Double four-disk accumulator

CN224716047UActive Publication Date: 2026-09-04DONGGUAN QIANGHUA MASCH EQUIP CO LTD
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Patent Information

Application Number
CN202522266722.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-25
Publication Date
2026-09-04
Estimated Expiration
2035-10-25

AI Technical Summary

Technical Problem

[0006]为了克服现有技术方案的不足,本实用新型提供双料四盘收料机,能有效的解决目前用于料带收料的收料机效率低以及稳定性不足的技术问题

Benefits of technology

[0026] The system employs a dual-feeding mechanism and a four-rewinding mechanism, with a lifting module enabling switching between the rewinding mechanisms. This allows for simultaneous processing of two tapes, significantly improving rewinding efficiency and reducing downtime for reel changes, making it suitable for mass production. The feeding mechanism integrates components for feeding, height adjustment, counting, marking, feeding drive, and cutting, forming a complete feeding process. Each step works together to enhance automation and reduce manual intervention. The rewinding mechanism uses fiber optic sensors to monitor the rewinding process in real time. Combined with an adjustable reel, this ensures smooth and stable rewinding, reducing tape wrinkles or breakage and improving rewinding quality.

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Abstract

The utility model discloses a double material four disc material collecting machine in the field of material collecting machine, including frame, two feeding mechanisms are longitudinally equipped on one side of frame, four winding mechanisms are longitudinally equipped on the other side, winding mechanism is connected with frame through lifting module, and every two winding mechanisms correspond to a feeding mechanism and realize switching material collecting. The feeding mechanism contains feeding support plate, and the feeding support plate is sequentially equipped with feeding, height adjustment, counting optical fiber, marking, feeding drive and cutting assembly. The winding mechanism includes lifting frame, material collecting disc and paper placing disc, and the material collecting disc has detection optical fiber. The material collecting machine can process two material tapes simultaneously, switches winding mechanism through lifting module, reduces downtime, and improves efficiency, and the feeding mechanism integrates multiple components, and the degree of automation is high, and the winding mechanism guarantees winding quality, and the overall structure is compact, convenient operation, and adapts to different specifications material tape material collecting demand.
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Description

Technical Field

[0001] This utility model relates to the field of material receiving machine technology, specifically a double-material four-disc material receiving machine. Background Technology

[0002] In industrial production, tape winding equipment is an indispensable key piece of equipment in industries such as electronics and packaging, and its performance directly affects production efficiency and product quality. Currently, the tape winding equipment on the market suffers from the following problems:

[0003] First, traditional take-up machines mostly adopt a mode of single feeding mechanism matched with single winding mechanism, which can only process one strip of material at a time. In large-scale production scenarios, the take-up speed is difficult to keep up with the front-end processing rhythm, which seriously restricts the overall production efficiency.

[0004] Secondly, the processes of feeding, counting, marking, and cutting in existing equipment are often independent of each other, requiring multiple machines to complete them step by step. The transfer of the material strip between each process relies on manual operation, which not only increases labor costs, but also easily causes the material strip to stretch, wear or deviate due to manual intervention, affecting the subsequent winding quality.

[0005] Finally, after the winding mechanism is fully wound, it is necessary to manually stop the machine to replace the take-up reel. This process will cause production interruption, especially on high-speed production lines, where frequent stops to change reels will significantly reduce equipment utilization. At the same time, frequent stops can easily cause problems such as wrinkles, stacking, or inconsistent winding tension in the strip, leading to a decrease in the finished product qualification rate. Utility Model Content

[0006] In order to overcome the shortcomings of existing technical solutions, this utility model provides a double-material four-disc receiving machine, which can effectively solve the technical problems of low efficiency and insufficient stability of current receiving machines used for material strip receiving.

[0007] The technical solution adopted by this utility model to solve its technical problem is:

[0008] The double-material four-disc take-up machine includes a frame. Two feeding mechanisms are arranged longitudinally on one side of the frame, and four winding mechanisms are arranged longitudinally on the other side of the frame. The winding mechanisms are connected to the frame through a lifting module, so that every two winding mechanisms correspond to one feeding mechanism to achieve back-and-forth switching for taking up materials.

[0009] The feeding mechanism includes a feeding support plate connected to the outside of the frame, and a feeding assembly, a height adjustment assembly, a counting fiber, a marking assembly, a feeding drive assembly and a cutting assembly arranged sequentially from one end to the other on the feeding support plate. The winding mechanism is located on the side close to the cutting assembly.

[0010] The feeding assembly includes a feeding bracket fixed to one end of the feeding support plate and extending outward, a feeding wheel sleeved on the outside of the feeding bracket and movable, and an upper limit sensor fixed at one end to the feeding bracket, wherein the upper limit sensor is located between the feeding wheel and the feeding support plate.

[0011] The height adjustment assembly includes a height adjustment seat fixed to the feeding support plate, an adjustment plate that moves up and down inside the height adjustment seat, and a first knob inserted through the top of the height adjustment seat to control the movement of the adjustment plate.

[0012] The marking assembly includes a marking base fixed to a feeding support plate, a marking cylinder fixed to the marking base, and a marking head driven and controlled by the marking cylinder to mark the material strip.

[0013] The feeding drive assembly includes a first clamping sliding wheel, a second clamping sliding wheel that cooperates with the first clamping sliding wheel to clamp the material strip, and a feeding motor that drives and controls the rotation of the first clamping sliding wheel.

[0014] The cutting assembly includes a cutting base fixed to a feeding support plate, a cutting cylinder fixed to the cutting base, and a cutter head driven and controlled by the cutting cylinder to cut the material strip.

[0015] The winding mechanism includes a lifting frame connected to the lifting module, a take-up tray rotatably connected to one end of the lifting frame, and a paper feeding tray connected to the other end of the lifting frame for winding the material strip. The take-up tray is provided with several detection optical fibers around its circumference for detecting the material strip.

[0016] Furthermore, the feeding support plate is connected to the frame via a transverse module, enabling the feeding support plate to move horizontally; the transverse module includes a base plate fixed to the frame, a first guide rail mounted on the base plate, a movable plate that slides on the first guide rail and is connected to the feeding support plate, and a handwheel for driving and controlling the movement of the movable plate.

[0017] Furthermore, one end of the feeding bracket that mounts the feeding wheel is fitted with a detachable feeding wheel locking component, and one end of the upper limit sensor is provided with a connecting block that is slidably fitted onto the feeding frame.

[0018] Furthermore, the feeding support plate has two spaced-apart feed guide wheels at one end near the feeding assembly. The feeding support plate has an elongated hole for adjusting the position of the feed guide wheels. The feed guide wheels are fixed by a guide wheel locking member inserted into the elongated hole at the bottom of the feeding support plate.

[0019] Furthermore, the feeding support plate is provided with an optical fiber adjustment assembly for adjusting the height of the counting optical fiber. The optical fiber adjustment assembly includes an optical fiber fixing frame fixed to the bottom of the feeding support plate, a second guide rail mounted on the optical fiber fixing frame, an optical fiber connector that slides on the second guide rail and is connected to the counting optical fiber, and a second knob inserted through the optical fiber fixing frame for adjusting the position of the optical fiber connector.

[0020] Furthermore, the feeding support plate is equipped with a feeding clamping module for controlling the movement of the second clamping sliding wheel. The feeding clamping module includes a third guide rail installed at the bottom of the feeding support plate, a clamping slider that slides on the third guide rail and is connected to the second clamping sliding wheel, and a clamping cylinder for driving and controlling the movement of the clamping slider.

[0021] Furthermore, the feeding support plate is provided with a support plate assembly for supporting the take-up tray at one end near the winding mechanism. The support plate assembly includes a support plate base fixed to the feeding support plate, a fourth guide rail installed on the support plate base, a support member slidable on the fourth guide rail, and a third knob inserted through the support plate base for adjusting the position of the support member.

[0022] Furthermore, the take-up tray is coaxially arranged with one end of the lifting frame, and the middle of the take-up tray is provided with a tray locking device connected to the lifting frame for adjusting the tension of the take-up tray; a winding motor that drives and controls the rotation of the paper feeding tray is installed at one end of the lifting frame connected to the paper feeding tray.

[0023] Furthermore, the lifting module includes a lifting fixed seat fixed on the frame, a fifth guide rail installed on the lifting fixed seat, a lifting movable component sliding on the fifth guide rail, and a lifting drive motor for driving and controlling the movement of the lifting movable component. One end of the lifting frame is fixed to the lifting movable component.

[0024] Furthermore, the rack contains a circuit board, and the rack also contains a human-machine interface and alarm lights connected to the circuit board.

[0025] Compared with the prior art, the beneficial effects of this utility model are:

[0026] The system employs a dual-feeding mechanism and a four-rewinding mechanism, with a lifting module enabling switching between the rewinding mechanisms. This allows for simultaneous processing of two tapes, significantly improving rewinding efficiency and reducing downtime for reel changes, making it suitable for mass production. The feeding mechanism integrates components for feeding, height adjustment, counting, marking, feeding drive, and cutting, forming a complete feeding process. Each step works together to enhance automation and reduce manual intervention. The rewinding mechanism uses fiber optic sensors to monitor the rewinding process in real time. Combined with an adjustable reel, this ensures smooth and stable rewinding, reducing tape wrinkles or breakage and improving rewinding quality. Attached Figure Description

[0027] Figure 1 This is a schematic diagram of the overall structure of an embodiment of the present utility model from the front view.

[0028] Figure 2 This is a rear view schematic diagram of the overall structure of an embodiment of this utility model;

[0029] Figure 3 This is a schematic diagram of the frame structure of an embodiment of the present utility model;

[0030] Figure 4 This is an embodiment of the present utility model. Figure 3 Enlarged schematic diagram of section A in the middle;

[0031] Figure 5 This is a top view of the feeding mechanism in an embodiment of the present invention.

[0032] Figure 6 This is a schematic diagram of the feeding mechanism in an embodiment of the present invention, viewed from below.

[0033] Figure 7 This is a top view of the winding mechanism according to an embodiment of the present invention.

[0034] Figure 8 This is a schematic diagram of the winding mechanism in an embodiment of the present invention, viewed from below.

[0035] Figure 9 This is a schematic diagram of the feeding component structure in an embodiment of the present utility model;

[0036] Figure 10 This is a schematic diagram of the height adjustment component structure according to an embodiment of the present invention;

[0037] Figure 11 This is a schematic diagram of the marking component structure according to an embodiment of the present utility model;

[0038] Figure 12 This is a schematic diagram of the connection structure between the feeding drive assembly and the feeding clamping module in an embodiment of this utility model;

[0039] Figure 13 This is a schematic diagram of the material cutting assembly structure according to an embodiment of the present invention;

[0040] Figure 14 This is a schematic diagram of the connection structure between the counting fiber and the fiber adjustment assembly in an embodiment of this utility model;

[0041] Figure 15 This is a schematic diagram of the support plate assembly structure according to an embodiment of the present utility model;

[0042] Numbering on the map:

[0043] 1-Frame, 2-Feeding mechanism, 3-Rewinding mechanism, 4-Lifting module, 5-Transverse module, 6-Circuit board, 7-Human machine interface, 8-Alarm light;

[0044] 21-Feeding support plate, 22-Feeding assembly, 23-Height adjustment assembly, 24-Counting fiber optic, 25-Marking assembly, 26-Feeding drive assembly, 27-Cutting assembly, 28-Infeed guide wheel, 29-Fiber optic adjustment assembly, 30-Feeding clamping module, 31-Lifting frame, 32-Receiving tray, 33-Paper tray, 34-Supporting tray assembly;

[0045] 211-Elongated hole; 212-Guide wheel locking element;

[0046] 221-Feeding bracket, 222-Feeding wheel, 223-Upper limit sensor, 224-Feeding wheel locking component, 225-Connecting block;

[0047] 231-Height adjustment seat, 232-Adjustment plate, 233-First knob;

[0048] 251-Marking base, 252-Marking cylinder, 253-Marking head;

[0049] 261-First clamping sliding wheel, 262-Second clamping sliding wheel, 263-Feeding motor;

[0050] 271-Cutting base, 272-Cutting cylinder, 273-Cutter head;

[0051] 291-Fiber optic bracket, 292-Second guide rail, 293-Fiber optic connector, 294-Second knob;

[0052] 301 - Third guide rail, 302 - Clamping slider, 303 - Clamping cylinder;

[0053] 321 - Detection fiber optic cable; 322 - Tray locking component;

[0054] 331 - Take-up motor;

[0055] 341-Support base, 342-Fourth guide rail, 343-Support component, 344-Third knob;

[0056] 401-Lifting fixed base, 402-Fifth guide rail, 403-Lifting movable part, 404-Lifting drive motor; 501-Base plate, 502-First guide rail, 503-Modible plate, 504-Handwheel. Detailed Implementation

[0057] 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.

[0058] like Figure 1-15 As shown, this utility model provides a double-material four-disc take-up machine, including a frame 1. Two feeding mechanisms 2 are longitudinally arranged on one side of the frame 1, and four winding mechanisms 3 are longitudinally arranged on the other side. The winding mechanisms 3 are connected to the frame 1 through a lifting module 4, realizing that each pair of winding mechanisms 3 corresponds to one feeding mechanism 2, switching back and forth to take up materials, so that the take-up machine works continuously and improves the winding efficiency. A circuit board 6 is provided inside the frame 1, and a human-machine interface 7 and an alarm light 8 are provided outside the frame 1 and connected to the circuit board 6. The operator can operate and control the machine through the human-machine interface 7, and the alarm light 8 will sound an alarm when the equipment malfunctions.

[0059] The feeding mechanism 2 includes a feeding support plate 21 connected to the outside of the frame 1, and a feeding assembly 22, a height adjustment assembly 23, a counting fiber 24, a marking assembly 25, a feeding drive assembly 26 and a cutting assembly 27 arranged sequentially from one end to the other on the feeding support plate 21. The winding mechanism 3 is located on the side close to the cutting assembly 27.

[0060] The feeding support plate 21 is connected to the frame 1 via a transverse module 5, allowing the feeding support plate 21 to move horizontally. The transverse module 5 includes a base plate 501 fixed to the frame 1, a first guide rail 502 mounted on the base plate 501, a movable plate 503 sliding on the first guide rail 502 and connected to the feeding support plate 21, and a handwheel 504 that drives and controls the movement of the movable plate 503. Rotating the handwheel 504 causes the movable plate 503 to slide along the first guide rail 502, thereby adjusting the horizontal position of the feeding support plate 21.

[0061] The feeding support plate 21 has two spaced-apart feed guide wheels 28 at one end near the feeding assembly 22. The feeding support plate 21 has an elongated hole 211 for adjusting the position of the feed guide wheels 28. The feed guide wheels 28 are fixed by a guide wheel locking member 212 inserted into the elongated hole 211 at the bottom of the feeding support plate 21. Loosening the guide wheel locking member 212 allows the position of the feed guide wheel 28 to be adjusted along the elongated hole 211. After adjustment, the guide wheel locking member 212 can be tightened again.

[0062] The feeding assembly 22 includes a feeding bracket 221 fixed to one end of the feeding support plate 21 and extending outward, a feeding wheel 222 sleeved on the outside of the feeding bracket 221, and an upper limit sensor 223 fixed at one end to the feeding bracket 221. The upper limit sensor 223 is located between the feeding wheel 222 and the feeding support plate 21. A detachable wheel locking member 224 is sleeved on one end of the feeding bracket 221 where the feeding wheel 222 is mounted to prevent the feeding wheel 222 from falling off the feeding bracket 221. A connecting block 225 is slidably sleeved on the feeding frame 1 at one end of the upper limit sensor 223 to adjust the position of the upper limit sensor 223. During operation, the feed strip is wound on the feeding wheel 222. The upper limit sensor 223 can sense the remaining amount of feed strip on the feeding wheel 222. When the feed strip is insufficient, it can promptly remind the operator to feed more.

[0063] The height adjustment assembly 23 includes a height adjustment seat 231 fixed to the feeding support plate 21, an adjustment plate 232 that moves up and down inside the height adjustment seat 231, and a first knob 233 inserted through the top of the height adjustment seat 231 and controlling the movement of the adjustment plate 232. Rotating the first knob 233 drives the adjustment plate 232 to move up and down inside the height adjustment seat 231, thereby adjusting the height according to the thickness of the material belt and other factors to ensure smooth passage of the material belt.

[0064] The counting fiber optic cable 24 is used to count the passing material strip and transmit the counting information to the circuit board 6, which is then displayed through the human-machine interface 7, making it convenient for operators to monitor the amount of material strip used.

[0065] The feeding support plate 21 is equipped with an optical fiber adjustment assembly 29 for adjusting the height of the counting optical fiber 24. The optical fiber adjustment assembly 29 includes an optical fiber fixing frame 291 fixed to the bottom of the feeding support plate 21, a second guide rail 292 mounted on the optical fiber fixing frame 291, an optical fiber connector 293 slidably mounted on the second guide rail 292 and connected to the counting optical fiber 24, and a second knob 294 inserted through the optical fiber fixing frame 291 for adjusting the position of the optical fiber connector 293. Rotating the second knob 294 causes the optical fiber connector 293 to slide along the second guide rail 292, thereby adjusting the height of the counting optical fiber 24 to meet the counting requirements of different specifications of tapes.

[0066] The marking assembly 25 includes a marking base 251 fixed to the feeding support plate 21, a marking cylinder 252 fixed to the marking base 251, and a marking head 253 driven and controlled by the marking cylinder 252 to mark the material strip. When the material strip passes through the marking assembly 25, the marking cylinder 252 drives the marking head 253 to perform a marking operation on the material strip, which can mark product information, etc.

[0067] The feeding drive assembly 26 includes a first clamping sliding wheel 261, a second clamping sliding wheel 262 that cooperates with the first clamping sliding wheel 261 to clamp the material strip, and a feeding motor 263 that drives and controls the rotation of the first clamping sliding wheel 261.

[0068] The feeding support plate 21 is equipped with a feeding clamping module 30 for controlling the movement of the second clamping sliding wheel 262. The feeding clamping module 30 includes a third guide rail 301 mounted on the bottom of the feeding support plate 21, a clamping slider 302 slidably mounted on the third guide rail 301 and connected to the second clamping sliding wheel 262, and a clamping cylinder 303 for driving and controlling the movement of the clamping slider 302. The clamping cylinder 303 drives the clamping slider 302 to slide along the third guide rail 301, which can adjust the distance between the second clamping sliding wheel 262 and the first clamping sliding wheel 261, thereby clamping material strips of different thicknesses. The feeding motor 263 drives the first clamping sliding wheel 261 to rotate, which drives the material strip forward under the action of friction.

[0069] The cutting assembly 27 includes a cutting base 271 fixed to the feeding support plate 21, a cutting cylinder 272 fixed to the cutting base 271, and a cutter head 273 driven and controlled by the cutting cylinder 272 to cut the strip. When the winding mechanism 3 winds up a certain length or quantity of strip, the cutting cylinder 272 drives the cutter head 273 to cut the strip.

[0070] The winding mechanism 3 includes a lifting frame 31 connected to the lifting module 4, a take-up tray 32 rotatably connected to one end of the lifting frame 31, and a paper feeding tray 33 connected to the other end of the lifting frame 31 for winding the material strip. The take-up tray 32 is provided with a plurality of detection optical fibers 321 for detecting the sensing material strip in a circumferential manner.

[0071] The take-up tray 32 is coaxially mounted with one end of the lifting frame 31. A tray locking element 322, connected to the lifting frame 31, is located in the middle of the take-up tray 32 and is used to adjust the tension of the take-up tray 32. The winding force of the take-up tray 32 can be adjusted as needed. A winding motor 331, which drives and controls the rotation of the paper feed tray 33, is installed at one end of the lifting frame 31 connected to the paper feed tray 33. When the winding motor 331 is working, it drives the paper feed tray 33 to rotate, cooperating with the take-up tray 32 to complete the winding of the material tape. A detection fiber optic cable 321 can detect the winding status of the material tape on the take-up tray 32 in real time to ensure normal winding.

[0072] The feeding support plate 21 has a support assembly 34 for supporting the take-up tray 32 at one end near the winding mechanism 3. The support assembly 34 includes a support base 341 fixed to the feeding support plate 21, a fourth guide rail 342 mounted on the support base 341, a support member 343 sliding on the fourth guide rail 342, and a third knob 344 inserted through the support base 341 for adjusting the position of the support member 343. Rotating the third knob 344 can drive the support member 343 to slide along the fourth guide rail 342, adjusting the support position of the support member 343 on the take-up tray 32, and ensuring the stable rotation of the take-up tray 32.

[0073] The lifting module 4 includes a lifting base 401 fixed on the frame 1, a fifth guide rail 402 mounted on the lifting base 401, a lifting movable component 403 sliding on the fifth guide rail 402, and a lifting drive motor 404 that drives and controls the movement of the lifting movable component 403. One end of the lifting frame 31 is fixed to the lifting movable component 403. The lifting drive motor 404 drives the lifting movable component 403 to slide up and down along the fifth guide rail 402, thereby driving the lifting frame 31 and the winding mechanism 3 to lift as a whole, realizing the back-and-forth switching of the two winding mechanisms 3 to one feeding mechanism 2 for material taking.

[0074] This dual-material, four-disc receiving machine is operated in the following manner:

[0075] Before starting the double-material four-reel take-up machine, the operator first sets the relevant parameters through the human-machine interface 7, such as the winding length and marking interval. Then, the material strip is wound onto the feed roller 222, and one end of the material strip is passed through the feed guide roller 28, the height adjustment component 23, the counting fiber optic cable 24, the marking component 25, the feeding drive component 26, and the cutting component 27 in sequence, and finally connected to the corresponding take-up reel 32.

[0076] During operation, the feeding motor 263 in the feeding drive assembly 26 drives the first clamping sliding wheel 261 to rotate, and the material belt is conveyed forward under the clamping action of the second clamping sliding wheel 262. The upper limit sensor 223 of the feeding assembly 22 monitors the remaining amount of material belt on the feeding wheel 222 in real time. When the material belt is insufficient, the alarm light 8 sounds an alarm to remind the operator to replenish the material in time.

[0077] When the conveyor belt passes through the height adjustment component 23, the operator can adjust the height of the adjustment plate 232 by rotating the first knob 233 to ensure that the conveyor belt passes smoothly. The counting fiber optic cable 24 counts the passing conveyor belts and transmits the data to the circuit board 6, which is then displayed in real time through the human-machine interface 7, allowing the operator to easily monitor the use of the conveyor belt.

[0078] When the tape reaches the marking assembly 25, the marking cylinder 252 drives the marking head 253 to perform a marking operation on the tape according to the set parameters. Then, the tape continues to be conveyed to the cutting assembly 27 and the winding mechanism 3. The winding motor 331 drives the paper feeding tray 33 to rotate, and works with the take-up tray 32 to wind the tape. The detection optical fiber 321 on the circumference of the take-up tray 32 detects the tape winding status in real time to ensure normal winding.

[0079] When the material strip wound by the take-up tray 32 reaches the set length or quantity, the cutting cylinder 272 of the cutting assembly 27 drives the cutter head 273 to cut the material strip. At this time, the lifting drive motor 404 of the lifting module 4 works, driving the lifting movable part 403 to move along the fifth guide rail 402, so that the other winding mechanism 3 corresponding to the feeding mechanism 2 moves to the working position to continue the winding operation, realizing automatic switching of the winding mechanism 3 and improving the winding efficiency. During the entire operation, if the equipment malfunctions, such as material strip breakage or winding abnormality, the alarm light 8 will sound an alarm in time to remind the operator to handle the situation.

[0080] Compared with traditional technologies, this technical solution adopts a corresponding design of dual feeding mechanisms and four winding mechanisms. The winding mechanism can be switched back and forth through a lifting module, which can handle two material strips at the same time, greatly improving the material taking efficiency, reducing downtime for changing reels, and is suitable for mass production needs. The feeding mechanism integrates components such as feeding, height adjustment, counting, marking, feeding drive and cutting to form a complete feeding process. Each link works together to improve the degree of automation and reduce manual intervention. The detection fiber of the winding mechanism monitors the material taking in real time. With the adjustable tension of the winding reel, it ensures flat and stable winding, reduces material strip wrinkles or breakage, and improves winding quality.

[0081] It will be apparent to those skilled in the art that this invention is not limited to the details of the exemplary embodiments described above, and that it can be implemented in other specific forms without departing from the spirit or essential characteristics of this invention. Therefore, the embodiments should be considered illustrative and non-limiting in all respects, and the scope of this invention is defined by the appended claims rather than the foregoing description. Thus, all variations falling within the meaning and scope of equivalents of the claims are intended to be included within this invention, and no reference numerals in the claims should be construed as limiting the scope of the claims.

Claims

1. A double-material, four-disc receiving machine, including a frame, characterized in that: Two feeding mechanisms are longitudinally arranged on one side of the frame, and four winding mechanisms are longitudinally arranged on the other side of the frame. The winding mechanisms are connected to the frame through a lifting module, so that every two winding mechanisms correspond to one feeding mechanism to achieve back-and-forth switching for material taking. The feeding mechanism includes a feeding support plate connected to the outside of the frame, and a feeding assembly, a height adjustment assembly, a counting fiber, a marking assembly, a feeding drive assembly and a cutting assembly arranged sequentially from one end to the other on the feeding support plate. The winding mechanism is located on the side close to the cutting assembly. The feeding assembly includes a feeding bracket fixed to one end of the feeding support plate and extending outward, a feeding wheel sleeved on the outside of the feeding bracket and movable, and an upper limit sensor fixed at one end to the feeding bracket, wherein the upper limit sensor is located between the feeding wheel and the feeding support plate. The height adjustment assembly includes a height adjustment seat fixed to the feeding support plate, an adjustment plate that moves up and down inside the height adjustment seat, and a first knob inserted through the top of the height adjustment seat to control the movement of the adjustment plate. The marking assembly includes a marking base fixed to the feeding support plate, a marking cylinder fixed to the marking base, and a marking head driven and controlled by the marking cylinder to mark the material strip. The feeding drive assembly includes a first clamping sliding wheel, a second clamping sliding wheel that cooperates with the first clamping sliding wheel to clamp the material strip, and a feeding motor that drives and controls the rotation of the first clamping sliding wheel. The cutting assembly includes a cutting base fixed to the feeding support plate, a cutting cylinder fixed to the cutting base, and a cutting head driven and controlled by the cutting cylinder to cut the material strip. The winding mechanism includes a lifting frame connected to the lifting module, a take-up tray rotatably connected to one end of the lifting frame, and a paper feeding tray connected to the other end of the lifting frame for winding the material strip. The take-up tray is provided with several detection optical fibers around its circumference for detecting the material strip.

2. The double-material four-disc receiving machine according to claim 1, characterized in that: The feeding support plate is connected to the frame through a transverse module, which allows the feeding support plate to move horizontally. The transverse module includes a base plate fixed to the frame, a first guide rail mounted on the base plate, a movable plate that slides on the first guide rail and is connected to the feeding support plate, and a handwheel for driving and controlling the movement of the movable plate.

3. The double-material four-disc receiving machine according to claim 1, characterized in that: The feeding bracket has a detachable material wheel locking device at one end where the feeding wheel is installed, and the upper limit sensor has a connecting block that is slidably sleeved on the feeding frame.

4. The double-material four-disc receiving machine according to claim 1, characterized in that: The feeding support plate has two spaced-apart feed guide wheels at one end near the feeding assembly. The feeding support plate has an elongated hole for adjusting the position of the feed guide wheels. The feed guide wheels are fixed by a guide wheel locking member inserted into the elongated hole at the bottom of the feeding support plate.

5. The double-material four-disc receiving machine according to claim 1, characterized in that: The feeding support plate is provided with an optical fiber adjustment assembly for adjusting the height of the counting optical fiber. The optical fiber adjustment assembly includes an optical fiber fixing frame fixed to the bottom of the feeding support plate, a second guide rail installed on the optical fiber fixing frame, an optical fiber connector that slides on the second guide rail and is connected to the counting optical fiber, and a second knob inserted through the optical fiber fixing frame for adjusting the position of the optical fiber connector.

6. The double-material four-disc receiving machine according to claim 1, characterized in that: The feeding support plate is equipped with a feeding clamping module for controlling the movement of the second clamping sliding wheel. The feeding clamping module includes a third guide rail installed at the bottom of the feeding support plate, a clamping slider that slides on the third guide rail and is connected to the second clamping sliding wheel, and a clamping cylinder that drives and controls the movement of the clamping slider.

7. The double-material four-disc receiving machine according to claim 1, characterized in that: The feeding support plate is provided with a support plate assembly for supporting the take-up tray at one end near the winding mechanism. The support plate assembly includes a support plate base fixed to the feeding support plate, a fourth guide rail installed on the support plate base, a support member that slides on the fourth guide rail, and a third knob inserted through the support plate base for adjusting the position of the support member.

8. The double-material four-disc receiving machine according to claim 1, characterized in that: The receiving tray is coaxially arranged with one end of the lifting frame, and the middle of the receiving tray is provided with a tray locking component that is connected to the lifting frame for adjusting the tightness of the receiving tray. The lifting frame is equipped with a winding motor that drives and controls the rotation of the paper feeding tray at one end.

9. The double-material four-disc receiving machine according to claim 1, characterized in that: The lifting module includes a lifting fixed seat fixed on the frame, a fifth guide rail installed on the lifting fixed seat, a lifting movable component that slides on the fifth guide rail, and a lifting drive motor that drives and controls the movement of the lifting movable component. One end of the lifting frame is fixed to the lifting movable component.

10. The double-material four-disc receiving machine according to any one of claims 1-9, characterized in that: The rack contains a circuit board, and the rack also contains a human-machine interface and alarm lights connected to the circuit board.