Efficient modular rod-shaped material girdling equipment

By designing a highly efficient modular bar-shaped material ring cutting equipment, the problems of deformation and low transportation efficiency during the cutting process of bar-shaped materials have been solved, realizing automated and modular feeding, cutting and collection, and improving production efficiency and quality.

CN223671406UActive Publication Date: 2025-12-16LUZHOU YIQIAO TECH CO LTD
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Patent Information

Application Number
CN202423230586.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-26
Publication Date
2025-12-16
Estimated Expiration
2034-12-26

AI Technical Summary

Technical Problem

The existing rod-shaped materials are prone to deformation during the cutting process, which leads to a reduction in the accuracy of circumferential cutting. In addition, the existing transport carriers have limited transport capacity, which is time-consuming and labor-intensive, affecting the cutting efficiency and quality.

Method used

Design an efficient modular bar-shaped material ring cutting device, including a conveying device, a cutting device, and a collecting device. It adopts an automated pushing mechanism and a drive mechanism to realize modular feeding and cutting, uses a positioning frame and a cutting blade assembly for precise cutting, and collects materials by sorting through a guide plate and a collecting box.

Benefits of technology

It improves the efficiency of conveying and cutting rod-shaped materials, ensures cutting quality, and realizes automated and modular conveying, cutting and collection operations, adapting to the processing needs of materials of different specifications, thereby improving production efficiency and product quality.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model relates to the technical field of girdling devices, and provides efficient modularized rod-shaped material girdling equipment which comprises a conveying device, a cutting device and a collecting device. The conveying device comprises a storage cavity used for containing the rod-shaped materials and a pushing mechanism used for pushing the rod-shaped materials in the storage cavity to move in the length direction of the storage cavity, and the pushing mechanism can push the rod-shaped materials into the cutting device at the tail end of the material storage box. The cutting device comprises a pair of symmetrically-arranged first cutter sets and a pair of first driving mechanisms used for driving the pair of first cutter sets to move oppositely or oppositely in the transverse direction. The collecting device comprises a material guide plate arranged below the discharging end of the cutting device, and a collecting box is arranged below each of the two ends of the material guide plate. The whole working process is tightly matched, automatic and modularized conveying, cutting and collecting operation is achieved, and the working efficiency and quality are greatly improved.
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Description

TECHNICAL FIELD

[0001] The utility model relates to ring cutting device technical field, specifically, relates to a kind of efficient modularization stick material ring cutting equipment. BACKGROUND

[0002] At present, in the cutting process of stick material, because of the form and use demand of stick, the stick material is usually cut in a ring cutting mode during processing to control the cutting size and cutting depth of the cutting surface of the part, so as to meet the demand of different length, different ring cutting depth, specific shape and size of product or assembly.

[0003] The common processing mode is to cut the cutting point of stick material directly by cutting equipment. Considering the stress problem of stick material during cutting, generally speaking, during the local compression process of stick material, due to the local pressure of cutting equipment on the cutting point, the local area of stick material is compressed, which may cause deformation of the cutting point, and even cannot form a regular ring cutting plane, thereby affecting the ring cutting precision and the quality of the ring cutting surface of the material. Especially for mass production, the control of precision is more to reduce error and avoid product size deviation caused by material cutting swing.

[0004] And during the cutting of stick material, the stick material needs to be transported to the cutting device by using a transport carrier. The existing transport carrier is basically the existing ordinary transport belt structure, which has limited transport capacity, and workers need to put materials on the transport belt many times, which not only wastes time and effort, but also has poor cooperation effect with the cutting device, resulting in greatly reduced cutting efficiency.

[0005] Therefore, how to optimize the conveying efficiency in the existing mass production process of stick material, the ring cutting quality and processing efficiency, and as far as possible to meet more working condition requirements to realize modularization feeding is worth studying. UTILITY MODEL CONTENT

[0006] The utility model aims at providing a kind of efficient modularization stick material ring cutting equipment, and its overall work flow is closely matched, realizes the automatic, modularization conveying, cutting and collection operation, greatly improves work efficiency and quality.

[0007] The embodiment of the utility model is realized by the following technical scheme:

[0008] A kind of efficient modularization stick material ring cutting equipment, including the conveying device for conveying stick material, the cutting device located at the conveying end of conveying device and the collection device located at the end of cutting device;

[0009] The conveying device comprises a workbench and a storage box slidingly arranged on the workbench, a plurality of storage cavities for placing rod-shaped materials are arranged in the length direction of the storage box (a plurality of partitions are arranged side by side in the length direction of the storage box, and a storage cavity for placing rod-shaped materials is formed between adjacent two partitions), and a plurality of rod-shaped materials are sequentially and vertically arranged in the storage cavities; the conveying device further comprises a pushing mechanism for pushing the rod-shaped materials in the storage cavities to move along the length direction of the storage cavities, and the pushing mechanism can push the rod-shaped materials into a cutting device at the end of the storage box.

[0010] The cutting device comprises a pair of first cutter groups symmetrically arranged on the left and right sides of the rod-shaped material and a pair of first driving mechanisms for driving the pair of first cutter groups to move in the transverse direction relative to or away from each other; the first cutter group comprises a plurality of transverse cutters, and the plurality of transverse cutters on the left and right sides are arranged staggered with each other.

[0011] The collecting device comprises a guide plate arranged below the discharging end of the cutting device, a collecting box is arranged below each end portion of the guide plate, and the opening of one of the collecting boxes is arranged corresponding to one end portion of the guide plate; and the guide plate is connected with a third driving mechanism for driving the guide plate to tilt towards the two end portions of the guide plate, so that the materials on the guide plate fall into the collecting boxes below.

[0012] Further, the third driving mechanism comprises but is not limited to a rotary air cylinder or a rotary motor.

[0013] Further, a limiting device is arranged below the guide plate, and the limiting device can limit the tilt angle of the guide plate; specifically, the limiting device comprises a limiting rod below the guide plate, and one end of the guide plate can abut against the limiting rod when the guide plate is tilted to a certain angle.

[0014] Further, the cutting device further comprises a positioning frame arranged between the pair of first cutter groups, and a material passage is arranged in the center of the positioning frame for the rod-shaped material to pass through;

[0015] The two side surfaces of the positioning frame are respectively provided with a plurality of cutting passages, and one of the cutting passages on the two sides is arranged corresponding to one of the pair of first cutter groups.

[0016] The cutting passage is arranged on the side surface of the positioning frame and extends into the positioning frame; and the two cutting passages opposite to each other are arranged staggered with each other.

[0017] Further, the first driving mechanism comprises a first driving device and a support plate arranged at the output end of the first driving device, and a first cutter group is arranged on the inner side of the support plate; the first driving device includes but is not limited to a driving cylinder, an oil cylinder or an electric cylinder.

[0018] Further, the first cutter group comprises a plurality of transverse cutters arranged side by side, and a certain space is uniformly distributed between the two adjacent transverse cutters on the same side.

[0019] Further, the bottom of the support plate is provided with a plurality of first sliding blocks, and the bottom of each first sliding block is slidingly connected to a horizontal sliding rail.

[0020] Further, along the conveying direction of the rod-shaped material, a second cutter group arranged above the rod-shaped material is further included, and the second cutter group comprises a vertical cutter and a second driving mechanism for driving the vertical cutter to move reciprocatingly along the longitudinal direction.

[0021] Further, the second driving mechanism comprises a second driving device and a support beam arranged at the output end of the second driving device, and the two ends of the support beam are provided with second sliding blocks which are slidingly connected to two longitudinal guide rails; the second driving device includes but is not limited to a driving cylinder, an oil cylinder or an electric cylinder.

[0022] Further, a horizontal support beam and two longitudinal support beams arranged at the bottom of the two sides of the horizontal support beam are further included, and the second driving device is arranged on the horizontal support beam, and the two longitudinal guide rails are respectively arranged on the inner sides of the two longitudinal support beams.

[0023] Further, a plurality of cutting channels on the two sides are arranged at the same or different depths.

[0024] Further, the length of the transverse cutter is not less than the depth of the cutting channel, and preferably, the length of the transverse cutter is consistent with the depth of the cutting channel.

[0025] Further, along the conveying direction of the rod-shaped material, a discharging frame is further arranged at the discharging end of the positioning frame, the discharging frame is arranged coaxially with the material channel and has the same width and height as the material channel, and the discharging end of the discharging frame is located above the guide plate.

[0026] Further, the pushing mechanism comprises a first linear quantitative pushing device arranged above the storage tank and a pushing plate connected to the bottom of the first sliding block of the first linear quantitative pushing device; the first linear quantitative pushing device is fixed to the workbench through a support frame, the height of the pushing plate is not less than the height of the partition plate, and the pushing plate can push the rod-shaped material in the storage cavity to move along the length direction of the storage cavity.

[0027] Further, the workbench and the storage box are provided with a pushing mechanism for driving the storage box to reciprocate along the width direction of the workbench; specifically, the pushing mechanism can include the following structure: the top surface of the workbench is transversely provided with a plurality of sliding grooves along the width direction, the bottom surface of the storage box is transversely provided with a plurality of sliding mechanisms along the width direction, one sliding mechanism is correspondingly arranged with one sliding groove and can slide transversely along the sliding groove; the sliding mechanism includes a plurality of second linear quantitative pushing devices transversely arranged along the width direction at the bottom of the workbench, the second sliding blocks on the second linear quantitative pushing devices are arranged on the bottom surface of the storage box, and one second sliding block is correspondingly arranged with one sliding groove.

[0028] Further, the pushing mechanism further includes a sliding support device arranged between the workbench and the storage box to ensure the stability of the support when the storage box moves transversely; specifically, the sliding support device can adopt the following manner: a plurality of guide rails are arranged on the top surface of the workbench along the width direction, and a plurality of guide sliding blocks are further arranged on the bottom of the storage box, one guide sliding block is correspondingly arranged with one guide rail and can slide along the guide rail. In addition, the sliding support device can also replace the cooperation mode of the guide sliding block and the guide rail in the following manner, such as the conveying mode of the belt and the chain, which is not limited to the cooperation mode of the guide sliding block and the guide rail.

[0029] Further, the width of the storage cavity is consistent with the outer diameter of the rod-shaped material.

[0030] Further, the partition plate and the storage box are detachably connected.

[0031] Further, the first linear quantitative pushing device and the second linear quantitative pushing device are connected with an external central control system. It should be noted that the first linear quantitative pushing device and the second linear quantitative pushing device include but are not limited to a linear module.

[0032] The technical scheme of the utility model has at least the following advantages and beneficial effects:

[0033] The feeding mode of the rod-shaped material can feed the batch rod-shaped material in one time or in several times, and cut the batch rod-shaped material at the same time, so that the conveying and cutting efficiency is greatly improved, and modular feeding is realized; different length or depth of the ring cutting material or the granular material can be cut, the processing efficiency and the processing quality of the material are greatly improved, different specifications or types of materials collected can be guided and collected respectively, the overall working process is closely matched, the automatic and modular conveying, cutting and collecting operations are realized, and the working efficiency and the quality are greatly improved. BRIEF DESCRIPTION OF DRAWINGS

[0034] In order to more clearly illustrate the technical scheme of the embodiments of the present application, the drawings needed to be used in the embodiments will be briefly introduced as follows. It should be understood that the following drawings only show some embodiments of the present application, and therefore should not be regarded as a limitation to the scope. Other related drawings can also be obtained by those skilled in the art without creative labor on the premise of not paying creative labor.

[0035] Figure 1 The structural schematic view of the high-efficiency modular rod-shaped material ring cutting equipment provided by the embodiments of the present application is shown in the figure.

[0036] Figure 2 The side view of the conveying device provided by the embodiments of the present application is shown in the figure.

[0037] Figure 3 The top view of the conveying device provided by the embodiments of the present application is shown in the figure.

[0038] Figure 4 The top view of the internal structure of the workbench provided by the embodiments of the present application is shown in the figure.

[0039] Figure 5 The structural schematic view of the cutting device provided by the embodiments of the present application is shown in the figure.

[0040] Figure 6 The top view of the cutting device provided by the embodiments of the present application is shown in the figure.

[0041] Figure 7 The top view of the cutting device provided by the embodiments of the present application is shown in the figure.

[0042] Figure: 1-conveying device, 11-workbench, 111-slideway, 12-material storage box, 121-baffle, 122-storage cavity, 13-pushing mechanism, 131-first linear quantitative pushing device, 132-pushing plate, 133-first sliding block, 14-second linear quantitative pushing device, 15-second sliding block, 16-guiding sliding block, 17-rail, 2-cutting device, 21-second driving mechanism, 211-second driving device, 212-transverse support beam, 213-supporting cross beam, 214-second sliding block, 215-longitudinal rail, 216-longitudinal support beam, 22-vertical cutter, 23-cross cutter, 24-first driving mechanism, 241-first driving device, 242-supporting plate, 25-positioning frame, 251-cutting channel, 26-discharging frame, 27-rod-shaped material, 3-collecting device, 31-collecting box, 32-third driving mechanism, 33-guiding plate, 34-limiting device. DETAILED DESCRIPTION

[0043] In order to make the purpose, technical scheme and advantages of the embodiments of the utility model clearer, the technical scheme of the embodiments of the utility model will be described clearly and completely in combination with the drawings in the embodiments of the utility model below. Obviously, the described embodiments are part of the embodiments of the utility model, rather than all the embodiments. The components of the embodiments of the utility model described and shown in the drawings here can be arranged and designed in various different configurations.

[0044] Embodiment 1

[0045] A high-efficiency modular rod-shaped material ring cutting device, comprising a conveying device 1 for conveying rod-shaped materials 27, a cutting device 2 located at the conveying end of the conveying device 1, and a collecting device 3 located at the end of the cutting device 2.

[0046] The conveying device 1 comprises a workbench 11 and a storage box 12 slidingly arranged on the workbench 11. A plurality of storage cavities 122 for placing rod-shaped materials 27 are arranged in the length direction of the storage box 12 (a plurality of partitions 121 are arranged side by side in the length direction of the storage box 12, and a storage cavity 122 for placing rod-shaped materials 27 is formed between adjacent two partitions 121). A plurality of rod-shaped materials 27 are sequentially and vertically arranged in the storage cavities 122. The conveying device 1 further comprises a pushing mechanism 13 for pushing the rod-shaped materials 27 in the storage cavities 122 to move along the length direction of the storage cavities 122. The pushing mechanism 13 can push the rod-shaped materials 27 to the cutting device 2 at the end of the storage box 12.

[0047] The cutting device 2 comprises a pair of first cutter groups symmetrically arranged on the left and right sides of the rod-shaped materials 27 and a pair of first driving mechanisms 24 for driving the pair of first cutter groups to move in opposite directions or in the same direction in the transverse direction. The first cutter group comprises a plurality of transverse cutters 23, and the transverse cutters 23 on the left and right sides are arranged staggered.

[0048] The collecting device 3 comprises a guide plate 33 arranged below the discharge end of the cutting device 2. A collecting box 31 is arranged below each end of the guide plate 33, and the opening of the collecting box 31 is arranged corresponding to one end of the guide plate 33. The guide plate 33 is connected with a third driving mechanism 32 for driving the guide plate 33 to tilt towards the two ends of the guide plate 33, so that the materials on the guide plate 33 fall into the collecting boxes 31 below.

[0049] Working principle: it needs to be explained that the utility model is automatic control, namely each drive mechanism or part etc. are electrically connected or signal connected with external central control system, to make the cooperation between each part more precise and automatic, improve work efficiency and quality, the utility model discloses in use, first, the batch rod-shaped material 27 is placed in multiple storage cavities 122 in proper order, when being placed in the storage cavity 122, multiple rod-shaped materials 27 are placed in sequence in the longitudinal direction; then adjust the storage tank 12 along the workbench 11 left and right sliding, to make the storage cavity 122 directly opposite the material passageway of cutting device 2 to supply cutting to material, then the rod-shaped material 27 in the storage cavity 122 can be moved along the length direction of the storage cavity 122 by using the pushing mechanism 13, thereby the rod-shaped material 27 is pushed to the cutting device 2 between a pair of first cutter groups and cutting operation is carried out, when cutting, the first drive mechanism 24 can be controlled by the external central control system to drive a pair of the first cutter group to move relatively in the transverse direction, thereby the multiple transverse cutting knives 23 on the left and right sides are moved relatively, and then the rod-shaped material 27 is ring cut, and the moving depth of the transverse cutting knife 23 can be controlled by the central control system to control the moving distance of the first drive mechanism 24, thereby the material with different ring cutting depths can be obtained; more importantly, the two cutting passageways 251 opposite each other are staggered, so that the rod-shaped material 27 can be ring cut on the two symmetrical sides to obtain rod-shaped ring cut material; and the cut material can fall to the guide plate 33, and be guided to the collecting box 31, and for different specifications of the cut material, the collecting device 3 can classify and collect them, specifically, the third drive mechanism 32 (such as rotary cylinder or rotary motor, the utility model does not limit this) drives the guide plate 33 to tilt to the two sides respectively, so that the material on the guide plate 33 falls into the corresponding collecting box 31 below, thereby different specifications of the material are collected respectively; in order to ensure the stability of the guide plate 33, a supporting shaft is connected on the two sides of the guide plate 33, and the third drive mechanism 32 is connected with the supporting shaft; in addition, a limiting device 34 is arranged below the guide plate 33, the limiting device 34 can limit the inclination angle of the guide plate 33; specifically, the limiting device 34 includes a limiting rod and / or a limiting plate below the guide plate 33, when the guide plate 33 is inclined to a certain angle, one end of the guide plate 33 can abut on the limiting rod and / or the limiting plate, so that the inclination angle of the guide plate 33 can be limited and the guide plate 33 is supported, and the stability of the guide plate 33 is maintained during guiding.

[0050] The feeding mode of the rod-shaped material 27 can feed the batch rod-shaped material 27 at one time, and the batch rod-shaped material 27 can be cut at the same time, so that the conveying and cutting efficiency is greatly improved. More importantly, according to the use requirement, the spacing between the partitions 121 or the height of the partitions 121 can be adjusted, so that the conveying requirement of the rod-shaped material 27 with different thicknesses can be met, and by adjusting the height of the partitions 121, rod-shaped materials 27 with different heights, that is, different quantities can be placed, so that the conveying amount of the rod-shaped material 27 to be conveyed at one time can be adaptively adjusted, and even large-scale continuous feeding can be realized. Only the storage box 12 is set to be wider, and more partitions 121 are adaptively arranged to be separated into more storage cavities 122. At the same time, the batch rod-shaped material 27 can be cut and collected, and the operation of conveying, cutting and collecting the rod-shaped material 27 can be automatically and efficiently completed.

[0051] In the embodiment, the cutting device 2 further comprises a positioning frame 25 arranged between a pair of first cutter groups, a material passage is arranged in the center of the positioning frame 25 for the rod-shaped material 27 to pass through; a plurality of cutting channels 251 are arranged on the two symmetrical side surfaces of the positioning frame 25 respectively, and one of the cutting channels 251 on the two sides is arranged corresponding to one pair of the first cutter groups; the cutting channel 251 is arranged on the side surface of the positioning frame 25 and extends into the positioning frame 25; and the two cutting channels 251 opposite to each other are arranged staggered; in this way, the positioning frame 25 can be used to limit and support the rod-shaped material 27 conveyed, and then the cross cutter 23 can penetrate the cutting channel 251 to cut the rod-shaped material 27, so that the stability during cutting can be better maintained, and the quality of the ring cutting of the product is improved.

[0052] In addition, it should be noted that the first driving mechanism 24, the first cutter group and the positioning frame 25 form a group, and are not limited to the group shown in the drawings; in other embodiments, at the end of the conveying direction of the rod-shaped material 27, a plurality of groups of the first driving mechanism 24, the first cutter group and the positioning frame 25 can be arranged in the transverse direction to cooperate with each other, so that the batch of rod-shaped materials 27 conveyed can be cut at the same time, and the processing efficiency and the degree of automation are greatly improved; similarly, the collecting device 3 also has a plurality of groups.

[0053] In addition, it needs to be explained that the extension depth of the cutting channel 251 in the positioning frame 25 can be designed and adjusted according to product needs, so that materials with different ring cutting depths can be cut; and the plurality of cutting channels 251 on both sides can be arranged with the same or different depths or different spacings, so that ring-cut materials or granular materials with different lengths can be cut; the length of the transverse cutter 23 is not less than the depth of the cutting channel 251, and preferably, the length of the transverse cutter 23 is consistent with the depth of the cutting channel 251; for example: the depth of the cutting channel 251 and the length of the transverse cutter 23 can both extend and penetrate the material channel, at this time, the cutting channel 251 and the transverse cutter 23 are recorded as A type, so that the rod-shaped material 27 can be cut into particles to obtain granular materials; in addition, if ring-cut materials are to be cut, the extension depth of the cutting channel 251 in the positioning frame 25 can be set to any width that cannot penetrate the material channel (determined according to product needs), that is, the end of the cutting channel 251 can extend into the material channel, at this time, the cutting channel 251 and the transverse cutter 23 are recorded as B, and the specific extension into the material channel is not limited by the utility model, which can be designed and changed according to processing needs, so that the material obtained by cutting is a rod-shaped ring-cut material with a symmetrical two-sided offset ring cut on the rod-shaped material 27; in addition, a plurality of Bs and an A can be distributed at intervals, and the specific distribution method can be adjusted according to the needs of use, for example, in the embodiment, the three groups of Bs and the A are arranged at intervals, so that rod-shaped ring-cut materials with a certain length can be obtained, and when collecting, the two kinds of rod-shaped ring-cut materials with different specifications obtained can be collected into different collection boxes 31, respectively, and specifically, the central control system can be used to control the third driving mechanism 32 to drive the guide plate 33 to tilt to both sides, so that the materials on the guide plate 33 fall into the corresponding collection boxes 31 below, respectively.

[0054] Preferably, along the conveying direction of the rod-shaped material 27, the discharge end of the positioning frame 25 is further provided with a discharge frame 26, the discharge frame 26 is arranged with the same width, height and coaxial center as the material channel; and the discharge end of the discharge frame 26 is located above the guide plate 33, so as to ensure that the cut materials are first guided by the discharge frame 26, then discharged from the discharge frame 26 to the guide plate 33, and then collected into the collection box 31 at the bottom.

[0055] In the embodiment, the first driving mechanism 24 comprises a first driving device 241 and a support plate 242 arranged at the output end of the first driving device 241, and a first cutter group is arranged at the inner side of the support plate 242. In this way, the first driving device 241 can be used to drive the support plate 242 to move, thereby driving the first cutter group to move, so as to cut the material. It should be noted that the first driving device 241 is connected with an external central control system, so that the movement track of the first cutter group can be better controlled during processing, so that the processing efficiency is higher and the product quality is better.

[0056] In the embodiment, the first cutter group comprises a plurality of transverse cutters 23 arranged side by side, and a certain interval is uniformly distributed between adjacent two transverse cutters 23. In this way, more uniform ring cutting operation can be performed on the outer side of the rod-shaped material 27, and the quality of the obtained ring-cut material product is better.

[0057] In the embodiment, the bottom of the support plate 242 is provided with a plurality of first sliding blocks 133, and the bottom of the first sliding block 133 is slidingly connected to a transverse sliding rail. In this way, when the first driving device 241 drives the support plate 242 to move, the first sliding block 133 at the bottom of the support plate 242 can move along the transverse sliding rail, which not only ensures the smooth movement of the support plate 242, but also ensures the stability of the support plate 242.

[0058] In the embodiment, along the conveying direction of the rod-shaped material 27, a second cutter group arranged above the rod-shaped material 27 is further included, the second cutter group comprises a vertical cutter 22 and a second driving mechanism 21 for driving the vertical cutter 22 to move reciprocatingly along the longitudinal direction. In this way, when the rod-shaped material 27 is conveyed into the material channel, the second driving device 211 can be controlled to work at this time, and the vertical cutter 22 is driven by the second driving device 211 to move downward, so that the end of the rod-shaped material 27 can be cut off by the vertical cutter 22, thereby ensuring the flatness of the material on the longitudinal end face, so that the end face of the subsequent ring-cut material can maintain a flat end face. In addition, when the tail of the rod-shaped material 27 is conveyed into the material channel, the second driving device 211 can be controlled to work at this time, and the vertical cutter 22 is driven by the second driving device 211 to move downward, so that the tail of the rod-shaped material 27 can be cut off by the vertical cutter 22, thereby ensuring the flatness of the material on the longitudinal end face.

[0059] Specificly, the second driving mechanism 21 comprises a second driving device 211 and a support beam 213 arranged at the output end of the second driving device 211, both ends of the support beam 213 are provided with second sliding blocks 21415 which are slidingly connected to two longitudinal guide rails 21517; thus the second driving device 211 can drive the longitudinal support beam 213 to move up and down, while the longitudinal support beam 213 moves up and down, the second sliding blocks 21415 at both ends of the support beam 213 can move along the longitudinal guide rails 21517, which not only ensures the smooth movement of the support beam 213, but also ensures the stability of the support beam 213, and drives the vertical cutter 22 to move up and down while the support beam 213 moves up and down, so as to cut the end of the material; it should be noted that the first driving device 241 is connected with the external central control system, so that the movement track of the vertical cutter 22 can be better controlled during processing, so that the processing efficiency is higher and the product quality is better.

[0060] In the embodiment, it also comprises a transverse support beam 212 and two longitudinal support beams 216 arranged at both sides of the bottom of the transverse support beam 212, the second driving device 211 is arranged on the transverse support beam 212, and the two longitudinal guide rails 21517 are respectively arranged on the inner side surfaces of the two longitudinal support beams 216; thus the transverse support beam 212 and the longitudinal support beam 216 ensure the working stability of the second driving device 211 and the guide rail 17.

[0061] In the embodiment, the pushing mechanism 13 comprises a first linear quantitative pushing device 131 arranged above the storage box 12 and a pushing plate 132 connected with the bottom of a first slider 133 of the first linear quantitative pushing device 131; the first linear quantitative pushing device 131 is fixed on the workbench 11 through a support frame, the height of the pushing plate 132 is not less than the height of the partition plate 121, and the bottom of the pushing plate 132 abuts on the storage box 12, so that the pushing plate 132 can push the rod-shaped material 27 in the storage cavity 122 at one time, and the pushing plate 132 can push the rod-shaped material 27 in the storage cavity 122 to move along the length direction of the storage cavity 122; thus, by driving the first linear quantitative pushing device 131 to work, the reciprocating sliding of the first slider 133 of the first linear quantitative pushing device 131 drives the reciprocating movement of the pushing plate 132, and then the rod-shaped material 27 in the storage cavity 122 is moved to the direction of the cutting device 2; when the tail end of the rod-shaped material 27 is completely moved into the cutting device 2, the first linear quantitative pushing device 131 is driven to retreat, that is, the pushing plate 132 is driven to return along the original path of the storage cavity 122 by the first slider 133; at this time, the storage box 12 is driven to slide leftward or rightward along the workbench 11, that is, the adjacent storage cavity 122 is moved to the position of the pushing plate 132, so that the rod-shaped material 27 in another storage cavity 122 is continuously pushed by the pushing mechanism 13, thereby the rod-shaped material 27 in the storage box 12 is continuously conveyed into the cutting device 2, the automation and efficiency of the processing process are improved, and the processing efficiency and quality are greatly improved.

[0062] In the embodiment, the workbench 11 and the storage box 12 are provided with a pushing mechanism for driving the storage box 12 to reciprocate along the width direction of the workbench 11; specifically, the pushing mechanism can include the following structure: the top surface of the workbench 11 is transversely provided with a plurality of sliding grooves 111 along the width direction, and the bottom surface of the storage box 12 is transversely provided with a plurality of sliding mechanisms along the width direction, one of the sliding mechanisms is correspondingly arranged with one of the sliding grooves 111 and can slide along the sliding groove 111; the sliding mechanism includes a plurality of second linear quantitative pushing devices 14 transversely arranged on the bottom of the workbench 11 along the width direction, the second sliding block 214 15 on the second linear quantitative pushing device 14 is arranged on the bottom surface of the storage box 12, and one of the second sliding blocks 214 15 is correspondingly arranged with one of the sliding grooves 111; the second linear quantitative pushing device 14 drives the second sliding block 214 15 to move transversely along the width direction of the workbench 11, thereby driving the storage box 12 to move transversely along the width direction of the workbench 11, that is, to slide left or right along the workbench 11, and then moving the different storage cavities 122 to the push plate 132 in turn, so that the storage cavity 122 is opposite to the push plate 132; preferably, in order to ensure the controllability and tightness of the working process and realize automatic processing, the first linear quantitative pushing device 131 and the second linear quantitative pushing device 14 are connected with an external central control system (electrically connected or signal connected), so that the movement track of the storage box 12 can be more accurately controlled, the storage cavity 122 is aligned with the push plate 132 in turn, and the push plate 132 is used to push the rod-shaped material 27 in each storage cavity 122 in turn, so that the conveying process is precisely controllable, and the working efficiency and quality are improved.

[0063] In order to ensure the support stability of the transverse movement of the storage box 12, in the embodiment, a sliding support device is further arranged between the workbench 11 and the storage box 12 to ensure the support stability of the transverse movement of the storage box 12; specifically, the sliding support device can adopt the following mode: a plurality of guide rails 17 are arranged on the top surface of the workbench 11 along the width direction, and a plurality of guide sliding blocks 16 are correspondingly arranged on the bottom of the storage box 12, one of the guide sliding blocks 16 is correspondingly arranged with one of the guide rails 17 and can slide along the guide rail 17; in this way, during the transverse movement of the storage box 12 driven by the above-mentioned second linear quantitative pushing device 14, the storage box 12 can slide transversely along the guide rail 17 on the top surface of the workbench 11 by using the guide sliding block 16 on the bottom of the storage box 12, thereby ensuring the support stability of the transverse movement of the storage box 12, and the use is safer and more reliable.

[0064] In addition, the sliding support device can also replace the cooperation mode of the guide sliding block 16 and the guide rail 17 in the following way, such as the conveying mode of the belt and the chain, which is not limited to the cooperation mode of the guide sliding block 16 and the guide rail 17.

[0065] In the embodiment, the width of the storage cavity 122 is consistent with the outer diameter of the rod material 27, so that the rod material 27 is placed more stably in the storage cavity 122, and the excessive shaking of the rod material 27 is avoided, and the conveying effect and the subsequent cutting quality are affected.

[0066] In other embodiments, the partition plate 121 and the storage tank 12 can be detachably connected, for example, a plurality of recesses for placing the partition plate 121 are formed on the bottom surface of the storage tank 12, so that the partition plate 121 of different heights or the partition plate 121 of different interval widths can be placed according to the requirements, that is, the partition plate 121 of different heights or the number of partition plates 121 can be better adjusted, so that the use requirements can be better met.

[0067] Finally, in other embodiments, the push plate 132 can also be provided side by side, that is, a plurality of push plates 132 are used to simultaneously push the rod material 27 in a plurality of storage cavities 122, at the same time, the conveying device 1 is provided with a plurality of cutting devices 2 at the end, and the cutting device 2 is provided with a plurality of collecting devices 3 at the end, so that the rod material 27 in a plurality of storage cavities 122 can be simultaneously pushed into the corresponding cutting device 2 for cutting, and the cut material is collected by the collecting device 3.

[0068] In addition, it should be noted that the cross section of the rod material 27 can be various shapes, not limited to the circular cross section shown in the drawings of the utility model, but also can be any polygon or irregular shape, and the utility model does not make any limitation.

[0069] The above is only the preferred embodiment of the utility model, and is not used to limit the utility model, and for those skilled in the art, the utility model can have various changes and changes. Any modification, equivalent replacement, improvement, etc. within the spirit and principles of the utility model should be included in the protection scope of the utility model.

Claims

1. A high efficiency modular rod stock ring cutting apparatus, comprising: The device comprises a conveying device for conveying rod-like materials, a cutting device at the conveying end of the conveying device, and a collecting device at the end of the cutting device; The conveying device comprises a workbench and a storage box slidingly arranged on the workbench, a plurality of storage cavities for placing rod-like materials are arranged in the length direction of the storage box, and a plurality of rod-like materials are sequentially arranged in the length direction in the storage cavities; the conveying device further comprises a pushing mechanism for pushing the rod-like materials in the storage cavities to move along the length direction of the storage cavities, and the pushing mechanism can push the rod-like materials to the cutting device at the end of the storage box. The cutting device comprises a pair of first cutter groups symmetrically arranged on the left and right sides of the rod-like materials, and a pair of first driving mechanisms for driving the pair of first cutter groups to move in the transverse direction or in the opposite direction; the first cutter group comprises a plurality of transverse cutters, and the plurality of transverse cutters on the left and right sides are arranged staggered. The collecting device comprises a guide plate arranged below the discharging end of the cutting device, a collecting box is arranged below each end of the guide plate, and the opening of one of the collecting boxes is arranged corresponding to one end of the guide plate; and the guide plate is connected with a third driving mechanism for driving the guide plate to tilt towards the two ends of the guide plate, so that the materials on the guide plate fall into the collecting boxes below.

2. The efficient modular stick material ring cutting apparatus according to claim 1, wherein, The third driving mechanism further comprises a limiting device below the guide plate, which can limit the tilt angle of the guide plate; specifically, the limiting device comprises a limiting rod below the guide plate, and when the guide plate is tilted to a certain angle, one end of the guide plate can abut against the limiting rod.

3. The efficient modular stick material ring cutting apparatus according to claim 1, wherein, The cutting device further comprises a positioning frame arranged between the pair of first cutter groups, and a material passage is arranged in the center of the positioning frame for the rod-like materials to pass through; The two side surfaces of the positioning frame are respectively provided with a plurality of cutting passages; one of the cutting passages on the two sides is arranged corresponding to one of the pair of first cutter groups; The cutting passage is arranged on the side surface of the positioning frame and extends into the positioning frame; and the two cutting passages on the opposite sides are arranged staggered.

4. The efficient modular stick material ring cutting apparatus according to claim 3, wherein, The plurality of cutting passages on the two sides are arranged equidistantly with the same or different depths; the length of the transverse cutter is not less than the depth of the cutting passage.

5. The efficient modular stick material ring cutting apparatus according to claim 3, wherein, In the conveying direction of the rod-like materials, the discharging end of the positioning frame is further provided with a discharging frame, the discharging frame is arranged with the same width, height and coaxial center as the material passage; and the discharging end of the discharging frame is located above the guide plate.

6. The efficient modular stick material ring cutting apparatus according to claim 1, wherein, The first driving mechanism comprises a first driving device and a support plate arranged at the output end of the first driving device, and one of the first cutter groups is arranged on the inner side surface of the support plate.

7. The efficient modular stick material ring cutting apparatus according to claim 1, wherein, In the conveying direction of the rod-like materials, a second cutter group is further arranged above the rod-like materials, the second cutter group comprises a vertical cutter and a second driving mechanism for driving the vertical cutter to move reciprocally in the length direction.

8. The efficient modular stick material ring cutting apparatus according to claim 1, wherein, The pushing mechanism comprises a first linear quantitative pushing device arranged above the storage box and a pushing plate connected with the bottom of the first sliding block of the first linear quantitative pushing device; the first linear quantitative pushing device is fixed on the workbench through a support frame; the height of the pushing plate is not less than the height of the storage cavity, and the pushing plate can push the rod-shaped material in the storage cavity to move along the length direction of the storage cavity.

9. The efficient modular stick material ring cutting apparatus according to claim 1, wherein, A pushing mechanism for driving the storage box to reciprocate along the width direction of the workbench is arranged between the workbench and the storage box.

10. The efficient modular stick material ring cutting apparatus according to claim 9, wherein, The pushing mechanism comprises a plurality of sliding grooves arranged transversely along the width direction on the top surface of the workbench, and a plurality of sliding mechanisms arranged transversely along the width direction on the bottom surface of the storage box; one sliding mechanism is arranged corresponding to one sliding groove and can slide transversely along the sliding groove.