Grooving machine for cellular board processing

By designing a three-dimensional adjustable honeycomb panel grooving machine, the problem of the inability of existing honeycomb panel grooving machines to groove flexibly has been solved, enabling flexible processing of different positions of the honeycomb panel.

CN223545321UActive Publication Date: 2025-11-14FOSHAN HUAITAI PRECISION MASCH TECH CO LTD
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Patent Information

Application Number
CN202422982943.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-04
Publication Date
2025-11-14
Estimated Expiration
2034-12-04

AI Technical Summary

Technical Problem

Existing honeycomb panel grooving machines cannot groove different locations on the honeycomb panel, which limits the processing capabilities.

Method used

A grooving machine comprising a frame, X-axis, Y-axis and Z-axis sections was designed. Through the sliding connection of these sections and the drive of a servo motor, the position of the saw blade in three dimensions can be adjusted, enabling grooving at different positions on the honeycomb panel.

Benefits of technology

It enables flexible grooving processing at different locations on the honeycomb panel, improving processing flexibility and efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model belongs to the technical field of plate processing equipment, and particularly relates to a grooving machine for cellular board processing. Comprising a rack part, an X-axis part, a Y-axis part and a Z-axis part, the X-axis part is slidably connected to the rack part in the X-axis direction, the Y-axis part is slidably connected to the X-axis part in the Y-axis direction, the Z-axis part is slidably connected to the Y-axis part in the Z-axis direction, and a saw blade is arranged on the Z-axis part. The X-axis part is mounted on the rack part, the Y-axis part is mounted on the X-axis part, the Z-axis part is mounted on the Y-axis part, and the saw blade is mounted on the Z-axis part, so that the positions of the saw blade in the X-axis direction, the Y-axis direction and the Z-axis direction relative to the slotted aluminum plate can be adjusted by utilizing the X-axis part, the Y-axis part and the Z-axis part; and the saw blade can be conveniently used for grooving different positions of the grooved aluminum plate.
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Description

Technical Field

[0001] This utility model belongs to the technical field of sheet material processing equipment, and specifically relates to a grooving machine for processing honeycomb panels. Background Technology

[0002] Honeycomb panels are made by firmly bonding two thinner face sheets to a thicker honeycomb core material on both sides. Also known as honeycomb sandwich structures, they are characterized by high strength, low thermal conductivity, strong shock resistance, and light weight, and are widely used in packaging and transportation across various industries. Currently, grooving machines are used in the production and processing of honeycomb panels.

[0003] However, existing honeycomb panel grooving machines cannot groove different locations on the honeycomb panel, resulting in certain limitations in the processing. Therefore, it is necessary to design a grooving machine for honeycomb panel processing to solve the above problems. Utility Model Content

[0004] To address the aforementioned problems, this utility model provides a grooving machine for processing honeycomb panels, thereby solving the issues raised in the background section.

[0005] To achieve the above objectives, this utility model provides the following technical solution: a grooving machine for processing honeycomb panels, comprising a frame, an X-axis, a Y-axis, and a Z-axis. The frame is used to place a grooving aluminum plate. The X-axis is slidably connected to the frame along the X-axis direction. The Y-axis is slidably connected to the X-axis along the Y-axis direction. The Z-axis is slidably connected to the Y-axis along the Z-axis direction. A saw blade is provided on the Z-axis.

[0006] Furthermore, the frame portion includes a frame body, a rubber pad, a lower pad, and a positioning aluminum plate. The upper end of the frame body is inclined backward, and the lower end is inclined forward. The rubber pad is provided on the front side of the frame body. The slotted aluminum plate is provided on the rubber pad. The positioning aluminum plate is provided on the left side of the rubber pad. The lower pad is provided at the lower end of the rubber pad and is located below the slotted aluminum plate.

[0007] Furthermore, the frame portion also includes a first upper linear guide rail, a first lower linear guide rail, an upper roller slide, a lower roller slide, a first pressing roller, and a first cylinder. The first upper linear guide rail is installed on the upper end of the frame body, and the first lower linear guide rail is installed on the lower end of the frame body. Both the first upper linear guide rail and the first lower linear guide rail extend in the left-right direction. The upper roller slide is slidably connected to the first upper linear guide rail, and the lower roller slide is slidably connected to the first lower linear guide rail.

[0008] The first cylinder is installed on both the upper slide of the roller and the lower slide of the roller, and the sliding rods of the two first cylinders are respectively connected to the upper and lower ends of the first pressing roller.

[0009] Furthermore, the frame portion also includes a helical rack, a helical gear, an X-axis guard, and an X-axis servo motor. The helical rack is installed on the rear side of the frame body and extends in the left-right direction. The X-axis guard is connected to the X-axis portion. The X-axis servo motor is installed inside the X-axis guard. The output shaft of the X-axis servo motor is connected to the helical gear, and the helical gear meshes with the helical rack.

[0010] Furthermore, the X-axis section includes an upper X-axis slide, a lower X-axis slide, an X-axis crossbeam, a Y-axis motor plate, a Y-axis servo motor, a Y-axis lead screw, a fixed seat, and a Y-axis nut support seat. The upper X-axis slide is located on the right side of the upper roller slide and is slidably connected to the first upper linear guide rail. The upper X-axis slide is located on the left side of the lower roller slide and is slidably connected to the first lower linear guide rail. The X-axis cover is connected to the X-axis section. The upper and lower ends of the X-axis crossbeam are respectively connected to the upper X-axis slide and the lower X-axis slide. The Y-axis motor plate is connected to the X-axis crossbeam. The Y-axis servo motor is mounted on the Y-axis motor plate. The axial direction of the Y-axis lead screw is parallel to the inclination direction of the X-axis crossbeam and the main frame body. The output end of the Y-axis servo motor is connected to the Y-axis lead screw. The Y-axis nut support seat is threaded to the Y-axis lead screw and moves along the axial direction of the Y-axis lead screw. The Y-axis nut support seat is connected to the Y-axis section.

[0011] The X-axis beam is provided with fixed seats at both the upper and lower ends, and the Y-axis lead screw is connected to the two fixed seats at its upper and lower ends respectively.

[0012] Furthermore, the X-axis portion also includes a second upper linear guide and a second lower linear guide, the second upper linear guide and the second lower linear guide being located at the upper and lower ends of the left side wall of the X-axis beam, respectively;

[0013] The Y-axis portion includes a Y-axis slide plate, a first horizontal upper slider, and a first horizontal lower slider. The first horizontal upper slider is provided at the upper end of the right side surface of the Y-axis slide plate, and the first horizontal lower slider is provided at the lower end of the right side surface of the Y-axis slide plate. The first horizontal upper slider is slidably connected to the second upper linear guide rail, and the first horizontal lower slider is slidably connected to the second lower linear guide rail. The Y-axis nut support is connected to the Y-axis slide plate.

[0014] Furthermore, the X-axis section also includes a second cylinder and a second pressure roller. The second cylinder is installed at both the front and rear ends of the X-axis beam, and the movable rod of the second cylinder is connected to the front and rear ends of the second pressure roller respectively.

[0015] The Y-axis portion also includes a longitudinal front slider and a longitudinal rear slider. The longitudinal front slider is provided on the front side of the left side surface of the Y-axis slide plate, and the longitudinal rear slider is provided on the rear side of the left side surface of the Y-axis slide plate.

[0016] The Z-axis section includes a Z-axis slide plate, a Z-axis front linear guide rail, and a Z-axis rear linear guide rail. The Z-axis front linear guide rail and the Z-axis rear linear guide rail are respectively provided on the front and rear sides of the Z-axis slide plate. The longitudinal front slider is slidably connected to the Z-axis front linear guide rail, and the longitudinal rear slider is slidably connected to the Z-axis rear linear guide rail.

[0017] Furthermore, the Z-axis section also includes a Z-axis guard, a Z-axis servo motor, a Z-axis lead screw, a Z-axis nut support, a Z-axis motor mount, and a Z-axis motor.

[0018] The upper end of the Z-axis slide plate is equipped with the Z-axis guard, the Z-axis servo motor is installed inside the Z-axis guard, the upper and lower ends of the middle of the Z-axis slide plate are equipped with the Z-axis fixing seat, the upper and lower ends of the Z-axis lead screw are respectively connected to the Z-axis fixing seat, the output shaft of the Z-axis servo motor is drivenly connected to the Z-axis lead screw, the Z-axis nut support is threaded to the Z-axis lead screw and moves along the axial direction of the Z-axis lead screw, and the Z-axis nut support is connected to the Z-axis slide plate;

[0019] The Z-axis motor mount is installed at the lower end of the Z-axis cover, the Z-axis motor is mounted on the Z-axis motor mount, and the output shaft of the Z-axis motor is connected to the saw blade drive.

[0020] Furthermore, the Z-axis portion also includes a swing angle cylinder seat, a swing angle cylinder, and a swing angle optical axis. The Z-axis motor is rotatably connected to the Z-axis motor seat, the swing angle cylinder seat is connected to the Z-axis motor seat, the swing angle cylinder is connected to the swing angle cylinder seat, the swing angle optical axis is connected to the Z-axis motor, and the movable rod of the swing angle cylinder is connected to the swing angle optical axis.

[0021] The technical effects and advantages of this utility model are as follows:

[0022] 1. The position of the saw blade relative to the slotted aluminum plate in the X-axis, Y-axis and Z-axis directions can be adjusted using the X-axis, Y-axis and Z-axis sections, making it convenient to use the saw blade to slot different positions of the slotted aluminum plate.

[0023] Other features and advantages of this invention will be set forth in the description which follows, and will be apparent in part from the description, or may be learned by practicing the invention. The objectives and other advantages of this invention can be realized and obtained through the structures pointed out in the description and drawings. Attached Figure Description

[0024] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0025] Figure 1 A schematic diagram of the grooving machine for processing honeycomb panels according to an embodiment of the present invention is shown;

[0026] Figure 2 A schematic diagram of the frame structure of an embodiment of this utility model is shown;

[0027] Figure 3 This shows a partial structural schematic diagram of the frame portion from another perspective of an embodiment of the present invention;

[0028] Figure 4 A schematic diagram of the X-axis portion structure of an embodiment of this utility model is shown;

[0029] Figure 5 A schematic diagram of the Y-axis portion of an embodiment of this utility model is shown;

[0030] Figure 6 A schematic diagram of the Z-axis portion of an embodiment of this utility model is shown;

[0031] Figure 7 This diagram shows a structural schematic of the Z-axis portion from another perspective of an embodiment of the present invention.

[0032] Reference numerals: 1. Frame section; 111. Frame body; 112. Rubber pad; 113. Lower pad; 114. Positioning aluminum plate; 115. Positioning plate; 121. First upper linear guide; 122. First lower linear guide; 123. Roller upper slide; 124. Roller lower slide; 125. First pressure roller; 126. First cylinder; 131. Helical rack; 132. Helical gear; 133. X-axis guard; 134. X-axis servo motor; 141. Control box swing seat; 142. CNC display control box; 143. Electrical box; 2. X-axis section; 211. X-axis upper slide; 212. X-axis lower slide; 213. X-axis crossbeam; 221. Y-axis motor plate; 222. Y-axis servo motor; 223. Y-axis lead screw; 224. Fixed seat; 225. Y-axis nut support; 231. Second upper linear guide; 232. Second lower linear guide; 233. Locking block; 241. Second cylinder; 242. Second pressure roller; 3. Y-axis section; 31. Y-axis slide plate; 32. First transverse upper slide block; 33. First transverse lower slide block; 34. Longitudinal front slide block; 35. Longitudinal rear slide block; 4. Z-axis section; 411. Z-axis slide plate; 412. Z-axis front linear guide; 413. Z-axis rear linear guide; 421. Z-axis guard; 422. Z-axis servo motor; 423. Z-axis lead screw; 424. Z-axis nut support; 431. Z-axis motor mount; 432. Z-axis motor; 441. Swing cylinder mount; 442. Swing cylinder; 443. Swing optical axis; 5. Slotted aluminum plate; 6. Saw blade. Detailed Implementation

[0033] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions of the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this utility model, not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of this utility model.

[0034] like Figure 1 As shown in the figure, a grooving machine for processing honeycomb panels according to an embodiment of the present invention includes a frame part 1, an X-axis part 2, a Y-axis part 3, and a Z-axis part 4. The frame part 1 is used to place a grooving aluminum plate 5. The X-axis part 2 is slidably connected to the frame part 1 along the X-axis direction. The Y-axis part 3 is slidably connected to the X-axis part 2 along the Y-axis direction. The Z-axis part 4 is slidably connected to the Y-axis part 3 along the Z-axis direction. A saw blade 6 is provided on the Z-axis part 4.

[0035] Specifically, the slotted aluminum plate 5 is a honeycomb panel.

[0036] In this embodiment, a frame portion 1 is provided, and a slotted aluminum plate 5 is provided on the front side of the frame portion 1. Next, an X-axis portion 2 is provided on the frame portion 1, and a Y-axis portion 3 is mounted on the X-axis portion 2, while a Z-axis portion 4 is mounted on the Y-axis portion 3. The X-axis portion 2 can drive the Y-axis portion 3, the Z-axis portion 4, and the saw blade 6 to move relative to the frame portion 1 along the X-axis direction, allowing adjustment of the saw blade 6's movement relative to the slotted aluminum plate 5 along the X-axis direction. Similarly, the Y-axis portion 3 can drive the Z-axis portion 4 and the saw blade 6 to move relative to the frame portion 1 along the Y-axis direction, allowing adjustment of the saw blade 6's movement relative to the slotted aluminum plate 5 along the Y-axis direction. Finally, the Z-axis portion 4 can drive the saw blade 6 to move relative to the frame portion 1 along the Z-axis direction.

[0037] Therefore, by installing the X-axis part 2 on the frame part 1, the Y-axis part 3 on the X-axis part 2, and the Z-axis part 4 on the Y-axis part 3, and installing the saw blade 6 on the Z-axis part 4, the position of the saw blade 6 relative to the slotted aluminum plate 5 in the X-axis direction, Y-axis direction, and Z-axis direction can be adjusted using the X-axis part 2, Y-axis part 3, and Z-axis part 4, making it convenient to use the saw blade 6 to perform slotting processing on different positions of the slotted aluminum plate 5.

[0038] Optionally, such as Figure 2 As shown, the frame part 1 includes a frame body 111, a rubber pad 112, a lower pad 113, and a positioning aluminum plate 114. The upper end of the frame body 111 is inclined backward, and the lower end is inclined forward. The rubber pad 112 is provided on the front side of the frame body 111. The slotted aluminum plate 5 is provided on the rubber pad 112. The positioning aluminum plate 114 is provided on the left side of the rubber pad 112. The lower pad 113 is provided at the lower end of the rubber pad 112 and is located below the slotted aluminum plate 5.

[0039] Specifically, such as Figure 2 As shown, a positioning plate 115 is provided at the lower end of the front side of the frame body 111. The positioning plate 115 is located at the lower end of the lower pad 113 and can be used to support the lower pad 113.

[0040] In this embodiment, by setting a rubber pad 112 on the frame body 111, and setting a positioning aluminum plate 114 on the left side of the rubber pad 112 and a lower pad 113 at the lower end of the foot pad, and by setting the slotted aluminum plate 5 on the rubber pad 112, since the frame body 111 is tilted as a whole, the positioning aluminum plate 114 and the lower pad 113 support the slotted aluminum plate 5, which can prevent the slotted aluminum plate 5 from detaching from the frame body 111.

[0041] Optionally, such as Figure 2 and Figure 3As shown, the frame part 1 also includes a first upper linear guide rail 121, a first lower linear guide rail 122, an upper roller slide 123, a lower roller slide 124, a first pressing roller 125, and a first cylinder 126. The first upper linear guide rail 121 is installed on the upper end of the frame body 111, and the first lower linear guide rail 122 is installed on the lower end of the frame body 111. Both the first upper linear guide rail 121 and the first lower linear guide rail 122 extend in the left and right direction. The upper roller slide 123 is slidably connected to the first upper linear guide rail 121, and the lower roller slide 124 is slidably connected to the first lower linear guide rail 122.

[0042] The first cylinder 126 is installed on both the upper slide block 123 and the lower slide block 124 of the roller, and the sliding rods of the two first cylinders 126 are respectively connected to the upper and lower ends of the first pressing roller 125.

[0043] In this embodiment, by installing a first upper linear guide rail 121 and a first lower linear guide rail 122 at the upper and lower ends of the frame body 111, and by slidably connecting an upper roller slide 123 to the first upper linear guide rail 121 and a lower roller slide 124 to the first lower linear guide rail 122, and by connecting the upper roller slide 123 and the lower roller slide 124 to the upper and lower ends of the first pressing roller 125 respectively, the movement of the pressing roller in the X-axis direction can be adjusted. Simultaneously, a first cylinder 126 is installed on the upper roller slide 123 and the lower roller slide 124, which can be used to adjust the position of the first pressing roller 125 relative to the slotted aluminum plate 5.

[0044] Optionally, such as Figure 2 and Figure 3 As shown, the frame portion 1 also includes a helical rack 131, a helical gear 132, an X-axis guard 133, and an X-axis servo motor 134. The helical rack 131 is installed on the rear side of the frame body 111 and extends in the left-right direction. The X-axis guard 133 is connected to the X-axis portion 2. The X-axis servo motor 134 is installed inside the X-axis guard 133. The output shaft of the X-axis servo motor 134 is connected to the helical gear 132 for transmission. The helical gear 132 meshes with the helical rack 131.

[0045] In this embodiment, by setting an X-axis servo motor 134, the X-axis servo motor 134 can drive the helical gear 132 to rotate. The helical gear 132 meshes with the helical rack 131, driving the lower X-axis servo motor 134 to move along the X-axis direction, so that the X-axis cover 133 and the X-axis part 2 move along the X-axis direction.

[0046] Optionally, such as Figure 2 and Figure 3As shown, the frame part 1 also includes a control box swing seat 141, a CNC display screen control box 142, and an electrical box 143. The control box swing seat 141 is located in the middle of the frame body 111, the CNC display screen control box 142 is installed on the upper end of the control box swing seat 141, and the electrical box 143 is installed on the rear side of the frame body 111.

[0047] In this embodiment, by setting up a control box swing base 141 and installing a CNC display screen control box 142 on the control box swing base 141, the position of the CNC display screen control box 142 can be adjusted using the control box swing base 141, making it easier to place the CNC display screen control box 142 closer to the operator, thus facilitating operation. Secondly, an electrical box 143 is installed at the rear of the machine frame body 111, which can be used to supply power to the CNC display screen control box 142.

[0048] Optionally, such as Figure 4 As shown, the X-axis section 2 includes an X-axis upper slide 211, an X-axis lower slide 212, an X-axis crossbeam 213, a Y-axis motor plate 221, a Y-axis servo motor 222, a Y-axis lead screw 223, a fixed seat 224, and a Y-axis nut support 225. The X-axis upper slide 211 is located to the right of the roller upper slide 123 and is slidably connected to the first upper linear guide 121. The X-axis cover 133 is connected to the X-axis upper slide 211. The X-axis upper slide 211 is located to the left of the roller lower slide 124 and is slidably connected to the first lower linear guide 122. The upper and lower ends of the X-axis crossbeam 213 are respectively connected to the upper and lower slides of the roller upper slide 211. The X-axis upper slide 211 and the X-axis lower slide 212 are connected. The Y-axis motor plate 221 is connected to the X-axis crossbeam 213. The Y-axis servo motor 222 is mounted on the Y-axis motor plate 221. The axial direction of the Y-axis lead screw 223 is parallel to the inclination direction of the X-axis crossbeam 213 and the frame body 111. The output end of the Y-axis servo motor 222 is connected to the Y-axis lead screw 223. The Y-axis nut support 225 is threaded to the Y-axis lead screw 223 and moves along the axial direction of the Y-axis lead screw 223. The Y-axis nut support 225 is connected to the Y-axis part 3.

[0049] The X-axis beam 213 is provided with fixed seats 224 at both its upper and lower ends, and the Y-axis lead screw 223 is connected to the two fixed seats 224 at its upper and lower ends respectively.

[0050] In this embodiment, the Y-axis servo motor 222 drives the Y-axis lead screw 223 to rotate relative to the fixed seat 224 support. The Y-axis nut support seat 225 is threaded to the Y-axis lead screw 223, which can drive the Y-axis nut support seat 225 to move along the axial direction of the Y-axis lead screw 223, thereby driving the Z-axis part 4 connected to the Y-axis nut support seat 225 and the saw blade 6 connected to the Z-axis part 4 to move along the Y-axis direction.

[0051] Optionally, such as Figure 4 and Figure 5 As shown, the X-axis portion 2 also includes a second upper linear guide rail 231 and a second lower linear guide rail 232, which are located at the upper and lower ends of the left side wall of the X-axis beam 213, respectively.

[0052] The Y-axis portion 3 includes a Y-axis slide plate 31, a first horizontal upper slider 32, and a first horizontal lower slider 33. The first horizontal upper slider 32 is provided at the upper right side of the Y-axis slide plate 31, and the first horizontal lower slider 33 is provided at the lower right side of the Y-axis slide plate 31. The first horizontal upper slider 32 is slidably connected to the second upper linear guide rail 231, and the first horizontal lower slider 33 is slidably connected to the second lower linear guide rail 232. The Y-axis nut support 225 is connected to the Y-axis slide plate 31.

[0053] Specifically, an oil pipe separator is also installed on the right side of the Y-axis slide plate 31, and the X-axis part 2 also includes a locking block 233, which is connected to the X-axis crossbeam 213 to lock the second upper linear guide 231 and the second lower linear guide 232.

[0054] In this embodiment, by installing a second upper linear guide rail 231 and a second lower linear guide rail 232 at the upper and lower ends of the side wall of the X-axis beam 213, installing a first horizontal upper slider 32 at the upper end of the right side surface of the Y-axis slide plate 31, and installing a second horizontal lower slider at the lower end of the right side surface of the Y-axis slide plate 31, the first horizontal upper slider 32 is slidably connected to the second upper linear guide rail 231, and the first horizontal lower slider 33 is slidably connected to the second lower linear guide rail 232, so that the Y-axis slide plate 31 moves along the Y-axis direction.

[0055] Optionally, such as Figure 4 As shown, the X-axis part 2 also includes a second cylinder 241 and a second pressing roller 242. The second cylinder 241 is installed at both the front and rear ends of the X-axis beam 213, and the movable rod of the second cylinder 241 is connected to the front and rear ends of the second pressing roller 242 respectively.

[0056] In this embodiment, the second cylinder 241 is connected to the second pressing roller 242. The second cylinder 241 can drive the second pressing roller 242 to act on the right side of the slotted aluminum plate 5. That is, the first pressing roller 125 can press the left side of the slotted aluminum plate 5, and the second pressing roller 242 can press the right side of the slotted aluminum plate 5.

[0057] Optionally, such as Figures 5 to 7 As shown, the Y-axis portion 3 also includes a longitudinal front slider 34 and a longitudinal rear slider 35. The longitudinal front slider 34 is provided on the front side of the left side surface of the Y-axis slide plate 31, and the longitudinal rear slider 35 is provided on the rear side of the left side surface of the Y-axis slide plate 31.

[0058] The Z-axis portion 4 includes a Z-axis slide plate 411, a Z-axis front linear guide rail 412, and a Z-axis rear linear guide rail 413. The Z-axis slide plate 411 is provided with the Z-axis front linear guide rail 412 and the Z-axis rear linear guide rail 413 on its front and rear sides, respectively. The longitudinal front slider 34 is slidably connected to the Z-axis front linear guide rail 412, and the longitudinal rear slider 35 is slidably connected to the Z-axis rear linear guide rail 413.

[0059] In this embodiment, a longitudinal front slider 34 is provided on the front side of the left side of the Y-axis slide plate 31, and multiple longitudinal front sliders 34 are distributed sequentially along the vertical direction. A longitudinal rear slider 35 is provided on the rear side of the right side of the Y-axis slide plate 31. The longitudinal front sliders 34 are slidably connected to the Z-axis front linear guide rail 412, and the longitudinal rear sliders 35 are slidably connected to the Z-axis rear linear guide rail 413, so that the Z-axis slide plate 411 can move along the Z-axis direction.

[0060] Optionally, such as Figure 6 and Figure 7 As shown, the Z-axis part 4 also includes a Z-axis cover 421, a Z-axis servo motor 422, a Z-axis lead screw 423, a Z-axis nut support 424, a Z-axis motor base 431, and a Z-axis motor 432;

[0061] The Z-axis slide plate 411 is equipped with a Z-axis guard 421 at its upper end. The Z-axis servo motor 422 is installed inside the Z-axis guard 421. The Z-axis mounting base 224 is installed at the upper and lower ends of the middle part of the Z-axis slide plate 411. The upper and lower ends of the Z-axis lead screw 423 are respectively connected to the Z-axis mounting base 224. The output shaft of the Z-axis servo motor 422 is connected to the Z-axis lead screw 423 for transmission. The Z-axis nut support 424 is threaded to the Z-axis lead screw 423 and moves along the axial direction of the Z-axis lead screw 423. The Z-axis nut support 424 is connected to the Z-axis slide plate 411.

[0062] The Z-axis motor mount 431 is installed at the lower end of the Z-axis cover 421, the Z-axis motor 432 is installed on the Z-axis motor mount 431, and the output shaft of the Z-axis motor 432 is connected to the saw blade 6 for transmission.

[0063] In this embodiment, the Z-axis servo motor 422 drives the Z-axis lead screw 423 to rotate, causing the Z-axis nut support 424 to move along the Z-axis direction, thus causing the Z-axis slide plate 411 to move along the Z-axis direction. Secondly, by setting a Z-axis guard 421 and installing it on the Z-axis slide plate 411, and with the Z-axis servo motor 422 installed inside the Z-axis guard 421, the Z-axis guard 421 and the Z-axis servo motor 422 move synchronously with the Z-axis slide plate 411 during its movement. Thirdly, by setting a Z-axis motor mount 431, the Z-axis motor 432 drives the saw blade 6 to rotate, allowing the saw blade 6 to process the slotted aluminum plate 5.

[0064] Optionally, such as Figure 6 As shown, the Z-axis part 4 also includes a swing cylinder seat 441, a swing cylinder 442, and a swing optical axis 443. The Z-axis motor 432 is rotatably connected to the Z-axis motor seat 431. The swing cylinder seat 441 is connected to the Z-axis motor seat 431. The swing cylinder 442 is connected to the swing cylinder seat 441. The swing optical axis 443 is connected to the Z-axis motor 432. The movable rod of the swing cylinder 442 is connected to the swing optical axis 443.

[0065] In this embodiment, the movable rod of the swing cylinder 442 is connected to the swing axis 443. The movable rod of the swing cylinder 442 can be extended or retracted to drive the swing cylinder seat 441 to rotate relative to the Z-axis motor seat 431, thereby adjusting the cutting angle of the saw blade 6 relative to the slotted aluminum plate 5.

[0066] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features; and these modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.

Claims

1. A grooving machine for processing honeycomb panels, characterized in that, It includes a frame part (1), an X-axis part (2), a Y-axis part (3) and a Z-axis part (4). The frame part (1) is used to place a slotted aluminum plate (5). The X-axis part (2) is slidably connected to the frame part (1) along the X-axis direction. The Y-axis part (3) is slidably connected to the X-axis part (2) along the Y-axis direction. The Z-axis part (4) is slidably connected to the Y-axis part (3) along the Z-axis direction. A saw blade (6) is provided on the Z-axis part (4).

2. The grooving machine for processing honeycomb panels according to claim 1, characterized in that, The frame part (1) includes a frame body (111), a rubber pad (112), a lower pad (113), and a positioning aluminum plate (114). The upper end of the frame body (111) is tilted backward and the lower end is tilted forward. The rubber pad (112) is provided on the front side of the frame body (111). The slotted aluminum plate (5) is provided on the rubber pad (112). The positioning aluminum plate (114) is provided on the left side of the rubber pad (112). The lower pad (113) is provided at the lower end of the rubber pad (112). The lower pad (113) is located below the slotted aluminum plate (5).

3. The grooving machine for processing honeycomb panels according to claim 2, characterized in that, The frame part (1) further includes a first upper linear guide rail (121), a first lower linear guide rail (122), an upper roller slide (123), a lower roller slide (124), a first pressing roller (125), and a first cylinder (126). The first upper linear guide rail (121) is installed on the upper end of the frame body (111), and the first lower linear guide rail (122) is installed on the lower end of the frame body (111). Both the first upper linear guide rail (121) and the first lower linear guide rail (122) extend in the left and right direction. The upper roller slide (123) is slidably connected to the first upper linear guide rail (121), and the lower roller slide (124) is slidably connected to the first lower linear guide rail (122). The first cylinder (126) is installed on both the upper slide block (123) and the lower slide block (124) of the roller, and the sliding rods of the two first cylinders (126) are respectively connected to the upper and lower ends of the first pressing roller (125).

4. The grooving machine for processing honeycomb panels according to claim 3, characterized in that, The frame part (1) also includes a helical rack (131), a helical gear (132), an X-axis guard (133), and an X-axis servo motor (134). The helical rack (131) is installed on the rear side of the frame body (111) and extends in the left and right direction. The X-axis guard (133) is connected to the X-axis part (2). The X-axis servo motor (134) is installed inside the X-axis guard (133). The output shaft of the X-axis servo motor (134) is connected to the helical gear (132) for transmission. The helical gear (132) meshes with the helical rack (131).

5. The grooving machine for processing honeycomb panels according to claim 4, characterized in that, The X-axis section (2) includes an upper X-axis slide (211), a lower X-axis slide (212), an X-axis crossbeam (213), a Y-axis motor plate (221), a Y-axis servo motor (222), a Y-axis lead screw (223), a fixed seat (224), and a Y-axis nut support seat (225). The upper X-axis slide (211) is located to the right of the upper roller slide (123) and is slidably connected to the first upper linear guide rail (121). The X-axis cover (133) is connected to the upper X-axis slide (211). The upper X-axis slide (211) is located to the left of the lower roller slide (124) and is slidably connected to the first lower linear guide rail (122). The upper and lower ends of the X-axis crossbeam (213) are respectively connected to the upper and lower roller slide (211). The X-axis upper slide (211) and the X-axis lower slide (212) are connected. The Y-axis motor plate (221) is connected to the X-axis crossbeam (213). The Y-axis servo motor (222) is mounted on the Y-axis motor plate (221). The axial direction of the Y-axis lead screw (223) is parallel to the inclination direction of the X-axis crossbeam (213) and the frame body (111). The output end of the Y-axis servo motor (222) is connected to the Y-axis lead screw (223) for transmission. The Y-axis nut support (225) is threaded to the Y-axis lead screw (223) and moves along the axial direction of the Y-axis lead screw (223). The Y-axis nut support (225) is connected to the Y-axis part (3). The X-axis beam (213) is provided with fixed seats (224) at both the upper and lower ends, and the Y-axis lead screw (223) is connected to the two fixed seats (224) at both the upper and lower ends respectively.

6. The grooving machine for processing honeycomb panels according to claim 5, characterized in that, The X-axis portion (2) also includes a second upper linear guide (231) and a second lower linear guide (232), the second upper linear guide (231) and the second lower linear guide (232) being located at the upper and lower ends of the left side wall of the X-axis beam (213), respectively; The Y-axis portion (3) includes a Y-axis slide plate (31), a first horizontal upper slide plate (32), and a first horizontal lower slide plate (33). The first horizontal upper slide plate (32) is provided at the upper right side surface of the Y-axis slide plate (31), and the first horizontal lower slide plate (33) is provided at the lower right side surface of the Y-axis slide plate (31). The first horizontal upper slide plate (32) is slidably connected to the second upper linear guide rail (231), and the first horizontal lower slide plate (33) is slidably connected to the second lower linear guide rail (232). The Y-axis nut support seat (225) is connected to the Y-axis slide plate (31).

7. The grooving machine for processing honeycomb panels according to claim 6, characterized in that, The X-axis section (2) also includes a second cylinder (241) and a second pressing roller (242). The X-axis crossbeam (213) is equipped with the second cylinder (241) at both the front and rear ends. The movable rod of the second cylinder (241) is connected to the front and rear ends of the second pressing roller (242) respectively.

8. The grooving machine for processing honeycomb panels according to claim 7, characterized in that, The Y-axis portion (3) further includes a longitudinal front slider (34) and a longitudinal rear slider (35). The longitudinal front slider (34) is provided on the front side of the left side surface of the Y-axis slide plate (31), and the longitudinal rear slider (35) is provided on the rear side of the left side surface of the Y-axis slide plate (31). The Z-axis portion (4) includes a Z-axis slide plate (411), a Z-axis front linear guide (412), and a Z-axis rear linear guide (413). The Z-axis slide plate (411) is provided with the Z-axis front linear guide (412) and the Z-axis rear linear guide (413) on its front and rear sides, respectively. The longitudinal front slider (34) is slidably connected to the Z-axis front linear guide (412), and the longitudinal rear slider (35) is slidably connected to the Z-axis rear linear guide (413).

9. The grooving machine for processing honeycomb panels according to claim 8, characterized in that, The Z-axis part (4) also includes a Z-axis cover (421), a Z-axis servo motor (422), a Z-axis lead screw (423), a Z-axis nut support (424), a Z-axis motor mount (431), and a Z-axis motor (432); The Z-axis slide plate (411) is equipped with a Z-axis guard (421) at its upper end. The Z-axis servo motor (422) is installed inside the Z-axis guard (421). Z-axis mounting bases (224) are installed at the upper and lower ends of the middle part of the Z-axis slide plate (411). The upper and lower ends of the Z-axis lead screw (423) are respectively connected to the Z-axis mounting bases (224). The output shaft of the Z-axis servo motor (422) is connected to the Z-axis lead screw (423) for transmission. The Z-axis nut support (424) is threaded to the Z-axis lead screw (423) and moves along the axial direction of the Z-axis lead screw (423). The Z-axis nut support (424) is connected to the Z-axis slide plate (411). The Z-axis motor mount (431) is installed at the lower end of the Z-axis cover (421), the Z-axis motor (432) is installed on the Z-axis motor mount (431), and the output shaft of the Z-axis motor (432) is connected to the saw blade (6) for transmission.

10. The grooving machine for processing honeycomb panels according to claim 9, characterized in that, The Z-axis part (4) further includes a swing cylinder seat (441), a swing cylinder (442), and a swing optical axis (443). The Z-axis motor (432) is rotatably connected to the Z-axis motor seat (431). The swing cylinder seat (441) is connected to the Z-axis motor seat (431). The swing cylinder (442) is connected to the swing cylinder seat (441). The swing optical axis (443) is connected to the Z-axis motor (432). The movable rod of the swing cylinder (442) is connected to the swing optical axis (443).