A composite device for local reinforcement and precision cutting of powder molding agent at the edges of irregularly shaped rock slabs.

By combining components such as sliding blocks and gear motors, precise positioning and cutting of irregularly shaped rock slabs are achieved, solving the problem of inaccurate processing of irregularly shaped rock slabs in existing technologies, and improving processing safety and product structural strength.

CN122401653APending Publication Date: 2026-07-17WUXI YIHE GREEN BOARD CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
WUXI YIHE GREEN BOARD CO LTD
Filing Date
2026-06-17
Publication Date
2026-07-17

AI Technical Summary

Technical Problem

Existing technologies make it difficult to accurately and efficiently cut and position irregularly shaped rock slabs, which affects the integrity of the product during processing.

Method used

The system employs components such as sliding blocks, sliding rods, gear motors, and pneumatic clutch shafts. Through the cooperation of the sliding blocks and gear motors, it drives structures such as gear ring frames and radial lead screws to achieve precise positioning and cutting of irregularly shaped rock slabs. Combined with hydraulic telescopic arms and electric saw discs, it performs precision cutting and local reinforcement with powder forming agents.

Benefits of technology

It achieves precise positioning and efficient cutting of irregularly shaped rock slabs, ensuring processing safety, and enhances the structural strength of the product through local reinforcement with powder forming agents.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention discloses a composite device for local reinforcement and precision cutting of powder molding agent at the edges of irregularly shaped rock slabs. It includes a drainage sliding assembly, an irregularly shaped mounting and adjusting mechanism, an anti-directional adjusting component, and a processing mechanism. A sliding rod on the drainage sliding assembly is slidably connected to a sliding block on the irregularly shaped mounting and adjusting mechanism. A lifting frame on the anti-directional adjusting component is bolted to the upper outer end of the slotted upper plate on the drainage sliding assembly. This device primarily utilizes the sliding block in conjunction with the sliding rod to slide within a certain range. This allows the gear motor to drive the gear ring frame to a suitable position. The pneumatic clutch shaft then drives the internal main gear, which in turn drives the helical gear to drive the radial screw, moving the mounting frame to a suitable position. Finally, the end mounting bar, in conjunction with the universal joint and the inner mounting bar, is adjusted to a suitable diffusion position, thus adapting to various products for positioning and ensuring processing safety.
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Description

Technical Field

[0001] This invention relates to the field of irregular shaped rock slab processing technology, and in particular to a composite device for local reinforcement and precision cutting of the edges of irregular shaped rock slabs using powder forming agents. Background Technology

[0002] The processing of slab stone includes slab processing, irregular slab processing, and surface treatment. Irregular slab processing, such as irregular slabs, architectural sculptures, mosaic carvings, various complex and beautiful curved surfaces, column surfaces, and even stone furniture, has placed new demands on slab stone processing. Processing equipment that combines diamond wire saws, band saws, and drills with high-tech computer control fully meets these requirements. Irregular slab stone has a variety of contours, including decorative lines, curved slabs, column bases, column capitals, flat carvings, and three-dimensional carvings. In order to achieve a realistic feel, in addition to common surface treatment methods, slab stone also needs to focus on light, touch, visual feedback, and sound.

[0003] Existing methods for processing irregularly shaped slabs typically involve local reinforcement with powder forming agents and precision cutting to accurately shape the product during processing. After cutting, the product is finished by addressing the localized gaps. However, in existing technologies, irregularly shaped slabs have diverse contours, and simply placing them at the processing position makes precise and efficient cutting difficult. Furthermore, the mounting method can cause shaking during cutting, affecting the integrity of the product being cut. This approach fails to achieve precise positioning for the diverse product structures. Therefore, we propose a composite device for local reinforcement with powder forming agents and precision cutting on the edges of irregularly shaped slabs to solve the above problems. Summary of the Invention

[0004] To address the aforementioned issues, this invention proposes a composite device for local reinforcement and precision cutting of powder molding agents at the edges of irregularly shaped rock slabs. This device primarily utilizes a sliding block and sliding rod to slide within a certain range, allowing the gear motor to drive the gear ring frame to a suitable position. The pneumatic clutch shaft then drives the internal main gear, which in turn drives the helical gear and radial screw to move the mounting frame to a suitable position. Finally, the end mounting rod, in conjunction with a universal joint and the inner mounting rod, adjusts to a suitable diffusion position, thus adapting to various products for positioning and ensuring product processing safety.

[0005] To achieve the above objectives, the present invention provides the following technical solution:

[0006] A composite device for local reinforcement and precision cutting of powder molding agent for the edge of irregularly shaped rock slabs includes a sewage discharge sliding component, an irregularly shaped mounting adjustment mechanism, an anti-directional adjustment component, and a processing mechanism. The sliding rod on the sewage discharge sliding component is slidably connected to the sliding block on the irregularly shaped mounting adjustment mechanism. The upper part of the slotted upper plate on the sewage discharge sliding component is bolted to the lifting frame on the anti-directional adjustment component. The sliding sleeve on the anti-directional adjustment component is provided with a hydraulic telescopic arm on the processing mechanism below it.

[0007] As a further technical solution, the sewage sliding assembly also includes a base cabinet, a slotted platform, a bottom leakage chamber, and a sewage valve. The base cabinet is provided below the slotted upper plate, the slotted platform is bolted to the inner side of the slotted upper plate, and the bottom leakage chamber is provided on the inner side of the slotted platform. The sewage valve is provided at the output end of the bottom leakage chamber.

[0008] As a further technical solution, the irregular mounting adjustment mechanism also includes a duct block, a gear motor, a drive gear, a gear ring frame, and mounting strips. The duct block is arranged above the sliding block, and the gear motor is arranged on the side of the duct block. The output end of the gear motor is provided with a drive gear, and the output end of the drive gear is meshed with a gear ring frame. The inner end of the gear ring frame is bolted to a ring array of mounting strips.

[0009] As a further technical solution, the irregularly shaped mounting adjustment mechanism also includes a slotted disc, a rotary motor, a built-in main gear, a helical gear, a pneumatic clutch shaft, a radial lead screw, and an expansion block. The slotted disc is provided on the inner side of one end of the mounting strip, and the built-in main gear connected to the output end of the rotary motor is provided inside the slotted disc. The output end of the built-in main gear is provided with a meshing helical gear, and the output end of the helical gear is provided with a pneumatic clutch shaft. The output end of the pneumatic clutch shaft is provided with a radial lead screw, and the output end of the radial lead screw is provided with a threaded expansion block.

[0010] As a further technical solution, the irregular mounting adjustment mechanism also includes a mounting frame, an end mounting rod, a universal joint, and an inner mounting rod. The inner end of the expansion block is provided with a mounting frame, and the inner side of the outer end of the mounting frame is provided with an end mounting rod. The inner end of the end mounting rod is connected to the inner mounting rod by a universal joint and a hinge.

[0011] As a further technical solution, the directional adjustment component also includes a control panel, a top frame, a transverse lead screw, a sliding base block, a crossbeam, a hydraulic telescopic rod, and a lifting block. A control panel is provided on one of the outer sides of the lifting frame, a top frame is provided at the top of the lifting frame, and a transverse lead screw is provided at the output end of the top frame. The output end of the transverse lead screw is threadedly connected to the sliding base block, and a crossbeam is bolted to the bottom of the sliding base block. Hydraulic telescopic rods are provided on the inner sides of both ends of the crossbeam, and a lifting block is provided at the output end of the hydraulic telescopic rod.

[0012] As a further technical solution, the opposite adjustment component also includes a motor base, a drive toothed roller, a toothed belt, a bolt bracket, and a slide rail. The motor base is located below the center of the lifting block, and the output end of the motor base is provided with a drive toothed roller. The output end of the drive toothed roller is engaged with a toothed belt for drive connection, and the outer side of the toothed belt is provided with a bolt bracket that is bolted to the sliding sleeve. The sliding sleeve is slidably connected to the slide rail.

[0013] As a further technical solution, the processing mechanism also includes an electric rotary seat, a first inclined block, an electric saw disc, an infusion valve, and a nozzle. The output end of the hydraulic telescopic arm is provided with an electric rotary seat, and a set of output ends of the electric rotary seat are provided with a first inclined block. The output end of the first inclined block is provided with an electric saw disc, and a nozzle connected to the output end of the infusion valve is provided on the upper outer side of the first inclined block.

[0014] As a further technical solution, the processing mechanism also includes a powder chamber, a flexible tube, a second inclined block, an output nozzle, a heating lamp, an electric rotating seat, and a grinding disc. The other output end of the electric rotating seat is provided with a second inclined block. An output nozzle connected to the output end of the flexible tube is provided on one side of the middle of the second inclined block. The flexible tube is connected to the output end of the powder chamber. Heating lamps are provided on both sides of the middle of the second inclined block. An electric rotating seat with an output end connected to the grinding disc is provided on the side of the second inclined block.

[0015] Compared with the prior art, the beneficial effects of the present invention are:

[0016] This invention mainly utilizes a sliding block and a sliding rod to slide within a certain range, allowing the gear motor to drive the gear ring frame to a suitable position. The pneumatic clutch shaft then drives the internal main gear, which in turn drives the helical gear and the radial screw to move the mounting frame to a suitable position. The end mounting bar, in conjunction with the universal joint and the inner mounting bar, is adjusted to a suitable diffusion position, thus adapting to various products for positioning and ensuring product processing safety. Attached Figure Description

[0017] Figure 1This is a schematic diagram of a composite device for local reinforcement and precision cutting of powder molding agent at the edges of irregularly shaped rock slabs.

[0018] Figure 2 This is a schematic diagram of the structure viewed from below in this invention;

[0019] Figure 3 This is a schematic diagram of the irregularly shaped mounting adjustment mechanism in this invention;

[0020] Figure 4 This is a schematic diagram of the universal joint and the internal mounting rod in this invention;

[0021] Figure 5 This is a schematic diagram of the processing mechanism in this invention;

[0022] Figure 6 This is a schematic diagram of the structure of the electric rotating seat and the grinding disc in this invention.

[0023] In the diagram: 1. Sewage discharge sliding assembly; 101. Base cabinet; 102. Slotted upper plate; 103. Sliding rod; 104. Slotted platform; 105. Bottom leakage chamber; 106. Sewage valve; 2. Irregularly shaped mounting adjustment mechanism; 201. Sliding block; 202. Duct block; 203. Gear motor; 204. Drive gear; 205. Gear ring frame; 206. Assembly mounting bar; 207. Slotted plate; 208. Rotary motor; 209. Built-in main gear; 2010. Helical gear; 2011. Pneumatic clutch shaft; 2012. Radial screw; 2013. Expansion block; 2014. Mounting frame; 2015. End mounting bar; 2016. Universal joint; 2017. Internal mounting bar; 3. Opposite direction adjustment component; 301 302. Elevating frame; 303. Control panel; 304. Top frame; 305. Horizontal lead screw; 306. Sliding base block; 307. Crossbeam; 308. Hydraulic telescopic rod; 309. Lifting block; 3000. Motor base; 3010. Active toothed roller; 3011. Toothed belt; 3012. Bolt connecting frame; 3013. Sliding sleeve; 3014. Slide rail; 401. Machining mechanism; 402. Hydraulic telescopic arm; 403. Electric rotating seat; 404. First inclined block; 405. Electric saw disc; 406. Infusion valve; 407. Nozzle; 408. Powder agent chamber; 409. Flexible tube; 4010. Second inclined block; 4011. Output nozzle; 4012. Heat lamp; 4013. Electric rotating seat; 4014. Grinding disc. Detailed Implementation

[0024] In the description of this invention, it should be understood that the terms "center," "longitudinal," "lateral," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," and "outer," etc., indicating orientation or positional relationships, are based on the orientation or positional relationships shown in the accompanying drawings and are only for the convenience of describing the invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of the invention. Furthermore, the terms "first," "second," etc., are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Thus, features defined with "first," "second," etc., may explicitly or implicitly include one or more of that feature. In the description of this invention, unless otherwise stated, "a plurality of" means two or more.

[0025] In the description of this invention, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art will understand the specific meaning of the above terms in this invention based on the specific circumstances.

[0026] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0027] Please see Figure 1-6 In this embodiment of the invention, the composite device for local reinforcement and precision cutting of powder molding agent for the edge of irregular rock slabs includes a sewage discharge sliding component 1, an irregular mounting adjustment mechanism 2, an anti-directional adjustment component 3, and a processing mechanism 4. The sliding rod 103 on the sewage discharge sliding component 1 is slidably connected to the sliding block 201 on the irregular mounting adjustment mechanism 2. The upper part of the slotted upper plate 102 on the sewage discharge sliding component 1 is bolted to the lifting frame 301 on the anti-directional adjustment component 3. The hydraulic telescopic arm 401 on the processing mechanism 4 is provided below the sliding sleeve 3013 on the anti-directional adjustment component 3.

[0028] The sewage sliding assembly 1 also includes a base cabinet 101, a slotted platform 104, a bottom leakage chamber 105, and a sewage valve 106. The base cabinet 101 is located below the slotted upper plate 102. The slotted platform 104 is bolted to the inner side of the slotted upper plate 102, and the bottom leakage chamber 105 is located on the inner side of the slotted platform 104. The sewage valve 106 is located at the output end of the bottom leakage chamber 105.

[0029] In embodiments of the present invention, the powder, debris, and wastewater generated during processing fall into the bottom drain chamber 105 through the slotting table 104 for centralized collection. The wastewater can be quickly discharged by periodically opening the drain valve 106, thus maintaining a clean processing environment.

[0030] The irregular mounting adjustment mechanism 2 also includes a duct block 202, a gear motor 203, a drive gear 204, a gear ring frame 205, and mounting strips 206. The duct block 202 is arranged above the sliding block 201, and the gear motor 203 is arranged on the side of the duct block 202. The output end of the gear motor 203 is provided with the drive gear 204, and the output end of the drive gear 204 is meshed with the gear ring frame 205. The inner end of the gear ring frame 205 is bolted to the mounting strips 206 arranged in a ring array.

[0031] In embodiments of the present invention, depending on the concave or convex structure of the product, the gear motor 203 outputs power to drive the drive gear 204 to rotate. The rotation of the drive gear 204 can drive the gear ring frame 205 to run to a suitable angle position, so that the alignment direction of the end mounting rod 2015 and the inner mounting rod 2017 can be adapted to the concave or convex structure of the product.

[0032] The irregular mounting adjustment mechanism 2 also includes a slotted disc 207, a rotary motor 208, an internal main gear 209, a helical gear 2010, a pneumatic clutch shaft 2011, a radial lead screw 2012, and an expansion block 2013. The slotted disc 207 is provided on the inner side of one end of the mounting strip 206, and the internal slotted disc 207 is provided with an internal main gear 209 connected to the output end of the rotary motor 208. The output end of the internal main gear 209 is provided with a meshing helical gear 2010, and the output end of the helical gear 2010 is provided with a pneumatic clutch shaft 2011. The output end of the pneumatic clutch shaft 2011 is provided with a radial lead screw 2012, and the output end of the radial lead screw 2012 is provided with a threaded expansion block 2013.

[0033] In embodiments of the present invention, after the pneumatic clutch shaft 2011 is used to output and operate according to the expansion and contraction structure of the product, the distribution structure of the pneumatic clutch shaft 2011 is adjusted to achieve adaptive docking and disengagement. Then, the rotary motor 208 drives the built-in main gear 209, which drives the helical gear 2010 and the pneumatic clutch shaft 2011 to rotate, causing the radial lead screw 2012 to rotate and push the expansion and contraction block 2013 to extend and retract in a centripetal manner, so as to utilize the structure of the product.

[0034] The irregular mounting adjustment mechanism 2 also includes a mounting frame 2014, an end mounting rod 2015, a universal joint 2016, and an inner mounting rod 2017. The inner end of the expansion block 2013 is provided with the mounting frame 2014, and the inner side of the outer end of the mounting frame 2014 is provided with the end mounting rod 2015. The inner end of the end mounting rod 2015 is hinged to the inner mounting rod 2017 via the universal joint 2016.

[0035] In the embodiments of the present invention, during the adjustment and operation of the radial screw 2012 and the expansion block 2013, the end mounting rod 2015 on the mounting frame 2014 cooperates with the universal joint 2016 and the inner mounting rod 2017 to form a structure suitable for product mounting, and the sliding rod 103 slides the sliding block 201 on the irregular mounting adjustment mechanism 2 to make fine adjustments to a suitable position, thereby facilitating product mounting.

[0036] The directional adjustment component 3 also includes a control panel 302, a top frame 303, a transverse screw 304, a sliding base block 305, a crossbeam 306, a hydraulic telescopic rod 307, and a lifting block 308. The control panel 302 is provided on one of the outer sides of the lifting frame 301, the top frame 303 is provided at the top of the lifting frame 301, and the output end of the top frame 303 is provided with a transverse screw 304. The output end of the transverse screw 304 is threadedly connected to the sliding base block 305, and the lower part of the sliding base block 305 is bolted to the crossbeam 306. The inner sides of both ends of the crossbeam 306 are provided with hydraulic telescopic rods 307, and the output end of the hydraulic telescopic rods 307 is provided with a lifting block 308.

[0037] In an embodiment of the present invention, when processing is required, processing parameters are input using the control panel 302 on the outside of the lifting frame 301, the transverse lead screw 304 inside the top frame 303 rotates, driving the sliding base block 305 and the crossbeam 306 to move laterally, and the hydraulic telescopic rod 307 pushes the lifting block 308 up and down to adjust the processing height.

[0038] The directional adjustment component 3 also includes a motor base 309, a drive toothed roller 3010, a toothed belt 3011, a bolted bracket 3012, and a slide rail 3014. The motor base 309 is located below the center of the lifting block 308, and the drive toothed roller 3010 is located at the output end of the motor base 309. The output end of the drive toothed roller 3010 is connected to the toothed belt 3011 via a belt drive, and the outer side of the toothed belt 3011 is provided with a bolted bracket 3012 that is bolted to the sliding sleeve 3013. The sliding sleeve 3013 is slidably connected to the slide rail 3014.

[0039] In an embodiment of the present invention, the motor base 309 drives the active toothed roller 3010 to rotate, which in turn drives the toothed belt 3011 to drive the bolt connecting frame 3012 and the sliding sleeve 3013 to move longitudinally along the slide rail 3014, thereby completing the three-axis positioning and ensuring that the processing head always fits the irregular edge.

[0040] The processing mechanism 4 also includes an electric rotary seat 402, a first inclined block 403, an electric saw disc 404, an infusion valve 405, and a nozzle 406. The output end of the hydraulic telescopic arm 401 is provided with an electric rotary seat 402, and a set of output ends of the electric rotary seat 402 are provided with a first inclined block 403. The output end of the first inclined block 403 is provided with an electric saw disc 404, and the nozzle 406 connected to the output end of the infusion valve 405 is provided on the upper outer side of the first inclined block 403.

[0041] In an embodiment of the present invention, the hydraulic telescopic arm 401 pushes the first inclined block 403 to the working position, the electric rotary seat 402 rotates to switch to the first inclined block 403, and the electric saw disc 404 rotates at high speed to precisely cut, trim, and shape the edge of the rock slab. At the same time as cutting, the liquid infusion valve 405 is opened and the nozzle 406 sprays coolant to reduce the sawing temperature, reduce edge chipping, and remove dust.

[0042] The processing mechanism 4 also includes a powder chamber 407, a flexible tube 408, a second inclined block 409, an output nozzle 4010, a baking lamp 4011, an electric rotating seat 4012, and a grinding disc 4013. The other output end of the electric rotating seat 402 is provided with a second inclined block 409. An output nozzle 4010 connected to the output end of the flexible tube 408 is provided on one side of the middle part of the second inclined block 409. The flexible tube 408 is connected to the output end of the powder chamber 407. Baking lamps 4011 are provided on both sides of the middle part of the second inclined block 409. An electric rotating seat 4012 with an output end connected to the grinding disc 4013 is provided on the side of the second inclined block 409.

[0043] In this embodiment of the invention, after cutting, the edges are reinforced with a powder forming agent to improve structural strength. The electric rotating seat 402 switches to the second inclined block 409, and the reinforcing powder in the powder agent chamber 407 is transported to the output nozzle 4010 through the flexible tube 408. The output nozzle 4010 sprays the powder forming agent evenly along the cutting edge to form a local reinforcing layer. The heating lamp 4011 heats simultaneously, so that the powder can be quickly solidified and tightly bonded to the rock slab to complete the edge reinforcement. After reinforcement, the electric rotating seat 4012 drives the polishing disc 4013 to rotate at high speed to finely polish the reinforced edge.

[0044] The working principle of this invention is as follows: Based on the concave or convex structure of the product, a gear motor 203 outputs power to drive the drive gear 204 to rotate. The rotation of the drive gear 204 drives the gear ring frame 205 to a suitable angle position, aligning the end mounting rod 2015 and the inner mounting rod 2017 to adapt to the product's concave or convex structure. Based on the product's expansion and contraction structure, a pneumatic clutch shaft 2011 outputs power, allowing for adaptive engagement and disengagement based on its distribution structure. Then, a rotary motor 208 drives the built-in main gear 209, which in turn drives the helical gear 2010 and the pneumatic clutch shaft 2011, causing the radial screw 2012 to rotate. The expansion and contraction block 2013 is pushed to extend and retract centrifugally to utilize the product's structure. During the adjustment and operation of the centrifugal screw 2012 and the expansion and contraction block 2013, the end mounting bar 2015 on the mounting frame 2014, in conjunction with the universal joint 2016 and the inner mounting bar 2017, forms a structure suitable for product mounting. This allows the sliding rod 103 to slide the sliding block 201 on the irregular mounting adjustment mechanism 2 to be finely adjusted to a suitable position, thus facilitating product mounting. When processing is required, processing parameters are input using the control panel 302 on the outside of the lifting frame 301. The transverse screw 304 inside the top frame 303 rotates, driving the sliding base block 305 and the crossbeam 306 to move laterally. The hydraulic telescopic rod 307 pushes... The movable lifting block 308 moves up and down to adjust the processing height. The motor base 309 drives the active toothed roller 3010 to rotate, which in turn drives the toothed belt 3011 to transmit power, causing the bolt connecting frame 3012 and the sliding sleeve 3013 to move longitudinally along the slide rail 3014, completing the three-axis positioning and ensuring that the processing head always fits the irregular edge. The hydraulic telescopic arm 401 pushes the first inclined block 403 to the working position. The electric rotary seat 402 rotates to switch to the first inclined block 403. The electric saw disc 404 rotates at high speed to precisely cut, trim, and shape the edge of the rock slab. At the same time as cutting, the liquid infusion valve 405 is opened, and the nozzle 406 sprays coolant to reduce the sawing temperature, reduce edge chipping, and remove dust. After cutting, the edges are powdered. The molding agent is used to reinforce and improve the structural strength. The electric rotating seat 402 switches to the second inclined block 409. The reinforcing powder in the powder agent chamber 407 is transported to the output nozzle 4010 through the flexible tube 408. The output nozzle 4010 sprays the powder molding agent evenly along the cutting edge to form a local reinforcing layer. The heating lamp 4011 heats simultaneously, so that the powder can be quickly solidified and tightly bonded to the rock slab to complete the edge reinforcement. After the reinforcement is completed, the electric rotating seat 4012 drives the grinding disc 4013 to rotate at high speed to perform fine polishing on the reinforced edge. The powder, debris and wastewater generated during processing fall into the bottom drain chamber 105 through the grooving table 104 for centralized collection. The drain valve 106 can be opened periodically to quickly drain the wastewater and keep the processing environment clean.

[0045] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above, and that the invention can be implemented in other specific forms without departing from its spirit or essential characteristics. Therefore, the embodiments should be considered in all respects as exemplary and non-limiting, and the scope of the invention is defined by the appended claims rather than the foregoing description. Thus, all variations falling within the meaning and scope of equivalents of the claims are intended to be included within the present invention. No reference numerals in the claims should be construed as limiting the scope of the claims.

[0046] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

Claims

1. A composite device for local reinforcement and precision cutting of powder molding agent for the edge of irregularly shaped rock slabs, comprising a sewage discharge sliding assembly (1), an irregularly shaped mounting adjustment mechanism (2), an anti-directional adjustment component (3), and a processing mechanism (4), characterized in that: The sliding rod (103) on the sewage sliding assembly (1) is slidably connected to the sliding block (201) on the irregular mounting adjustment mechanism (2). The upper part of the slotted upper plate (102) on the sewage sliding assembly (1) is bolted to the lifting frame (301) on the opposite adjustment component (3). The sliding sleeve (3013) on the opposite adjustment component (3) is provided with a hydraulic telescopic arm (401) on the processing mechanism (4) below it.

2. The composite device for local reinforcement and precision cutting of powder molding agent for the edge of irregularly shaped rock slabs according to claim 1, characterized in that: The sewage sliding assembly (1) also includes a base cabinet (101), a slotted platform (104), a bottom drain chamber (105), and a sewage valve (106). The base cabinet (101) is provided below the slotted upper plate (102). The slotted platform (104) is bolted to the inner side of the slotted upper plate (102), and the bottom drain chamber (105) is provided on the inner side of the slotted platform (104). The sewage valve (106) is provided at the output end of the bottom drain chamber (105).

3. The composite device for local reinforcement and precision cutting of powder molding agent for the edge of irregularly shaped rock slabs according to claim 1, characterized in that: The irregular mounting adjustment mechanism (2) also includes a duct block (202), a gear motor (203), a drive gear (204), a gear ring frame (205), and mounting strips (206). The duct block (202) is provided above the sliding block (201), and the gear motor (203) is provided on the side of the duct block (202). The output end of the gear motor (203) is provided with a drive gear (204), and the output end of the drive gear (204) is meshed with the gear ring frame (205). The inner end of the gear ring frame (205) is bolted to the mounting strips (206) arranged in a ring array.

4. The composite device for local reinforcement and precision cutting of powder molding agent for the edge of irregularly shaped rock slabs according to claim 3, characterized in that: The irregular mounting adjustment mechanism (2) also includes a slotted disc (207), a rotary motor (208), an internal main gear (209), a helical gear (2010), a pneumatic clutch shaft (2011), a radial screw (2012), and an expansion block (2013). The slotted disc (207) is provided on the inner side of one end of the mounting strip (206), and the internal part of the slotted disc (207) is provided with an internal main gear (209) connected to the output end of the rotary motor (208). The output end of the internal main gear (209) is provided with a meshing helical gear (2010), and the output end of the helical gear (2010) is provided with a pneumatic clutch shaft (2011). The output end of the pneumatic clutch shaft (2011) is provided with a radial screw (2012), and the output end of the radial screw (2012) is provided with a threaded expansion block (2013).

5. The composite device for local reinforcement and precision cutting of powder molding agent for the edge of irregularly shaped rock slabs according to claim 4, characterized in that: The irregular mounting adjustment mechanism (2) also includes a mounting frame (2014), an end mounting rod (2015), a universal joint (2016), and an inner mounting rod (2017). The inner end of the expansion block (2013) is provided with a mounting frame (2014), and the inner side of the outer end of the mounting frame (2014) is provided with an end mounting rod (2015). The inner end of the end mounting rod (2015) is hinged to the inner mounting rod (2017) via the universal joint (2016).

6. The composite device for local reinforcement and precision cutting of powder molding agent for the edge of irregularly shaped rock slabs according to claim 1, characterized in that: The opposite adjustment component (3) also includes a control panel (302), a top frame (303), a transverse screw (304), a sliding base block (305), a crossbeam (306), a hydraulic telescopic rod (307), and a lifting block (308). A control panel (302) is provided on one of the outer sides of the lifting frame (301). A top frame (303) is provided at the top of the lifting frame (301). A transverse screw (304) is provided at the output end of the top frame (303). A sliding base block (305) is threaded to the output end of the transverse screw (304). A crossbeam (306) is bolted to the bottom of the sliding base block (305). A hydraulic telescopic rod (307) is provided on the inner sides of both ends of the crossbeam (306). A lifting block (308) is provided at the output end of the hydraulic telescopic rod (307).

7. The composite device for local reinforcement and precision cutting of powder molding agent for the edge of irregularly shaped rock slabs according to claim 6, characterized in that: The opposite adjustment component (3) also includes a motor base (309), an active toothed roller (3010), a toothed belt (3011), a bolt bracket (3012), and a slide rail (3014). The motor base (309) is provided below the middle part of the lifting block (308), and the active toothed roller (3010) is provided at the output end of the motor base (309). The output end of the active toothed roller (3010) is engaged with the toothed belt (3011) for belt drive connection. The outer side of the toothed belt (3011) is provided with a bolt bracket (3012) that is bolted to the sliding sleeve (3013). The sliding sleeve (3013) is slidably connected to the slide rail (3014).

8. The composite device for local reinforcement and precision cutting of powder molding agent for the edge of irregularly shaped rock slabs according to claim 1, characterized in that: The processing mechanism (4) also includes an electric rotary seat (402), a first inclined block (403), an electric saw disc (404), an infusion valve (405), and a nozzle (406). The output end of the hydraulic telescopic arm (401) is provided with an electric rotary seat (402), and a set of output ends of the electric rotary seat (402) is provided with a first inclined block (403). The output end of the first inclined block (403) is provided with an electric saw disc (404), and a nozzle (406) connected to the output end of the infusion valve (405) is provided on the upper outer side of the first inclined block (403).

9. The composite device for local reinforcement and precision cutting of powder molding agent for the edge of irregularly shaped rock slabs according to claim 8, characterized in that: The processing mechanism (4) also includes a powder chamber (407), a flexible tube (408), a second inclined block (409), an output nozzle (4010), a baking lamp (4011), an electric rotating seat (4012), and a grinding disc (4013). The other output end of the electric rotating seat (402) is provided with a second inclined block (409). The middle side of the second inclined block (409) is provided with an output nozzle (4010) connected to the output end of the flexible tube (408). The flexible tube (408) is connected to the output end of the powder chamber (407). The middle sides of the second inclined block (409) are provided with baking lamps (4011). The side of the second inclined block (409) is provided with an electric rotating seat (4012) whose output end is connected to the grinding disc (4013).