Numerical control multi-axis adjusting precise sliding table saw

Through the power drive adjustment of CNC lifting components and linkage lifting components, the problem of low efficiency of precision push table saws when adjusting saw blades and push plates is solved, and efficient and stable wood cutting is achieved.

CN223115429UActive Publication Date: 2025-07-18HUIZHOU JUZHIRAN FURNITURE CO LTD
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Patent Information

Application Number
CN202422372101.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-27
Publication Date
2025-07-18
Estimated Expiration
2034-09-27

AI Technical Summary

Technical Problem

The existing precision push table saw still uses manual knobs when adjusting the height of the saw blade or the angle of the push plate, resulting in low cutting production efficiency and difficult to adapt to the cutting needs of wood of different thicknesses.

Method used

CNC lifting components and linkage lifting components are adopted to adjust the saw blade height and push plate position through electric drive to achieve synchronous adjustment of the saw blade and wood, and cancel the traditional rocker adjustment method.

Benefits of technology

The cutting efficiency of push table saw and the stability of wood during cutting are improved, ensuring stable cutting of wood of different thicknesses.

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Abstract

The utility model discloses a numerical control multi-axis adjusting precise sliding table saw which comprises a cutting table, a saw blade is arranged on the upper surface of the cutting table, a hollow-out seat is connected to one side of the cutting table in a sliding mode, and a push plate is arranged on the upper surface of the hollow-out seat. The numerical control lifting assembly is arranged in the cutting table, and the saw blade is rotationally connected with the numerical control lifting assembly, so that the top of the saw blade gets close to or away from the upper surface of the cutting table through the numerical control lifting assembly; the linkage lifting assembly is composed of a linkage component and a lifting mechanism. By means of the numerical control lifting assembly, a traditional rocker adjusting mode is omitted, an electric drive lifting mode is adopted, and therefore the problem that the saw blade lifting adjusting efficiency is low is solved, and the cutting work efficiency of the sliding table saw is effectively improved; and the wood can be more stably attached to the push plate, so that the stability of the wood during cutting is further improved.
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Description

Technical Field

[0001] The utility model belongs to the technical field of XXXX, and in particular relates to a numerically controlled multi-axis adjustable precision sliding table saw. Background Art

[0002] The sliding table saw is a woodworking machine, which is mainly used for longitudinal sectioning, cross sectioning or angled sawing of plywood, particleboard, fiberboard, veneer, laminated board, blockboard, spliced solid wood board and plastic board. It is easy to operate, stable, safe and efficient, and is an essential equipment for mass production, standardization, mechanization and specialization of furniture. The biggest feature of the sliding table saw is that it uses sawing instead of planing, and the cutting surface is the same as the effect after planing. More sophisticated sliding table saws have gradually appeared on the market. This type of sliding table saw has more precise adjustment accuracy. However, CNC multi-axis adjustment is combined with each other in precision sliding table saws, which means that this equipment can achieve complex cutting tasks through precise control of multiple motion axes. Through CNC adjustment, the accuracy of cutting can be ensured and errors can be reduced.

[0003] However, there are some problems with the prior art: However, the current precision sliding table saw still uses a manual knob adjustment method to adjust the height of the saw blade or the angle of the push plate. This method requires staff to make repeated adjustments when cutting wood of different thicknesses, which can easily affect the cutting efficiency of the sliding table saw and has certain limitations. Therefore, we propose a CNC multi-axis adjustment precision sliding table saw. Utility Model Content

[0004] In view of the problems existing in the prior art, the purpose of the utility model is to provide a CNC multi-axis adjustable precision sliding table saw, which eliminates the traditional rocker adjustment method by setting a CNC lifting component and adopts an electric-driven lifting method, thereby solving the problem of low saw blade lifting and adjustment efficiency. Therefore, the cutting efficiency of the sliding table saw is effectively improved. Secondly, the linkage lifting component and the modularly designed push plate can make the wood fit more stably with the push plate, thereby further improving the stability of the wood during cutting.

[0005] The utility model is implemented as follows: a numerically controlled multi-axis adjustable precision sliding table saw, comprising:

[0006] A cutting table, wherein a saw blade is arranged on the upper surface of the cutting table, a hollow seat is slidably connected to one side of the cutting table, and a push plate is arranged on the upper surface of the hollow seat, wherein the push plate is composed of a moving seat and a lifting plate, and the lifting plate is vertically slidably installed on the upper surface of the moving seat;

[0007] A numerical control lifting assembly is arranged inside the cutting table, and the saw blade is rotatably connected to the numerical control lifting assembly, so that the top of the saw blade is moved closer to or away from the upper surface of the cutting table through the numerical control lifting assembly;

[0008] A linkage lifting assembly, which is composed of a linkage component and a lifting mechanism. The linkage component and the lifting mechanism are in transmission connection, and the linkage component is arranged at the lower end of one side of the lifting plate. The lifting mechanism is in transmission connection with the numerical control lifting assembly, so that the lifting plate approaches or moves away from the upper surface of the moving seat through the linkage component and the lifting mechanism.

[0009] Optionally, the numerical control lifting assembly includes two sets of lifting seats. A lifting groove is formed on the upper surface of the cutting table. The two sets of lifting seats are symmetrically and vertically slidably installed inside the lifting groove. An installation groove is formed on one side of one set of lifting seats. A cutting motor is arranged inside the installation groove. One end of the output shaft of the cutting motor is fixedly installed with a transmission rod. One end of the transmission rod is fixedly connected with a saw blade. The other set of lifting seats is rotationally connected with the saw blade.

[0010] Optionally, a guiding base is arranged in the middle of the lower part inside the lifting groove. A sliding groove is formed on the upper surface of the guiding base. A bidirectional lead screw is rotationally connected inside the sliding groove. Both ends of the outer side of the bidirectional lead screw are threadedly connected with movable seats. The bottoms of the two sets of movable seats are slidably installed inside the sliding groove. Linkage rods are rotationally connected to the upper surfaces of the two sets of movable seats. The two linkage rods are respectively rotationally connected to the bottoms of the two sets of lifting seats.

[0011] Optionally, an installation shell is fixedly installed at the lower end of one side of the cutting table. A placement groove is formed at one end of the installation shell. A double-shaft motor is arranged inside the placement groove. One end of the output shaft of the double-shaft motor penetrates through one end of the cutting table to the inside of the lifting groove. One end of the output shaft of the double-shaft motor is fixedly connected with the bidirectional lead screw. The other end of the output shaft of the double-shaft motor is in transmission connection with the lifting mechanism.

[0012] Optionally, the lifting mechanism includes two sets of wire reels. A pulling rope is wound and connected between the two sets of wire reels. A rotating groove is formed at the other end of the installation shell. One set of wire reels is rotationally installed inside the rotating groove. One end of the output shaft of the double-shaft motor is fixedly installed with a docking rod. The wire reel is rotationally sleeved on the outer side of the docking rod. One end of the docking rod extends to the outside of the installation shell. One end of one set of wire reels is fixedly installed with a docking plate. The docking plate is rotationally sleeved on the outer side of the docking rod. A docking nut is threadedly connected to the outer side of one end of the docking rod. The docking nut is located on one side of the docking plate. The other set of wire reels is detachably connected to the linkage component.

[0013] Optionally, the linkage component includes a placement shell and two sets of synchronous pulleys. A bearing seat is fixedly installed on one side of the moving seat. A chute is formed on the upper surface of the bearing seat. Two ends of the inner part of the chute are both movably connected with a pushing seat. One set of synchronous pulleys is rotatably installed in the middle of the inner part of the chute. The placement shell is fixedly installed at the bottom of the bearing seat, and a linkage groove is formed inside the placement shell. The inner part of the linkage groove is communicated with the inner part of the chute. The other set of synchronous pulleys is rotatably installed inside the linkage groove. A synchronous belt is sleeved between the two sets of synchronous pulleys. The other winding wheel is rotatably installed inside the linkage groove. One end of the pull rope passes through the bottom of the placement shell and winds around the outside of the other winding wheel. Two pulleys are rotatably connected to the bottom of the moving seat, and the two pulleys are arranged close to each other. The pull rope is located between the two pulleys. The other synchronous pulley is detachably connected with the other winding wheel.

[0014] Optionally, partition plates are rotatably connected to both sides of one set of synchronous pulleys, and two ends of one set of synchronous pulleys extend in opposite directions. Lifting ropes are wound and connected to both ends of one set of synchronous pulleys. Through holes are formed in the upper ends of one sides of the two partition plates. One end of the lifting rope passes through the inside of the through hole and is fixedly connected with the pushing seat. A driving rod is rotatably connected to the upper surface of the pushing seat. The driving rod is rotatably connected with the lifting seat.

[0015] Optionally, a guide rod is fixedly installed inside the chute. The pushing seat is slidably sleeved on the outside of the guide rod. Return springs are sleeved on both ends of the outside of the guide rod. One end of the return spring is fixedly connected with one end inside the chute, and the other end of the return spring is fixedly connected with the pushing seat.

[0016] Optionally, a damping shell communicated with the inside of the linkage groove is fixedly installed at one end of the placement shell. A damping sliding plate is fitted and slidably connected inside the damping shell. An adjusting sleeve is adjustably sleeved on the outside of the damping shell. The adjusting sleeve penetrates through the outside of the damping shell and is fixedly connected with the damping sliding plate. One end of the damping sliding plate is fixedly installed with a sliding plate, and the sliding plate is slidably installed inside the linkage groove. The sliding plate is rotatably connected with the other winding wheel. A clamping rod is fixedly installed at the center of one side of the other winding wheel. A clamping groove is formed on one side of the other synchronous pulley. The clamping rod and the clamping groove are arranged in correspondence with each other.

[0017] Optionally, a sliding sleeve is slidably sleeved on the outside of the placement shell. A connecting side plate is fixedly installed at the lower end of one side of the sliding sleeve. The connecting side plate is located at one end of the placement shell. A reset motor is fixedly installed on one side of the connecting side plate. One end of the output shaft of the reset motor penetrates through one side of the connecting side plate. A rotating hole is formed on the other side of the connecting side plate. A multi-sided docking head is rotatably connected to the other side of the connecting side plate. The multi-sided docking head is fixedly connected with the output shaft of the reset motor. A multi-sided hole is formed on the other side of the other synchronous pulley. The multi-sided hole and the multi-sided docking head are arranged in correspondence with each other.

[0018] Compared with the prior art, the beneficial effects of the present utility model are as follows:

[0019] 1. By setting the numerically controlled lifting component, the traditional rocker adjustment method is cancelled, and the lifting method driven by electricity is adopted, thus solving the problem of low efficiency of saw blade lifting adjustment. Therefore, the cutting work efficiency of the push table saw is effectively improved.

[0020] 2. By setting the linkage lifting component and the modular designed push board, when woods of different heights are attached to one side of the push board, and when the height of the saw blade is adjusted corresponding to the height of the wood to be cut, the linkage lifting component can make the highest point of the push board change correspondingly while the height of the saw blade is adjusted. Therefore, the wood can be more stably attached to the push board, thereby further improving the stability of the wood during cutting.

[0021] Other features and advantages of the present utility model will become clear through the following detailed description of the exemplary embodiments of the present utility model with reference to the accompanying drawings. Description of the Drawings

[0022] Figure 1 is the overall structure schematic diagram provided by the present utility model;

[0023] Figure 2 is the schematic diagram of the numerically controlled lifting component provided by the present utility model;

[0024] Figure 3 is the schematic diagram of the cutting motor provided by the present utility model;

[0025] Figure 4 is the schematic diagram of the mounting shell provided by the present utility model;

[0026] Figure 5 is the schematic diagram of the pull rope provided by the present utility model;

[0027] Figure 6 is the schematic diagram of the bearing seat provided by the present utility model;

[0028] Figure 7 is the schematic diagram of the synchronous pulley provided by the present utility model;

[0029] Figure 8 is the schematic diagram of the placement shell provided by the present utility model.

[0030] In the figure: 1, cutting table; 2, saw blade; 3, push plate; 4, hollow seat; 5, mounting shell; 6, numerically controlled lifting component; 7, cutting motor; 8, transmission rod; 9, linkage lifting component; 10, bidirectional lead screw; 11, docking nut; 12, docking rod; 13, docking plate; 14, return spring; 15, guide rod; 16, damping shell; 17, adjusting sleeve; 18, damping sliding plate; 19, sliding sleeve; 20, multi-sided docking head; 21, connecting side plate; 22, clamping rod; 301, moving seat; 302, lifting plate; 601, dual-axis motor; 602, guiding base; 603, movable seat; 604, linkage rod; 605, lifting seat; 901, wire reel; 902, pulling rope; 903, pulley; 904, driving rod; 905, linkage component; 906, pushing seat; 907, bearing seat; 9051, partition plate; 9052, synchronous pulley; 9053, lifting rope; 9054, placing shell; 9055, synchronous belt; 9056, return motor; 9057, multi-sided hole; 9058, sliding plate. Detailed implementation mode

[0031] To further understand the content, features and effects of the present utility model, the following embodiments are hereby exemplified and described in detail in conjunction with the accompanying drawings.

[0032] As Figures 1 to 8 shown, a numerically controlled multi-axis adjustable precision push table saw provided by an embodiment of the present utility model includes: a cutting table 1, a saw blade 2 is arranged on the upper surface of the cutting table 1, a hollow seat 4 is slidably connected to one side of the cutting table 1, and a push plate 3 is arranged on the upper surface of the hollow seat 4. The push plate 3 is composed of a moving seat 301 and a lifting plate 302, and the lifting plate 302 is vertically slidably installed on the upper surface of the moving seat 301;

[0033] Through the modularized push plate 3, the height of the push plate 3 can be changed arbitrarily, so as to be applicable to woods of different heights or thicknesses, thereby realizing more stability during the cutting process of the wood.

[0034] A numerically controlled lifting component 6 is arranged inside the cutting table 1, and the saw blade 2 is rotationally connected to the numerically controlled lifting component 6, so that the top of the saw blade 2 approaches or moves away from the upper surface of the cutting table 1 through the numerically controlled lifting component 6;

[0035] Due to the design that the top of the saw blade 2 approaches or moves away from the upper surface of the cutting table 1 through the numerically controlled lifting component 6, the traditional rocker-type adjustment method of the saw blade 2 is cancelled and converted into electric drive adjustment. Therefore, the height position of the saw blade 2 can be adjusted arbitrarily within a short time, and thus, the adjustment time of the saw blade 2 is effectively shortened, and the cutting efficiency of the push table saw can be effectively improved.

[0036] The linkage lifting component 9 is composed of a linkage part 905 and a lifting mechanism. The linkage part 905 is in transmission connection with the lifting mechanism, and the linkage part 905 is arranged at the lower end of one side of the lifting plate 302. The lifting mechanism is in transmission connection with the numerical control lifting component 6. Thus, the lifting plate 302 approaches or moves away from the upper surface of the moving seat 301 through the linkage part 905 and the lifting mechanism.

[0037] Due to the design that the lifting plate 302 approaches or moves away from the upper surface of the moving seat 301 through the linkage part 905 and the lifting mechanism, the linkage part 905 and the lifting mechanism cooperate with each other and achieve transmission through the numerical control lifting component 6. Thus, when the saw blade 2 is lifted or lowered, the lifting plate 302 will also change accordingly, so as to realize the synchronous adjustment of two parts, saving a certain amount of preparation time. Therefore, the working efficiency of the push saw can be effectively improved.

[0038] Furthermore, the numerical control lifting component 6 includes two groups of lifting seats 605. Lifting grooves are formed on the upper surface of the cutting table 1. The two groups of lifting seats 605 are symmetrically and vertically slidably installed inside the lifting grooves. And an installation groove is formed on one side of one group of lifting seats 605. A cutting motor 7 is arranged inside the installation groove. One end of the output shaft of the cutting motor 7 is fixedly installed with a transmission rod 8. One end of the transmission rod 8 is fixedly connected with the saw blade 2, and the other group of lifting seats 605 is rotatably connected with the saw blade 2; In the middle of the lower part inside the lifting groove, a guiding base 602 is arranged. A sliding groove is formed on the upper surface of the guiding base 602. A bidirectional lead screw 10 is rotatably connected inside the sliding groove. Both ends of the outside of the bidirectional lead screw 10 are threadedly connected with movable seats 603. And the bottoms of the two groups of movable seats 603 are both slidably installed inside the sliding groove. And the upper surfaces of the two groups of movable seats 603 are both rotatably connected with linkage rods 604. The two groups of linkage rods 604 are respectively rotatably connected with the bottoms of the two groups of lifting seats 605; One end of the lower part of one side of the cutting table 1 is fixedly installed with an installation shell 5. A placing groove is formed at one end of the installation shell 5. A double-shaft motor 601 is arranged inside the placing groove. One end of the output shaft of the double-shaft motor 601 penetrates through one end of the cutting table 1 to the inside of the lifting groove. One end of the output shaft of the double-shaft motor 601 is fixedly connected with the bidirectional lead screw 10. And the other end of the output shaft of the double-shaft motor 601 is in transmission connection with the lifting mechanism;

[0039] As Figures 1 to 8 shown, through the design that one end of the output shaft of the double-shaft motor 601 is fixedly connected with the bidirectional lead screw 10, the bidirectional lead screw 10 cooperates with the movable seat 603, the linkage rod 604 and the vertically slidable lifting seat 605, so that the double-shaft motor 601 can adjust the height position of the saw blade 2 during the process of forward and reverse rotation, thus improving the efficiency of adjusting the height position of the saw blade 2.

[0040] Further, the lifting mechanism includes two sets of wire reels 901. A pull rope 902 is wound and connected between the two sets of wire reels 901. The other end of the mounting shell 5 is provided with a rotating groove. One of the wire reels 901 is rotatably mounted inside the rotating groove. The output shaft at the other end of the dual-axis motor 601 is fixedly provided with a docking rod 12. The wire reel 901 is rotatably sleeved outside the docking rod 12. One end of the docking rod 12 extends to the outside of the mounting shell 5. One end of one of the wire reels 901 is fixedly provided with a docking plate 13. The docking plate 13 is rotatably sleeved outside the docking rod 12. A docking nut 11 is threadedly connected to the outer side of one end of the docking rod 12. The docking nut 11 is located on one side of the docking plate 13. The other wire reel 901 is detachably connected to the linkage component 905;

[0041] As Figures 1 to 8 shown, through the design that the docking nut 11 is located on one side of the docking plate 13, when it is not necessary for the dual-axis motor 601 to drive the lifting mechanism and the linkage component 905, the connection between one of the wire reels 901 and the dual-axis motor 601 can be cancelled by disassembling the docking nut 11. At this time, the distance between the lifting plate 302 and the moving seat 301 can be adjusted separately through the linkage component 905 and the lifting mechanism.

[0042] Further, the linkage component 905 includes a placement shell 9054 and two sets of synchronous wheels 9052. A bearing seat 907 is fixedly mounted on one side of the moving seat 301. A sliding groove is provided on the upper surface of the bearing seat 907. Two pushing seats 906 are movably connected to both ends inside the sliding groove. One of the synchronous wheels 9052 is rotatably mounted in the middle of the sliding groove. The placement shell 9054 is fixedly mounted on the bottom of the bearing seat 907. A linkage groove is provided inside the placement shell 9054. The inside of the linkage groove is communicated with the inside of the sliding groove. The other synchronous wheel 9052 is rotatably mounted inside the linkage groove. A synchronous belt 9055 is sleeved between the two sets of synchronous wheels 9052. The other wire reel 901 is rotatably mounted inside the linkage groove. One end of the pull rope 902 passes through the bottom of the placement shell 9054 and is wound around the outside of the other wire reel 901. Two pulleys 903 are rotatably connected to the bottom of the moving seat 301. The two pulleys 903 are arranged close to each other. The pull rope 902 is located between the two pulleys 903. The other synchronous wheel 9052 is detachably connected to the other wire reel 901; Two partition plates 9051 are rotatably connected to both sides of one of the synchronous wheels 9052. One end of one of the synchronous wheels 9052 extends in opposite directions at both ends. Lifting ropes 9053 are wound and connected to both ends of one of the synchronous wheels 9052. Through holes are provided at the upper ends of one side of the two partition plates 9051. One end of the lifting rope 9053 passes through the inside of the through hole and is fixedly connected to the pushing seat 906. A driving rod 904 is rotatably connected to the upper surface of the pushing seat 906. The driving rod 904 is rotatably connected to the lifting seat 605;

[0043] As Figures 1 to 8As shown, through the design that one end of the lifting rope 9053 passes through the inside of the through hole and is fixedly connected to the pushing seat 906, when one set of synchronous pulleys 9052 rotates, the two lifting ropes 9053 are wound simultaneously, thereby pulling the two pushing seats 906, causing the two driving rods 904 to bend towards each other, realizing the descent of the lifting plate 302. If the lifting plate 302 needs to rise, rotate the synchronous pulley 9052 in the opposite direction.

[0044] Through the design of the two pulleys 903, the pulling rope 902 is centered, so that the pulling rope 902 can be bent at a 90-degree angle. Relying on the pulley 903, the friction force at the 90-degree bend of the pulling rope 902 is reduced. And the 90-degree bend of the pulling rope 902 can prevent part of the pulling rope 902 from being exposed obliquely above the cutting table 1, thus avoiding affecting the use of the push table saw by the staff.

[0045] Furthermore, a guide rod 15 is fixedly installed inside the chute. The pushing seat 906 is slidably sleeved on the outer side of the guide rod 15, and both ends of the outer side of the guide rod 15 are sleeved with a return spring 14. One end of the return spring 14 is fixedly connected to one end inside the chute, and the other end of the return spring 14 is fixedly connected to the pushing seat 906.

[0046] As Figures 1 to 8 shown, through the design of the return spring 14, when the lifting rope 9053 starts to loosen, the two pushing seats 906 can move away from each other under the pulling force of the return spring 14, thereby realizing the rise of the lifting plate 302 above the moving seat 301.

[0047] Further, one end of the placing shell 9054 is fixedly installed with a damping shell 16 communicated with the inside of the linkage groove. A damping sliding plate 18 is fitted and slidably connected inside the damping shell 16. An adjusting sleeve 17 is provided on the outer side of the damping shell 16. The adjusting sleeve 17 penetrates through the outer side of the damping shell 16 and is fixedly connected with the damping sliding plate 18. One end of the damping sliding plate 18 is fixedly installed with a sliding plate 9058, and the sliding plate 9058 is slidably installed inside the linkage groove. The sliding plate 9058 is rotatably connected with another set of wire winding wheels 901. A clamping rod 22 is fixedly installed at the center of one side of the other set of wire winding wheels 901. A clamping groove is formed on one side of the other set of synchronous wheels 9052. The clamping rod 22 is arranged corresponding to the clamping groove. A sliding sleeve 19 is provided on the outer side of the placing shell 9054. A connecting side plate 21 is fixedly installed at the lower end of one side of the sliding sleeve 19. The connecting side plate 21 is located at one end of the placing shell 9054. A reset motor 9056 is fixedly installed on one side of the connecting side plate 21. One end of the output shaft of the reset motor 9056 penetrates through one side of the connecting side plate 21. A rotating hole is formed on one side of the connecting side plate 21. A multi-sided docking head 20 is rotatably connected to the other side of the connecting side plate 21. The multi-sided docking head 20 is fixedly connected with the output shaft of the reset motor 9056. A multi-sided hole 9057 is formed on the other side of the other set of synchronous wheels 9052. The multi-sided hole 9057 is arranged corresponding to the multi-sided docking head 20

[0048] As Figures 1 to 8 shown, through the design that the clamping rod 22 is arranged corresponding to the clamping groove, and the clamping rod 22 can be clamped inside the clamping groove. When the wood is placed on one side of the push plate 3 and the staff needs to push the push plate 3 to make the wood approach the saw blade 2, at this time, the clamping rod 22 can be disengaged from the inside of the clamping groove. At this time, the sliding sleeve 19 is synchronously moved to lock the other set of synchronous wheels 9052 to prevent self-rotation. At this time, not only can the height of the lifting plate 302 be maintained, but also the wood can be processed by the saw blade 2

[0049] It should be noted that when the lifting plate 302 needs to be reset upward, the double-shaft motor 601 and the reset motor 9056 can be synchronously driven and have the same rotation speed, so that the lifting plate 302 rises slowly, which can avoid the sudden rapid reset of the lifting plate 302. Therefore, to a certain extent, the lifting plate 302 and its respective connecting structures can be protected, thereby prolonging the service life of its linkage structure

[0050] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principle and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents

Claims

1. A numerically controlled multi-axis adjustable precision panel saw, characterized in that: Including: A cutting table (1), on the upper surface of the cutting table (1) there is a saw blade (2), on one side of the cutting table (1) there is a hollow seat (4) slidably connected, and on the upper surface of the hollow seat (4) there is a pushing plate (3), the pushing plate (3) is composed of a moving seat (301) and a lifting plate (302), and the lifting plate (302) is vertically slidably installed on the upper surface of the moving seat (301); A numerical control lifting component (6), the numerical control lifting component (6) is arranged inside the cutting table (1), and the saw blade (2) is rotationally connected with the numerical control lifting component (6), so that the top of the saw blade (2) approaches or moves away from the upper surface of the cutting table (1) through the numerical control lifting component (6); A linkage lifting component (9), the linkage lifting component (9) is composed of a linkage part (905) and a lifting mechanism, the linkage part (905) is in transmission connection with the lifting mechanism, and the linkage part (905) is arranged at the lower end of one side of the lifting plate (302), and the lifting mechanism is in transmission connection with the numerical control lifting component (6), so that the lifting plate (302) approaches or moves away from the upper surface of the moving seat (301) through the linkage part (905) and the lifting mechanism.

2. The numerically controlled multi-axis adjustable precision panel saw according to claim 1, characterized in that: The numerical control lifting component (6) includes two groups of lifting seats (605), on the upper surface of the cutting table (1) there is a lifting groove, the two groups of lifting seats (605) are symmetrically and vertically slidably installed inside the lifting groove, and on one side of one group of lifting seats (605) there is an installation groove, inside the installation groove there is a cutting motor (7), one end of the output shaft of the cutting motor (7) is fixedly installed with a transmission rod (8), one end of the transmission rod (8) is fixedly connected with the saw blade (2), and the other group of lifting seats (605) is rotationally connected with the saw blade (2).

3. The numerically controlled multi-axis adjustable precision panel saw according to claim 2, characterized in that: In the middle of the lower part inside the lifting groove there is a guiding base (602), on the upper surface of the guiding base (602) there is a sliding groove, inside the sliding groove there is a bidirectional lead screw (10) rotationally connected, both ends of the outside of the bidirectional lead screw (10) are threadedly connected with movable seats (603), and the bottoms of the two groups of movable seats (603) are slidably installed inside the sliding groove, and the upper surfaces of the two groups of movable seats (603) are rotationally connected with linkage rods (604), and the two groups of linkage rods (604) are respectively rotationally connected with the bottoms of the two groups of lifting seats (605).

4. A numerically controlled multi-axis adjustable precision panel saw according to claim 3, characterized in that: At the lower end of one side of the cutting table (1) there is a fixed installation shell (5), at one end of the installation shell (5) there is a placement groove, inside the placement groove there is a double-shaft motor (601), one end of the output shaft of the double-shaft motor (601) penetrates through one end of the cutting table (1) to the inside of the lifting groove, one end of the output shaft of the double-shaft motor (601) is fixedly connected with the bidirectional lead screw (10), and the other end of the output shaft of the double-shaft motor (601) is in transmission connection with the lifting mechanism.

5. The numerically controlled multi-axis adjustable precision panel saw according to claim 4, wherein: The lifting mechanism includes two sets of wire reels (901). A pulling rope (902) is wound and connected between the two sets of wire reels (901). The other end of the mounting shell (5) is provided with a rotating groove. One set of wire reels (901) is rotatably mounted inside the rotating groove. The output shaft at the other end of the dual-shaft motor (601) is fixedly provided with a docking rod (12). The wire reel (901) is rotatably sleeved outside the docking rod (12). One end of the docking rod (12) extends to the outside of the mounting shell (5). One end of one set of wire reels (901) is fixedly provided with a docking plate (13). The docking plate (13) is rotatably sleeved outside the docking rod (12). A docking nut (11) is threadedly connected to the outside of one end of the docking rod (12). The docking nut (11) is located on one side of the docking plate (13). The other set of wire reels (901) is detachably connected to the linkage component (905).

6. The numerically controlled multi-axis adjustable precision panel saw according to claim 5, wherein: The linkage component (905) includes a placement shell (9054) and two sets of synchronous pulleys (9052). A bearing seat (907) is fixedly mounted on one side of the moving seat (301). A sliding groove is provided on the upper surface of the bearing seat (907). Two push seats (906) are movably connected to both ends inside the sliding groove. One set of synchronous pulleys (9052) is rotatably mounted in the middle inside the sliding groove. The placement shell (9054) is fixedly mounted on the bottom of the bearing seat (907). A linkage groove is provided inside the placement shell (9054). The inside of the linkage groove is communicated with the inside of the sliding groove. The other set of synchronous pulleys (9052) is rotatably mounted inside the linkage groove. A synchronous belt (9055) is sleeved between the two sets of synchronous pulleys (9052). The other set of wire reels (901) is rotatably mounted inside the linkage groove. One end of the pulling rope (902) passes through the bottom of the placement shell (9054) and is wound around the outside of the other set of wire reels (901). Two pulleys (903) are rotatably connected to the bottom of the moving seat (301). The two pulleys (903) are arranged close to each other. The pulling rope (902) is located between the two pulleys (903). The other set of synchronous pulleys (9052) is detachably connected to the other set of wire reels (901).

7. A numerically controlled multi-axis adjustable precision panel saw according to claim 6, characterized in that: Two partition plates (9051) are rotatably connected to both sides of one set of synchronous pulleys (9052). One set of synchronous pulleys (9052) extends in opposite directions at both ends. Two lifting ropes (9053) are wound and connected to both ends of one set of synchronous pulleys (9052). Through holes are provided at the upper ends of one side of the two partition plates (9051). One end of the lifting rope (9053) passes through the inside of the through hole and is fixedly connected to the push seat (906). A driving rod (904) is rotatably connected to the upper surface of the push seat (906). The driving rod (904) is rotatably connected to the lifting seat (605).

8. A numerically controlled multi-axis adjustable precision panel saw according to claim 7, characterized in that: A guide rod (15) is fixedly installed inside the sliding groove. The pushing seat (906) is slidably sleeved on the outer side of the guide rod (15), and both ends of the outer side of the guide rod (15) are sleeved with a return spring (14). One end of the return spring (14) is fixedly connected to one end inside the sliding groove, and the other end of the return spring (14) is fixedly connected to the pushing seat (906).

9. A numerically controlled multi-axis adjustable precision panel saw according to claim 8, characterized in that: One end of the placing shell (9054) is fixedly installed with a damping shell (16) communicating with the inside of the linkage groove. A damping slide plate (18) is in fitting sliding connection inside the damping shell (16). An adjusting sleeve (17) is provided on the outer side of the damping shell (16). The adjusting sleeve (17) penetrates through the outer side of the damping shell (16) and is fixedly connected to the damping slide plate (18). One end of the damping slide plate (18) is fixedly installed with a sliding plate (9058), and the sliding plate (9058) is slidably installed inside the linkage groove. The sliding plate (9058) is rotatably connected to another set of wire winding wheels (901). A clamping rod (22) is fixedly installed at the center of one side of the other set of wire winding wheels (901). A clamping groove is formed on one side of the other set of synchronous wheels (9052). The clamping rod (22) is arranged corresponding to the clamping groove.

10. A numerically controlled multi-axis adjustable precision panel saw according to claim 9, characterized in that: A sliding sleeve (19) is provided on the outer side of the placing shell (9054). A connecting side plate (21) is fixedly installed at the lower end of one side of the sliding sleeve (19). The connecting side plate (21) is located at one end of the placing shell (9054). A reset motor (9056) is fixedly installed on one side of the connecting side plate (21). One end of the output shaft of the reset motor (9056) penetrates through one side of the connecting side plate (21), and a rotating hole is formed on one side of the connecting side plate (21). A multi-sided docking head (20) is rotatably connected to the other side of the connecting side plate (21). The multi-sided docking head (20) is fixedly connected to the output shaft of the reset motor (9056). A multi-sided hole (9057) is formed on the other side of the other set of synchronous wheels (9052). The multi-sided hole (9057) is arranged corresponding to the multi-sided docking head (20).