Synchronous feeding device and method for a continuous processing circular sawing machine

Through the coordination of feeding rack, tooth ring and tooth plate, combined with motor and hydraulic system, the alternating feeding of substrates of the continuous processing circular saw machine is achieved, solving the problems of long feeding time and low accuracy in the prior art, and improving feeding speed and accuracy.

CN120095226BActive Publication Date: 2025-08-05JINGYU SPECIAL STEEL (DALIAN) CO LTD
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Patent Information

Application Number
CN202510592822.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-05-09
Publication Date
2025-08-05
Estimated Expiration
2045-05-09

AI Technical Summary

Technical Problem

In the process of alternate feeding of multiple substrates, the feeding time is long and it is difficult to maintain accuracy.

Method used

By setting up the coupling of feeding rack, tooth ring and tooth plate, alternate feeding is realized, combining motor drive and hydraulic system to achieve accurate fixing and pushing of the substrate.

Benefits of technology

Improve feeding speed and accuracy, optimize the feeding process, and reduce the time consumption of alternate feeding of substrates.

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Abstract

The present invention discloses a synchronous feeding device and method for a continuous processing circular saw machine, and relates to the field of circular saw cutting technology. The device comprises a machine body, wherein a circular saw mechanism is installed at the rear of the bottom of the left side of the machine body cavity, two base frames are fixed on the left and right sides of the bottom of the machine body cavity, and the two base frames are slidably connected to a feeding rack via rollers, a gear ring is fixed on the right outer side of the feeding rack, and a gear disc is meshed and connected to the outer end of the gear ring, and the gear disc is installed at the bottom of the machine body cavity via a No. 1 motor, and a plurality of discharge troughs are opened transversely on the inner side of the feeding rack; by arranging the cooperation of the base frame, the feeding rack, the gear disc and the fixing assembly, the alternating feeding is completed and the substrate at the cutting position is clamped and fixed to complete the unloading; by arranging the cooperation of the feeding rack, the adjustment assembly, the No. 2 motor and the roller, the substrate is accurately pushed to the unloading size while the alternating feeding and unloading are completed.
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Description

Technical Field

[0001] The present invention relates to the technical field of circular saw cutting, in particular to a synchronous feeding device of a continuous processing circular saw machine and a method thereof. Background Art

[0002] The synchronous feeder for continuous circular saws is an automated device designed to improve cutting efficiency, precision, and safety. It is primarily used in continuous processing of materials such as wood, plastic, and metal, ensuring that the material enters the saw at a constant speed and direction for cutting.

[0003] However, in actual use, the feeding device of the existing circular saw machine mostly adopts a conveyor frame in conjunction with conveyor rollers, conveyor belts, cylinders and telescopic rods to push the material directly. After the circular saw machine completes cutting, it is necessary to first loosen the substrate's stabilizing mechanism, and then push the material accurately to the cutting size. After pushing is completed, the stabilizing mechanism is clamped. In this process, the opening, closing, positioning and linkage of the substrate's stabilizing mechanism and the pushing device require a lot of time, which makes it inconvenient for the existing synchronous feeding device to optimize the feeding time by alternating feeding of multiple substrates while maintaining the feeding accuracy. Summary of the Invention

[0004] The purpose of the present invention is to provide a synchronous feeding device and method for a continuous processing circular saw machine, so as to solve the problem raised in the above background technology that the existing synchronous feeding device is not convenient to optimize the feeding time by alternating feeding of multiple substrates while maintaining the accuracy of feeding. The technical solution of the present invention is aimed at the technical problem that the existing technical solution is too single, and provides a solution that is significantly different from the existing technology.

[0005] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: a synchronous feeding device and method of a continuous processing circular saw machine, comprising a machine body, a circular saw mechanism installed at the rear of the bottom left side of the machine body cavity, two base frames fixed on the left and right sides of the bottom of the machine body cavity, the two base frames are slidably connected to a feeding rack through rollers, a gear ring is fixed on the right outer side of the feeding rack, the outer end of the gear ring is meshed with a gear disk, the gear disk is installed at the bottom of the machine body cavity through a No. 1 motor, a plurality of discharge troughs are opened transversely on the inner side of the feeding rack, and a plurality of mounting holes are opened inside the discharge trough. The inner sides of the plurality of mounting grooves are slidably connected to support bars through a No. 1 electric push rod, and two first grooves and a second groove are circumferentially provided on the outer side of the feeding rack, and the two second grooves are provided between the two first grooves. A fixing frame is provided above the first groove and the second groove, and the fixing frame is installed at the bottom of the inner cavity of the machine body, and the fixing frame is connected to the support bar through a fixing component and a base material, and a sliding base is provided under the two second grooves, and the sliding base is connected to the bottom of the inner cavity of the machine body through an adjusting component, and the sliding base is connected to a roller through the rotation of the No. 2 motor.

[0006] Preferably, the plurality of discharge troughs that pass through the inner side of the feeding rack transversely are opened at equal angles, and the opening angle of the mounting groove corresponds to the opening angle of the discharge trough.

[0007] Preferably, the two fixing frames are arranged in a mirror image, and the positions of the two fixing frames and the lateral positions of the two first grooves and the second grooves correspond to each other.

[0008] Preferably, the fixing assembly includes a No. 1 hydraulic tank, which is installed in the longitudinal center of the upper end of the fixing frame. The top of the inner cavity of the No. 1 hydraulic tank is connected to a No. 1 plug body through a spring sliding connection, and the lower end of the No. 1 plug body is in conflict with the substrate. The inner cavity of the No. 1 hydraulic tank is connected to a No. 2 hydraulic tank through a hose, and the No. 2 hydraulic tank is installed in the longitudinal center of the upper end of the fixing frame. The bottom of the inner cavity of the No. 2 hydraulic tank is connected to the No. 2 plug body through a spring. The fixing assembly is used for adaptive clamping of the substrate.

[0009] Preferably, the No. 1 hydraulic box is installed at a position on the fixing frame corresponding to a position where the first groove is opened, and the No. 2 hydraulic box is installed at a position on the fixing frame corresponding to a position where the second groove is opened.

[0010] Preferably, the No. 1 plug body and the No. 2 plug body move in opposite directions, the No. 1 plug body and the support bar move relative to each other, and the lower end of the No. 1 plug body is designed to be a spherical structure.

[0011] Preferably, the adjusting assembly includes a No. 3 hydraulic box and a base plate, the No. 3 hydraulic box is installed at the bottom of the inner cavity of the machine body, the bottom of the inner cavity of the No. 3 hydraulic box is slidably connected to the No. 3 plug body through a spring, the top of the No. 3 plug body is slidably connected to the adjusting block, the adjusting block is installed on the outside of the right section of the feeding rack, the inner cavity of the No. 3 hydraulic box is connected to two No. 4 hydraulic boxes through a hose, the No. 4 hydraulic box is installed at the bottom of the inner cavity of the machine body, the top of the inner cavity of the No. 4 hydraulic box is connected to the No. 4 plug body through a spring, the top of the No. 4 plug body is connected to the inner partition of the sliding base, the inner lower end of the sliding base is slidably sleeved on the outside of the No. 4 hydraulic box, a pressure sensor is installed at the bottom of the inner cavity of the No. 4 hydraulic box, the base plate is installed at the bottom of the inner cavity of the machine body, a fixed rod is provided for limiting sliding in the groove at the top of the base plate, and a contact sensor is installed on the top of the fixed rod.

[0012] Preferably, multiple adjustment blocks are installed at equal angles on the outside of the right section of the feeding rack, and the installation angles of the multiple adjustment blocks correspond to the opening angles of the discharge trough. The installation position of the No. 4 hydraulic box corresponds to the opening position of the second groove, and the installation position of the bottom plate corresponds to the installation groove position opened at the bottom of the left side of the feeding rack.

[0013] Preferably, the method comprises the following steps:

[0014] S1: First place the substrate into the installation slot, then turn on motor 1 to adjust the position of the feed rack to complete the loading and placement of substrates in the installation slots at different angles;

[0015] S2: The adjustment component, sliding base, No. 2 motor and roller cooperate to accurately push the substrate in the installation slot to the blanking size;

[0016] S3: Start the No. 1 electric push rod to push the support bar to cooperate with the fixing component to fix the substrate that has been pushed into the installation groove, and start the circular saw mechanism to complete the cutting.

[0017] Compared with the prior art, the present invention has the following beneficial effects:

[0018] The present invention is provided with a feed rack, a gear ring and a gear disc, and when the No. 1 motor is started, the positions of the installation slots at different angles in the feed rack are rotated and adjusted alternately to complete the alternating feeding. When the installation slot of the substrate of the blanking size is rotated and adjusted to the twelve o'clock position on the left side of the feed rack, the position of the substrate on the support bar is adjusted synchronously by the No. 1 electric push rod, and the substrate is fixed in cooperation with the fixing component, and then the circular saw mechanism is cooperated to complete the blanking. The process of the existing feeding device is optimized by the alternating feeding, and the blanking speed is improved.

[0019] The present invention is provided with a feed rack, a gear ring and a gear disk, and when the No. 1 motor is started, the position of the installation slots at different angles in the feed rack is rotated and adjusted alternately to complete the alternating feeding. When the substrate in the installation slot at the rear position of the feed rack is rotated and adjusted to the six o'clock position on the left side of the feed rack, the adjustment component is used to adjust the position of the sliding base so that the roller contacts the substrate, and the No. 2 motor is used to move the substrate to the left to a position corresponding to the blanking size, thereby completing the precise pushing of the blanking size. The substrate pushing position is then changed by the alternating feeding base, so that the substrate pushing position is adjusted while blanking, thereby improving the blanking speed and providing sufficient adjustment time for precise pushing, thereby maintaining the accuracy of pushing. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] Figure 1 This is a schematic diagram of the internal structure of the present invention when viewed from the left side;

[0021] Figure 2 It is a schematic diagram of the overall structure of the present invention;

[0022] Figure 3 This is a schematic diagram of the internal structure of the present invention;

[0023] Figure 4 This is a schematic diagram of the rear inner side structure of the present invention;

[0024] Figure 5 This is a schematic cross-sectional view of the base frame, feeding frame and fixing assembly of the present invention;

[0025] Figure 6 This is a schematic diagram of the structure of the feeding rack of the present invention from the right side;

[0026] Figure 7 This is a schematic diagram of the structure of the feeding rack of the present invention from the left side;

[0027] Figure 8 This is a schematic diagram of the disassembled structure of the feeding frame, base frame, gear plate and fixing frame of the present invention;

[0028] Figure 9 This is a schematic diagram of the structure of the fixing assembly of the present invention;

[0029] Figure 10 This is a schematic diagram of the structure of the regulating component of the present invention.

[0030] In the figure: 1. Machine body; 2. Circular saw mechanism; 3. Base frame; 4. Feed rack; 5. Gear ring; 6. Gear disc; 7. Motor No. 1; 8. Discharge trough; 9. Mounting slot; 10. Electric push rod No. 1; 11. Support bar; 12. Fixed frame; 13. Fixed assembly; 131. Hydraulic box No. 1; 132. Plug body No. 1; 133. Hydraulic box No. 2; 134. Plug body No. 2; 14. First groove; 15. Second groove; 16. Adjustment assembly; 161. Hydraulic box No. 3; 162. Plug body No. 3; 163. Adjustment block; 164. Hydraulic box No. 4; 165. Plug body No. 4; 166. Pressure sensor; 167. Contact sensor; 168. Fixed rod; 169. Bottom plate; 17. Sliding base; 18. Motor No. 2; 19. Roller. DETAILED DESCRIPTION

[0031] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0032] Example 1: Please refer to Figures 1 to 9The present invention provides a technical solution: a synchronous feeding device of a continuous processing circular saw machine, comprising a machine body 1, a circular saw mechanism 2 is installed at the rear of the bottom left side of the inner cavity of the machine body 1, two base frames 3 are fixed on the left and right sides of the bottom of the inner cavity of the machine body 1, the two base frames 3 are connected to a feeding rack 4 by a roller sliding, a gear ring 5 is fixed to the outer side of the right side of the feeding rack 4, the outer end of the gear ring 5 is meshed with a gear disc 6, the gear disc 6 is installed at the bottom of the inner cavity of the machine body 1 through a No. 1 motor 7, a plurality of discharge troughs 8 are opened horizontally on the inner side of the feeding rack 4, a plurality of mounting slots 9 are opened inside the discharge trough 8, and a plurality of discharge troughs 8 are opened horizontally on the inner side of the feeding rack 4. The material trough 8 is opened at an equal angle, and the opening angle of the installation groove 9 corresponds to the opening angle of the material discharge trough 8. The inner sides of the multiple installation grooves 9 are slidably connected with a support bar 11 through a No. 1 electric push rod 10. The outer circumferential side of the feed rack 4 is provided with two first grooves 14 and a second groove 15. The two second grooves 15 are opened between the two first grooves 14. A fixing bracket 12 is provided above the first groove 14 and the second groove 15. The two fixing brackets 12 are mirror-imaged. The positions of the two fixing brackets 12 correspond to the horizontal positions of the two first grooves 14 and the second grooves 15. The fixing bracket 12 is installed at the bottom of the inner cavity of the machine body 1. 12 is connected to the support bar 11 through the fixing component 13 and the base material. The fixing component 13 includes a No. 1 hydraulic box 131, which is installed in the longitudinal center position of the upper end of the fixing frame 12. The top of the inner cavity of the No. 1 hydraulic box 131 is connected to the No. 1 plug body 132 through a spring sliding connection. The lower end of the No. 1 plug body 132 conflicts with the base material. The inner cavity of the No. 1 hydraulic box 131 is connected to the No. 2 hydraulic box 133 through a hose. The No. 2 hydraulic box 133 is installed in the longitudinal center position of the upper end of the fixing frame 12. The installation position of the No. 1 hydraulic box 131 on the fixing frame 12 corresponds to the opening position of the first groove 14. The No. 2 hydraulic box 133 is installed at the position of the fixing frame 12 corresponding to the position where the second groove 15 is opened. The bottom of the inner cavity of the second hydraulic box 133 is connected to the second plug body 134 through a spring. The first plug body 132 moves in opposite directions to the second plug body 134. The first plug body 132 moves relative to the support bar 11. The lower end of the first plug body 132 is designed as a spherical structure. The fixing component 13 is used for adaptive clamping of the substrate. A sliding base 17 is provided under each of the two second grooves 15. The sliding base 17 is connected to the bottom of the inner cavity of the body 1 through the adjustment component 16. The sliding base 17 is rotated by the second motor 18 and is connected to the roller 19;During use, according to the actual material size, the position of the fixing rod 168 is adjusted within the base plate 169 so that the contact sensor 167 is adjusted to the position corresponding to the material size. The substrate is then placed in the mounting slot 9 at the rear of the feed rack 4. The control system then activates the No. 1 motor 7 to drive the gear disc 6 and the gear disc 6 to rotate, and drives the feed rack 4 to rotate on the base frame 3, so that the mounting slot 9 at the rear position where the substrate is placed is rotated to the 6 o'clock position on the left side of the feed rack 4. The above operation of placing the substrate in the mounting slot 9 at the rear position is then repeated until multiple mounting slots 9 are alternately placed with substrates. When the mounting slot 9 of the substrate with the completed material size is rotated and adjusted to the 12 o'clock position on the left side of the feed rack 4, the No. 1 electric push rod 10 is synchronously adjusted to the position of the support bar 11, and the fixing assembly 13 is cooperated to complete the fixing of the substrate, and then the circular saw mechanism 2 is cooperated to complete the material cutting.

[0033] Example 2: Based on Example 1, please refer to Figures 1 to 10, including a body 1, a circular saw mechanism 2 is installed at the rear of the bottom left side of the inner cavity of the body 1, two base frames 3 are fixed on the left and right sides of the bottom of the inner cavity of the body 1, the two base frames 3 are connected to the feeding rack 4 by roller sliding, a gear ring 5 is fixed to the outer side of the right side of the feeding rack 4, the outer end of the gear ring 5 is meshed with a gear disc 6, the gear disc 6 is installed at the bottom of the inner cavity of the body 1 through a No. 1 motor 7, a plurality of discharge troughs 8 are opened horizontally on the inner side of the feeding rack 4, a plurality of mounting grooves 9 are opened inside the discharge trough 8, a plurality of mounting grooves 9 are slidably connected to a support bar 11 through a No. 1 electric push rod 10, and two first grooves 1 are opened on the outer circumference of the feeding rack 4 4 and the second groove 15, the two second grooves 15 are opened between the two first grooves 14, the first groove 14 and the second groove 15 are both provided with a fixing frame 12, the fixing frame 12 is installed at the bottom of the inner cavity of the body 1, the fixing frame 12 is connected to the support bar 11 through the fixing component 13 and the base material, and the two second grooves 15 are both provided with a sliding base 17 below. The sliding base 17 is connected to the bottom of the inner cavity of the body 1 through the adjustment component 16. The adjustment component 16 includes a No. 3 hydraulic box 161 and a bottom plate 169. The No. 3 hydraulic box 161 is installed at the bottom of the inner cavity of the body 1. The bottom of the inner cavity of the No. 3 hydraulic box 161 is connected to the bottom of the inner cavity of the body 1. The third plug body 162 is connected to the sliding connection of the spring, and the top of the third plug body 162 is connected to the adjusting block 163 in a sliding manner. The adjusting block 163 is installed on the outside of the right section of the feeding rack 4. The inner cavity of the third hydraulic box 161 is connected to two fourth hydraulic boxes 164 through a hose. The fourth hydraulic box 164 is installed at the bottom of the inner cavity of the machine body 1. The top of the inner cavity of the fourth hydraulic box 164 is connected to the fourth plug body 165 through a spring. The top of the fourth plug body 165 is connected to the inner partition of the sliding base 17. The lower end of the inner side of the sliding base 17 is slidingly sleeved on the outside of the fourth hydraulic box 164. The bottom of the inner cavity of the fourth hydraulic box 164 is installed with a pressure sensor. Device 166, bottom plate 169 is installed at the bottom of the inner cavity of the machine body 1, multiple adjustment blocks 163 are installed at equal angles on the outside of the right section of the feed rack 4, the installation angles of the multiple adjustment blocks 163 correspond to the opening angles of the discharge trough 8, the installation position of the fourth hydraulic box 164 corresponds to the opening position of the second groove 15, the installation position of the bottom plate 169 corresponds to the installation slot 9 opened at the bottom of the left side of the feed rack 4, a fixed rod 168 is provided in the groove at the top of the bottom plate 169 for limited sliding, a contact sensor 167 is installed on the top of the fixed rod 168, and the sliding base 17 is connected to the roller 19 through the rotation of the second motor 18;When in use, according to the actual blanking size, the position of the fixing rod 168 is adjusted in the bottom plate 169, so that the contact sensor 167 is adjusted to the position corresponding to the blanking size, and then the substrate is placed in the mounting slot 9 at the rear position of the feed rack 4. Then the control system starts the No. 1 motor 7 to drive the gear disc 6 and the gear disc 6 to rotate, and drives the feed rack 4 to rotate on the bottom frame 3, so that the mounting slot 9 at the rear position of the substrate is rotated to the six o'clock position on the left side of the feed rack 4. Then repeat the above operation of placing the substrate in the mounting slot 9 at the rear position until multiple mounting slots 9 are alternately placed. When the substrate in the mounting slot 9 at the rear position of the feed rack 4 is rotated and adjusted to the six o'clock position on the left side of the feed rack 4, the process In the process, the oil in the No. 3 hydraulic tank 161 is squeezed into the two No. 4 hydraulic tanks 164 by resisting the downward movement of the No. 3 plug 162, causing the No. 4 plug 165 in the No. 4 hydraulic tank 164 to move upward and resist the sliding base 17 to move upward to the corresponding position in the second groove 15. This causes the roller 19 inside the sliding base 17 to contact the substrate and move the substrate upward to the corresponding height. At the same time, the pressure sensor 166 detects the pressure at the corresponding position in the No. 4 hydraulic tank 164 and sends this information to the control system. The control system turns on the No. 2 motor 18 to drive the roller 19 to rotate, and the No. 2 motor 18 causes the substrate on the roller 19 to move left to the position corresponding to the blanking size.

[0034] Example 3: Based on Example 2, please refer to Figures 1 to 10 , the method comprises the following steps:

[0035] S1: First, place the substrate into the installation slot 9, then turn on the No. 1 motor 7 to adjust the position of the feed rack 4 to complete the loading and placement of the substrate into the installation slot 9 at different angles;

[0036] S2: The substrate in the mounting groove 9 is pushed accurately to the blanking size by cooperating with the adjustment component 16, the sliding base 17, the second motor 18 and the roller 19;

[0037] S3: Start the No. 1 electric push rod 10 to push the support bar 11 to cooperate with the fixing component 13 to fix the substrate that has been pushed into the installation groove 9, and start the circular saw mechanism 2 to complete the cutting.

[0038] Working principle: When using the synchronous feeding device of the continuous processing circular saw machine, the operator first adjusts the position of the fixing rod 168 in the bottom plate 169 according to the actual blanking size, so that the contact sensor 167 is adjusted to the position corresponding to the blanking size, and then places the substrate into the mounting slot 9 at the rear position of the feed rack 4. Then the control system starts the No. 1 motor 7 to drive the gear disc 6 and the gear disc 6 to rotate, and drives the feed rack 4 to rotate on the base frame 3, so that the mounting slot 9 at the rear position where the substrate is placed is rotated to the six o'clock position on the left side of the feed rack 4. Then repeat the above operation of placing the substrate into the mounting slot 9 at the rear position until the substrates are placed in multiple mounting slots 9 alternately.

[0039] In the above, when the first mounting slot 9 for placing the substrate is rotated to the six o'clock position on the left side of the feed rack 4, the adjustment block 163 at the six o'clock position on the outer side of the right section of the feed rack 4 conflicts with the No. 3 plug 162, and reaches the maximum conflict position after the first mounting slot 9 for placing the substrate is rotated to the six o'clock position on the left side of the feed rack 4. In this process, the oil in the No. 3 hydraulic box 161 is squeezed into the two No. 4 hydraulic boxes 164 by conflicting with the No. 3 plug 162 moving downward, so that the No. 4 plug 165 in the No. 4 hydraulic box 164 moves upward, and conflicts with the sliding base 17 moving upward in the second groove 15 to the opposite position. The corresponding position is set, so that the roller 19 on the inner side of the sliding base 17 contacts the substrate and contacts the substrate to move up to the corresponding position height. At the same time, the pressure sensor 166 detects the pressure at the corresponding position in the No. 4 hydraulic box 164 and sends the information to the control system. The control system turns on the No. 2 motor 18 to drive the roller 19 to rotate and drive the substrate to move left in the installation slot 9. When the left end of the substrate moves to the position of the contact sensor 167, the contact sensor 167 receives the information and sends it to the control system. The control system turns off the No. 2 motor 18, completing the adjustment of the substrate position in the installation slot 9 at the 6 o'clock position on the left side of the feed rack 4;

[0040] In the above, when the first mounting slot 9 for placing the substrate rotates to the twelve o'clock position on the left side of the feed rack 4, the substrate inside the mounting slot 9 rolls and adjusts its position in the mounting slot 9, and slides to the upper end of the support bar 11 after the mounting slot 9 rotates to the twelve o'clock position on the left side of the feed rack 4. At the same time, when the substrate adjusts its position in the mounting slot 9, the substrate will conflict with the No. 1 plug 132, causing the No. 1 plug 132 to move upward in the No. 1 hydraulic box 131, and squeeze the oil corresponding to the diameter of the substrate in the No. 1 hydraulic box 131 into the No. 2 hydraulic box 133, causing the No. 2 plug 134 to move down to the corresponding position. Then, when the substrate rolls to the support bar 11, the control system starts the No. 1 electric push at the twelve o'clock position. The rod 10 moves upward in the installation groove 9, and synchronously drives the substrate to move upward through the support bar 11 to contact the No. 1 plug 132. The No. 1 plug 132 is contacted and continues to adjust its position upward in the No. 1 hydraulic box 131, so that the oil in the No. 1 hydraulic box 131 continues to flow into the No. 2 hydraulic box 133. The No. 2 plug 134 synchronously moves downward to contact the substrate, and cooperates with the No. 1 electric push rod 10 to complete the fixation of the substrate. In this process, when the No. 2 plug 134 contacts the substrate, the center of the substrate corresponds to the center of the installation groove 9, so that substrates of different diameters within the design range are adaptively clamped and fixed. After the fixation of the substrate is completed, the control system starts the circular saw mechanism 2 to cut the substrate.

[0041] Any content not described in detail in this specification is prior art known to those skilled in the art. In the description of the present invention, unless otherwise specified, "plurality" means two or more. Terms such as "upper," "lower," "left," "right," "inner," "outer," "front," "rear," "head," and "tail" indicate positions or relationships based on those shown in the accompanying drawings and are intended solely for ease of description and simplification. They do not indicate or imply that the devices or components referred to must have, be constructed, or operate in a specific orientation and are therefore not to be construed as limiting the present invention. Furthermore, terms such as "first," "second," and "third" are used for descriptive purposes only and are not to be construed as indicating or implying relative importance. In the description of the present invention, unless otherwise specified or limited, the terms "connected" and "connected" are to be understood broadly, meaning, for example, fixedly connected, detachably connected, or integrally connected; mechanically connected, electrically connected; directly connected, or indirectly connected through an intermediary. Those skilled in the art will understand the specific meanings of these terms in the present invention on a case-by-case basis.

[0042] Although the present invention has been described in detail with reference to the aforementioned embodiments, it is still possible for those skilled in the art to modify the technical solutions described in the aforementioned embodiments, or to make equivalent substitutions for some of the technical features therein. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.

Claims

1. A synchronous feeding device for a continuous processing circular saw machine, characterized in that: The invention comprises a machine body (1), wherein a circular saw mechanism (2) is installed at the rear of the bottom of the left side of the inner cavity of the machine body (1), two base frames (3) are fixed on the left and right sides of the bottom of the inner cavity of the machine body (1), and the two base frames (3) are connected to a feeding frame (4) through a roller, and a gear ring (5) is fixed on the right outer side of the feeding frame (4), and the outer end of the gear ring (5) is meshed with a gear disk (6), and the gear disk (6) is installed at the bottom of the inner cavity of the machine body (1) through a No. 1 motor (7), and a plurality of discharge troughs (8) are opened transversely on the inner side of the feeding frame (4), and a mounting groove (9) is opened on the inner side of the discharge trough (8), and a plurality of the mounting grooves (9) are slidably connected to a support bar (11) on the inner side through a No. 1 electric push rod (10), and the outer side of the feeding frame (4) is opened circumferentially. Two first grooves (14) and two second grooves (15) are provided, and the two second grooves (15) are opened between the two first grooves (14). A fixing frame (12) is provided above the first groove (14) and the second groove (15). The fixing frame (12) is installed at the bottom of the inner cavity of the machine body (1). The fixing frame (12) fixes the substrate through a fixing component (13). A sliding base (17) is provided below the two second grooves (15). The sliding base (17) is connected to the bottom of the inner cavity of the machine body (1) through an adjusting component (16). The sliding base (17) is rotatably connected to a roller (19) through a No. 2 motor (18). The adjusting component (16) includes a No. 3 hydraulic box (161). and a bottom plate (169), the No. 3 hydraulic box (161) is installed at the bottom of the inner cavity of the machine body (1), the bottom of the inner cavity of the No. 3 hydraulic box (161) is connected to the No. 3 plug body (162) through a spring sliding connection, the top of the No. 3 plug body (162) is slidably connected to the adjustment block (163), the adjustment block (163) is installed on the outside of the right section of the feeding rack (4), the inner cavity of the No. 3 hydraulic box (161) is connected to two No. 4 hydraulic boxes (164) through a hose, the No. 4 hydraulic box (164) is installed at the bottom of the inner cavity of the machine body (1), the top of the No. 4 hydraulic box (164) is connected to the No. 4 plug body (165) through a spring, the top of the No. 4 plug body (165) is connected to the inner partition of the sliding base (17), the sliding base ( 17) The inner lower end is slidably sleeved on the outer side of the No. 4 hydraulic box (164), and a pressure sensor (166) is installed at the bottom of the inner cavity of the No. 4 hydraulic box (164). The bottom plate (169) is installed at the bottom of the inner cavity of the body (1). A fixed rod (168) is provided in a limited sliding manner in the groove at the top of the bottom plate (169), and a contact sensor (167) is installed on the top of the fixed rod (168). When the first mounting slot (9) for placing the substrate is rotated to the six o'clock position on the left side of the feed rack (4), the adjustment block (163) at the six o'clock position on the outer side of the right section of the feed rack (4) conflicts with the No. 3 plug body (162), and reaches the maximum conflict position after the first mounting slot (9) for placing the substrate is rotated to the six o'clock position on the left side of the feed rack (4).The oil in the No. 3 hydraulic box (161) is squeezed into the two No. 4 hydraulic boxes (164) by the No. 3 plug body (162) that moves downward, so that the roller (19) inside the sliding base (17) contacts the substrate. The No. 2 motor (18) drives the roller (19) to rotate and drives the substrate to move leftward in the installation groove (9). When the left end of the substrate moves to the position of the contact sensor (167), the No. 2 motor (18) is turned off, completing the adjustment of the substrate position in the installation groove (9) at the six o'clock position on the left side of the feed rack (4).

2. The synchronous feeding device of a continuous processing circular saw machine according to claim 1, characterized in that: The plurality of discharge troughs (8) extending transversely through the inner side of the feeding rack (4) are opened at equal angles, and the opening angle of the mounting groove (9) corresponds to the opening angle of the discharge trough (8).

3. The synchronous feeding device of a continuous processing circular saw machine according to claim 2, characterized in that: The fixing assembly (13) comprises a No. 1 hydraulic box (131), which is mounted at a longitudinally centered position on the upper end of the fixing frame (12), and a No. 1 plug body (132) is connected to the top of the inner cavity of the No. 1 hydraulic box (131) through a spring sliding connection, and the lower end of the No. 1 plug body (132) contacts the substrate, and the inner cavity of the No. 1 hydraulic box (131) is connected to the No. 2 hydraulic box (133) through a hose, and the No. 2 hydraulic box (133) is mounted at a longitudinally centered position on the upper end of the fixing frame (12), and the bottom of the inner cavity of the No. 2 hydraulic box (133) is connected to the No. 2 plug body (134) through a spring, and the fixing assembly (13) is used for adaptive clamping of the substrate.

4. The synchronous feeding device of a continuous processing circular saw machine according to claim 3, characterized in that: The first hydraulic box (131) is installed at a position on the fixing frame (12) corresponding to a position where the first groove (14) is opened, and the second hydraulic box (133) is installed at a position on the fixing frame (12) corresponding to a position where the second groove (15) is opened.

5. The synchronous feeding device of a continuous processing circular saw machine according to claim 4, characterized in that: The first plug body (132) and the second plug body (134) move in opposite directions, the first plug body (132) and the support bar (11) move relative to each other, and the lower end of the first plug body (132) is designed to be a spherical structure.

6. The synchronous feeding device of a continuous processing circular saw machine according to claim 5, characterized in that: A plurality of adjustment blocks (163) are installed at equal angles on the outer side of the right section of the feeding rack (4), and the installation angles of the plurality of adjustment blocks (163) correspond to the opening angles of the discharge trough (8). The installation position of the fourth hydraulic box (164) corresponds to the opening position of the second groove (15), and the installation position of the bottom plate (169) corresponds to the position of the installation groove (9) opened at the bottom of the left side of the feeding rack (4).

7. A synchronous feeding method for a continuous processing circular saw machine, applicable to the synchronous feeding device for a continuous processing circular saw machine according to claim 6, characterized in that: The method comprises the following steps: S1: First, place the substrate into the installation slot (9), and then turn on the No. 1 motor (7) to adjust the position of the feed rack (4) to complete the loading and placement of the substrate into the installation slot (9) at different angles; S2: By cooperating with the adjustment component (16), the sliding base (17), the second motor (18) and the roller (19), the substrate in the installation groove (9) is pushed accurately to the blanking size; S3: Start the No. 1 electric push rod (10) to push the support bar (11) to cooperate with the fixing component (13), fix the substrate that has been pushed into the installation groove (9), and start the circular saw mechanism (2) to complete the cutting.

Citation Information

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