33 is arranged on the lower side of the iron material discharging table 3. The output end of the material guiding cylinder 33 extends into the material guiding hole 32 from the lower side of the material guiding hole 32 and is flush with the material guiding hole 32. Preferably, the output end of the material guiding cylinder 33 is made of metallic iron or other magnetizable metal materials. When the magnet materials in the cavity storage rod 213 fall smoothly, first, the material guiding cylinder 33 is activated to make its output end extend upward. The output end of the material guiding cylinder 33 passes through the material discharging hole 231 and the material discharging hole 214 and slightly enters the inside of the cavity storage rod 213. At this time, the output end of the material guiding cylinder 33 contacts the magnet materials. Then, the output end of the material guiding cylinder 33 retracts downward into the material guiding hole 32, thereby driving the magnet materials inside the cavity storage rod 213 to fall downward onto the top of the iron material discharging table 3.
[0044] As Figure 8 , Figure 9As shown in the figure, the sealing material sliding table 31 includes a horizontally installed plate 311, a first slide rail 312, a first sliding table 313, a sealing material sliding plate 314, and a fixing plate 315; a horizontally installed plate 311 is fixedly installed on the side wall of the iron material discharging table 3, the top of the horizontally installed plate 311 is fixedly connected to a first slide rail 312, the top of the first slide rail 312 is slidably connected to a first sliding table 313, the top of the first sliding table 313 is fixedly connected to a sealing material sliding plate 314 by bolts, a slide bar 316 is welded to the side wall of the sealing material sliding plate 314, the top of the horizontally installed plate 311 is fixedly connected to a fixing plate 315, a through hole is provided on the side wall of the fixing plate 315, the slide bar 316 passes through the through hole and slides in the through hole along with the sealing material sliding plate 314, a spring 317 is sleeved on the side wall of the slide bar 316, one end of the spring 317 is welded to the side wall of the sealing material sliding plate 314, and the other end of the spring 317 is welded to the side wall of the fixing plate 315; in this embodiment, the sealing material sliding plate 314 and the material distribution sliding plate 42 are at the same horizontal height, and the horizontally installed plate 311 and the fixing plate 315 can limit the first sliding table 313 to prevent the first sliding table 313 from sliding out. When the device is not working, the sealing material sliding plate 314 is located below the material discharging hole 231 and closes the material discharging hole 231, and at this time the spring 317 is in a normal state without being stressed. When in use, the horizontal material distribution cylinder 41 drives the material distribution sliding plate 42 to move towards the rotary storage cylinder. During this process, the material distribution sliding plate 42 will push the sealing material sliding plate 314, so that the sealing material sliding plate 314 and the first sliding table 313 slide along the first slide rail 312 together. When the material distribution sliding plate 42 reaches the predetermined position, the spring 317 on the side wall of the sealing material sliding plate 314 is in a compressed state, and then the horizontal material distribution cylinder 41 drives the material distribution sliding plate 42 to start distributing materials. When the material distribution sliding plate 42 moves towards the other end of the iron material discharging table 3, the spring 317 will recover its elastic deformation and push the sealing material sliding plate 314 to abut against the side wall of the material distribution sliding plate 42. As the material distribution sliding plate 42 continues to move, when the sealing material sliding plate 314 reaches below the material discharging hole 231, it will stop moving under the action of the spring 317 and the horizontally installed plate 311 and close the material discharging hole 231 to prevent the magnet materials from continuing to fall.
[0045] As Figure 3 , Figure 10 shown, the buffer assembly 6 includes a first mounting plate 61, a second mounting plate 62, a second slide rail 63, a second sliding table 64, a first limiting plate 65, and a second limiting plate 66; a first mounting plate 61 is fixedly connected to the side wall of the cylinder body of the up and down material taking cylinder 53, a first limiting plate 65 and a second limiting plate 66 are respectively fixedly connected to the top wall and the bottom wall of the first mounting plate 61, a second slide rail 63 is fixedly connected to the side wall of the first mounting plate 61, a second sliding table 64 is slidably connected to the side wall of the second slide rail 63, a second mounting plate 62 is fixedly connected to the side wall of the second sliding table 64, and a material taking gripper 54 is fixedly installed on the side wall of the second mounting plate 62; in this embodiment, the specific structure of the buffer assembly 6 is as Figure 10As shown. When in use, the up-and-down material-taking cylinder 53 is activated, and the material-taking gripper 54 moves downward and stops at the top of the iron discharging table 3. At this time, the sliding table will slide slightly upward. The advantage of this is that it not only prevents the up-and-down material-taking cylinder 53 from driving the material-taking gripper 54 to damage the iron discharging table 3, but also prevents the material-taking gripper 54 from being damaged.
[0046] The implementation principle of the embodiment of the present utility model is as follows:
[0047] First, the magnet materials attracted to each other are sequentially placed into the feeding holes 215 and fill all the cavity storage rods 213. Then, the rotary electric cylinder 22 is activated, and the rotary electric cylinder 22 drives the connected rotary disk 211 to rotate, so that the discharging hole 214 of the rotary disk 211 corresponds to the discharging hole 231 of the baffle disk 23.
[0048] Secondly, the horizontal material-distributing cylinder 41 is activated, and the material-distributing slide plate 42 moves towards the discharging hole 231 and pushes the sealing slide plate 314 to slide along the first slide rail 312, so that the sealing of the discharging hole 231 by the sealing slide plate 314 is released. When the material-distributing slide plate 42 reaches the predetermined position, the magnet materials will fall onto the surface of the iron discharging table 3 under the action of gravity and the magnetic attraction of the iron discharging table 3. Then, the horizontal material-distributing cylinder 41 drives the material-distributing slide plate 42 to start material distribution. When the material-distributing slide plate 42 moves towards the other end of the iron discharging table 3, the spring 317 will push the sealing slide plate 314 to seal the discharging hole 231 so that the material-distributing slide plate 42 can return. This process is repeated to achieve the material distribution and discharging of a single magnet material.
[0049] Thirdly, when the magnet materials in the cavity storage rod 213 do not fall smoothly, first, the guiding cylinder 33 is activated and its output end extends upward. The output end of the guiding cylinder 33 extends upward and guides the magnet materials inside the cavity storage rod 213 downward to the top of the iron discharging table 3.
[0050] Finally, the up-and-down material-taking cylinder 53 is activated, the material-taking gripper 54 moves downward and clamps the magnet materials on the top of the iron discharging table 3. Then, the horizontal material-taking cylinder 52 is activated to make the material-taking gripper 54 move horizontally to complete the transfer of the magnet materials.
[0051] Repeating the above operations can complete the material distribution and discharging of a single magnet material.
[0052] The above has shown and described the basic principles, main features and advantages of the present utility model. Each component mentioned in the present utility model is a common technology in the existing field. Those skilled in the art should understand that the present utility model is not limited by the above embodiments. What is described in the above embodiments and the specification only illustrates the principle of the present utility model. Without departing from the spirit and scope of the present utility model, the present utility model will have various changes and improvements, and these changes and improvements all fall within the scope of the present utility model claimed. The scope of protection claimed by the present utility model is defined by the appended claims and their equivalents.
Claims
1. An apparatus for continuously feeding and distributing a large quantity of magnet materials without interruption, comprising an operating table (1), characterized in that, It further includes: A material storage mechanism, which includes a rotating material storage cylinder, a rotating electric cylinder (22), and a material blocking disc (23); a material blocking disc (23) is fixedly installed on the top of the operation table (1), a discharge hole (231) is opened at the bottom of the material blocking disc (23), a central hole (232) is opened at the center of the material blocking disc (23), a rotating electric cylinder (22) is fixedly installed on the top of the operation table (1) through bolts, and the output end of the rotating electric cylinder (22) passes through the central hole (232) of the material blocking disc (23) and is rotatably connected to the rotating material storage cylinder; An iron discharge table (3), which is fixedly connected to the top of the operation table (1) and is arranged below the discharge hole (231) at the bottom of the material blocking disc (23), and a sealing material sliding table (31) for blocking the discharge hole (231) is fixedly installed on the side wall of the iron discharge table (3) through bolts; A material distribution mechanism, which includes a horizontal material distribution cylinder (41), a connecting plate, and a material distribution sliding plate (42); a horizontal material distribution cylinder (41) is fixedly installed on the top of the operation table (1), the top of the cylinder body of the horizontal material distribution cylinder (41) is fixedly connected to the material distribution sliding plate (42) through a connecting plate, and the material distribution sliding plate (42) can slide along the top of the iron discharge table (3); A material taking mechanism, which is fixedly installed on the side wall of the vertical mounting plate (51), and the material taking mechanism is arranged above the iron discharge table (3) through the vertical mounting plate (51), and the material taking mechanism includes a horizontal material taking cylinder (52), a vertical and horizontal material taking cylinder (53), a connecting plate, a material taking jaw (54), and a buffer assembly (6); a horizontal material taking cylinder (52) is fixedly installed on the side wall of the vertical mounting plate (51), the side wall of the cylinder body of the horizontal material taking cylinder (52) is fixedly installed with a vertical and horizontal material taking cylinder (53) through a connecting plate, a buffer assembly (6) is fixedly installed on the side wall of the cylinder body of the vertical and horizontal material taking cylinder (53) through bolts, and a material taking jaw (54) is movably connected to the side wall of the cylinder body of the vertical and horizontal material taking cylinder (53) through the buffer assembly (6).
2. The device for continuously feeding and distributing a large quantity of magnet materials according to claim 1, characterized in that The rotating material storage cylinder includes a rotating disc (211), an annular top plate (212), and a cavity storage rod (213); the rotating disc (211) is installed on the output end of the rotating electric cylinder (22) through bolts and can rotate with the output end of the rotating electric cylinder (22), a plurality of material discharge holes (214) are opened at the top of the rotating disc (211), one end of a cavity storage rod (213) is fixedly connected in each material discharge hole (214), the other end of the cavity storage rod (213) is fixedly connected to an annular top plate (212), and a plurality of material loading holes (215) are opened at the top of the annular top plate (212), and each material loading hole (215) corresponds to a cavity storage rod (213).
3. The device for continuously feeding and distributing a large quantity of magnet materials according to claim 2, characterized in that, A material guiding hole (32) is formed at a position on the top of the iron material discharging table (3) corresponding to the material discharging hole (231). A material guiding cylinder (33) is fixedly installed at a position on the top of the operating table (1) corresponding to the material guiding hole (32). The output end of the material guiding cylinder (33) extends into the material guiding hole (32) and is flush with the material guiding hole (32).
4. The device for continuously feeding and distributing a large quantity of magnet materials according to claim 3, characterized in that, The material sealing sliding table (31) includes a horizontally arranged mounting plate (311), a first slide rail (312), a first sliding table (313), a material sealing sliding plate (314), and a fixing plate (315). The horizontally arranged mounting plate (311) is fixedly installed on the side wall of the iron material discharging table (3). The top of the horizontally arranged mounting plate (311) is fixedly connected to the first slide rail (312). The top of the first slide rail (312) is slidably connected to the first sliding table (313). The top of the first sliding table (313) is fixedly connected to the material sealing sliding plate (314) by bolts. A slide bar (316) is welded to the side wall of the material sealing sliding plate (314). The top of the horizontally arranged mounting plate (311) is fixedly connected to the fixing plate (315). A through hole is formed in the side wall of the fixing plate (315). The slide bar (316) passes through the through hole and slides in the through hole along with the material sealing sliding plate (314). A spring (317) is sleeved on the side wall of the slide bar (316). One end of the spring (317) is welded to the side wall of the material sealing sliding plate (314), and the other end of the spring (317) is welded to the side wall of the fixing plate (315).
5. The device for continuously feeding and distributing a large quantity of magnet materials according to claim 4, characterized in that, The buffer assembly (6) includes a first mounting plate (61), a second mounting plate (62), a second slide rail (63), a second sliding table (64), a first limiting plate (65), and a second limiting plate (66). The side wall of the cylinder body of the up and down material taking cylinder (53) is fixedly connected to the first mounting plate (61). The top wall and the bottom wall of the first mounting plate (61) are respectively fixedly connected to the first limiting plate (65) and the second limiting plate (66). The side wall of the first mounting plate (61) is fixedly connected to the second slide rail (63). The side wall of the second slide rail (63) is slidably connected to the second sliding table (64). The side wall of the second sliding table (64) is fixedly connected to the second mounting plate (62). A material taking gripper (54) is fixedly installed on the side wall of the second mounting plate (62).
6. The device for continuously feeding and distributing a large quantity of magnet materials according to claim 1, characterized in that, The horizontal material distributing cylinder (41) is a slide table cylinder, and the horizontal material taking cylinder (52) is a rodless cylinder.
7. An apparatus for continuously feeding and distributing a large quantity of magnet materials without interruption according to claim 1, characterized in that, The distance between the material blocking disc (23) and the iron material discharging table (3) is 1.3 times the height of a single magnet material.
8. An apparatus for continuously feeding and distributing a large quantity of magnet materials without interruption, as claimed in claim 1, wherein A semi-circular pushing hole (43) for accommodating magnet materials is formed at the top of the material distributing sliding plate (42).
9. The device for continuously feeding and distributing a large quantity of magnet materials according to claim 2, characterized in that, The number of the cavity storage rods (213), the feeding holes (215), and the discharging holes (214) is N, and N≥12.