A rapid feeding device for slider machining
Patent Information
- Application Number
- CN202521583484.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-28
- Publication Date
- 2026-08-18
- Estimated Expiration
- 2035-07-28
AI Technical Summary
[0004]本实用新型的目的在于提供一种滑块加工用快速上料装置,通过设置上料部,解决了还需要人工辅助进行上料,此方式不仅效率低下,难以满足大规模生产需求,还容易因人工操作疲劳导致上料位置偏差,影响滑块加工精度的问题
1、通过设置上料部,启动电机一,电机一通过转轴一带动转盘转动,由于转盘上铰接有曲轴,转盘转动时,会借助曲轴的传动,使曲轴上连接的活动搭板与固定搭板协同运作,将料斗内杂乱的等份料坯规整地输送至输送架内,随后,输送架上的输送带会将料坯运送至后续装置进行深加工处理,通过此设置,可实现料坯从无序整理到有序输送的全自动化流程,有效减少人工干预,提升生产效率与加工精度,降低劳动强度和人力成本,同时保障生产过程的稳定性和连续性。
Smart Images

Figure CN224645998U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the technical field of feeding devices, and in particular relates to a fast feeding device for slider processing. Background Technology
[0002] The rapid loading device for slider processing is an automated equipment specifically designed for slider processing. Through mechanical transmission, pneumatic or electric drive, combined with reasonable structural design, such as special loading tracks, clamping mechanisms, and positioning components, it can quickly and accurately transport slider blanks or semi-finished products to the processing station, effectively reducing manual loading time, improving loading efficiency and accuracy, ensuring the continuity and stability of slider processing, and reducing the labor intensity of workers. It is suitable for various slider processing scenarios.
[0003] In the current slider machining process, manual assistance is still required for feeding. This method is not only inefficient and difficult to meet the needs of large-scale production, but also prone to feeding position deviation due to human fatigue, which affects the slider machining accuracy. Utility Model Content
[0004] The purpose of this utility model is to provide a fast feeding device for slider processing. By setting up a feeding part, the problem of still needing manual assistance for feeding is solved. This method is not only inefficient and difficult to meet the needs of large-scale production, but also prone to feeding position deviation due to manual operation fatigue, which affects the processing accuracy of slider.
[0005] To solve the above-mentioned technical problems, this utility model is achieved through the following technical solution: This utility model relates to a rapid feeding device for slider processing, comprising a support frame, and further comprising: a feeding section, which is mounted on the support frame and is used to supply material to the device; and a feeding section, which is mounted on the feeding section and is used to supply material to the feeding section; wherein, after the blank is placed on the feeding section, the feeding section can cut the blank into equal portions of the required size, and then the feeding section will send the equal portions of blank to the subsequent device for further processing, thereby completing the entire material pretreatment and transmission process.
[0006] Furthermore, the feeding section includes a feeding assembly mounted on a support frame for feeding materials to the device; a drive assembly mounted on the support frame for providing power to the feeding assembly; and a conveying assembly mounted on the feeding assembly for conveying the sized blanks within the feeding assembly to subsequent devices for further processing; wherein, after the drive assembly is activated, the drive assembly can convey uniformly divided blanks to the conveying assembly via the feeding assembly, and the conveying assembly then conveys the blanks to subsequent devices.
[0007] Furthermore, the feeding section includes a moving component mounted on the feeding section for controlling the cutting speed of the blank so that the blank can be cut into equal portions; a cutting component mounted on the feeding section for cutting the blank; and wherein, after the blank is placed on the moving component, the moving component can transport the blank into equal portions to the cutting component according to a set program, and then the cutting component completes the cutting of the blank.
[0008] Furthermore, the feeding assembly includes several fixed plates mounted on a support frame. The support frame has a sliding groove, and a movable plate is slidably connected to the sliding groove. The movable plate is adapted to the several fixed plates, and a fixing block is fixedly connected to the back of the movable plate. When the crankshaft rotates, it will drive the movable plate connected to it to cooperate with the fixed plates, so that the movable plate can neatly transport the messy equal-sized blanks in the hopper to the conveyor frame.
[0009] Furthermore, the drive assembly includes a motor sleeve fixedly connected to the bottom inner wall of the support frame, a motor sleeve on which a motor is mounted, and a rotating shaft fixedly connected to the output shaft of the motor via a coupling. A turntable is mounted on the outer wall of the rotating shaft, and a crankshaft is hinged to the turntable. The end of the crankshaft away from the turntable is hinged to a fixed block. When the motor is started, the motor drives the turntable to rotate via the rotating shaft. Since the crankshaft is hinged to the turntable, when the turntable rotates, the movable plate connected to the crankshaft will cooperate with the fixed plate through the transmission of the crankshaft, so as to neatly transport the messy equal-sized material blanks in the hopper to the conveyor frame.
[0010] Furthermore, the conveying assembly includes a conveying frame mounted on a fixed platform, and a conveyor belt is mounted on the conveying frame; wherein, the movable platform can neatly convey the disordered equal portions of blank material in the hopper into the conveying frame, and then the blank material is conveyed to the subsequent device for further processing via the conveyor belt on the conveying frame.
[0011] Furthermore, the moving component includes a hopper fixedly connected to the front of the support frame, a rectangular frame is provided on the top of the hopper, a plurality of guide rollers are provided on the rectangular frame, a blank is slidably connected on the plurality of guide rollers, and a driving component is provided on the rectangular frame; wherein, after the blank is placed on the rectangular frame, the driving component is activated, and the driving component will cooperate with the guide rollers on the rectangular frame, so that the blank can be easily and evenly moved to the bottom of the cutting component.
[0012] Furthermore, the cutting assembly includes a rectangular plate fixedly connected to the front of the hopper. Two sliding rods are fixedly connected to the top of the rectangular plate. A hydraulic push rod is fitted onto the rectangular plate. A sliding plate is slidably connected to the outer wall of the two sliding rods. The output end of the hydraulic push rod is fixedly connected to the sliding plate. A motor sleeve two is fixedly connected to the bottom of the sliding plate. A motor three is fitted onto the motor sleeve two. The output shaft of the motor three is fixedly connected to a rotating shaft three via a coupling. A cutting disc is fitted onto the outer wall of the rotating shaft three. The cutting disc is adapted to the blank material. When the blank material moves to the bottom of the cutting disc, the motor three is started. The motor three drives the cutting disc to rotate via the rotating shaft three. Then, the hydraulic push rod is started. The hydraulic push rod drives the sliding plate and the rotating cutting disc on the sliding plate to move closer to the blank material, completing the uniform and equal-division cutting of the blank material. The cut blank material will fall into the hopper.
[0013] Furthermore, the driving component includes two screws fixedly connected to the top of the rectangular frame. A rectangular frame is slidably connected to the outer walls of the two screws. A manual knob is threaded onto the outer walls of both screws. A second motor is installed on the front of the rectangular frame. The output shaft of the second motor is fixedly connected to a second rotating shaft via a coupling. The second rotating shaft passes through the rectangular frame and is rotatably connected to the rectangular frame. A driving roller is sleeved on the outer wall of the second rotating shaft, and the outer wall of the driving roller contacts the blank. Before placing the blank, the manual knob on the outer wall of the screw is rotated to release the restriction on the rectangular frame, allowing it to move up and down. Then, the blank is passed through the driving space formed by the driving roller and the guide roller on the rectangular frame. After the blank is passed through, the manual knob is rotated again, and the rectangular frame will drive the driving component on it to properly fix the blank. After fixing, the second motor is started. The second motor drives the driving roller through the second rotating shaft, and works in coordination with the cutting component according to the set program to realize the conveying and cutting of the blank.
[0014] This utility model has the following beneficial effects: 1. By setting up a feeding section and starting motor one, motor one drives the turntable to rotate via rotating shaft one. Since the turntable is hinged to a crankshaft, when the turntable rotates, it will use the transmission of the crankshaft to make the movable plate and the fixed plate connected to the crankshaft work together to neatly transport the messy equal-sized blanks in the hopper to the conveyor frame. Subsequently, the conveyor belt on the conveyor frame will transport the blanks to the subsequent device for further processing. Through this setting, a fully automated process of blanks from disordered sorting to orderly conveying can be realized, effectively reducing manual intervention, improving production efficiency and processing accuracy, reducing labor intensity and labor costs, and ensuring the stability and continuity of the production process.
[0015] 2. By setting up a feeding section, before placing the blank, first turn the manual knob on the outer wall of the screw to release the restriction on the rectangular frame, allowing it to move up and down. Then, pass the blank through the driving space composed of the drive roller and the guide roller on the rectangular frame. After the blank is passed through, turn the manual knob again. The rectangular frame will drive the drive component on it to fix the blank. After it is fixed, start motor two. Motor two drives the drive roller through shaft two to transport the blank to the bottom of the cutting component at equal intervals according to the set program. When the blank is transported to the bottom of the cutting component, start motor three. Motor three drives the cutting disc to rotate through shaft three. Then, start the hydraulic push rod. The hydraulic push rod drives the slide plate and the rotating cutting disc on the slide plate to approach the blank, completing the uniform and equal-division cutting of the blank. The cut blank will fall into the hopper. Through this setting, the entire process from blank feeding, fixing, equidistant transportation to precise cutting can be automated, significantly improving processing efficiency and cutting accuracy, and avoiding errors and safety hazards caused by manual operation.
[0016] Of course, any product implementing this utility model does not necessarily need to achieve all of the advantages described above at the same time. Attached Figure Description
[0017] To more clearly illustrate the technical solutions of the embodiments of this utility model, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0018] Figure 1 This is a schematic diagram of the overall structure of this utility model; Figure 2 This is a schematic diagram of the feeding section of this utility model; Figure 3 This is a schematic diagram of the feeding section of this utility model; Figure 4 This utility model Figure 2 A magnified structural diagram of A in the middle; Figure 5 This utility model Figure 3 A magnified structural diagram of B in the diagram.
[0019] Figure 6 This utility model Figure 3 A magnified structural diagram of C.
[0020] The attached diagram lists the components represented by each number as follows: 1. Support frame; 2. Feeding section; 21. Feeding assembly; 211. Fixed mounting plate; 212. Slide chute; 213. Movable mounting plate; 214. Fixed block; 22. Drive assembly; 221. Motor sleeve one; 222. Motor one; 223. Rotating shaft one; 224. Turntable; 225. Crankshaft; 23. Conveying assembly; 231. Conveying frame; 232. Conveying belt; 3. Feeding section; 31. Moving assembly; 311. Material 312. Bucket; 313. Rectangular frame; 314. Guide roller; 315. Material blank; 316. Screw; 317. Rectangular frame; 318. Manual knob; 319. Motor II; 320. Rotating shaft II; 321. Drive roller; 322. Cutting assembly; 321. Rectangular plate; 322. Slide rod; 323. Hydraulic push rod; 324. Slide plate; 325. Motor sleeve II; 326. Motor III; 327. Rotating shaft III; 328. Cutting disc. Detailed Implementation
[0021] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0022] Please see Figure 1-6 As shown, this utility model is a rapid feeding device for slider processing, including a support frame 1, and further including: a feeding part 2, which is installed on the support frame 1 and is used to feed materials to the device; and a feeding part 3, which is installed on the feeding part 2 and is used to feed materials to the feeding part 2; wherein, after the blank is placed on the feeding part 3, the feeding part 3 can cut the blank into equal parts of the required size. Subsequently, the feeding part 2 will send the equal parts of the blank into the subsequent device for deep processing, thereby completing the entire material pretreatment and transmission process.
[0023] The feeding unit 2 includes a feeding assembly 21, which is mounted on a support frame 1 and used to feed materials to the device; a drive assembly 22, which is also mounted on the support frame 1 and used to provide power to the feeding assembly 21; and a conveying assembly 23, which is mounted on the feeding assembly 21 and used to convey the sized blanks in the feeding assembly 21 to subsequent devices for further processing; wherein, after the drive assembly 22 is started, it can convey the uniformly divided blanks to the conveying assembly 21 through the feeding assembly 21. Component 23, then the conveying component 23 will convey the billet to the subsequent device. The feeding component 21 includes several fixed plates 211 set on the support frame 1. The support frame 1 has a sliding groove 212, and a movable plate 213 is slidably connected to the sliding groove 212. The movable plate 213 is adapted to the several fixed plates 211. A fixing block 214 is fixedly connected to the back of the movable plate 213. When the crankshaft 225 rotates, it will drive the movable plate 213 connected to it to cooperate with the fixed plates 211. The movable ramp 213 enables the orderly conveying of the disordered, equally portioned material blanks in the hopper to the conveyor frame 231. The drive assembly 22 includes a motor sleeve 221 fixedly connected to the bottom inner wall of the support frame 1. A motor 222 is mounted on the motor sleeve 221. The output shaft of the motor 222 is fixedly connected to a rotating shaft 223 via a coupling. A turntable 224 is mounted on the outer wall of the rotating shaft 223. A crankshaft 225 is hinged to the turntable 224. The end of the crankshaft 225 away from the turntable 224 is hinged to a fixed block 214. After starting motor 222, motor 222 drives turntable 224 to rotate through shaft 223. Since crankshaft 225 is hinged on turntable 224, when turntable 224 rotates, it will cause movable plate 213 connected to crankshaft 225 to cooperate with fixed plate 211 through the transmission of crankshaft 225, so that the messy equal-sized material blanks in the hopper are neatly transported to conveyor frame 231. Conveying assembly 23 includes conveyor frame 231 set on fixed plate 211, and conveyor belt 232 is set on conveyor frame 231.The movable ramp 213 can neatly transport the messy, equally divided blanks in the hopper to the conveyor frame 231. Then, the blanks are transported to subsequent processing equipment via the conveyor belt 232 on the conveyor frame 231. By setting up the loading section 2, the motor 222 is started. The motor 222 drives the turntable 224 to rotate via the rotating shaft 223. Since the turntable 224 is hinged to a crankshaft 225, when the turntable 224 rotates, it will, with the help of the crankshaft 225, cause the crankshaft 225 to connect to... The movable ramp 213 and the fixed ramp 211 work together to neatly transport the disordered, equally divided blanks in the hopper to the conveyor frame 231. Subsequently, the conveyor belt 232 on the conveyor frame 231 transports the blanks to subsequent processing equipment. This setup achieves a fully automated process from disordered arrangement to orderly conveying of blanks, effectively reducing manual intervention, improving production efficiency and processing accuracy, lowering labor intensity and labor costs, while ensuring the stability and continuity of the production process.
[0024] The feeding unit 3 includes a moving component 31, which is mounted on the feeding unit 3 and used to control the cutting speed of the blank so that the blank can be cut into equal portions; and a cutting component 32, which is mounted on the feeding unit 3 and used to cut the blank; wherein, after the blank is placed on the moving component 31, the moving component 31 can transport the blank into equal portions to the cutting component 32 according to a set program, and then the cutting component 32 completes the cutting of the blank. The moving component 31 includes a hopper 311 fixedly connected to the front of the support frame 1, and a rectangular frame 312 is provided on the top of the hopper 311. A plurality of guide rollers 31 are provided on the rectangular frame 312. 3. A blank 314 is slidably connected to several guide rollers 313, and a driving component is provided on the rectangular frame 312. After the blank 314 is placed on the rectangular frame 312, the driving component is activated. The driving component cooperates with the guide rollers 313 on the rectangular frame 312, allowing the blank 314 to move easily and evenly to the bottom of the cutting assembly 32. The cutting assembly 32 includes a rectangular plate 321 fixedly connected to the front of the hopper 311. Two sliding rods 322 are fixedly connected to the top of the rectangular plate 321. A hydraulic push rod 323 is sleeved on the rectangular plate 321. A sliding plate 324 is slidably connected to the outer wall of the two sliding rods 322. The output end of the hydraulic push rod 323 is fixedly connected to the sliding plate 324. A motor sleeve 325 is fixedly connected to the bottom of the slide plate 324. A motor 326 is mounted on the motor sleeve 325. The output shaft of the motor 326 is fixedly connected to a rotating shaft 327 via a coupling. A cutting disc 328 is mounted on the outer wall of the rotating shaft 327 and is adapted to the blank 314. When the blank 314 moves to the bottom of the cutting disc 328, the motor 326 is activated. The motor 326 drives the cutting disc 328 to rotate via the rotating shaft 327. Immediately afterwards, the hydraulic push rod 323 is activated. The hydraulic push rod 323 drives the slide plate 324 and the rotating cutting disc 328 on the slide plate 324 to move closer to the blank 314. The paired blanks 314 are cut into equal portions, and the cut blanks fall into the hopper 311. The driving component includes two screws 315 fixedly connected to the top of the rectangular frame 312. A rectangular frame 316 is slidably connected to the outer wall of the two screws 315. A manual knob 317 is threadedly connected to the outer wall of each screw 315. A second motor 318 is provided on the front of the rectangular frame 316. The output shaft of the second motor 318 is fixedly connected to a second rotating shaft 319 through a coupling. The second rotating shaft 319 passes through the rectangular frame 316 and is rotatably connected to the rectangular frame 316. A drive roller 320 is sleeved on the outer wall of the second rotating shaft 319. The outer wall of the drive roller 320 is in contact with the blank 314.Before placing the blank, the manual knob 317 on the outer wall of the screw 315 is turned to release the restriction on the rectangular frame 316, allowing it to move up and down. Then, the blank 314 is passed through the drive space formed by the drive roller 320 and the guide roller 313 on the rectangular frame 312. After passing through, the manual knob 317 is turned again, and the rectangular frame 316 will drive the drive component on it to fix the blank 314 appropriately. After fixing, the second motor 318 is started. The second motor 318 drives the drive roller 320 through the second shaft 319, and works in coordination with the cutting component 32 according to the set program to realize the conveying and cutting of the blank 314. By setting the feeding part 3, in use, before placing the blank, the manual knob 317 on the outer wall of the screw 315 is turned to release the restriction on the rectangular frame 316, allowing it to move up and down. Then, the blank 314 is passed through the drive space formed by the drive roller 320 and the guide roller 313 on the rectangular frame 312. After passing through, the blank is completed. Then, manually turn knob 317 again. Rectangular frame 316 will drive the drive component on it to fix blank 314. After fixing, motor 2 318 is started. Motor 2 318 drives drive roller 320 through shaft 2 319 to transport blank 314 to the bottom of cutting assembly 32 at equal intervals according to the set program. When blank 314 is transported to the bottom of cutting assembly 32, motor 326 is started. Motor 326 drives cutting disc 328 to rotate through shaft 327. Then, hydraulic push rod 323 is started. Hydraulic push rod 323 drives slide plate 324 and the rotating cutting disc 328 on slide plate 324 to approach blank 314, completing the uniform and equal-division cutting of blank 314. The cut blank will fall into hopper 311. Through this setting, the entire process from blank feeding, fixing, equidistant transportation to precise cutting can be automated, significantly improving processing efficiency and cutting accuracy, and avoiding errors and safety hazards caused by manual operation.
[0025] A specific application of this embodiment is as follows: Before placing the blank, first rotate the manual knob 317 on the outer wall of the screw 315 to release the restriction on the rectangular frame 316, allowing it to move up and down. Then, pass the blank 314 through the driving space formed by the drive roller 320 and the guide roller 313 on the rectangular frame 312. After passing the blank, rotate the manual knob 317 again. The rectangular frame 316 will drive the driving component on it to fix the blank 314. After fixing, start the second motor 318. 318 drives the drive roller 320 via the second rotating shaft 319, conveying the blank 314 to the bottom of the cutting assembly 32 at equal intervals according to the set program. When the blank 314 is conveyed to the bottom of the cutting assembly 32, the third motor 326 is started. The third motor 326 drives the cutting disc 328 to rotate via the third rotating shaft 327. Then, the hydraulic push rod 323 is started. The hydraulic push rod 323 drives the slide plate 324 and the rotating cutting disc 328 on the slide plate 324 to move closer to the blank 314, completing the uniform and equal cutting of the blank 314. After cutting, the blank will fall into the hopper 311. This setup enables fully automated control of the entire process from blank feeding, fixing, equidistant conveying to precise cutting, significantly improving processing efficiency and cutting accuracy, and avoiding errors and safety hazards caused by manual operation. Next, motor 222 is started. Motor 222 drives turntable 224 to rotate via shaft 223. Since crankshaft 225 is hinged on turntable 224, its rotation, aided by the transmission of crankshaft 225, causes crankshaft 225 to rotate. The movable plate 213 connected to the fixed plate 211 on the 25 works together to neatly transport the messy, equally divided blanks in the hopper to the conveyor frame 231. Subsequently, the conveyor belt 232 on the conveyor frame 231 will transport the blanks to the subsequent equipment for further processing. Through this setting, a fully automated process of blanks from disordered sorting to orderly conveying can be realized, effectively reducing manual intervention, improving production efficiency and processing accuracy, reducing labor intensity and labor costs, and ensuring the stability and continuity of the production process.
[0026] In the description of this specification, references to terms such as "an embodiment," "example," "specific example," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.
[0027] The preferred embodiments of this utility model disclosed above are merely illustrative of the present utility model. These preferred embodiments do not exhaustively describe all details, nor do they limit the utility model to the specific implementations described. Clearly, many modifications and variations can be made based on the content of this specification. This specification selects and specifically describes these embodiments to better explain the principles and practical applications of this utility model, thereby enabling those skilled in the art to better understand and utilize it. This utility model is limited only by the claims and their full scope and equivalents.
Claims
1. A quick feeding device for slider processing, comprising a supporting frame (1), characterized in that, Also includes: The feeding section (2) is mounted on the support frame (1) and is used to feed materials to the device; as well as Feeding section (3), which is installed on feeding section (2) for feeding material to feeding section (2); After the blank is placed on the feeding part (3), the feeding part (3) can cut the blank into equal portions of the required size. Then, the loading part (2) will send the equal portions of blank into the subsequent device for deep processing, thereby completing the entire material pretreatment and transmission process.
2. The quick feeding device for slide machining according to claim 1, characterized in that, The feeding section (2) includes a feeding assembly (21), which is mounted on the support frame (1) and is used to feed materials to the device; A drive assembly (22) is mounted on a support frame (1) and is used to provide power to the feeding assembly (21); A conveying assembly (23), which is mounted on a feeding assembly (21), is used to convey the sized blanks in the feeding assembly (21) to subsequent devices for further processing; and After the drive assembly (22) is started, the drive assembly (22) can transport the evenly divided blanks to the conveying assembly (23) through the feeding assembly (21), and then the conveying assembly (23) will transport the blanks to the subsequent device.
3. The quick feeding device for slide machining according to claim 2, characterized in that, The feeding section (3) includes a moving component (31), which is installed on the feeding section (3) and is used to control the cutting speed of the blank so that the blank can be cut into equal parts. A cutting assembly (32), which is mounted on the feed section (3) for cutting the blank; and After the blank is placed on the moving component (31), the moving component (31) can transport the blank evenly and equally to the cutting component (32) according to the set program, and then the cutting component (32) completes the cutting of the blank.
4. The quick feeding device for slide machining according to claim 3, characterized in that, The feeding assembly (21) includes several fixed plates (211) set on the support frame (1). The support frame (1) has a sliding groove (212). A movable plate (213) is slidably connected to the sliding groove (212). The movable plate (213) is adapted to the several fixed plates (211). A fixing block (214) is fixedly connected to the back of the movable plate (213). When the crankshaft (225) rotates, it will drive the movable plate (213) connected to it to cooperate with the fixed plate (211), so that the movable plate (213) can neatly transport the messy equal-sized blanks in the hopper to the conveyor frame (231).
5. The quick feeding device for slide machining according to claim 4, characterized in that, The drive assembly (22) includes a motor sleeve (221) fixedly connected to the bottom inner wall of the support frame (1), a motor (222) sleeved on the motor sleeve (221), a rotating shaft (223) fixedly connected to the output shaft of the motor (222) through a coupling, a turntable (224) sleeved on the outer wall of the rotating shaft (223), a crankshaft (225) hinged on the turntable (224), and one end of the crankshaft (225) away from the turntable (224) hinged to a fixed block (214); When the motor is started (222), the motor (222) drives the turntable (224) to rotate through the shaft (223). Since the turntable (224) is hinged to the crankshaft (225), when the turntable (224) rotates, the movable plate (213) connected to the crankshaft (225) will cooperate with the fixed plate (211) through the transmission of the crankshaft (225) to neatly transport the messy equal-sized blanks in the hopper to the conveyor frame (231).
6. The quick feeding device for slide machining according to claim 5, characterized in that, The conveying assembly (23) includes a conveying frame (231) mounted on a fixed mounting plate (211), and a conveyor belt (232) is mounted on the conveying frame (231). Among them, the movable ramp (213) can neatly transport the messy equal-sized blanks in the hopper to the conveyor frame (231), and then transport the blanks to the subsequent device for deep processing through the conveyor belt (232) on the conveyor frame (231).
7. The quick feeding device for slide machining according to claim 6, characterized in that, The moving component (31) includes a hopper (311) fixedly connected to the front of the support frame (1), a rectangular frame (312) is provided on the top of the hopper (311), a plurality of guide rollers (313) are provided on the rectangular frame (312), a blank (314) is slidably connected on the plurality of guide rollers (313), and a driving component is provided on the rectangular frame (312); After the blank (314) is placed on the rectangular frame (312), the drive unit is activated. The drive unit will cooperate with the guide roller (313) on the rectangular frame (312) so that the blank (314) can be easily and evenly moved to the bottom of the cutting assembly (32).
8. The quick feeding device for slide machining according to claim 7, characterized in that, The cutting assembly (32) includes a rectangular plate (321) fixedly connected to the front of the hopper (311). Two sliding rods (322) are fixedly connected to the top of the rectangular plate (321). A hydraulic push rod (323) is sleeved on the rectangular plate (321). A sliding plate (324) is slidably connected to the outer wall of the two sliding rods (322). The output end of the hydraulic push rod (323) is fixedly connected to the sliding plate (324). A motor sleeve (325) is fixedly connected to the bottom of the sliding plate (324). A motor sleeve (326) is sleeved on the motor sleeve (325). A rotating shaft (327) is fixedly connected to the output shaft of the motor sleeve (326) through a coupling. A cutting disc (328) is sleeved on the outer wall of the rotating shaft (327). The cutting disc (328) is adapted to the blank (314). When the blank (314) moves to the bottom of the cutting disc (328), the motor three (326) is started. The motor three (326) drives the cutting disc (328) to rotate through the rotating shaft three (327). Then the hydraulic push rod (323) is started. The hydraulic push rod (323) will drive the sliding plate (324) and the cutting disc (328) rotating on the sliding plate (324) to approach the blank (314) and complete the uniform and equal cutting of the blank (314). The cut blank will fall into the hopper (311).
9. The quick feeding device for slide machining according to claim 8, characterized in that, The driving component includes two screws (315) fixedly connected to the top of the rectangular frame (312). A rectangular frame (316) is slidably connected to the outer wall of the two screws (315). A manual knob (317) is threadedly connected to the outer wall of each screw (315). A second motor (318) is provided on the front of the rectangular frame (316). The output shaft of the second motor (318) is fixedly connected to a second rotating shaft (319) through a coupling. The second rotating shaft (319) passes through the rectangular frame (316) and is rotatably connected to the rectangular frame (316). A driving roller (320) is sleeved on the outer wall of the second rotating shaft (319). The outer wall of the driving roller (320) is in contact with the blank (314). Before placing the blank, first turn the manual knob (317) on the outer wall of the screw (315) to release the restriction on the rectangular frame (316) so that it can move up and down. Then, pass the blank (314) through the drive space composed of the drive roller (320) and the guide roller (313) on the rectangular frame (312). After the material is passed through, turn the manual knob (317) again. The rectangular frame (316) will drive the drive component on it to fix the blank (314) appropriately. After the fixation is ready, start the second motor (318). The second motor (318) drives the drive roller (320) through the second rotating shaft (319) and works in coordination with the cutting component (32) according to the set program to realize the conveying and cutting of the blank (314).