Green building construction wall grooving device
By designing a green building construction wall groove device combining height adjustment and transverse movement mechanism, the problem of the existing technology being unable to take into account both drill bit grooves and cutting grooves is achieved, efficient and flexible groove processing is achieved, and construction efficiency and quality are improved.
Patent Information
- Application Number
- CN202510253718.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-05
- Publication Date
- 2025-06-17
AI Technical Summary
The prior art cannot take into account the functions of drill bit grooves and cutting grooves, resulting in low efficiency and quality of wall groove processing in green building construction, and it is difficult to meet complex and changeable construction scenarios.
A green building construction wall groove device including height adjustment and transverse movement mechanism is designed. Through the coordinated operation of the transmission assembly and telescopic assembly, the height adjustment and lateral precise displacement of the groove mechanism are realized, and the groove requirements in different directions and specifications can be flexibly responded to the groove requirements in different directions and specifications.
It improves the flexibility and convenience of groove processing, can meet the processing needs of complex groove bodies, improves construction efficiency and quality, and adapts to strict standards for green building construction.
Smart Images

Figure CN120156017A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of building construction, and particularly to a wall grooving device for green building construction. Background Art
[0002] In the current era of the booming development of green buildings, wall grooving, as an essential link in building construction, the integration of its technological innovation and green concept has attracted much attention. The wall grooving for green building construction aims to meet the needs of laying water and electricity lines, installing pipelines and other building equipment. Construction workers need to accurately cut specific-sized grooves on the wall according to the design drawings and actual conditions, using tools such as cutters and electric drills. At the same time, strictly following the concept of green building construction, strive to reduce the damage to the wall structure, reduce noise and dust pollution, and properly handle and recycle construction waste.
[0003] However, there are significant deficiencies in the current wall grooving technology. Take the wall grooving device for decorative construction disclosed in the Chinese patent with the publication number "CN220075137U" as an example. This device can only perform grooving operations through a drill bit. However, in the actual grooving process, due to the different wall materials and grooving requirements, a single grooving method far from meets the complex and changeable construction scenarios. When a narrow and regular wire groove needs to be opened for laying wire pipes, the cutter, with its high-speed rotating cutting blade, can efficiently cut out neat and straight grooves, and the groove walls are flat, which is conducive to the subsequent installation of wire pipes. When opening small holes in a hard wall for fixing objects, or performing fine grooving on a partially decorated wall, the drill bit, especially the impact drill with a special drill bit, can drill holes with specific shapes and depths, but the speed is slow, and it is difficult to cut out continuous and long straight grooves. It can be seen that the existing technology has many inconveniences in the wall grooving for green building construction because it cannot combine the functions of drill-bit grooving and cutting grooving, and urgently needs to be improved to improve construction efficiency and quality, and better meet the strict standards of green building construction. Summary of the Invention
[0004] In order to improve the adaptability of grooving during the application of the existing technology, this application provides a wall grooving device for green building construction.
[0005] A wall grooving device for green building construction provided by this application adopts the following technical solutions: It includes a base, a frame is fixedly installed in the middle of the top of the base, a height adjustment mechanism is fixedly installed at the top of the frame, a transverse movement mechanism is fixedly installed at the upper end of the height adjustment mechanism, and a grooving mechanism is fixedly installed on the front of the transverse movement mechanism.
[0006] The grooving mechanism includes a fixed plate which is fixedly installed on the front of the transverse movement mechanism. Telescopic components are fixedly installed at both the top and bottom of the fixed plate. A first grooving component is fixedly installed on the front of the telescopic component at the top, and a second grooving component is fixedly installed on the telescopic component at the bottom. A transmission component is fixedly installed on one side of the fixed plate, and the transmission component is respectively in transmission connection with the telescopic components.
[0007] Optionally, universal brackets are rotatably connected to the four corners at the bottom of the base, and universal wheels are rotatably connected to the bottoms of the universal brackets.
[0008] Optionally, a limiting arm is fixedly installed on one side of the universal bracket. An anti-slip screw is threadedly connected to the outer end of the limiting arm, and an anti-slip base plate is fixedly connected to the end of the anti-slip screw through the limiting arm.
[0009] Optionally, the height adjustment mechanism includes a vertical rail which is fixedly installed on the top of the frame. A first motor is fixedly installed at the bottom of the vertical rail. The output end of the first motor penetrates through the vertical rail and fixedly installs a first lead screw. The first lead screw is rotatably connected inside the vertical rail. A slider is threadedly connected to the outer surface of the first lead screw. The slider is slidably connected inside the vertical rail, and the front of the slider is fixedly connected to the transverse movement mechanism.
[0010] Optionally, the transverse movement mechanism includes a guide rail and a drive component. The guide rail is fixedly installed on the front of the slider. A movable block is slidably connected inside the guide rail. The fixed plate is fixedly installed on the front of the movable block, at the upper end of the fixed plate.
[0011] Optionally, the drive component includes a second motor and a rack. The second motor is fixedly installed at the upper front of the fixed plate. The rack is fixedly installed on the top of the guide rail. The output end of the second motor penetrates through the fixed plate and fixedly connects a first gear, and the first gear is meshed with the rack.
[0012] Optionally, the telescopic component includes side rails which are fixedly connected to the top and bottom of the fixed plate. A second lead screw is rotatably connected inside the side rails. The two ends of the second lead screw have opposite thread directions. Sliding blocks are threadedly connected to both ends of the second lead screw. Linking rods are hinged to the fronts of the sliding blocks. The front ends of the linking rods are hinged to mounting plates, and the first grooving component and the second grooving component are respectively installed on the two mounting plates.
[0013] Optionally, the transmission assembly includes a third motor and a fixed arm, the third motor is fixedly mounted at one end of a side rail, the fixed arm is fixedly mounted at the middle of the front side of the fixed plate, the outer end of the fixed arm is rotatably connected to two second gears, the second gears are meshedly connected, the outer sides of the second gears are fixedly connected to a synchronous wheel, the end of the guide rail is also rotatably connected to a synchronous wheel, the synchronous wheels are connected by a synchronous belt transmission, the output end of the third motor is connected to the end of a second screw rod, and the inner side of the synchronous wheel on the guide rail is connected to the outer end of the second screw rod.
[0014] Optionally, the first slotting assembly includes a first fixing seat, which is fixedly connected to the middle of the mounting plate at the top, a fourth motor is fixedly installed on the back of the first fixing seat, an output end of the fourth motor passes through the first fixing seat and is fixedly installed with a mounting sleeve, and a slotting drill bit is installed on the inner side of the mounting sleeve by screws.
[0015] Optionally, the second slotting assembly includes a second fixed seat, the second fixed seat is fixedly installed in the middle of the bottom mounting plate, a fifth motor is fixedly installed on the back of the second fixed seat, the sliding end of the fifth motor passes through the second fixed seat and is fixedly installed with a cutting shell, the interior of the cutting shell is rotatably connected with a cutting blade, a sixth motor is fixedly installed on the top of the cutting shell, and the output end of the sixth motor passes through the cutting shell and is connected to the top of the cutting blade.
[0016] In summary, this application includes the following beneficial technical effects:
[0017] 1. This device effectively improves the flexibility and convenience of use through the exquisite coordination of height adjustment and transverse movement mechanism. During use, the first motor can drive the first screw to rotate, and the screw rod and the slider are connected by thread to drive the slider to slide up and down in the vertical rail, thereby driving the guide rail to adjust its position. If the second motor is started, its output shaft drives the first gear, and the meshing of the first gear and the rack is used to push the movable block in the guide rail to slide horizontally, so as to achieve precise horizontal positioning of the slotting mechanism and complete the horizontal slotting of the wall. At the same time, the first motor is controlled to rotate forward and reversely to make the slotting mechanism move up and down. Through coordinated control, the equipment can flexibly respond to slotting requirements in different directions, meet the processing of complex slots, and improve overall convenience and adaptability.
[0018] 2. The slotting mechanism of the device can meet different working conditions through the cooperation of the first slotting component and the second slotting component. When the slotting drill bit is needed to assist in slotting, the third motor is started, which drives the second screw in the top side rail to rotate. Because the threads at both ends of the screw rod rotate in opposite directions, the two sliding blocks are synchronously driven to slide back and forth in the side rails. By accurately controlling the displacement of the sliding block and utilizing the hinged relationship between the sliding block, the linkage rod and the mounting plate, when the sliding block moves inward, the linkage rod opens the mounting plate, driving the front fourth motor and the slotting drill bit to move forward to slot. When the third motor is running, the second screw also drives the synchronous wheel on the outer side of the side rail, which is linked to the second gear through the synchronous belt to make the second screw in the top and bottom side rails rotate in the opposite direction, so that the first slotting component moves forward and the second slotting component retracts, completing the slotting operation.
[0019] 3. During use, when it is necessary to use a cutting blade for slotting, start the fourth motor to rotate in the opposite direction, and with the help of the transmission relationship between the second gear, the synchronous wheel and the synchronous belt, retract the first slotting component mounting plate, push the second slotting component mounting plate forward, and make the bottom mounting plate drive the cutting blade to contact the wall through the linkage rod, start the sixth motor, and drive the cutting blade to rotate at high speed for slotting. If you want to change the cutting direction, start the fifth motor and directly drive the cutting shell to rotate. During the cutting process, the device can flexibly use blade cutting and slotting drill bit slotting to adapt to complex slotting needs and has extremely high promotion value. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Figure 1 It is a schematic diagram of the overall structure in the embodiment of the present application;
[0021] Figure 2 This is a schematic diagram of the structure viewed from above in an embodiment of the present application;
[0022] Figure 3 It is a schematic diagram of a top view structure in an embodiment of the present application;
[0023] Figure 4 It is a schematic diagram of the rear view structure in the embodiment of the present application;
[0024] Figure 5 It is a rear view structural diagram of the transverse movement mechanism and the slotting mechanism in the embodiment of the present application;
[0025] Figure 6 It is a front structural schematic diagram of the transverse movement mechanism and the slotting mechanism in the embodiment of the present application;
[0026] Figure 7 This is a schematic diagram of the front view of the slotting mechanism in the embodiment of the present application;
[0027] Figure 8 It is a schematic diagram of the rear view structure of the slotting mechanism in the embodiment of the present application.
[0028] Reference numerals: 1, base; 2, frame; 3, height adjustment mechanism; 31, vertical rail; 32, first motor; 33, first lead screw; 34, slider; 4, transverse movement mechanism; 41, guide rail; 42, drive assembly; 421, second motor; 422, rack; 423, first gear; 43, movable block; 5, grooving mechanism; 51, fixing plate; 52, telescopic assembly; 521, side rail; 522, second lead screw; 523, sliding block; 524, linkage rod; 525, mounting plate; 53, first grooving assembly; 531, first fixing seat; 532, fourth motor; 533, mounting sleeve; 534, grooving drill bit; 54, second grooving assembly; 541, second fixing seat; 542, fifth motor; 543, cutting housing; 544, cutting blade; 545, sixth motor; 55, transmission assembly; 551, third motor; 552, fixed arm; 553, second gear; 554, synchronous pulley; 555, synchronous belt; 6, gimbal; 7, caster; 8, limiting arm; 9, anti-slip screw. Detailed implementation manners
[0029] The following will further describe the present application in detail with reference to the Figure 1-8 accompanying drawings.
[0030] An embodiment of the present application discloses a wall grooving device for green building construction. As Figure 1-8 shown, it includes a base 1. A frame 2 is fixedly installed in the middle of the top of the base 1. A height adjustment mechanism 3 is fixedly installed at the top of the frame 2. The upper end of the height adjustment mechanism 3 is fixedly installed with a transverse movement mechanism 4. A grooving mechanism 5 is fixedly installed on the front surface of the transverse movement mechanism 4;
[0031] The grooving mechanism 5 includes a fixing plate 51 which is fixedly installed on the front of the transverse movement mechanism 4. Telescopic components 52 are fixedly installed at both the top and bottom of the fixing plate 51. A first grooving component 53 is fixedly installed on the front of the telescopic component 52 at the top, and a second grooving component 54 is fixedly installed on the telescopic component 52 at the bottom. A transmission component 55 is fixedly installed on one side of the fixing plate 51. The transmission component 55 is respectively in transmission connection with the telescopic components 52. The base 1 of this device provides stable support for the entire device. During operation, by starting the height adjustment mechanism 3, the driving components inside it drive itself to perform lifting actions, and then drive the transverse movement mechanism 4 installed on its upper end to move up and down, so as to adjust the height of the grooving mechanism 5 to adapt to the grooving requirements of walls with different heights. When the height is determined, start the transverse movement mechanism 4. The power device inside it operates to drive the transverse movement mechanism 4 to move horizontally, so that the grooving mechanism 5 installed on its front moves horizontally, realizing the positioning of different horizontal positions of the wall. For the grooving mechanism 5, when grooving operations are required, the transmission component 55 is started to transmit power to the telescopic components 52 at the top and bottom respectively. If the first grooving component 53 is to be used, the transmission component 55 drives the telescopic component 52 at the top to extend, pushing the first grooving component 53 forward to approach the wall for grooving; if the second grooving component 54 is to be used, the transmission component 55 controls the telescopic component 52 at the bottom to act, driving the second grooving component 54 forward to approach the wall for grooving. Through the above collaborative operation, the wall grooving task in green building construction is completed.
[0032] Please refer to Figures 5-8, the first grooving component 53 includes a first fixing base 531. The first fixing base 531 is fixedly connected to the middle of the mounting plate 525 at the top. A fourth motor 532 is fixedly installed on the back of the first fixing base 531. The output end of the fourth motor 532 penetrates through the first fixing base 531 and fixedly installs a mounting sleeve 533. A grooving drill bit 534 is installed inside the mounting sleeve 533 by screws. The second grooving component 54 includes a second fixing base 541. The second fixing base 541 is fixedly installed in the middle of the mounting plate 525 at the bottom. A fifth motor 542 is fixedly installed on the back of the second fixing base 541. The sliding end of the fifth motor 542 penetrates through the second fixing base 541 and fixedly installs a cutting housing 543. A cutting blade 544 is rotatably connected inside the cutting housing 543. A sixth motor 545 is fixedly installed on the top of the cutting housing 543. The output end of the sixth motor 545 penetrates through the cutting housing 543 and is connected to the top of the cutting blade 544. In the working system of this grooving device, the first grooving component 53 cooperates with the second grooving component 54. When the first grooving component 53 is used and enabled, the first fixing base 531 located in the middle of the mounting plate 525 at the top, and the fourth motor 532 fixed to its back starts. The output end of the fourth motor 532 rotates, driving the mounting sleeve 533 that penetrates through the first fixing base 531 and is connected to rotate. Since the grooving drill bit 534 is fixed to the inside of the mounting sleeve 533 by screws, the grooving drill bit 534 rotates at a high speed to perform a drilling grooving operation on the wall. When the second grooving component 54 needs to work, the second fixing base 541 in the middle of the mounting plate 525 at the bottom plays a role. The fifth motor 542 fixed to its back starts. The output end of the fifth motor 542 drives the cutting housing 543 that penetrates through the second fixing base 541 to rotate, which can adjust the cutting direction of the cutting blade 544. At the same time, the sixth motor 545 fixed to the top of the cutting housing 543 starts. The output end of the sixth motor 545 drives the cutting blade 544 to rotate at a high speed. By driving the cutting housing 543 to adjust the angle by the fifth motor 542 and cooperating with the sixth motor 545 to drive the cutting blade 544 to rotate at a high speed, a cutting grooving operation on the wall is realized. The two cooperate to provide a variety of ways for grooving the wall.
[0033] Please refer to Figures 1-4, the height adjustment mechanism 3 includes a vertical rail 31, the vertical rail 31 is fixedly installed on the top of the frame 2, a first motor 32 is fixedly installed at the bottom of the vertical rail 31, the output end of the first motor 32 penetrates through the vertical rail 31 and is fixedly installed with a first lead screw 33, the first lead screw 33 is rotatably connected inside the vertical rail 31, a slider 34 is threadedly connected to the outer surface of the first lead screw 33, the slider 34 is slidably connected inside the vertical rail 31, the front surface of the slider 34 is fixedly connected to the lateral movement mechanism 4, the lateral movement mechanism 4 includes a guide rail 41 and a drive assembly 42, the guide rail 41 is fixedly installed on the front surface of the slider 34, a movable block 43 is slidably connected inside the guide rail 41, a fixing plate 51 is fixedly installed on the front surface of the movable block 43, at the upper end of the fixing plate 51, the drive assembly 42 includes a second motor 421 and a rack 422, the second motor 421 is fixedly installed at the upper front end of the fixing plate 51, the rack 422 is fixedly installed on the top of the guide rail 41, the output end of the second motor 421 penetrates through the fixing plate 51 and is fixedly connected with a first gear 423, the first gear 423 is meshed with the rack 422. In the height adjustment mechanism 3, the vertical rail 31 is stably installed on the top of the frame 2, and the first motor 32 at its bottom is the key power source. When the first motor 32 is started, the output end rotates, driving the first lead screw 33 penetrating through the vertical rail 31 to rotate synchronously. Since the first lead screw 33 is threadedly connected to the slider 34 and the slider 34 can slide inside the vertical rail 31, when the lead screw rotates, the slider 34 slides up and down along the guide of the vertical rail 31. The front surface of the slider 34 is connected to the lateral movement mechanism 4, thereby driving the entire lateral movement mechanism 4 to adjust the height position to adapt to the grooving requirements of walls with different heights. In terms of the lateral movement mechanism 4, the guide rail 41 is fixed on the front surface of the slider 34, the movable block 43 can slide inside the guide rail 41, and the fixing plate 51 is installed on the front surface of the movable block 43. The fixing plate 51 carries the grooving mechanism 5. The second motor 421 in the drive assembly 42 is fixed at the upper front end of the fixing plate 51, and the first gear 423 connected to its output end meshes with the rack 422 fixed on the top of the guide rail 41. When the second motor 421 is started, the output end drives the first gear 423 to rotate. Due to the meshing relationship between the first gear 423 and the rack 422, during the rotation of the first gear 423, it moves along the rack 422, thereby pushing the fixing plate 51 and the movable block 43 connected thereto to slide horizontally inside the guide rail 41, realizing the precise displacement of the grooving mechanism 5 in the horizontal direction and meeting the requirements for grooving operations at different lateral positions of the wall.
[0034] Please refer to Figures 1-4, universal joints 6 are rotatably connected to the four bottom corners of the base 1, universal wheels 7 are rotatably connected to the bottoms of the universal joints 6, a limiting arm 8 is fixedly installed on one side of the universal joint 6, an anti-slip screw rod 9 is threadedly connected to the outer end of the limiting arm 8, and the end of the anti-slip screw rod 9 penetrates through the limiting arm 8 and is fixedly connected to an anti-slip base plate. The universal joints 6 and the universal wheels 7 at the four bottom corners of the base 1 endow the device with good mobility. The universal joints 6 can rotate freely relative to the bottom of the base 1, enabling the universal wheels 7 to roll in all directions, thus facilitating construction workers to easily push the device to move at the construction site and quickly reach different wall grooving operation positions. When the device moves to the designated position, to prevent it from accidentally sliding, the limiting arm 8 installed on one side of the universal joint 6 comes into play. By rotating the anti-slip screw rod 9 threadedly connected to the outer end of the limiting arm 8, due to the transmission effect of the thread, the anti-slip screw rod 9 will move inwards or outwards along the threaded hole of the limiting arm 8. When it is necessary to fix the device, rotate the anti-slip screw rod 9 outwards so that the anti-slip base plate connected to the end of the anti-slip screw rod 9 gradually descends and comes into close contact with the ground. As the anti-slip screw rod 9 continues to rotate, the anti-slip base plate exerts a large pressure on the ground, and the friction force generated between it and the ground is used to effectively limit the movement of the device, ensuring that the device always remains stable during the wall grooving operation and avoiding affecting the grooving accuracy and construction safety due to movement.
[0035] Please refer to Figures 5-8The telescopic assembly 52 includes a side rail 521, which is fixedly connected to the top and bottom of the fixed plate 51. The second screw rod 522 is rotatably connected inside the side rail 521. The threads of the two ends of the second screw rod 522 are rotated in opposite directions. The two ends of the second screw rod 522 are threadedly connected to the sliding block 523. The front of the sliding block 523 is hinged with a linkage rod 524. The front end of the linkage rod 524 is hinged with a mounting plate 525. The first slot assembly 53 and the second slot assembly 54 are respectively installed on the two mounting plates 525. The transmission assembly 55 includes a third motor 551 and a fixed arm 552. The third motor 551 is fixedly installed at one end of a side rail 521. The fixed arm 552 is fixedly installed at the middle of the front side of the fixed plate 51. The outer The ends of the guide rails 41 are rotatably connected to two second gears 553, the second gears 553 are meshed and connected, the outer side of the second gears 553 is fixedly connected to a synchronous wheel 554, the end of the guide rail 41 is also rotatably connected to a synchronous wheel 554, and the synchronous wheels 554 are connected through a synchronous belt 555. The output end of the third motor 551 is connected to the end of a second screw rod 522, and the inner side of the synchronous wheel 554 on the guide rail 41 is connected to the outer end of the second screw rod 522. The telescopic component 52 of the device cooperates with the transmission component 55 to promote the diversified implementation of the grooving operation. When the third motor 551 in the transmission component 55 is started, its output end drives the second screw rod 522 connected thereto to rotate in the side rail 521. Due to the threads at both ends of the second screw rod 522, The rotation direction is opposite. As the screw rod rotates, the sliding blocks 523 threaded at both ends will slide in the side rails 521 in opposite directions. For example, the sliding block 523 at one end slides inward and the other end slides outward. The linkage rod 524 hinged on the front of the sliding block 523 will change its angle as the sliding block 523 moves. When the sliding block 523 moves, the position of the mounting plate 525 hinged at the front end of the linkage rod 524 also changes accordingly. Taking the mounting plate 525 where the first slotting component 53 is located as an example, if the sliding block 523 connected thereto slides inward, the linkage rod 524 will prop open the mounting plate 525, causing the mounting plate 525 to move forward, driving the first slotting component 53 installed thereon to approach the wall and prepare for the slotting operation. Similarly, the second slotting component 54 is also hinged In a similar manner, during the operation of the third motor 551, the rotation of the second screw rod 522 drives the synchronous wheel 554 at the end of the side rail 521 to rotate, and the synchronous wheel 554 is connected to the synchronous wheel 554 on the outer side of the second gear 553 at the outer end of the fixed arm 552 through the synchronous belt 555 to achieve synchronous transmission. Since the two second gears 553 are meshed with each other, their rotation directions are opposite, thereby driving the two sets of synchronous belts 555 and the synchronous wheel 554 to rotate in different directions, so that the second screw rods 522 in the top side rail 521 and the bottom side rail 521 rotate in opposite directions. In this way, when the second screw rod 522 at the top drives the sliding block 523 to move inward, so that the first slotted assembly 53 moves toward the front end, the second screw rod 522 at the bottom drives the sliding block 523 to move outward.Retract the second grooving component 54 to the rear side, or vice versa, and flexibly switch the working states of different grooving components to meet various grooving requirements.
[0036] The implementation principle of a wall grooving device for green building construction in an embodiment of the present application is as follows: In the design of this device, the height adjustment mechanism 3 and the transverse movement mechanism 4 cooperate with each other, significantly enhancing the flexibility and convenience of the device during use. When the device is started, the first motor 32 starts to operate, and the operation of the motor drives the first lead screw 33 to rotate. Since the lead screw and the slider 34 are connected by threads, the rotation of the first lead screw 33 drives the slider 34 to slide up and down inside the vertical rail 31. As the slider 34 moves up and down, it drives the connected guide rail 41 to synchronously adjust its vertical position. During this process, if the second motor 421 is started, the output shaft of the second motor 421 drives the first gear 423 to rotate. Given that the first gear 423 and the rack 422 are in a meshed connection state, as the first gear 423 rotates, through the meshing transmission between the first gear 423 and the rack 422, the movable block 43 inside the guide rail 41 can be driven to slide horizontally. Through the above operations, the horizontal position of the grooving mechanism 5 can be accurately adjusted flexibly. Utilizing this feature, the horizontal grooving operation on the wall can be realized. At the same time, during the grooving operation, by controlling the forward and reverse rotation of the first motor 32, the first lead screw 33 is driven to drive the slider 34 to continuously slide up and down inside the vertical rail 31, and further drive the grooving mechanism 5 to move up and down. By coordinately controlling the horizontal and vertical movements of the grooving mechanism 5, this device can flexibly carry out grooving processing operations in different directions, meeting the processing requirements of various complex-shaped grooves, and greatly improving the convenience and adaptability of the overall grooving processing of this device.
[0037] The slotting mechanism 5 provided in the device has various slotting functions and can adapt to the slotting operation requirements under different working conditions. When the slotting drill bit 534 is needed to assist slotting, the third motor 551 is started. After the third motor 551 is running, the second screw rod 522 located in the top side rail 521 is driven to rotate. Since the threads at both ends of the second screw rod 522 rotate in opposite directions, as the screw rod rotates, the two sliding blocks 523 can be synchronously driven 555 to slide back and forth in the side rail 521. By accurately adjusting the two sliding blocks 523 The sliding displacement utilizes the hinged linkage relationship between the two sliding blocks 523, the linkage rod 524 and the mounting plate 525. When the two sliding blocks 523 are synchronously driven to slide inward, the linkage rod 524 will open the mounting plate 525 connected to its upper end, thereby driving the mounting plate 525 to move forward. The forward movement of the mounting plate 525 causes the fourth motor 532 installed at its front end to move forward synchronously. At this time, the slotting drill bit 534 connected to the front end of the fourth motor 532 can perform slotting processing on the wall. During the operation of the third motor 551, the second screw rod 5 The rotation of 22 not only drives the sliding block 523 to move, but also drives the synchronous wheel 554 on the outside of the side rail 521 to rotate. The synchronous wheel 554 is linked with the synchronous wheels 554 on the outside of the two second gears 553 through the synchronous belt 555. With the help of the synchronous transmission effect of the synchronous belt 555, the second gear 553 located at the inner end is driven to rotate. Since the second gears 553 are meshed and connected with each other, their rotation directions are opposite to each other, while the transmission between the synchronous wheel 554 and the synchronous belt 555 keeps rotating in the same direction. Based on this, through the second gear The wheel 553 cooperates with the transmission of two sets of synchronous belts 555 and synchronous wheels 554 to realize that the second screw rod 522 in the top side rail 521 and the second screw rod 522 in the bottom side rail 521 rotate in opposite directions. When the second screw rod 522 at the top drives the sliding block 523 to move inward, prompting the first slotting assembly 53 to move toward the front end, the second screw rod 522 at the bottom drives the sliding block 523 to move outward, so that the second slotting assembly 54 retracts to the rear side, thereby realizing the operation of slotting processing by driving the slotting drill 534 through the fourth motor 532;
[0038] If it is necessary to perform cutting and grooving operations using the cutting blade 544, the fourth motor 532 can be started to rotate reversely. During this process, by utilizing the transmission relationship among the second gear 553, the synchronous pulley 554, and the synchronous belt 555, the mounting plate 525 at the first grooving assembly 53 is retracted, and at the same time, the mounting plate 525 at the second grooving assembly 54 is driven to move forward. Through the action of the linkage rod 524, the mounting plate 525 at the bottom is driven to move forward, enabling the cutting blade 544 to contact the wall surface. At this time, the sixth motor 545 is started, and the operation of the sixth motor 545 drives the cutting blade 544 to rotate at high speed, thereby cutting and grooving the wall surface. During the cutting and grooving process, if it is necessary to change the grooving movement direction of the cutting blade 544, the fifth motor 542 can be started, and the fifth motor 542 directly drives the cutting housing 543 to rotate, thereby flexibly changing the cutting direction of the cutting blade 544. In summary, during the overall cutting process of this device, it can flexibly use blade cutting and the grooving drill bit 534 for grooving operations, demonstrating extremely strong adaptability, meeting the grooving processing requirements under any complex conditions, and having extremely high popularization and application value.
[0039] The above are all the preferred embodiments of this application, and the protection scope of this application is not limited thereby. Therefore, all equivalent changes made according to the structure, shape, and principle of this application should be covered within the protection scope of this application.
Claims
1. A green building construction wall grooving device, characterized in that; The invention comprises a base (1), a frame (2) is fixedly mounted in the middle of the top of the base (1), a height adjustment mechanism (3) is fixedly mounted on the top of the frame (2), a transverse movement mechanism (4) is fixedly mounted on the upper end of the height adjustment mechanism (3), and a slotting mechanism (5) is fixedly mounted on the front of the transverse movement mechanism (4); The slotting mechanism (5) comprises a fixed plate (51), the fixed plate (51) is fixedly mounted on the front of the transverse movement mechanism (4), the top and bottom of the fixed plate (51) are fixedly mounted with telescopic components (52), the front of the telescopic component (52) located at the top is fixedly mounted with a first slotting component (53), the telescopic component (52) located at the bottom is fixedly mounted with a second slotting component (54), and a transmission component (55) is fixedly mounted on one side of the fixed plate (51), and the transmission component (55) is respectively connected to the telescopic component (52) in a transmission manner.
2. A green building construction wall grooving device according to claim 1, characterized in that: The four corners at the bottom of the base (1) are all rotatably connected to universal frames (6), and the bottom of the universal frame (6) is rotatably connected to a universal wheel (7).
3. A green building construction wall grooving device according to claim 2, characterized in that: A limit arm (8) is fixedly mounted on one side of the universal frame (6); the outer end of the limit arm (8) is threadedly connected to an anti-skid screw rod (9); the end of the anti-skid screw rod (9) passes through the limit arm (8) and is fixedly connected to an anti-skid base plate.
4. A green building construction wall grooving device according to claim 1, characterized in that: The height adjustment mechanism (3) comprises a vertical rail (31), the vertical rail (31) is fixedly mounted on the top of the frame (2), a first motor (32) is fixedly mounted on the bottom of the vertical rail (31), an output end of the first motor (32) passes through the vertical rail (31) and a first screw rod (33) is fixedly mounted thereon, the first screw rod (33) is rotatably connected to the inside of the vertical rail (31), a slider (34) is threadedly connected to the outer surface of the first screw rod (33), the slider (34) is slidably connected to the inside of the vertical rail (31), and the front surface of the slider (34) is fixedly connected to the transverse movement mechanism (4).
5. A green building construction wall grooving device according to claim 4, characterized in that: The transverse movement mechanism (4) comprises a guide rail (41) and a driving assembly (42), wherein the guide rail (41) is fixedly mounted on the front side of the slider (34), a movable block (43) is slidably connected inside the guide rail (41), and the fixed plate (51) is fixedly mounted on the front side of the movable block (43), the upper end of the fixed plate (51).
6. A green building construction wall grooving device according to claim 5, characterized in that: The driving assembly (42) comprises a second motor (421) and a rack (422); the second motor (421) is fixedly mounted on the upper front end of the fixed plate (51); the rack (422) is fixedly mounted on the top of the guide rail (41); the output end of the second motor (421) passes through the fixed plate (51) and is fixedly connected to a first gear (423); the first gear (423) and the rack (422) are meshingly connected.
7. A green building construction wall grooving device according to claim 6, characterized in that: The telescopic assembly (52) comprises a side rail (521), wherein the side rail (521) is fixedly connected to the top and bottom of the fixed plate (51), and the inside of the side rail (521) is rotatably connected to a second screw rod (522), and the threads at both ends of the second screw rod (522) are in opposite directions, and both ends of the second screw rod (522) are threadedly connected to a sliding block (523), and the front side of the sliding block (523) is hinged with a linkage rod (524), and the front end of the linkage rod (524) is hinged with a mounting plate (525), and the first slotting assembly (53) and the second slotting assembly (54) are respectively mounted on two mounting plates (525).
8. A green building construction wall grooving device according to claim 7, characterized in that: The transmission assembly (55) comprises a third motor (551) and a fixed arm (552), wherein the third motor (551) is fixedly mounted on one end of a side rail (521), and the fixed arm (552) is fixedly mounted on the middle part of the front side of the fixed plate (51). The outer end of the fixed arm (552) is rotatably connected to two second gears (553), the second gears (553) are meshingly connected, the outer sides of the second gears (553) are fixedly connected to a synchronous wheel (554), the end of the guide rail (41) is also rotatably connected to a synchronous wheel (554), and the synchronous wheels (554) are connected to each other through a synchronous belt (555), the output end of the third motor (551) is connected to the end of a second screw rod (522), and the inner side of the synchronous wheel (554) located on the guide rail (41) is connected to the outer end of the second screw rod (522).
9. A green building construction wall grooving device according to claim 8, characterized in that: The first slotting component (53) comprises a first fixing seat (531), the first fixing seat (531) is fixedly connected to the middle of the mounting plate (525) located at the top, a fourth motor (532) is fixedly mounted on the back of the first fixing seat (531), an output end of the fourth motor (532) passes through the first fixing seat (531) and is fixedly mounted with a mounting sleeve (533), and a slotting drill bit (534) is mounted on the inner side of the mounting sleeve (533) by means of screws.
10. A green building construction wall grooving device according to claim 9, characterized in that: The second slotting assembly (54) comprises a second fixed seat (541), the second fixed seat (541) is fixedly mounted on the middle part of the bottom mounting plate (525), a fifth motor (542) is fixedly mounted on the back of the second fixed seat (541), a sliding end of the fifth motor (542) passes through the second fixed seat (541) and is fixedly mounted with a cutting shell (543), the interior of the cutting shell (543) is rotatably connected with a cutting blade (544), a sixth motor (545) is fixedly mounted on the top of the cutting shell (543), and an output end of the sixth motor (545) passes through the cutting shell (543) and is connected with the top of the cutting blade (544).
Citation Information
Patent Citations
Wall grooving device for decoration construction
CN220075137U