A cutting device for refractory material processing
By designing a refractory cutting device with cooling, circulation and waterproof mechanisms, the problems of poor cooling effect and dust pollution are solved, efficient heat dissipation and dust filtration are achieved, and the service life and operational safety of the equipment are improved.
Patent Information
- Application Number
- CN202510945111.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-09
- Publication Date
- 2025-09-09
- Estimated Expiration
- 2045-07-09
AI Technical Summary
Traditional refractory cutting devices have poor cooling effects, which lead to deformation or increased wear of the blades, and serious dust pollution, affecting the operating environment and equipment life.
A cutting device including cooling, circulation and waterproofing mechanisms is designed. Through components such as the flank, water storage tank, water pump and reciprocating threaded rod, efficient cooling and dust filtration are achieved, ensuring that the cooling water fully covers the cutting blade and collects dust.
It achieves efficient heat dissipation, extends blade life, improves the working environment, reduces cleaning workload, and improves equipment stability and applicability.
Smart Images

Figure CN120439451B_ABST
Abstract
Description
Technical Field
[0008]
[0001] The present invention relates to the technical field of refractory material processing equipment, and particularly to a cutting device for refractory material processing. Background Art
[0002] In the process of refractory material processing, the cutting process is an important link affecting product quality and production efficiency. Due to the characteristics of refractory materials such as high hardness, high brittleness, and strong wear resistance, traditional cutting equipment often has difficulty meeting the requirements of efficient and high-precision processing, and a large amount of heat and dust are easily generated during the cutting process, which not only affects the service life of the cutting blade, but also has an adverse impact on the operating environment and the health of operators.
[0003] At present, common refractory material cutting devices mostly adopt a single cooling method, such as only cooling by external spraying. The cooling water cannot effectively cover the entire working area of the cutting blade, resulting in poor heat dissipation effect, and local high temperature during the cutting process is likely to cause blade deformation or increased wear. Summary of the Invention
[0004] The purpose of the present invention is to provide a cutting device for refractory material processing to solve the problems raised in the above background art.
[0005] To solve the above technical problems, the present invention is realized through the following technical solutions:
[0006] The present invention is a cutting device for refractory material processing, including a limit bottom plate, and further including:
[0007] A cooling mechanism, the cooling mechanism is arranged in the limit bottom plate, the cooling mechanism includes a U-shaped frame arranged above the limit bottom plate, and two mounting plates are arranged on the U-shaped frame. The cooling mechanism is used for cooling during the cutting process;
[0008] A circulation mechanism, the circulation mechanism is arranged above the U-shaped frame, the circulation mechanism includes a water storage tank arranged on the top of the U-shaped frame, and a water pump is arranged on the corresponding mounting plate. The circulation mechanism is used for filtering dust impurities in the water during circulating cooling;
[0009] A waterproof mechanism, the waterproof mechanism is arranged in the limit bottom plate, the waterproof mechanism includes a reciprocating threaded rod arranged in the limit bottom plate, and a reciprocating motor is arranged at the end of the reciprocating threaded rod. The waterproof mechanism is used for preventing water from flowing onto the rotating structure during operation.
[0010] Further, the cooling mechanism includes a U-shaped frame fixedly installed on the top of the limiting bottom plate. Two mounting plates are fixedly installed on the front surface of the U-shaped frame. Corresponding mounting blocks are fixedly installed on the front surface of the mounting plates. A driving motor is fixedly installed on the top of the mounting block. A dust-proof shell is fixedly installed on the front surface of the corresponding mounting plate. A rotating shaft is fixedly installed at the output end of the driving motor.
[0011] Further, mounting shells are fixedly installed on the two mounting plates. Rubber stoppers are fixedly installed on the outer wall of the mounting shell. A driving shaft is rotatably installed in the dust-proof shell. The rotation of the driving shaft penetrates through the mounting shell. A cutting blade is fixedly sleeved on the driving shaft. The left end of the rotating shaft rotatably extends into the dust-proof shell. Synchronous pulleys are respectively fixedly sleeved on the rotating shaft and the driving shaft. A synchronous belt is sleeved on the two synchronous pulleys.
[0012] Further, arc-shaped plates are respectively fixedly installed on the left inner wall and the right inner wall of the mounting shell. Two limiting blocks are respectively fixedly installed on the left inner wall and the right inner wall of the mounting shell. A plurality of limiting blocks are respectively located at the bottom ends of the two arc-shaped plates. Two semi-circular grooves are respectively formed on the two arc-shaped plates. A plurality of strip-shaped limiting grooves are respectively formed on the two arc-shaped plates.
[0013] Further, the circulation mechanism includes a water storage tank fixedly installed on the top of the limiting bottom plate. A water inlet pipe is communicated with the bottom of the water storage tank. A special-shaped filter plate is fixedly installed in the water storage tank. A sealing door is hingedly installed on the left side of the water storage tank.
[0014] Further, a water pump is fixedly installed on the front surface of the corresponding mounting plate. The top end of the water pump communicates with a return pipe. The bottom end of the water pump is fixedly connected with a water extraction pipe. A one-way valve is arranged in the water extraction pipe. The bottom end of the water extraction pipe communicates with the limiting bottom plate.
[0015] Further, a T-shaped threaded block is arranged above the limiting bottom plate. A diversion groove is formed in the T-shaped threaded block. The diversion groove communicates with the limiting bottom plate.
[0016] Further, the waterproof mechanism includes a reciprocating threaded rod rotatably installed in the limiting bottom plate. A reciprocating motor is fixedly installed on the back surface of the limiting bottom plate. The end of the reciprocating threaded rod rotatably extends outside the limiting bottom plate and is fixedly connected with the reciprocating motor. A U-shaped limiting plate is fixedly installed on the top of the limiting bottom plate. The U-shaped limiting plate slidably penetrates through the T-shaped threaded block. The reciprocating threaded rod penetrates through the T-shaped threaded block and is threadedly connected with the T-shaped threaded block.
[0017] Furthermore, a placement block 1 is fixedly installed on the surface of the guide groove, a placement block 2 is arranged above the guide groove, a threaded rod is rotatably installed on the T-shaped threaded block, the front end of the threaded rod is rotated and extended outside the T-shaped threaded block, and the thread of the threaded rod passes through the placement block 2.
[0018] Furthermore, a limit baffle is fixedly installed in the T-shaped threaded block, and the limit baffle slides through the placement block 2. Workpieces are arranged on the placement block 1 and the placement block 2.
[0019] The present invention has the following beneficial effects:
[0020] The present invention provides a cutting device for processing refractory materials. When in use, the driving motor is first started, and the driving motor drives the rotating shaft to rotate. Under the coordinated action of the synchronous pulley and the synchronous belt, the driving shaft rotates accordingly, thereby driving the cutting blade to rotate, preparing for the cutting operation. At the same time, water is poured into the water tank. The driving shaft also drives the water pump to run during the rotation process. The water entering the water tank flows into the water pump through the return pipe, providing a circulating cooling water source for the water pump, ensuring the continuous and stable operation of the cooling system. Subsequently, the reciprocating motor is started, and the reciprocating motor drives the reciprocating threaded rod to rotate, driving the T-shaped threaded block to move in the direction close to the cutting blade. The T-shaped threaded block then pushes the workpiece forward. When the cutting blade contacts the workpiece , start the cutting operation. During the cutting process, cooling water flows from the water inlet pipe into the mounting shell and contacts the cutting blade and the two curved plates. Since the curved plates have an inclined structure, the water flows to the surface of the cutting blade under their guidance. As the cutting blade rotates at high speed, the centrifugal force generated will throw out the water attached to its surface. At this time, the semicircular grooves on the curved plates play a role of limiting and guiding, so that the thrown water flow is re-gathered and flows into the interior of the limit block. The limit block further guides the water flow so that it flows to the surface of the cutting blade again. At the same time, the strip limit grooves also play an auxiliary limiting and drainage role, ensuring that the cooling water fully covers the cutting blade, thereby achieving efficient heat dissipation and effectively extending the service life of the cutting blade.
[0021] (2) The present invention provides a cutting device for processing refractory materials. During the process of the cutting blade cutting the workpiece, a large amount of dust will be generated. Since cooling water is continuously dripping from the cutting edge of the cutting blade, during the cutting process, the cooling water will synchronously flow to the cutting part of the workpiece. The cooling water continuously covers the cutting area, so that the generated dust is wrapped by water, thereby effectively preventing the dust from drifting into the air and improving the working environment. At the same time, under the action of the high-speed rotation of the cutting blade, the wet dust will be thrown out together with the water flow and hit the rubber stopper. At this time, the rubber stopper plays a blocking role, intercepting the dust and water on its surface, and falling downward along the stopper surface under the action of gravity, avoiding the phenomenon of dust and water splashing, thereby reducing the cleaning workload and improving the overall work efficiency and safety;
[0022] (3) For a cutting device for refractory material processing according to the present invention, the falling wet dust and water will fall into the diversion trough and flow to the limiting baffle. Under the limiting and shielding effects of the limiting baffle, the water flow is effectively prevented from contacting the threaded rod, thereby avoiding the corrosion of the threaded rod due to dampness. Under the joint guidance of the T-shaped threaded block and the limiting baffle, the water finally flows into the internal limiting bottom plate, achieving centralized collection and discharge. At the same time, the U-shaped limiting plate also plays a further protective role, effectively shielding the falling wet dust and water and preventing them from splashing onto the reciprocating threaded rod, thereby avoiding the problems of jamming or corrosion of the reciprocating threaded rod caused by the entry of moisture, and ensuring the stability and service life of the equipment operation. When placing a workpiece, by rotating the threaded rod, the second placing block can be driven to move, so that it cooperates with the fixedly arranged first placing block to realize the clamping and fixing of workpieces of different sizes. This design not only improves the stability of the device during processing, but also enhances the applicability and practicability of the equipment;
[0023] (4) For a cutting device for refractory material processing according to the present invention, when the water level is higher than the return pipe, the water injection can be stopped. At this time, during the operation of the water pump, the water and mixed dust flowing into the limiting bottom plate are sucked through the water suction pipe and transported to the water storage tank via the return pipe. During this process, the special-shaped filter plate filters the dust in the cooling water. The heavier dust particles will precipitate and stay on the surface of the special-shaped filter plate, while the lighter dust floats on the surface of the cooling water. Since the return pipe continuously injects the cooling water containing dust into the water storage tank, under the action of the water flow impact force, the dust will continuously move away from the special-shaped filter plate, effectively avoiding the blockage problem on the surface of the special-shaped filter plate, thereby ensuring the normal operation and cooling effect of the circulating cooling system. After the cutting work is completed, just open the sealing door to centrally clean the dust accumulated inside the water storage tank, with simple operation and high maintenance efficiency.
[0024] Of course, it is not necessary for any product implementing the present invention to simultaneously achieve all the above-mentioned advantages. BRIEF DESCRIPTION OF THE DRAWINGS
[0025] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings required for describing the embodiments will be briefly introduced below. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on these drawings.
[0026] Figure 1 is a schematic diagram of the overall structure of the present invention;
[0027] Figure 2 is a partially sectional structural schematic diagram of the present invention;
[0028] Figure 3Schematic structural view of the arc-shaped plate of the present invention;
[0029] Figure 4 Schematic sectional view of the circulation mechanism of the present invention;
[0030] Figure 5 Partial sectional view of the waterproof mechanism of the present invention;
[0031] Figure 6 For the present invention Figure 5 Enlarged structural view of A in
[0032] Figure 7 Side sectional view of the waterproof mechanism of the present invention;
[0033] Figure 8 For the present invention Figure 7 Enlarged structural view of B in.
[0034] In the drawings, the list of components represented by each reference numeral is as follows:
[0035] In the figure: 1, limit bottom plate; 101, C-shaped frame; 102, mounting plate; 103, mounting block; 104, driving motor; 105, dust-proof housing; 106, rotating shaft; 107, mounting housing; 108, rubber stopper; 109, driving shaft; 1091, cutting blade; 110, synchronous pulley; 111, synchronous belt; 112, arc-shaped plate; 113, limit block; 114, semi-circular groove; 115, strip-shaped limit groove; 2, water storage tank; 201, water inlet pipe; 202, special-shaped filter plate; 203, sealing door; 204, water pump; 205, return pipe; 206, water extraction pipe; 207, one-way valve; 208, T-shaped thread block; 209, diversion groove; 3, reciprocating threaded rod; 301, reciprocating motor; 302, C-shaped limit plate; 303, placing block one; 304, placing block two; 305, threaded rod; 306, limit baffle; 307, workpiece. Detailed implementation manners
[0036] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0037] Please refer to Figures 1-8 As shown, the present invention is a cutting device for processing refractory materials, including a limit bottom plate 1, and further including:
[0038] Cooling mechanism, the cooling mechanism is arranged inside the limit bottom plate 1. The cooling mechanism includes a U-shaped frame 101 arranged above the limit bottom plate 1. Two mounting plates 102 are arranged on the U-shaped frame 101. The cooling mechanism is used for cooling during the cutting process;
[0039] Circulation mechanism, the circulation mechanism is arranged above the U-shaped frame 101. The circulation mechanism includes a water storage tank 2 arranged on the top of the U-shaped frame 101. A water pump 204 is arranged on the corresponding mounting plate 102. The circulation mechanism is used for filtering dust and impurities in the water during circulating cooling;
[0040] Waterproof mechanism, the waterproof mechanism is arranged inside the limit bottom plate 1. The waterproof mechanism includes a reciprocating threaded rod 3 arranged inside the limit bottom plate 1. A reciprocating motor 301 is arranged at the end of the reciprocating threaded rod 3. The waterproof mechanism is used for preventing water from flowing onto the rotating structure during operation.
[0041] As Figure 1 and Figure 2 As shown in the figure, the cooling mechanism includes a U-shaped frame 101 fixedly installed on the top of the limit bottom plate 1. Two mounting plates 102 are fixedly installed on the front of the U-shaped frame 101. A mounting block 103 is fixedly installed on the front of the corresponding mounting plate 102. A driving motor 104 is fixedly installed on the top of the mounting block 103. A dust-proof shell 105 is fixedly installed on the front of the corresponding mounting plate 102. A rotating shaft 106 is fixedly installed at the output end of the driving motor 104.
[0042] During use, first start the driving motor ①, the driving motor 104 drives the rotating shaft 106 to rotate. Under the coordinated action of the synchronous pulley 110 and the synchronous belt 111, the driving shaft 109 rotates accordingly, thereby driving the cutting blade 1091 to rotate, preparing for the cutting operation.
[0043] As Figure 2 As shown in the figure, mounting shells 107 are fixedly installed on the two mounting plates 102. Rubber stoppers 108 are fixedly installed on the outer walls of the mounting shells 107. A driving shaft 109 is rotatably installed inside the dust-proof shell 105. The rotation of the driving shaft 109 penetrates through the mounting shell 107. A cutting blade 1091 is fixedly sleeved on the driving shaft 109. The left end of the rotating shaft 106 rotates and extends into the dust-proof shell 105. Synchronous pulleys 110 are respectively fixedly sleeved on the rotating shaft 106 and the driving shaft 109. A synchronous belt 111 is sleeved on the two synchronous pulleys 110.
[0044] It should be noted that in the original text, there is an unclear "①" in the description of "During use, first start the driving motor ①", which is maintained as it is in the translation. If there is an error in the original text, it may affect the understanding of the translated content.During the process of the cutting blade 1091 cutting the workpiece 307, a large amount of dust will be generated. Since the cooling water is continuously dripping from the cutting edge of the cutting blade 1091, during the cutting process, the cooling water will synchronously flow to the cutting part of the workpiece 307. The cooling water continues to cover the cutting area, so that the generated dust is wrapped in water, thereby effectively preventing the dust from drifting into the air and improving the working environment. At the same time, under the action of the high-speed rotation of the cutting blade 1091, the wet dust will be thrown out with the water flow and hit the rubber stopper 108. At this time, the rubber stopper 108 plays a blocking role, intercepting the dust and water on its surface, and falling down along the stopper surface under the action of gravity, avoiding the phenomenon of dust and water splashing, thereby reducing the cleaning workload and improving the overall work efficiency and safety.
[0045] like Figure 2 and Figure 3 As shown, an arc-shaped plate 112 is fixedly installed on the left inner wall and the right inner wall of the mounting shell 107, and two limit blocks 113 are fixedly installed on the left inner wall and the right inner wall of the mounting shell 107, respectively. Several limit blocks 113 are respectively located at the bottom ends of the two arc-shaped plates 112, and two semicircular grooves 114 are respectively opened on the two arc-shaped plates 112, and several strip-shaped limit grooves 115 are respectively opened on the two arc-shaped plates 112.
[0046] As the cutting blade 1091 rotates at high speed, the centrifugal force generated will throw out the water attached to its surface. At this time, the semicircular groove 114 on the arc plate 112 plays a role of limiting and guiding, so that the thrown water flow is re-gathered and flows into the interior of the limiting block 113. The limiting block 113 further guides the water flow so that it flows to the surface of the cutting blade 1091 again. At the same time, the strip limiting groove 115 also plays an auxiliary limiting and drainage role, ensuring that the cooling water fully covers the cutting blade 1091, thereby achieving an efficient heat dissipation effect and effectively extending the service life of the cutting blade 1091.
[0047] like Figure 1 and Figure 4 As shown, the circulation mechanism includes a water tank 2 fixedly mounted on the top of the limiting base plate 1, the bottom of the water tank 2 is connected to a water inlet pipe 201, a special-shaped filter plate 202 is fixedly mounted in the water tank 2, and a sealing door 203 is hingedly mounted on the left side of the water tank 2.
[0048] During the cutting process, cooling water flows from the water inlet pipe 201 into the interior of the mounting shell 107 and contacts the cutting blade 1091 and the two curved plates 112 . Since the curved plates 112 have a sloped structure, the water flows toward the surface of the cutting blade 1091 under their guidance.
[0049] like Figure 4 and Figure 5As shown, a water pump 204 is fixedly installed on the front surface of the corresponding mounting plate 102. The top end of the water pump 204 communicates with a return pipe 205, and the bottom end of the water pump 204 is fixedly connected to a water extraction pipe 206. A check valve 207 is arranged in the water extraction pipe 206, and the bottom end of the water extraction pipe 206 communicates with the limit bottom plate 1.
[0050] When injecting water into the water storage tank 2, the drive shaft 109 will also drive the water pump 204 to operate during rotation. The water entering the water storage tank 2 flows into the water pump 204 through the return pipe 205, providing a circulating cooling water source for the water pump 204 to ensure the continuous and stable operation of the cooling system.
[0051] As Figure 6 shown, a T-shaped threaded block 208 is arranged above the limit bottom plate 1. A diversion groove 209 is formed in the T-shaped threaded block 208, and the diversion groove 209 communicates with the limit bottom plate 1.
[0052] Under the joint guidance of the T-shaped threaded block 208 and the limit baffle 306, the water finally flows into the interior of the limit bottom plate 1, achieving centralized collection and discharge. At the same time, the U-shaped limit plate 302 also plays a further protective role, effectively blocking the falling wet dust and water.
[0053] As Figure 6 and Figure 7 shown, the waterproof mechanism includes a reciprocating threaded rod 3 rotatably installed in the limit bottom plate 1. A reciprocating motor 301 is fixedly installed on the back surface of the limit bottom plate 1. The end of the reciprocating threaded rod 3 rotatably extends outside the limit bottom plate 1 and is fixedly connected to the reciprocating motor 301. A U-shaped limit plate 302 is fixedly installed on the top of the limit bottom plate 1. The U-shaped limit plate 302 slidably penetrates through the T-shaped threaded block 208, and the reciprocating threaded rod 3 penetrates through the T-shaped threaded block 208 and is threadedly connected to the T-shaped threaded block 208.
[0054] Start the reciprocating motor 301. The reciprocating motor 301 drives the reciprocating threaded rod 3 to rotate,带动 the T-shaped threaded block 208 to move in the direction靠近 the cutting blade 1091, and the T-shaped threaded block 208 further pushes the workpiece 307 forward.
[0055] As Figure 6 and Figure 7 shown, a placing block one 303 is fixedly installed on the surface of the diversion groove 209. A placing block two 304 is arranged above the diversion groove 209. A threaded rod 305 is rotatably installed on the T-shaped threaded block 208. The front end of the threaded rod 305 rotatably extends outside the T-shaped threaded block 208, and the threaded rod 305 threadedly penetrates through the placing block two 304.
[0056] When placing the workpiece 307, the threaded rod 305 can be rotated to drive the placement block 2 304 to move so that it cooperates with the fixed placement block 1 303 to achieve clamping and fixing of workpieces 307 of different sizes. This design not only improves the stability of the device during the processing, but also enhances the applicability and practicality of the equipment.
[0057] like Figure 8 As shown, a limit baffle 306 is fixedly installed in the T-shaped threaded block 208 , and the limit baffle 306 slides through the second placement block 304 . Workpieces 307 are set on the first placement block 303 and the second placement block 304 .
[0058] The falling wet dust and water will fall into the guide groove 209 and flow onto the baffle plate 306. Under the limiting and shielding effect of the baffle plate 306, the water flow is effectively prevented from contacting the threaded rod 305, thereby preventing the threaded rod 305 from rusting due to moisture.
[0059] When in use, first start the drive motor 104, the drive motor 104 drives the rotating shaft 106 to rotate, and under the coordinated action of the synchronous pulley 110 and the synchronous belt 111, the drive shaft 109 rotates accordingly, thereby driving the cutting blade 1091 to rotate, preparing for the cutting operation. At the same time, water is poured into the water tank 2. The drive shaft 109 also drives the water pump 204 to run during the rotation process. The water entering the water tank 2 flows into the water pump 204 through the return pipe 205, providing a circulating cooling water source for the water pump 204 to ensure the continuous and stable operation of the cooling system. Subsequently, the reciprocating motor 301 is started, and the reciprocating motor 301 drives the reciprocating threaded rod 3 to rotate, driving the T-shaped threaded block 208 to move in the direction close to the cutting blade 1091, and the T-shaped threaded block 208 then pushes the workpiece 307 When the cutting blade 1091 contacts the workpiece 307, the cutting operation begins. During the cutting process, cooling water flows from the water inlet pipe 201 into the mounting shell 107 and contacts the cutting blade 1091 and the two curved plates 112. Since the curved plates 112 have an inclined structure, the water flows to the surface of the cutting blade 1091 under their guidance. As the cutting blade 1091 rotates at high speed, the centrifugal force generated will throw out the water attached to its surface. At this time, the semicircular grooves 114 on the curved plates 112 play a role of limiting and guiding, so that the thrown water flow is re-gathered and flows into the interior of the limiting block 113. The limiting block 113 further guides the water flow so that it flows to the surface of the cutting blade 1091 again. At the same time, the strip limiting grooves 115 also play an auxiliary role of limiting and draining.
[0060] During the process of cutting the workpiece 307 with the cutting blade 1091, a large amount of dust is generated. Since the cooling water continuously drips from the cutting edge of the cutting blade 1091, during the cutting process, the cooling water will flow to the cutting part of the workpiece 307 synchronously. The cooling water continuously covers the cutting area, causing the generated dust to be wrapped by the water, thus effectively preventing the dust from spreading into the air and improving the working environment. At the same time, under the action of the high-speed rotation of the cutting blade 1091, the wet dust will be thrown out together with the water flow and hit the rubber stopper 108. At this time, the rubber stopper 108 plays a blocking role, intercepting the dust and water on its surface and falling downward along the surface of the stopper under the action of gravity;
[0061] The falling wet dust and water will fall into the diversion trough 209 and flow onto the limiting baffle 306. Under the limiting and blocking effects of the limiting baffle 306, it effectively prevents the water flow from contacting the threaded rod 305, thus avoiding the corrosion of the threaded rod 305 due to moisture. Under the joint guidance of the T-shaped threaded block 208 and the limiting baffle 306, the water finally flows into the limiting bottom plate 1, achieving centralized collection and discharge. At the same time, the U-shaped limiting plate 302 also plays a further protective role, effectively blocking the falling wet dust and water and preventing them from splashing onto the reciprocating threaded rod 3. When placing the workpiece 307, by rotating the threaded rod 305, the placing block two 304 can be driven to move, making it cooperate with the fixedly arranged placing block one 303 to achieve the clamping and fixing of workpieces 307 of different sizes;
[0062] When the water level is higher than the return pipe 205, the water injection can be stopped. At this time, during the operation of the water pump 204, the water and mixed dust flowing into the limiting bottom plate are sucked in through the water suction pipe 206 and transported to the water storage tank 2 through the return pipe 205. During this process, the special-shaped filter plate 202 filters the dust in the cooling water. The heavier dust particles will precipitate and stay on the surface of the special-shaped filter plate 202, while the lighter dust floats on the liquid surface of the cooling water. Since the return pipe 205 continuously injects the cooling water containing dust into the water storage tank 2, under the action of the water flow impact force, the dust will continuously move away from the special-shaped filter plate 202. After the cutting work is completed, just open the sealing door 203 to centrally clean the dust accumulated inside the water storage tank 2.
[0063] The preferred embodiments of the present invention disclosed above are only used to help illustrate the present invention. The preferred embodiments do not describe all the details in detail, nor limit the invention to the specific embodiments described. Obviously, according to the content of this specification, many modifications and changes can be made. These embodiments are selected and specifically described in this specification to better explain the principles and practical applications of the present invention, so that those skilled in the art in the relevant technical field can well understand and utilize the present invention. The present invention is only limited by the claims and their full scope and equivalents.
Claims
1. A cutting device for refractory material processing, comprising a limiting base plate (1), characterized in that: It further includes: A cooling mechanism, which is arranged in the limit bottom plate (1). The cooling mechanism includes a U-shaped frame (101) arranged above the limit bottom plate (1). Two mounting plates (102) are arranged on the U-shaped frame (101). The cooling mechanism is used for cooling during the cutting process. A circulating mechanism, which is arranged above the U-shaped frame (101). The circulating mechanism includes a water storage tank (2) arranged on the top of the U-shaped frame (101). A water pump (204) is arranged on the corresponding mounting plate (102). The circulating mechanism is used for filtering dust impurities in the water during circulating cooling. A waterproof mechanism, which is arranged in the limit bottom plate (1). The waterproof mechanism includes a reciprocating threaded rod (3) arranged in the limit bottom plate (1). A reciprocating motor (301) is arranged at the end of the reciprocating threaded rod (3). The waterproof mechanism is used for preventing water from flowing onto the rotating structure during operation. The cooling mechanism includes a U-shaped frame (101) fixedly installed on the top of the limit bottom plate (1). Two mounting plates (102) are fixedly installed on the front of the U-shaped frame (101). Mounting blocks (103) are fixedly installed on the front of the corresponding mounting plates (102). A driving motor (104) is fixedly installed on the top of the mounting blocks (103). A dust-proof shell (105) is fixedly installed on the front of the corresponding mounting plates (102). A rotating shaft (106) is fixedly installed at the output end of the driving motor (104). Two mounting plates (102) are fixedly installed with a mounting shell (107). Rubber stoppers (108) are fixedly installed on the outer wall of the mounting shell (107). A driving shaft (109) is rotatably installed in the dust-proof shell (105). The rotation of the driving shaft (109) penetrates through the mounting shell (107). A cutting blade (1091) is fixedly sleeved on the driving shaft (109). The left end of the rotating shaft (106) rotatably extends into the dust-proof shell (105). Synchronous belt pulleys (110) are respectively fixedly sleeved on the rotating shaft (106) and the driving shaft (109). A synchronous belt (111) is sleeved on the two synchronous belt pulleys (110). Arc-shaped plates (112) are respectively fixedly installed on the left inner wall and the right inner wall of the mounting shell (107). Two limiting blocks (113) are respectively fixedly installed on the left inner wall and the right inner wall of the mounting shell (107). A plurality of the limiting blocks (113) are respectively located at the bottom ends of the two arc-shaped plates (112). Two semi-circular grooves (114) are respectively formed on the two arc-shaped plates (112). A plurality of strip-shaped limiting grooves (115) are respectively formed on the two arc-shaped plates (112).
2. A cutting device for refractory material processing according to claim 1, characterized in that: The circulating mechanism includes a water storage tank ( 3. A cutting device for refractory material processing according to claim 1, characterized in that: A water pump (204) is fixedly installed on the front surface of the corresponding mounting plate (102). The top end of the water pump (204) communicates with a return pipe (205). The bottom end of the water pump (204) is fixedly connected to a water suction pipe (206). A check valve (207) is arranged in the water suction pipe (206). The bottom end of the water suction pipe (206) communicates with a limit bottom plate (1).
4. A cutting device for refractory material processing according to claim 1, characterized in that: A T-shaped threaded block (208) is arranged above the limit bottom plate (1). A diversion groove (209) is formed in the T-shaped threaded block (208). The diversion groove (209) communicates with the limit bottom plate (1).
5. A cutting device for refractory material processing according to claim 4, characterized in that: The waterproof mechanism includes a reciprocating threaded rod (3) rotatably installed in the limit bottom plate (1). A reciprocating motor (301) is fixedly installed on the back surface of the limit bottom plate (1). The end of the reciprocating threaded rod (3) rotatably extends outside the limit bottom plate (1) and is fixedly connected to the reciprocating motor (301). An L-shaped limit plate (302) is fixedly installed on the top of the limit bottom plate (1). The L-shaped limit plate (302) slidably penetrates through the T-shaped threaded block (208). The reciprocating threaded rod (3) penetrates through the T-shaped threaded block (208) and is threadedly connected to the T-shaped threaded block (208).
6. A cutting device for refractory material processing according to claim 5, characterized in that: A placing block one (303) is fixedly installed on the surface of the diversion groove (209). A placing block two (304) is arranged above the diversion groove (209). A threaded rod (305) is rotatably installed on the T-shaped threaded block (208). The front end of the threaded rod (305) rotatably extends outside the T-shaped threaded block (208). The threaded rod (305) threadedly penetrates through the placing block two (304).
7. A cutting device for refractory material processing according to claim 6, characterized in that: A limit baffle (306) is fixedly installed in the T-shaped threaded block (208). The limit baffle (306) slidably penetrates through the placing block two (304). A workpiece (307) is arranged on the placing block one (303) and the placing block two (304).
Citation Information
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