Aluminum bar sawing machine
By designing the conveying, feeding, sawing, and unloading components of the aluminum rod sawing machine, high-precision positioning and automated cutting of aluminum rods were achieved, solving the problems of low efficiency, numerous safety hazards, and high scrap rate in existing equipment, and realizing intelligent labeling management.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- GUANGDONG AOKE AUTOMATION EQUIP CO LTD
- Filing Date
- 2025-04-23
- Publication Date
- 2026-05-01
AI Technical Summary
Existing aluminum rod processing equipment lacks a highly automated structure in the loading and unloading process, resulting in low efficiency, numerous safety hazards, low cutting accuracy, poor sorting efficiency, and a high scrap rate. Furthermore, manual sorting of rod heads, tails, and waste materials is required.
An aluminum rod sawing machine was designed, comprising a conveying component, a feeding component, a sawing component, and a unloading component. This machine enables high-precision positioning, automatic cutting, automatic sorting, and intelligent labeling of prototype aluminum rods, reducing manual operation steps.
It improves production and processing efficiency, reduces labor costs, ensures cutting accuracy and yield, and realizes intelligent labeling management.
Smart Images

Figure CN224182199U_ABST
Abstract
Description
Aluminum rod sawing machine Technical Field
[0001] This utility model relates to the field of aluminum processing equipment technology, and more specifically, it relates to an aluminum rod sawing machine. Background Technology
[0002] Existing aluminum rod processing equipment often uses integrated units for cutting, such as the aluminum rod sawing unit with patent publication number CN103028780B. In the process of feeding and unloading, it lacks a highly automated structure, resulting in low efficiency and safety hazards. The unstable fixing of aluminum rods leads to deviations in cutting dimensions, resulting in a high scrap rate. In addition, the rod ends and scrap materials need to be sorted manually, increasing labor costs. To address this, a fully unmanned operation is proposed, from raw material conveying → precise positioning and cutting → scrap sorting → finished product labeling, to solve the problems of low cutting accuracy, poor sorting efficiency, and aluminum chip pollution. Summary of the Invention
[0003] In view of the shortcomings of the existing technology, the purpose of this utility model is to provide an aluminum rod sawing machine to solve the problems existing in the background technology.
[0004] The above-mentioned technical objective of this utility model is achieved through the following technical solution: an aluminum rod sawing machine, comprising: a conveying component for storing and conveying prototype aluminum rods, a feeding component for receiving and transmitting the prototype aluminum rods conveyed by the conveying component, a sawing component for receiving the prototype aluminum rods transmitted by the feeding component, cutting them into finished aluminum rods, and then conveying them, and a unloading component for receiving the finished aluminum rods transmitted by the sawing component and classifying and labeling them.
[0005] Optionally, the conveying assembly includes: a storage platform for storing prototype aluminum rods, two conveyor belts, and a first driving member for driving the two conveyor belts to transfer the prototype aluminum rods on the storage platform; the discharge end of the storage platform is connected to the inlet end of the feeding assembly; the two conveyor belts are symmetrically slidably arranged on the storage platform; and the output end of the first driving member is connected to the two conveyor belts for transmission.
[0006] Optionally, the feeding assembly includes: a first conveyor for conveying prototype aluminum bars; a translation module for transferring the prototype aluminum bars conveyed by the conveying assembly to the first conveyor; and a second conveyor for receiving the prototype aluminum bars transmitted by the first conveyor and transmitting them to the sawing assembly; the receiving end of the translation module is connected to the discharge end of the conveying assembly, and the output end of the translation module is connected to the inlet end of the first conveyor; the discharge end of the first conveyor is connected to the inlet end of the second conveyor; and the discharge end of the second conveyor is connected to the inlet end of the sawing assembly.
[0007] Optionally, the translation module includes: a support base, a support frame, and a second driving component for driving the support frame to move up and down; the second driving component is detachably connected to the support base; the output end of the second driving component is fixedly connected to the support frame; sliding grooves are respectively opened at both ends of the support frame; a lifting frame is slidably arranged in each of the two sliding grooves; the two lifting frames are symmetrically arranged; a third driving component is provided at the bottom of each of the two lifting frames for driving the lifting frame to move in the corresponding sliding groove.
[0008] Optionally, the sawing assembly includes a drive compartment and an operating compartment; the operating compartment is equipped with: a third conveyor for receiving and conveying prototype aluminum rods from the feeding assembly, a circular saw for cutting the prototype aluminum rods on the third conveyor to form finished aluminum rods, and a fourth conveyor for receiving and conveying the finished aluminum rods; the inlet end of the third conveyor is connected to the outlet end of the feeding assembly; the outlet end of the third conveyor is connected to the inlet end of the fourth conveyor; the outlet end of the fourth conveyor is connected to the inlet end of the unloading assembly; the circular saw is located on one side of the third conveyor; the drive compartment is equipped with a fourth drive unit for driving the circular saw to rotate and extend and retract.
[0009] Optionally, a recycling machine is also provided for recycling aluminum shavings generated when the circular saw cuts the aluminum rod; the output end of the recycling machine is connected to the operating room.
[0010] Optionally, the unloading assembly includes: a sorting module for receiving finished aluminum bars transmitted by the sawing assembly and removing the bar heads and tails before transmission; a fifth conveyor for receiving the sorted finished aluminum bars transmitted by the sorting module; a marking module for marking the finished aluminum bars on the fifth conveyor; and a sixth conveyor for receiving and conveying the marked finished aluminum bars. The inlet end of the sorting module is connected to the outlet end of the sawing assembly; the outlet end of the sorting module is connected to the inlet end of the fifth conveyor; the outlet end of the fifth conveyor is connected to the inlet end of the sixth conveyor; the marking module is located on one side of the fifth conveyor and is detachably connected to the fifth conveyor.
[0011] Optionally, the sorting module includes: a sorting table, a conveyor for receiving and conveying finished aluminum bars, a fifth drive for driving the conveyor to rotate to sort the finished aluminum bars, and a recycling box for recycling the sorted finished aluminum bars; the recycling box is located on one side of the sorting table; the fifth drive is detachably connected to the sorting table; the output end of the fifth drive is fixedly connected to the conveyor; the inlet end of the conveyor is connected to the outlet end of the sawing assembly, and the outlet end of the conveyor is connected to the inlet end of the fifth conveyor.
[0012] Optionally, the marking module includes: a marking table, a moving table, a marking component, a sixth driving component for driving the moving table to move, and a seventh driving component for driving the marking component to rotate; the marking table is detachably connected to the fifth conveyor table; a slide rail is provided on the marking table; the moving table is drivenly connected to the slide rail; the sixth driving component is detachably connected to the marking table, and the output end of the sixth driving component is drivenly connected to the slide rail; the seventh driving component is detachably connected to the moving table; the marking component is rotatably connected to the moving table; and the output end of the seventh driving component is fixedly connected to the marking component.
[0013] Optionally, the sorting table is also provided with a guide plate for guiding the sorted finished aluminum bars.
[0014] In summary, this utility model has the following beneficial effects:
[0015] 1. By using the structure of the conveying component, the feeding component, and the unloading component, high-precision positioning of the prototype aluminum rod to the finished aluminum rod is achieved, reducing manual operation and improving production efficiency.
[0016] 2. The sorting module set after the sawing component can effectively and automatically sort out the bar head and tail, thereby reducing the labor costs required in the traditional process.
[0017] 3. A coding module is set on the feeding assembly to mechanically code the finished aluminum rod, realizing finished product traceability, reducing coding error rate, and achieving intelligent coding management. Attached Figure Description
[0018] Figure 1 is a schematic diagram of the main structure of this utility model;
[0019] Figure 2 is a side view of the main structure of this utility model;
[0020] Figure 3 is a partial structural cross-sectional view of this utility model;
[0021] Figure 4 is a schematic diagram of the specific structure of part A in Figure 2;
[0022] Figure 5 is a schematic diagram of the specific structure of part B in Figure 3;
[0023] Figure 6 is a schematic diagram of the specific structure of part C in Figure 3.
[0024] In the diagram: 1. Conveying assembly; 11. Storage platform; 12. Conveyor belt; 13. First drive unit; 2. Feeding assembly; 21. First conveyor table; 22. Translation module; 221. Support base; 222. Support frame; 223. Second drive unit; 224. Sliding groove; 225. Lifting frame; 226. Third drive unit; 23. Second conveyor table; 3. Sawing assembly; 31. Operating room; 32. Drive room; 33. Third conveyor table; 34. Fourth conveyor. 35. Circular saw; 36. Recycling machine; 37. Fourth drive component; 4. Feeding assembly; 41. Sorting module; 411. Sorting table; 412. Conveyor; 413. Fifth drive component; 42. Fifth conveyor; 43. Marking module; 431. Coding table; 432. Moving table; 433. Coding component; 434. Sixth drive component; 435. Seventh drive component; 436. Slide rail; 44. Sixth conveyor; 45. Recycling bin; 46. Guide plate. Detailed Implementation
[0025] To make the objectives, features, and advantages of this utility model more apparent and understandable, the specific embodiments of this utility model are described in detail below with reference to the accompanying drawings. Several embodiments of this utility model are shown in the drawings. However, this utility model can be implemented in many different forms and is not limited to the embodiments described herein.
[0026] In this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," "linking," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances. The terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Therefore, a feature defined with "first" or "second" may explicitly or implicitly include one or more of that feature.
[0027] In this invention, unless otherwise expressly specified and limited, "above" or "below" the second feature can include direct contact between the first and second features, or contact between the first and second features through another feature between them. Furthermore, "above," "over," and "on top" of the second feature includes the first feature directly above or diagonally above the second feature, or simply indicates that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" of the second feature includes the first feature directly below or diagonally below the second feature, or simply indicates that the first feature is at a lower horizontal level than the second feature. The terms "vertical," "horizontal," "left," "right," "above," "below," and similar expressions are for illustrative purposes only and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed or operated in a specific orientation, and therefore should not be construed as limiting the invention.
[0028] The present invention will now be described in detail with reference to the accompanying drawings and embodiments.
[0029] This utility model provides an aluminum rod sawing machine, as shown in Figure 1, including: a conveying component 1 for storing and conveying prototype aluminum rods, a feeding component 2 for receiving and transmitting the prototype aluminum rods conveyed by the conveying component 1, a sawing component 3 for receiving the prototype aluminum rods transmitted by the feeding component 2, cutting them into finished aluminum rods, and then conveying them, and a unloading component 4 for receiving the finished aluminum rods transmitted by the sawing component 3 and classifying and labeling them.
[0030] Specifically, in the initial state, the prototype aluminum rod is stored on the conveying component 1. When aluminum rod cutting is required, the prototype aluminum rod is conveyed to the feeding component 2 through the conveying component 1. During the conveying process, the high-precision positioning of the feeding component 2 ensures that the prototype aluminum rod will not fall or be misaligned. The prototype aluminum rod is then conveyed into the sawing component 3 through the feeding component 2 and sawn into finished aluminum rods before being output. On the unloading component 4, the cut rod heads and tails are sorted and removed to avoid affecting the yield. At the same time, the finished aluminum rods are marked with codes during the conveying process to facilitate subsequent traceability, thus completing the entire aluminum rod processing procedure.
[0031] Furthermore, the conveying assembly 1 includes: a storage platform 11 for storing prototype aluminum rods, two conveyor belts 12, and a first driving member 13 for driving the two conveyor belts 12 to transfer the prototype aluminum rods on the storage platform 11; the discharge end of the storage platform 11 is connected to the inlet end of the feeding assembly 2; the two conveyor belts 12 are symmetrically slidably arranged on the storage platform 11; the output end of the first driving member 13 is connected to the two conveyor belts 12 respectively.
[0032] In Embodiment 1, by storing the prototype aluminum rod on the storage platform 11, when it is necessary to transport the prototype aluminum rod to the next process, the first driving component 13 drives the conveyor belt 12 on the storage platform 11, thereby moving the prototype aluminum rod on the storage platform 11, and thus transferring the prototype aluminum rod to the feeding component 2.
[0033] Further, the feeding assembly 2 includes: a first conveyor 21 for conveying prototype aluminum bars; a translation module 22 for transferring the prototype aluminum bars conveyed by the conveying assembly 1 to the first conveyor 21; and a second conveyor 23 for receiving the prototype aluminum bars transmitted by the first conveyor 21 and transmitting them to the sawing assembly 3. The receiving end of the translation module 22 is connected to the discharge end of the conveying assembly 1, and the output end of the translation module 22 is connected to the inlet end of the first conveyor 21. The discharge end of the first conveyor 21 is connected to the inlet end of the second conveyor 23. The discharge end of the second conveyor 23 is connected to the inlet end of the sawing assembly 3.
[0034] In Embodiment 2, the prototype aluminum rod on the storage platform 11 is stably moved to the first conveyor platform 21 by the high-precision positioning of the translation module 22, and then transferred from the first conveyor platform 21 to the second conveyor platform 23, and then transferred from the second conveyor platform 23 to the sawing assembly 3 to complete the feeding process.
[0035] Further, the translation module 22 includes: a support base 221, a support frame 222, and a second driving member 223 for driving the support frame 222 to move up and down; the second driving member 223 is detachably connected to the support base 221; the output end of the second driving member 223 is fixedly connected to the support frame 222; sliding grooves 224 are respectively provided at both ends of the support frame 222; a lifting frame 225 is slidably arranged in each of the two sliding grooves 224; the two lifting frames 225 are symmetrically arranged; a third driving member 226 is provided at the bottom of each of the two lifting frames 225 for driving the lifting frame 225 to move in the corresponding sliding groove 224.
[0036] In Embodiment 3, as shown in Figure 4, the support base 221 is fixed to the ground. The support frame 222 moves up and down via the second driving member 223 mounted on the support base 221. When it is necessary to transfer the prototype aluminum rod from the conveying assembly 1, the lifting frame 225 is driven by the third driving member 226, causing the lifting frame 225 to be positioned on the end of the sliding groove 224 near the conveying assembly 1. At this time, the lifting frame 225 is below the prototype aluminum rod to be transferred. The second driving member 223 then drives the support frame 222 to rise, thereby causing the lifting frame 225 to rise as well, thus achieving the two lifting frames 225... The prototype aluminum rod is lifted and positioned until it leaves the conveying assembly 1. Then, the third drive component 226 drives the lifting frame 225 to move to the end of the sliding groove 224 near the first conveyor table 21. At this time, the lifting frame 225, carrying the prototype aluminum rod, is above the first conveyor table 21. The second drive component 223 drives the support frame 222 to descend, so that the prototype aluminum rod is placed on the first conveyor table 21. The second drive component 223 drives the support frame 222 to continue to descend, so that the lifting frame 225 separates from the prototype aluminum rod, thereby realizing the translation process of the prototype aluminum rod from the conveying assembly 1 to the feeding assembly 2.
[0037] Further, the sawing assembly 3 includes: a drive chamber 32 and an operating chamber 31; the operating chamber 31 is provided with: a third conveyor 33 for receiving and conveying the prototype aluminum rods transmitted by the feeding assembly 2, a circular saw 35 for cutting the prototype aluminum rods on the third conveyor 33 to form finished aluminum rods, and a fourth conveyor 34 for receiving and conveying the finished aluminum rods; the inlet end of the third conveyor 33 is connected to the outlet end of the feeding assembly 2; the outlet end of the third conveyor 33 is connected to the inlet end of the fourth conveyor 34; the outlet end of the fourth conveyor 34 is connected to the inlet end of the unloading assembly 4; the circular saw 35 is located on one side of the third conveyor 33; the drive chamber 32 is provided with a fourth drive component 37 for driving the circular saw 35 to rotate and extend and retract.
[0038] In Embodiment 4, as shown in Figure 3, the prototype aluminum rod is transported to the third conveyor 33 in the operating room 31 by the feeding component 2. The fourth drive component 37 drives the circular saw 35 to extend and rotate to cut according to the set pattern, cutting the prototype aluminum rod into finished aluminum rods. The finished aluminum rods are then transferred to the unloading component 4 via the fourth conveyor 34. The operating room 31 is a relatively enclosed space to prevent aluminum chips from flying out during the cutting process and causing environmental pollution.
[0039] Furthermore, a recycling machine 36 is provided for recycling aluminum shavings generated when the circular saw 35 cuts aluminum rods; the output end of the recycling machine 36 is connected to the operating room 31.
[0040] Specifically, the aluminum shavings generated are collected into a designated aluminum shavings bin by the recycling machine 36, awaiting further aluminum shavings processing. In other embodiments, the recycling machine 36 can use a chain conveyor to transport the aluminum shavings. Its main advantages are low noise and low power consumption, and it has significant advantages over ordinary recycling systems in terms of environmental protection and energy saving.
[0041] Further, the unloading assembly 4 includes: a sorting module 41 for receiving the finished aluminum bars transmitted by the sawing assembly 3 and removing the bar heads and tails before transmission; a fifth conveyor 42 for receiving the sorted finished aluminum bars transmitted by the sorting module 41; a marking module 43 for marking the finished aluminum bars on the fifth conveyor 42; and a sixth conveyor 44 for receiving and conveying the marked finished aluminum bars. The inlet end of the sorting module 41 is connected to the outlet end of the sawing assembly 3; the outlet end of the sorting module 41 is connected to the inlet end of the fifth conveyor 42; the outlet end of the fifth conveyor 42 is connected to the inlet end of the sixth conveyor 44; the marking module 43 is located on one side of the fifth conveyor 42, and the marking module 43 is detachably connected to the fifth conveyor 42.
[0042] In Example 5, when the sawing component 3 transfers the finished aluminum rod to the unloading component 4, the sorting module 41 removes the rod head and tail from the conveyor line to ensure the yield rate. The remaining finished aluminum rods continue to be transferred. When they are transferred to the fifth conveyor 42, the marking module 43 marks and codes the finished aluminum rods on the fifth conveyor 42 to achieve traceability and clearly identify the specifications of the finished aluminum rods. The sixth conveyor 44 then transports the marked and coded finished aluminum rods to the next process.
[0043] Further, the sorting module 41 includes: a sorting table 411, a conveyor 412 for receiving and conveying finished aluminum bars, a fifth drive 413 for driving the conveyor 412 to rotate to sort the finished aluminum bars, and a recycling box 45 for recycling the sorted finished aluminum bars; the recycling box 45 is located on one side of the sorting table 411; the fifth drive 413 is detachably connected to the sorting table 411; the output end of the fifth drive 413 is fixedly connected to the conveyor 412; the inlet end of the conveyor 412 is connected to the outlet end of the sawing assembly 3, and the outlet end of the conveyor 412 is connected to the inlet end of the fifth conveyor 42.
[0044] In Embodiment Six, as shown in Figure 6, the fifth driving component 413, which is set on the sorting table 411, starts to flip the conveyor 412 after the rod head and tail enter the conveyor 412, thereby sorting the rod head and tail into the recycling bin 45 next to the sorting table 411 and realizing intelligent collection of waste.
[0045] In other embodiments, a pressure sensor may be added to the conveyor 412 to better identify the head and tail of the rod.
[0046] Further, the marking module 43 includes: a marking table 431, a moving table 432, a marking component 433, a sixth driving component 434 for driving the moving table 432 to move, and a seventh driving component 435 for driving the marking component 433 to rotate; the marking table 431 is detachably connected to the fifth conveyor table 42; a slide rail 436 is provided on the marking table 431; the moving table 432 is pulsatorically connected to the slide rail 436; the sixth driving component 434 is detachably connected to the marking table 431, and the output end of the sixth driving component 434 is pulsatorically connected to the slide rail 436; the seventh driving component 435 is detachably connected to the moving table 432; the marking component 433 is rotatably connected to the moving table 432; and the output end of the seventh driving component 435 is fixedly connected to the marking component 433.
[0047] In Embodiment Seven, as shown in Figure 5, the movement of the moving stage 432 on the marking stage 431 enables marking of finished aluminum bars of different lengths. If the finished aluminum bar is short, the moving stage 432 can be moved closer to the sawing assembly 3 to enable the marking component 433 on the moving stage 432 to quickly mark the bars and avoid prolonged stockpiling. If the finished aluminum bar is long, the moving stage 432 can be moved away from the sawing assembly 3 to enable the marking component 433 on the moving stage 432 to quickly mark the bars. At the same time, the seventh driving component 435 provided on the moving stage 432 can adjust the rotation angle of the marking component 433 so that the marking position of the marking component 433 can be dynamically adjusted according to the diameter of the finished aluminum bar, avoiding the situation where a single marking position leads to poor scene adaptability.
[0048] Furthermore, the sorting table 411 is also provided with a guide plate 46 for guiding the sorted finished aluminum bars.
[0049] Specifically, the guide plate 46 provides a certain guiding effect on the head and tail of the conveyor 412 after it is flipped, so as to avoid the head and tail of the conveyor 412 not falling into the recycling box 45 accurately, which would require manual redistribution and increase labor costs.
[0050] Specifically, the first conveyor platform 21, the second conveyor platform 23, the third conveyor platform 33, the fourth conveyor platform 34, the fifth conveyor platform 42, and the sixth conveyor platform 44 mentioned above have the same structure. They all consist of a main platform and several conveying rollers set on the top of the main platform. The drive motor set on the main platform drives the several conveying rollers to rotate, thereby achieving the effect of conveying the prototype aluminum rod or the finished aluminum rod.
[0051] The control methods involved in the above embodiments are all implemented by the built-in controller. The built-in controller can be a PLC, MCU, microcontroller, etc. with drive control function. In this embodiment, an MCU is selected.
[0052] In the specific implementation process, the prototype aluminum rod is stored on the storage platform 11. During processing, the first drive unit 13 drives the conveyor belt 12 on the storage platform 11, which in turn moves the prototype aluminum rod towards the translation module 22. When it reaches the designated position, the lifting frame 225 is driven by the third drive unit 226, so that the lifting frame 225 is located on the end of the sliding groove 224 near the conveying component 1. At this time, the lifting frame 225 is below the prototype aluminum rod to be transferred. Then, the second drive unit 223 drives the support frame 222 to rise, thereby driving the lifting frame 225 to rise. This allows the two lifting frames 225 to work together to limit and lift the prototype aluminum rod until it leaves the conveying component 1. Then, the third drive unit 226 drives the lifting frame 225 to move to the end of the sliding groove 224 near the first conveyor platform 21. At this time, the lifting frame 225 with the prototype aluminum rod is above the first conveyor platform 21. The second drive unit 223 drives the support frame 222 to descend, thereby allowing the prototype aluminum rod to... The prototype aluminum rod is placed on the first conveyor 21. The second drive unit 223 drives the support frame 222 to continue descending, causing the lifting frame 225 to separate from the prototype aluminum rod. When it is moved to the first conveyor 21, the first conveyor 21 and the second conveyor 23 connect and transfer the prototype aluminum rod to the operating room 31. The fourth drive unit 37 drives the circular saw 35 to extend and rotate according to a set pattern to cut the prototype aluminum rod on the third conveyor 33 into finished aluminum rods. The finished aluminum rods are then transferred to the sorting room via the fourth conveyor 34. On platform 411, after the bar head and tail enter the conveyor 412, the fifth drive unit 413 starts to flip the conveyor 412, thereby sorting the bar head and tail into the recycling bin 45 next to the sorting platform 411. The finished aluminum bars continue to be transported. When they are transported to the fifth conveyor platform 42, the sixth drive unit 434 moves the moving platform 432 to the appropriate position of the coding platform 431. The seventh drive unit 435 drives the coding component 433 to rotate at an appropriate angle to code the finished aluminum bars, thereby realizing the processing of aluminum bars.
[0053] This utility model discloses an aluminum rod sawing machine. Through the structure of a conveying component 1, a feeding component 2, and a discharging component 4, it achieves high-precision positioning of the prototype aluminum rod to the finished aluminum rod, reducing manual operation and improving production efficiency. The sorting module 41 set after the sawing component 3 can effectively and automatically sort out the rod head and tail, reducing the labor costs required in traditional processes. The coding module set on the discharging component 4 can mechanically code the finished aluminum rod, realizing finished product traceability, reducing coding error rate, and achieving intelligent coding management.
[0054] The above description is merely a preferred embodiment of this utility model. The protection scope of this utility model is not limited to the above embodiments. All technical solutions falling within the scope of this utility model's concept are protected. It should be noted that for those skilled in the art, any improvements and modifications made without departing from the principle of this utility model should also be considered within the protection scope of this utility model.
Claims
1. An aluminum rod sawing machine, characterized in that, include: A conveying assembly for storing and conveying prototype aluminum bars, a feeding assembly for receiving and transmitting the prototype aluminum bars conveyed by the conveying assembly, a sawing assembly for receiving the prototype aluminum bars transmitted by the feeding assembly, cutting them into finished aluminum bars, and then conveying them, and a cutting assembly for receiving the finished aluminum bars transmitted by the sawing assembly and classifying and labeling them.
2. The aluminum rod sawing machine according to claim 1, characterized in that, The conveying assembly includes: a storage platform for storing prototype aluminum rods, two conveyor belts, and a first driving member for driving the two conveyor belts to transfer the prototype aluminum rods on the storage platform; the discharge end of the storage platform is connected to the inlet end of the feeding assembly; the two conveyor belts are symmetrically slidably arranged on the storage platform; the output end of the first driving member is connected to the two conveyor belts respectively.
3. The aluminum rod sawing machine according to claim 1, characterized in that, The feeding assembly includes: a first conveyor for conveying prototype aluminum bars; a translation module for transferring the prototype aluminum bars conveyed by the conveying assembly to the first conveyor; and a second conveyor for receiving the prototype aluminum bars transmitted by the first conveyor and transmitting them to the sawing assembly. The receiving end of the translation module is connected to the discharge end of the conveying assembly, and the output end of the translation module is connected to the inlet end of the first conveyor; the discharge end of the first conveyor is connected to the inlet end of the second conveyor; and the discharge end of the second conveyor is connected to the inlet end of the sawing assembly.
4. An aluminum rod sawing machine according to claim 3, characterized in that, The translation module includes: a support base, a support frame, and a second driving component for driving the support frame to move up and down; the second driving component is detachably connected to the support base; the output end of the second driving component is fixedly connected to the support frame; sliding grooves are respectively opened at both ends of the support frame; a lifting frame is slidably arranged in each of the two sliding grooves; the two lifting frames are symmetrically arranged; a third driving component is provided at the bottom of each of the two lifting frames for driving the lifting frame to move in the corresponding sliding groove.
5. An aluminum rod sawing machine according to claim 1, characterized in that, The sawing assembly includes a drive chamber and an operating chamber. The operating chamber is equipped with: a third conveyor for receiving and transporting prototype aluminum rods from the feeding assembly; a circular saw for cutting the prototype aluminum rods on the third conveyor to form finished aluminum rods; and a fourth conveyor for receiving and transporting the finished aluminum rods. The inlet end of the third conveyor is connected to the outlet end of the feeding assembly; the outlet end of the third conveyor is connected to the inlet end of the fourth conveyor; the outlet end of the fourth conveyor is connected to the inlet end of the unloading assembly; the circular saw is located on one side of the third conveyor; and the drive chamber is equipped with a fourth drive unit for driving the circular saw to rotate and extend / retract.
6. An aluminum rod sawing machine according to claim 5, characterized in that, A recycling machine is also provided for recycling aluminum shavings generated when the circular saw cuts aluminum bars; the output end of the recycling machine is connected to the operating room.
7. An aluminum rod sawing machine according to claim 1, characterized in that, The unloading assembly includes: a sorting module for receiving finished aluminum bars from the sawing assembly and removing the top and bottom ends before conveying them; a fifth conveyor for receiving the sorted finished aluminum bars from the sorting module; a marking module for marking the finished aluminum bars on the fifth conveyor; and a sixth conveyor for receiving and conveying the marked finished aluminum bars. The inlet end of the sorting module is connected to the outlet end of the sawing assembly; the outlet end of the sorting module is connected to the inlet end of the fifth conveyor; the outlet end of the fifth conveyor is connected to the inlet end of the sixth conveyor; the marking module is located on one side of the fifth conveyor and is detachably connected to the fifth conveyor.
8. An aluminum rod sawing machine according to claim 7, characterized in that, The sorting module includes: a sorting table, a conveyor for receiving and conveying finished aluminum bars, a fifth drive for driving the conveyor to rotate to sort the finished aluminum bars, and a recycling box for recycling the sorted finished aluminum bars; the recycling box is located on one side of the sorting table; the fifth drive is detachably connected to the sorting table; the output end of the fifth drive is fixedly connected to the conveyor; the inlet end of the conveyor is connected to the outlet end of the sawing assembly, and the outlet end of the conveyor is connected to the inlet end of the fifth conveyor.
9. An aluminum rod sawing machine according to claim 7, characterized in that, The marking module includes: a marking table, a moving table, a marking component, a sixth driving component for driving the moving table to move, and a seventh driving component for driving the marking component to rotate; the marking table is detachably connected to the fifth conveyor table; a slide rail is provided on the marking table; the moving table is drivenly connected to the slide rail; the sixth driving component is detachably connected to the marking table, and the output end of the sixth driving component is drivenly connected to the slide rail; the seventh driving component is detachably connected to the moving table; the marking component is rotatably connected to the moving table; and the output end of the seventh driving component is fixedly connected to the marking component.
10. An aluminum rod sawing machine according to claim 8, characterized in that, The sorting table is also equipped with a guide plate for guiding the sorted finished aluminum bars.
Citation Information
Patent Citations
Aluminum bar saw cutting unit
CN103028780B