Building stone cutting equipment with smooth cut surface
Through the coordinated design of the blade and the grinding ring, combined with the moving mechanism of the support plate and the cutting chamber, the problems of incomplete cutting and low efficiency in existing equipment are solved, and the smooth and flat cutting surface of the stone and efficient separation are achieved.
Patent Information
- Application Number
- CN202411899931.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-23
- Publication Date
- 2025-09-16
- Estimated Expiration
- 2044-12-23
AI Technical Summary
During the cutting process of existing building stone cutting equipment, the cutting wheel can only move downward, resulting in the two sides of the bottom of the stone not being cut, the cutting surface cannot be completely separated, and the cutting efficiency is low. The entire cutting surface cannot be ground, and the stone needs to be readjusted before continuing cutting.
The blade and grinding ring are designed to cooperate with each other. The blade is ground synchronously during the cutting process. After cutting, the longitudinal movement of the stone and the lateral movement of the blade are achieved through the cooperation of the support plate and the cutting chamber to ensure a smooth and flat cutting surface. The blade spacing is automatically adjusted through the engagement of the gear and rack to improve cutting efficiency.
It achieves a smooth and flat stone cutting surface, improves cutting efficiency, avoids secondary chamfering of stone corners, ensures complete separation of cut stone slabs, and improves overall cutting efficiency.
Smart Images

Figure CN119682054B_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of stone cutting, in particular to a building stone cutting device with a smooth cut surface. Background Art
[0002] The cutting of building stones is a crucial link in stone processing, which directly affects the use effect and economic benefits of the stone. Early building stone cutting mainly relied on manual tools such as hammers, chisels and wire saws. Although these tools are simple, they are labor-intensive, inefficient, and difficult to guarantee cutting accuracy and surface quality. With the advent of the Industrial Revolution, mechanized cutting equipment began to appear, such as circular saws and band saws, which greatly improved the cutting speed and accuracy and reduced labor intensity. For example, a building stone cutting and polishing device in Publication No. CN105773847A, when in use, the motor connected to the cutting wheel is started to rotate the cutting wheel and the cutting wheel moves downward, so that the cutting wheel can cut the stone. After cutting, the second air is started. Cylinder, makes the stone move to the right, when the first push plate is against the left surface of the fifth support rod, the stone is on the right side of the fifth support rod, and then by starting the motor connected to the grinding wheel and the downward movement of the holding rod, the grinding wheel can grind the stone when it contacts the stone. However, during the cutting process, the cutting wheel can only move downward, and the rotating cutting wheel is circular, so that after the stone is cut, the two sides of the bottom of the stone are not cut by the cutting wheel, resulting in the stone being incompletely cut and unable to be separated. In addition, after the first push plate is against the left surface of the fifth support rod, the stone will not be able to move to the right again, resulting in the grinding wheel only being able to grind the edge of the cutting surface and not the entire cutting surface. After the cutting is completed, the stone needs to be readjusted before it can be cut again, and the cutting efficiency is not high. Summary of the Invention
[0003] The purpose of the present invention is to solve the problems in the background technology and to provide a building stone cutting device with a smooth cut surface.
[0004] In order to achieve the above object, the present invention adopts the following technical solutions:
[0005] Material toggling mechanism, its both sides respectively have a cylinder pressure, and the cylinder pressure bar connects swing arm, and the swing arm end face has hook portion, and a bar passes position between the end of two swing arms and the hook portion. Two screw rods three are rotatably installed between the support frames, and a cutting chamber is movably installed between the two support frames. Screw sleeves two are welded on both sides of the cutting chamber, and the screw rod three is rotatably installed inside the screw sleeve two. The cutting chamber is located between the two screw rods three, and a motor three is fixedly installed inside the cutting chamber. The output shaft of the motor three is fixedly connected to a rotating shaft, and a blade one and a blade two are slidably installed on the outside of the rotating shaft. The blade one and the blade two are both located inside the cutting chamber, and two rotating rods are rotatably installed on both sides of the top of the base. The two rotating rods are respectively located above the slide rod one and the screw rod two, and the support frame is slidably installed on the outside of the rotating rod.
[0006] In the above-mentioned building stone cutting equipment with a smooth cross-section, a rotating frame is integrally formed inside the cutting chamber, and an adjusting cylinder is rotatably installed inside the rotating frame. Screw hole one and screw hole two are respectively provided at both ends of the adjusting cylinder. The side walls of blade one and blade two are integrally formed with screw barrel one and screw barrel two respectively. The adjusting cylinder is located between blade one and blade two. Screw barrel two is rotatably installed inside screw hole one, and screw barrel one is rotatably installed inside screw hole two.
[0007] In the above-mentioned building stone cutting equipment with smooth cross-section, the outer peripheral wall of the adjusting cylinder is integrally formed with an inner ratchet, the inner part of the rotating frame is fixedly installed with an outer ratchet, and the inner ratchet is rotatably installed inside the outer ratchet. The side walls on both sides of the blade 2 are fixedly installed with grinding sheets, and the side walls on both sides of the blade 1 are fixedly installed with grinding rings. One of the side walls of the support frame is fixedly installed with motor 2, the output shaft of motor 2 is fixedly connected with gear 2, and the side wall of the screw 3 is fixedly installed with gear 1, and gear 1 and gear 2 are meshed with each other.
[0008] In the above-mentioned building stone cutting equipment with smooth cross-section, a moving ring and a slide are slidably installed inside one of the support frames, the moving ring is slidably installed on the outside of the slide, the slide is slidably installed on the outside of the slide rod one, and a rack four is integrally formed on the top of the moving ring. A gear five is rotatably installed inside one of the support frames, the rack four and the gear five are meshed with each other, and the side walls on both sides of the slide are respectively integrally formed with a positioning ring one and a positioning ring two, and the moving ring is located between the positioning ring one and the positioning ring two.
[0009] In the above-mentioned building stone cutting equipment with a smooth cross-section, a push rod is rotatably installed on the side wall of the blade one, and the push rod is located between the blade one and the rotating frame. The side wall of the push rod is integrally formed with a rack three, and one of the side walls of the support frame is provided with a slide groove one, and the rack three is slidably installed inside the slide groove one, and a gear four is integrally formed on the top of the gear five, and the gear four and the rack three are meshed with each other.
[0010] In the above-mentioned building stone cutting equipment with smooth cross-section, the positioning ring 2 is located inside the support frame, and a spring 2 is provided between the positioning ring 2 and the inner wall of the support frame. The side walls of the movable ring and the positioning ring 2 are respectively integrally formed with a side plate 1 and a stop block 1. The side wall of the side plate 1 is fixedly installed with an electromagnetic block, and the electromagnetic block is located between the side plate 1 and the stop block 1. A spring lock block 2 is slidably installed on the top of the electromagnetic block, and a lock tooth 1 is provided on the side wall of the slide rod 1. The spring lock block 2 and the lock tooth 1 cooperate with each other.
[0011] In the above-mentioned building stone cutting equipment with a smooth cross-section, the side wall of the cutting chamber is integrally formed with a rack 2, and the side wall of the support frame is rotatably installed with an intermittent gear. The rack 2 and the intermittent gear are meshed with each other, and the intermittent gear is slidably installed on the outside of the rotating rod. The side walls of the two rotating rods are respectively fixedly installed with pulley 1 and pulley 2, and the side wall of the base is rotatably installed with pulley 3, a belt is provided between pulley 1 and pulley 3, and the side wall of pulley 3 is integrally formed with pulley 4, and a belt is also provided between pulley 4 and pulley 2.
[0012] In the above-mentioned building stone cutting equipment with smooth cross-section, the bottom of the support plate is integrally formed with a rack 1 and a screw 1, and the rack 1 and the screw 1 are both slidably inserted into the bottom of the base, and the bottom of the base is rotatably installed with a screw sleeve 1, and the screw sleeve 1 is rotatably installed on the outside of the screw 1. A locking groove is provided on the top of the screw sleeve 1, and a locking bar is slidably installed on the bottom of the base, and a spring locking block 1 is slidably installed on the side wall of the locking bar, and the spring locking block 1 cooperates with the locking groove. The side wall of the pulley 3 is integrally formed with a gear 3, and the gear 3 is meshed with the rack 1. The top of the lock bar is integrally formed with a tooth surface 1, and the tooth surface 1 is meshed with the gear 3. A spring 1 is provided between the lock bar and the side wall of the base.
[0013] Compared with the existing technology, the advantages of the present invention are:
[0014] 1. The present invention cooperates between blade one and the grinding ring, as well as between blade two and the grinding sheet. During the process of cutting stone, the grinding sheet rotates along with blade two, so that the grinding sheet grinds the cutting surface, ensuring that the cutting surfaces on both sides of blade two are smooth and flat. The grinding ring rotates along with blade one. When the cutting range of blade one is entirely located inside the stone, the grinding ring contacts the top of the stone, so that the grinding ring grinds the edges and corners on both sides of blade one, so that the edges and corners of the stone slab do not need to be chamfered again after cutting. By cutting and grinding simultaneously, the smoothness and flatness of the cut surface can be effectively improved, and the stone cutting efficiency can also be improved.
[0015] 2. The present invention cooperates between the cutting chamber, the rotating rod and the support plate. During the process of cutting stone, after blade one and blade two move out of the stone for the first time, the cutting chamber drives the rotating rod to rotate through rack two and the intermittent gear, the rotating rod drives gear three to rotate forward, gear three and rack one are engaged, and the support plate drives the stone to move upward. When blade one and blade two move out of the stone for the second time, the cutting chamber drives the rotating rod to rotate through rack two and the intermittent gear, the rotating rod drives gear three to rotate reversely, gear three and rack one are engaged, and the support plate drives the stone to move downward. The longitudinal movement of the stone driven by the support plate and the lateral movement of blade one and blade two driven by the cutting chamber can ensure that after blade one and blade two complete cutting of the stone, the stone and the cut slab are completely separated.
[0016] 3. The present invention cooperates between the moving ring and the slide. During the process of cutting stone, when the motor three reverses to adjust the distance between blade one and blade two, blade one drives the push rod to move, so that rack three and gear four engage with each other, and gear four drives the moving ring to move through gear five and rack four. The slide follows the moving ring to move through spring two, so that the distance between the positioning ring one and the support frame is equal to the distance between blade one and blade two. Through the movement of the slide, it can be ensured that the distance the support frame moves each time is equal to the distance between blade one and blade two. There is no need to adjust the stone or align the knife again, thereby improving the cutting efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention;
[0018] Figure 2 It is a cross-sectional view of the overall structure of the present invention;
[0019] Figure 3 For the present invention Figure 2 A magnified schematic diagram of point A in the middle;
[0020] Figure 4 It is a partial structural cross-sectional view of the support frame and the sliding rod 1 in the present invention;
[0021] Figure 5 This is a disassembled schematic diagram of the slide cylinder and the moving ring in the present invention;
[0022] Figure 6 This is a cross-sectional view of the structure of the cutting chamber in the present invention;
[0023] Figure 7 This is a schematic diagram of the disassembly of blade 1 and blade 2 in the present invention;
[0024] Figure 8 This is a schematic diagram of the back structure of the present invention;
[0025] Figure 9 This is a schematic diagram of the disassembly of the support plate and the locking bar in the present invention.
[0026] In the figure: 1, base; 11, support plate; 111, jack; 112, rack 1; 113, screw 1; 114, screw sleeve 1; 115, lock groove; 116, spring lock block 1; 121, slide bar 1; 122, screw 2; 123, lock tooth 1; 124, motor 1; 131, rotating rod; 132, belt; 133, intermittent gear; 134, pulley 1; 135, pulley 2; 141, screw 3; 142, gear 1; 143, gear 2; 144, motor 2; 151, gear 3; 152, pulley 3; 153, pulley 4; 154, lock bar; 155, spring 1; 156, tooth surface 1; 21, support frame; 211, slide; 212, slide groove 1; 2 13. Positioning ring one; 214. Positioning ring two; 215. Spring two; 216. Side plate one; 217. Electromagnetic block; 218. Spring lock block two; 22. Cutting chamber; 221. Rack two; 222. Motor three; 223. Rotating frame; 224. Outer ratchet; 225. Adjusting cylinder; 226. Inner ratchet; 227. Screw hole one; 228. Screw hole two; 229. Rotating shaft; 23. Screw sleeve two; 231. Blade one; 232. Blade two; 233. Grinding ring; 234. Grinding disc; 235. Screw barrel one; 236. Screw barrel two; 31. Push rod; 311. Rack three; 312. Gear four; 313. Gear five; 314. Moving ring; 315. Rack four; 316. Stopper one. DETAILED DESCRIPTION
[0027] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.
[0028] In the description of the present invention, it should be understood that the terms "upper", "lower", "front", "back", "left", "right", "top", "bottom", "inside", "outside", etc., indicating directions or positional relationships, are based on the directions or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific direction, be constructed and operated in a specific direction, and therefore should not be understood as limiting the present invention.
[0029] Reference Figure 1 - Figure 9 As shown, a building stone cutting equipment with a smooth cut surface includes a base 1 and a support plate 11, a jack 111 is fixedly installed at the bottom of the base 1, the output shaft of the jack 111 and the support plate 11 are fixedly connected, the support plate 11 is slidably installed above the base 1, a slide rod 121 and a motor 124 are fixedly installed on both sides of the top of the base 1, the output shaft of the motor 124 is fixedly connected with a screw 2 122, the screw 2 122 is rotatably installed above the base 1, two support frames 21 are slidably installed above the base 1, one of the support frames 21 is slidably installed on the outside of the slide rod 121, and the other support frame 21 is movably installed on the outside of the screw 2 122, the support plate 11 is located between the two support frames 21, and two screws 3 141 are rotatably installed between the two support frames 21, and the side wall of one of the support frames 21 is fixedly installed with a motor 2 144, the motor 2 144 The output shaft is fixedly connected to gear 2 143, and gear 142 is fixedly installed on the side wall of screw three 141, and gear 142 and gear 2 143 are meshed with each other. A cutting chamber 22 is movably installed between the two support frames 21, and screw sleeves 23 are welded on both sides of the cutting chamber 22. Screw three 141 is rotatably installed inside the screw sleeve 23, and the cutting chamber 22 is located between the two screw threes 141. A motor three 222 is fixedly installed inside the cutting chamber 22, and the output shaft of motor three 222 is fixedly connected to a rotating shaft 229, and a blade one 231 and a blade two 232 are slidably installed on the outside of the rotating shaft 229. Both blade one 231 and blade two 232 are located inside the cutting chamber 22, and two rotating rods 131 are rotatably installed on both sides of the top of the base 1. The two rotating rods 131 are respectively located above the slide bar 121 and the screw two 122, and the support frame 21 is slidably installed on the outside of the rotating rod 131.
[0030] Among them, the working principle of blade one 231 and blade two 232 is: when the stone is placed on the top of the support plate 11, the jack 111 starts and pushes the support plate 11 upward, so that the support plate 11 drives the stone to move upward, the motor three 222 is started and rotates forward, the blade one 231 and blade two 232 rotate, the motor two 144 is started, the screw three 141 rotates, and drives the cutting chamber 22 to move back and forth horizontally through the screw sleeve two 23, and the cutting chamber 22 drives the blade one 231 and blade two 232 to cut the stone. When the stone is cut out of the slab, the motor one 124 is started, the screw two 122 rotates, and drives the support frame 21 to move forward, so that the cutting chamber 22 drives the blade one 231 and blade two 232 to move forward and continue to the next cutting.
[0031] like Figure 3 、 Figure 6 and Figure 7 As shown, the interior of the cutting chamber 22 is integrally formed with a rotating frame 223, and an adjusting cylinder 225 is rotatably installed inside the rotating frame 223. Both ends of the adjusting cylinder 225 are respectively provided with a screw hole 1 227 and a screw hole 2 228. The side walls of the blade 1 231 and the blade 2 232 are respectively integrally formed with a screw cylinder 1 235 and a screw cylinder 2 236. The adjusting cylinder 225 is located between the blade 1 231 and the blade 2 232. The screw cylinder 236 is rotatably installed inside the screw hole 1 227, and the screw cylinder 1 235 is rotatably installed inside the screw hole 228. The outer peripheral wall of the adjusting cylinder 225 is integrally formed with an inner ratchet 226. The interior of the rotating frame 223 is fixedly installed with an outer ratchet 224, and the inner ratchet 226 is rotatably installed inside the outer ratchet 224. The side walls on both sides of the blade 2 232 are fixedly installed with grinding sheets 234, and the side walls on both sides of the blade 1 231 are fixedly installed with grinding rings 233.
[0032] Among them, the working principle of the adjustment cylinder 225 is: when the motor three 222 rotates forward, the blade one 231 and the blade two 232 drive the outer ratchet 224 to rotate, and at this time the outer ratchet 224 rotates inside the inner ratchet 226; when the motor three 222 rotates reversely, the inner ratchet 226 and the outer ratchet 224 engage with each other, so that the outer ratchet 224 is locked, and the screw barrel one 235 and the screw barrel two 236 rotate on the inner walls of the screw hole two 228 and the screw hole one 227 respectively, so that the blade one 231 and the blade two 232 move in opposite directions, adjusting the distance between the blade one 231 and the blade two 232.
[0033] Further references Figure 3 and Figure 7For explanation, the rotation directions of screw hole 1 227 and screw hole 2 228 are opposite, and the rotation directions of screw barrel 1 235 and screw barrel 2 236 are also opposite. When motor 3 222 reverses, motor 1 124 also reverses, and the support frame 21 drives the cutting chamber 22 to move backward, so that the distance between the side wall of blade 1 231 and the cutting surface of the stone remains unchanged, and the grinding sheet 234 rotates following blade 2 232. In the process of blade 2 232 cutting the stone, the grinding sheet 234 grinds the cutting surface to make the cut surface smooth and flat, and the grinding ring 233 rotates following blade 1 231. When the cutting range of blade 1 231 is entirely located inside the stone, the grinding ring 233 grinds the edges and corners of the stone and slab, so that the edges and corners of the slab do not need to be chamfered again after cutting.
[0034] like Figure 2-Figure 5 As shown, a moving ring 314 and a slide 211 are slidably installed inside one of the support frames 21, the moving ring 314 is slidably installed on the outside of the slide 211, and the slide 211 is slidably installed on the outside of the slide rod 121. The top of the moving ring 314 is integrally formed with a rack 4 315. A gear 5 313 is rotatably installed inside one of the support frames 21, and the rack 4 315 and the gear 5 313 are engaged with each other. The side walls on both sides of the slide 211 are respectively integrally formed with a positioning ring 1 213 and a positioning ring 2 214. The movable ring 314 is located between the positioning ring 1 213 and the positioning ring 214. The side wall of the blade 1 231 is rotatably installed with a push rod 31. The push rod 31 is located between the blade 1 231 and the rotating frame 223. The side wall of the push rod 31 is integrally formed with a rack 311. A slide groove 1 212 is opened on the side wall of one of the support frames 21. The rack 311 is slidably installed inside the slide groove 1 212. The top of the gear 5 313 is integrally formed with a gear 4 312. The gear 4 312 and the rack 3 311 are meshed.
[0035] Among them, the working principle of the moving ring 314 is: when the motor three 222 reverses, the blade one 231 drives the push rod 31 to move, so that the rack three 311 slides inside the slide groove one 212 and engages with the gear four 312, the gear four 312 drives the gear five 313 to rotate, the gear five 313 and the rack four 315 engage with each other, so that the rack four 315 drives the moving ring 314 to move toward the positioning ring one 213.
[0036] like Figure 4 and Figure 5As shown, the positioning ring 214 is located inside the support frame 21, and a spring 215 is provided between the positioning ring 214 and the inner wall of the support frame 21. The side walls of the movable ring 314 and the positioning ring 214 are respectively integrally formed with a side plate 1 216 and a stop block 1 316. The side wall of the side plate 1 216 is fixedly installed with an electromagnetic block 217, and the electromagnetic block 217 is located between the side plate 1 216 and the stop block 1 316. A spring lock block 218 is slidably installed on the top of the electromagnetic block 217. A lock tooth 123 is provided on the side wall of the slide rod 121, and the spring lock block 218 and the lock tooth 123 cooperate with each other.
[0037] The working principle of the electromagnetic block 217 and the spring lock block 218 is as follows: when the motor 3 222 is reversed, the electromagnetic block 217 is started, so that the spring lock block 218 contracts and the slide 211 is unlocked. When the moving ring 314 moves, the slide 211 moves with the moving ring 314 through the spring 215. When the motor 3 222 stops reversing, the electromagnetic block 217 is closed, the spring lock block 218 contacts the lock tooth 1 123, and the slide 211 is locked again. When the side wall of the support frame 21 contacts the positioning After ring one 213, motor one 124 is turned off, electromagnetic block 217 is started, support frame 21 drives cutting chamber 22 to move one station, slide 211 is unlocked and moves toward movable ring 314, and when positioning ring two 214 contacts movable ring 314, electromagnetic block 217 is turned off, slide 211 is locked again, slide 211 moves one station, and one station of cutting chamber 22 driven by support frame 21 and one station of slide 211 are equal to the distance between blade one 231 and blade two 232.
[0038] like Figure 2 、 Figure 8 and Figure 9 As shown, the side wall of the cutting chamber 22 is integrally formed with a rack 221, and the side wall of the support frame 21 is rotatably installed with an intermittent gear 133, the rack 221 and the intermittent gear 133 are meshed with each other, and the intermittent gear 133 is slidably installed on the outside of the rotating rod 131, and the side walls of the two rotating rods 131 are respectively fixedly installed with pulley 1 134 and pulley 2 135, and the side wall of the base 1 is rotatably installed with pulley 3 152, a belt 132 is provided between pulley 1 134 and pulley 3 152, and a pulley 4 153 is integrally formed on the side wall of pulley 3 152, and a belt 132 is also provided between pulley 4 153 and pulley 2 135, the bottom of the support plate 11 is integrally formed with a rack 112 and a screw 113, and the side wall of pulley 3 152 is integrally formed with gear 3 151, and gear 3 151 is meshed with rack 1 112.
[0039] Among them, the working principle of the intermittent gear 133 is: the jack 111 drives the support plate 11 to move upward, so that the stone moves to a height of three-quarters of the distance between the bottom of the cutting chamber 22 and the top of the base 1, and the cutting height of the blade 1 231 is half of the blade 2 232. When the cutting chamber 22 drives the blade 1 231 and the blade 2 232 to cut, the blade 1 231 cuts a quarter of the height of the stone, and the blade 2 232 cuts three-quarters of the height of the stone. When the blade 1 231 and the blade 2 232 are moved out of the stone, the rack 2 221 and the intermittent gear 133 engage with each other, so that the rotating rod 131 rotates and drives the pulley 2 135 to rotate. The pulley 2 135 drives the gear 3 151 to rotate forward through the belt 132 and the pulley 4 153. The gear 3 151 is meshed with the rack 1 112, and the rack 1 112 drives the support plate 11 to move upward, so that the support plate 11 drives the stone Move to the maximum height of the distance between the bottom of the cutting chamber 22 and the top of the base 1. When the cutting chamber 22 drives blade one 231 and blade two 232 to cut, blade one 231 and blade two 232 both cut downward by a quarter of the height at the previous cutting position. At this time, blade one 231 cuts half of the stone, and blade two 232 cuts the entire height of the stone. When blade one 231 and blade two 232 move out of the stone again, rack two 221 and intermittent gear 133 engage with each other, causing the rotating rod 131 to rotate and drive pulley one 134 to rotate. Pulley one 134 drives gear three 151 to reverse through belt 132 and pulley three 152. Gear three 151 engages with rack one 112. Rack one 112 drives the support plate 11 to move downward, so that the support plate 11 drives the stone to a height of three-quarters of the distance between the bottom of the cutting chamber 22 and the top of the base 1.
[0040] like Figure 8 and Figure 9 As shown, rack 112 and screw 113 are both slidably inserted into the bottom of the base 1, and a screw sleeve 114 is rotatably installed on the bottom of the base 1. The screw sleeve 114 is rotatably installed on the outside of the screw 113, and a locking groove 115 is provided on the top of the screw sleeve 114. A locking bar 154 is slidably installed on the bottom of the base 1, and a spring locking block 116 is slidably installed on the side wall of the locking bar 154. The spring locking block 116 and the locking groove 115 cooperate with each other, and a tooth surface 156 is integrally formed on the top of the locking bar 154. The tooth surface 156 is meshed with the gear three 151, and a spring 155 is provided between the locking bar 154 and the side wall of the base 1.
[0041] Among them, the working principle of the lock bar 154 is: when the gear three 151 rotates, the tooth surface 156 and the gear three 151 engage with each other, the tooth surface 156 drives the lock bar 154 to slide, the lock bar 154 drives the spring lock block 116 to move out of the lock groove 115, the screw sleeve 114 is unlocked, and the screw 113 slides. When the gear three 151 stops rotating, the spring 155 drives the lock bar 154 to return to its position, the spring lock block 116 contacts the lock groove 115, the screw sleeve 114 is locked, and the screw 113 is locked.
[0042] The specific working principle and method of use of the present invention are explained in detail below: When the stone is placed on the support plate 11, the jack 111 is started, the jack 111 drives the support plate 11 to move upward, and the support plate 11 drives the stone to move upward. When the stone moves to a height of three-quarters of the distance between the bottom of the cutting chamber 22 and the top of the base 1, the motor three 222 and the motor two 144 are started and rotated forward, the motor three 222 drives the blade one 231 and the blade two 232 to rotate, the motor two 144 drives the screw three 141 to rotate, the screw three 141 drives the cutting chamber 22 to move, and the cutting chamber 22 drives the blade one 231 and the blade two 232 to cut , when blade 1 231 and blade 2 232 move out of the stone, the cutting chamber 22 continues to move and drives the support plate 11 to move up a quarter of the height through the rack 221, so that the stone moves to the maximum height of the distance between the bottom of the cutting chamber 22 and the top of the base 1, and the cutting chamber 22 drives blade 1 231 and blade 2 232 to move in the opposite direction for cutting, so that blade 1 231 cuts half of the stone, and blade 2 232 cuts the entire height of the stone. When blade 1 231 and blade 2 232 move out of the stone again, the support plate 11 drives the stone to move down a quarter of the height, and at the same time, the motor 124 drives the support frame 21 to move forward one station and continue cutting.
[0043] It is further explained that the above-mentioned fixed connection should be understood in a broad sense unless otherwise clearly specified and limited. For example, it can be welding, gluing, or one-piece molding, etc., which are common means well known to those skilled in the art.
[0044] The above description is only a preferred specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any technician familiar with the technical field, within the technical scope disclosed by the present invention, who makes equivalent replacements or changes based on the technical solution and inventive concept of the present invention, should be covered by the scope of protection of the present invention.
Claims
1. A building stone cutting device with a smooth cut surface, comprising a base (1) and a support plate (11), characterized in that: A jack (111) is fixedly installed at the bottom of the base (1), and the output shaft of the jack (111) is fixedly connected to the support plate (11). The support plate (11) is slidably installed above the base (1). A slide bar 1 (121) and a motor 1 (124) are fixedly installed on both sides of the top of the base (1). The output shaft of the motor 1 (124) is fixedly connected to a screw rod 2 (122). The screw rod 2 (122) is rotatably installed above the base (1). Two support frames (21) are slidably installed above the base (1), one of the support frames (21) is slidably installed on the outside of the slide bar 1 (121), and the other support frame (21) is movably installed on the outside of the screw rod 2 (122). The support plate (11) is located between the two support frames (21). Two screw rods 3 (141) are rotatably installed between the two support frames (21). A cutting chamber (22) is movably installed between the frame (21), a screw sleeve 2 (23) is welded on both sides of the cutting chamber (22), the screw rod 3 (141) is rotatably installed inside the screw sleeve 2 (23), the cutting chamber (22) is located between the two screw rods 3 (141), a motor 3 (222) is fixedly installed inside the cutting chamber (22), the output shaft of the motor 3 (222) is fixedly connected to a rotating shaft (229), a blade 1 (231) and a blade 2 (232) are slidably installed on the outer side of the rotating shaft (229), the blade 1 (231) and the blade 2 (232) are both located inside the cutting chamber (22), two rotating rods (131) are rotatably installed on both sides of the top of the base (1), the two rotating rods (131) are respectively located above the sliding rod 1 (121) and the screw rod 2 (122), and the support frame (21) is slidably installed on the outer side of the rotating rod (131); A moving ring (314) and a slide cylinder (211) are slidably installed inside one of the support frames (21), the moving ring (314) is slidably installed on the outside of the slide cylinder (211), the slide cylinder (211) is slidably installed on the outside of the slide rod (121), the top of the moving ring (314) is integrally formed with a rack four (315), one of the support frames (21) is rotatably installed inside a gear five (313), the rack four (315) and the gear five (313) are meshed with each other, the side walls on both sides of the slide cylinder (211) are respectively integrally formed with a positioning ring one (213) and a positioning ring two (214), the moving ring (314) is located between the positioning ring one (213) and the positioning ring two (214); A push rod (31) is rotatably mounted on the side wall of the blade one (231), and the push rod (31) is located between the blade one (231) and the rotating frame (223). A rack three (311) is integrally formed on the side wall of the push rod (31), and a slide groove one (212) is provided on the side wall of one of the support frames (21). The rack three (311) is slidably mounted inside the slide groove one (212), and a gear four (312) is integrally formed on the top of the gear five (313), and the gear four (312) and the rack three (311) are meshed with each other. The second positioning ring (214) is located inside the support frame (21). A second spring (215) is provided between the second positioning ring (214) and the inner wall of the support frame (21). The side walls of the movable ring (314) and the second positioning ring (214) are respectively integrally formed with a side plate (216) and a stop block (316). An electromagnetic block (217) is fixedly installed on the side wall of the side plate (216). The electromagnetic block (217) is located between the side plate (216) and the stop block (316). A spring lock block (218) is slidably installed on the top of the electromagnetic block (217). A lock tooth (123) is provided on the side wall of the slide rod (121). The spring lock block (218) and the lock tooth (123) cooperate with each other.
2. The building stone cutting equipment with a smooth cut surface according to claim 1, characterized in that: The interior of the cutting chamber (22) is integrally formed with a rotating frame (223), and an adjusting cylinder (225) is rotatably installed inside the rotating frame (223). Both ends of the adjusting cylinder (225) are respectively provided with a screw hole 1 (227) and a screw hole 2 (228). The side walls of the blade 1 (231) and the blade 2 (232) are respectively integrally formed with a screw barrel 1 (235) and a screw barrel 2 (236). The adjusting cylinder (225) is located between the blade 1 (231) and the blade 2 (232). The screw barrel 2 (236) is rotatably installed inside the screw hole 1 (227), and the screw barrel 1 (235) is rotatably installed inside the screw hole 2 (228).
3. The building stone cutting equipment with a smooth cut surface according to claim 2, characterized in that: The outer peripheral wall of the regulating cylinder (225) is integrally formed with an inner ratchet (226), the inner portion of the rotating frame (223) is fixedly mounted with an outer ratchet (224), the inner ratchet (226) is rotatably mounted inside the outer ratchet (224), the side walls on both sides of the blade 2 (232) are fixedly mounted with grinding sheets (234), the side walls on both sides of the blade 1 (231) are fixedly mounted with grinding rings (233), one side wall of the supporting frame (21) is fixedly mounted with a motor 2 (144), the output shaft of the motor 2 (144) is fixedly connected with a gear 2 (143), the side wall of the screw rod 3 (141) is fixedly mounted with a gear 1 (142), and the gear 1 (142) and the gear 2 (143) are meshed with each other.
4. The building stone cutting equipment with a smooth cut surface according to claim 1, characterized in that: The side wall of the cutting chamber (22) is integrally formed with a second rack (221), and the side wall of the support frame (21) is rotatably mounted with an intermittent gear (133), the second rack (221) and the intermittent gear (133) are meshed with each other, and the intermittent gear (133) is slidably mounted on the outside of the rotating rod (131), and the side walls of the two rotating rods (131) are respectively fixedly mounted with a pulley one (134) and a pulley two (135), and the side wall of the base (1) is rotatably mounted with a pulley three (152), a belt (132) is provided between the pulley one (134) and the pulley three (152), and the side wall of the pulley three (152) is integrally formed with a pulley four (153), and a belt (132) is also provided between the pulley four (153) and the pulley two (135).
5. The building stone cutting equipment with a smooth cut surface according to claim 4, characterized in that: The bottom of the support plate (11) is integrally formed with a rack (112) and a screw (113), and the rack (112) and the screw (113) are both slidably plugged into the bottom of the base (1). The bottom of the base (1) is rotatably mounted with a screw sleeve (114), and the screw sleeve (114) is rotatably mounted on the outside of the screw (113). The top of the screw sleeve (114) is provided with a locking groove (115). The bottom of the base (1) is slidably mounted with a locking bar (154), and the locking bar (154) A spring lock block 1 (116) is slidably mounted on the side wall, and the spring lock block 1 (116) and the lock groove (115) cooperate with each other. A gear 3 (151) is integrally formed on the side wall of the pulley 3 (152), and the gear 3 (151) and the rack 1 (112) are meshed with each other. A tooth surface 1 (156) is integrally formed on the top of the lock bar (154), and the tooth surface 1 (156) and the gear 3 (151) are meshed with each other. A spring 1 (155) is provided between the lock bar (154) and the side wall of the base (1).
Citation Information
Patent Citations
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