Equipment for treating stone waste
Technical Field
The invention relates to a waste treatment device, in particular to a stone waste treatment device.
Background
With the improvement of the quality of life, people pursue the quality of life more and more, solid wood furniture and marble floor tiles are more and more embodied in the existing houses, the certain process is needed for processing the rear of the gorgeous floor tiles, but if the residual waste materials of the cut and formed stone materials are not recycled, a large amount of stone materials are wasted, and therefore the equipment for treating the stone material waste materials is invented.
Disclosure of Invention
The invention relates to waste treatment equipment, in particular to stone waste treatment equipment.
In order to solve the technical problem, the invention relates to a waste treatment device, in particular to a waste treatment device for stone materials, which comprises an installation supporting plate, a crushing device, a screening device, a circulating device and a grinding device, wherein the crushing device is used for crushing stone materials, the screening device is used for secondarily crushing crushed materials after crushing, screening and separating the crushed materials, the circulating device is used for crushing the crushed materials with unqualified sizes again in the circulating crushing device, and the grinding device is used for grinding the crushed materials and has the following functions: the crushing device is fixedly installed on the screening device, the screening device is fixedly installed on the installation supporting plate, the circulating device is fixedly installed on the installation supporting plate and the screening device, and the grinding device is fixedly installed on the screening device.
As a further optimization of the technical scheme, the crushing device for the stone waste treatment equipment comprises a crushing cylinder, a mounting frame, a first mounting frame, a rotating shaft, a crushing cutter, a rotating cylinder, a second crushing cutter, a rotating gear, a transmission shaft and a transmission gear, wherein the mounting frame is fixedly installed inside the crushing cylinder, the first mounting frame is fixedly installed inside the crushing cylinder, the rotating shaft is rotatably installed on the mounting frame and the first mounting frame, the crushing cutter is fixedly installed on the rotating shaft, the rotating cylinder is rotatably installed inside the crushing cylinder, the second crushing cutter is fixedly installed on the rotating cylinder, the rotating gear is fixedly installed on the rotating shaft, the transmission shaft is rotatably installed on the first mounting frame, the transmission gear is fixedly installed on the transmission shaft, and the transmission gear is respectively meshed with the rotating.
As a further optimization of the technical scheme, the screening device for the stone waste treatment equipment comprises a screening box, a feeding port, a discharging port, a coarse material circulating port, a screen plate power cavity, a third rotating shaft, a crushing roller, a receiving belt wheel, a sliding block, a spring mounting rod, a spring, a motor, a bevel gear, a third transmission shaft, a receiving bevel gear, a third transmission gear, a fourth transmission shaft, a fourth transmission gear, an output belt wheel, a transmission belt, a tensioning cylinder, a sliding plate, a third spring, a connecting rod, a tensioning belt wheel mounting seat, a tensioning belt wheel, a screen plate, a connecting plate for connecting a T-shaped lower tooth surface, a swinging annular tooth panel, a second motor, a second output gear, a second transmission belt, a receiving gear mounting frame, a second receiving gear, a swinging rod and a supporting rod, wherein the crushing cylinder is fixedly mounted on the screening box, the screening box is fixedly, the discharge port is arranged on the screening box, the coarse material circulation port is arranged on the screening box, the sieve plate power cavity is arranged on the screening box, the rotating shaft III is rotatably arranged on a sliding block, the crushing roller is fixedly arranged on the rotating shaft III, the receiving belt wheel is fixedly arranged on the rotating shaft III, the sliding block is slidably arranged in the screening box, the spring mounting rod is fixedly arranged on the sliding block, the spring is sleeved on the spring mounting rod, the motor is fixedly arranged on the screening box, the bevel gear is fixedly arranged on the motor, the transmission shaft III is rotatably arranged on the screening box, the receiving bevel gear is fixedly arranged on the transmission shaft III, the receiving bevel gear is meshed with the bevel gear, the transmission gear III is fixedly arranged on the transmission shaft III, the transmission shaft IV is rotatably arranged on the screening box, the transmission gear IV is fixedly arranged on the transmission shaft IV, the transmission belt is arranged on the receiving belt wheel, the output belt wheel and the tensioning belt wheel, the tensioning cylinder is arranged and fixed on the screening box, the sliding plate is arranged in the tensioning cylinder in a sliding manner, the spring III is sleeved on the connecting rod, the connecting rod is arranged and fixed on the sliding plate, the tensioning belt wheel mounting seat is arranged and fixed on the connecting rod, the tensioning belt wheel is rotatably arranged on the tensioning belt wheel mounting seat, the screening plate is arranged in the screening box in a sliding manner, the connecting plate for connecting the T-shaped lower tooth surface is arranged and fixed on the screening plate, the connecting plate for connecting the T-shaped lower tooth surface is meshed with the swinging annular tooth surface plate, the swinging annular tooth surface plate is rotatably arranged in the power cavity of the screening plate, the motor II is arranged and fixed in the power cavity of the screening plate, the output gear II is arranged and fixed on the motor II, the transmission belt II, the swing rod is fixedly arranged on the second receiving gear, the swing rod is slidably arranged on the swing annular gear panel, and the support rod is fixedly arranged on the mounting support plate.
As a further optimization of the technical scheme, the circulating device for the stone waste treatment equipment comprises a circulating cylinder, a receiving pipe, a discharging pipe, a fourth supporting rod, a motor mounting column, a fourth motor, a fourth driving shaft and a pushing spiral plate, wherein the circulating cylinder is fixedly mounted on the fourth supporting rod, the receiving pipe is fixedly mounted on a coarse material circulating port, the receiving pipe is fixedly mounted on the circulating cylinder, the discharging pipe is fixedly mounted on the circulating cylinder, the fourth supporting rod is fixedly mounted on a mounting supporting plate, the motor mounting column is fixedly mounted on the mounting supporting plate, the fourth motor is fixedly mounted on the motor mounting column, the fourth driving shaft is rotatably mounted on the circulating cylinder, the fourth driving shaft is fixedly mounted on the fourth motor, and the pushing spiral plate is fixedly mounted on the fourth driving shaft.
As a further optimization of the technical scheme, the grinding device for the stone waste treatment equipment comprises a motor five, a bevel gear five, a reciprocating rotating shaft five, a half bevel gear one, a half bevel gear two, a fixed feeding cylinder, a fixed pipe, a spring five, a sliding plate five, a connecting rod five, a rotating shaft six, a grinding roller, a transmission shaft five, a transmission gear five, a grinding shell, an inner gear ring and a discharge grinding hole, wherein the motor five is fixedly installed on an installation supporting plate through an installation column, the bevel gear five is fixedly installed on the motor five, the reciprocating rotating shaft five is fixedly installed on the fixed feeding cylinder in a rotating mode, the half bevel gear one is fixedly installed on the reciprocating rotating shaft five, the half bevel gear two is fixedly installed on the reciprocating rotating shaft five, the fixed feeding cylinder is fixedly installed on a discharge port, the fixed pipe is fixedly installed on the reciprocating rotating shaft five, and the spring five is slidably installed inside the, the grinding device comprises a grinding shell, a grinding roller, a transmission shaft, a transmission gear, a grinding shell and a discharging grinding hole, wherein the grinding shell is rotatably arranged on the grinding shell, the transmission gear is fixedly arranged on the transmission shaft, the transmission gear is respectively meshed with the reciprocating rotation shaft and the inner toothed ring, the grinding shell is rotatably arranged on the reciprocating rotation shaft, the.
As a further optimization of the technical scheme, the rotating shaft of the crushing device for the stone waste treatment equipment is provided with a matched motor, six crushing knives are provided, and three crushing knives are provided.
As a further optimization of the technical scheme, the screening device for the stone waste treatment equipment has two rotating shafts three, two crushing rollers and two receiving belt wheels, four sliding blocks, four spring mounting rods and four springs, two driving shafts four, two transmission gears four, two output belt wheels, two transmission belts, two tensioning cylinders, two sliding plates, two springs three, two connecting rods, two tensioning belt wheel mounting seats and two tensioning belt wheels, and two connecting plates for connecting the T-shaped lower tooth surface and two oscillating annular tooth panels.
The stone waste treatment equipment has the beneficial effects that:
the invention relates to waste treatment equipment, in particular to stone waste treatment equipment which realizes the functions of crushing stone waste through a crushing device, secondarily crushing crushed materials through a screening device, screening and separating the crushed materials, crushing the crushed materials with unqualified sizes again through a circulating device in a circulating crushing device, grinding the crushed materials through a grinding device and the like.
Drawings
The invention is described in further detail below with reference to the accompanying drawings and specific embodiments.
Fig. 1 is a schematic view of the overall structure of the present invention.
Fig. 2 is a schematic view of the overall structure of the present invention.
Fig. 3 is a third schematic view of the overall structure of the present invention.
Fig. 4 is a first structural schematic diagram of the crushing device of the invention.
Fig. 5 is a schematic structural diagram of a crushing device of the invention.
Fig. 6 is a first structural schematic diagram of the screening apparatus of the present invention.
Fig. 7 is a schematic structural diagram of a screening apparatus according to the present invention.
Fig. 8 is a third schematic structural diagram of the screening apparatus of the present invention.
Fig. 9 is a fourth schematic structural diagram of the screening apparatus of the present invention.
Fig. 10 is a schematic structural diagram of a screening device according to the present invention.
Fig. 11 is a sixth schematic structural view of the screening apparatus of the present invention.
Fig. 12 is a seventh schematic structural view of the screening device of the present invention.
FIG. 13 is a first schematic structural diagram of a circulation device according to the present invention.
FIG. 14 is a second schematic structural diagram of a circulation device according to the present invention.
FIG. 15 is a first schematic structural diagram of a polishing apparatus according to the present invention.
FIG. 16 is a second schematic structural view of a polishing apparatus according to the present invention.
In the figure: installing a support plate 1; a crushing device 2; 2-1 of a crushing cylinder; a mounting frame 2-2; mounting frame I2-3; 2-4 of a rotating shaft; 2-5 parts of a crushing cutter; 2-6 of a rotary drum; 2-7 parts of a second crushing knife; 2-8 of a rotating gear; 2-9 parts of a transmission shaft; 2-10 of transmission gear; a screening device 3; 3-1 of a screening box; a feed port 3-2; 3-3 of a discharge port; 3-4 of a coarse material circulating port; 3-5 sieve plate power cavities; rotating a third shaft by 3-6; 3-7 parts of a crushing roller; receiving belt wheels 3-8; 3-9 of a sliding block; 3-10 parts of a spring mounting rod; 3-11 parts of a spring; 3-12 of a motor; bevel gears 3-13; a third transmission shaft 3-14; receiving bevel gears 3-15; a third transmission gear 3-16; a transmission shaft IV 3-17; drive gear four 3-18; an output pulley 3-19; 3-20 parts of a transmission belt; 3-21 parts of a tensioning cylinder; sliding plates 3-22; 3-23 parts of a spring; connecting rods 3-24; tensioning belt wheel mounting seats 3-25; 3-26 of a tension belt wheel; 3-27 parts of sieve plate; connecting T-shaped lower tooth surface connecting plates 3-28; swing ring-shaped toothed plates 3-29; 3-30 parts of a second motor; a second output gear 3-31; 3-32 parts of a second transmission belt; receiving the gear mounting 3-33; receiving gears two 3-34; 3-35 of a swing rod; 3-36 parts of a support rod; a circulation device 4; 4-1 of a circulating cylinder; a receiving pipe 4-2; a discharge pipe 4-3; 4-4 parts of a support rod; 4-5 of a motor mounting column; 4-6 of a motor; 4-7 parts of a driving shaft; 4-8 parts of pushing spiral plate; a grinding device 5; 5-1 of a motor; 5-2 parts of a bevel gear; 5-3 parts of a reciprocating rotating shaft; 5-4 parts of a half bevel gear I; 5-5 parts of a half bevel gear II; 5-6 parts of a fixed feeding cylinder; 5-7 parts of a fixed pipe; 5-8 parts of a spring; a sliding plate five 5-9; 5-10 parts of a connecting rod V; a rotating shaft six is 5-11; 5-12 parts of grinding roller; 5-13 parts of a transmission shaft; 5-14 parts of a transmission gear; 5-15 parts of grinding shell; 5-16 parts of an inner gear ring; discharging and grinding holes 5-17.
Detailed Description
The first embodiment is as follows:
in order to solve the above technical problems, the present invention relates to a waste treatment apparatus, and more particularly to a waste treatment apparatus for stone, including an installation support plate 1, a crushing device 2, a screening device 3, a circulating device 4, and a grinding device 5, wherein the crushing device crushes stone waste, the screening device secondarily crushes crushed materials and screens and separates the crushed materials, the circulating device secondarily crushes the crushed materials with unqualified size in the circulating crushing device, and the grinding device grinds the crushed materials, and is characterized in that: the crushing device 2 is fixedly installed on the screening device 3, the screening device 3 is fixedly installed on the installation supporting plate 1, the circulating device 4 is fixedly installed on the installation supporting plate 1 and the screening device 3, and the grinding device 5 is fixedly installed on the screening device 3.
The second embodiment is as follows:
the embodiment is described below with reference to fig. 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, and 16, and the embodiment further describes the embodiment, where the crushing device 2 includes a crushing cylinder 2-1, a mounting frame 2-2, a mounting frame one 2-3, a rotating shaft 2-4, a crushing knife 2-5, a rotating cylinder 2-6, a crushing knife two 2-7, a rotating gear 2-8, a transmission shaft 2-9, and a transmission gear 2-10, the crushed material to be processed is added into the crushing cylinder 2-1 of the crushing device 2, then a motor matching with the rotating shaft 2-4 drives the rotating shaft 2-4 to rotate, the rotating shaft 2-4 drives the crushing knife 2-5 to rotate, the rotating shaft 2-4 drives the rotating gear 2-8 to rotate, the transmission gear 2-8 drives the transmission gear 2-10 to rotate, the transmission gear 2-10 drives the rotary drum 2-6 to rotate, the rotary drum 2-6 drives the crushing knife II 2-7 to rotate, the crushing knife II 2-7 and the crushing knife 2-5 rotate in opposite directions, the mounting rack 2-2 is fixedly arranged inside the crushing drum 2-1, the mounting rack I2-3 is fixedly arranged inside the crushing drum 2-1, the rotary shaft 2-4 is rotatably arranged on the mounting rack 2-2 and the mounting rack I2-3, the crushing knife 2-5 is fixedly arranged on the rotary shaft 2-4, the rotary drum 2-6 is rotatably arranged inside the crushing drum 2-1, the crushing knife II 2-7 is fixedly arranged on the rotary drum 2-6, the rotary gear 2-8 is fixedly arranged on the rotary shaft 2-4, the transmission shaft 2-9 is rotatably arranged on the first mounting frame 2-3, the transmission gear 2-10 is fixedly arranged on the transmission shaft 2-9, and the transmission gear 2-10 is respectively meshed with the rotating cylinder 2-6 and the rotating gear 2-8.
The third concrete implementation mode:
the embodiment is described below with reference to fig. 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15 and 16, and the embodiment is further described, wherein the screening device 3 comprises a screening box 3-1, a feed inlet 3-2, a discharge outlet 3-3, a coarse material circulation outlet 3-4, a screen plate power cavity 3-5, a rotating shaft three 3-6, a crushing roller 3-7, a receiving belt wheel 3-8, a sliding block 3-9, a spring mounting rod 3-10, a spring 3-11, a motor 3-12, a bevel gear 3-13, a transmission shaft three 3-14, a receiving bevel gear 3-15, a transmission gear three 3-16, a transmission shaft four 3-17, a transmission gear four 3-18, an output belt wheel 3-19, a motor 3-12, a bevel gear 3-13, a transmission shaft three 3-14, 3-20 parts of a transmission belt, 3-21 parts of a tensioning cylinder, 3-22 parts of a sliding plate, 3-23 parts of a spring, 3-24 parts of a connecting rod, 3-25 parts of a tensioning belt wheel mounting seat, 3-26 parts of a tensioning belt wheel, 3-27 parts of a sieve plate, 3-28 parts of a connecting plate for connecting a T-shaped lower tooth surface, 3-29 parts of a swinging annular tooth panel, 3-30 parts of a motor, 3-31 parts of an output gear, 3-32 parts of a transmission belt, 3-33 parts of a receiving gear mounting frame, 3-34 parts of a receiving gear, 3-35 parts of a swinging rod and 3-36 parts of a supporting rod, wherein the crushed materials fall into a screening box 3-1 part of a screening device 3, then the motor 3-12 drives 3-13 parts of a bevel gear, the bevel gear 3-13 drives 3-15 parts of the, a transmission shaft III 3-14 drives a transmission gear III 3-16 to rotate, the transmission gear III 3-16 drives a transmission gear IV 3-18 to rotate, the transmission gear IV 3-18 drives a transmission shaft IV 3-17 to rotate, the transmission shaft IV 3-17 drives an output belt wheel 3-19 to rotate, the output belt wheel 3-19 drives a receiving belt wheel 3-8 to rotate through a transmission belt 3-20, the receiving belt wheel 3-8 drives a rotation shaft III 3-6 to rotate, the rotation shaft III 3-6 drives a crushing roller 3-7 to rotate, the two crushing rollers 3-7 rotate oppositely to extrude crushed materials, when the crushed materials are too hard, the crushing roller 3-7 moves towards two ends, the crushing roller 3-7 drives a sliding block 3-9 to move and then compresses a spring 3-11, and in order to keep the sliding plate 3-22 in a tensioning cylinder 3-21 of the transmission belt 3-20 to generate sliding force The compression amount of the position changing springs 3-23 can also be changed, the sliding plates 3-22 change the positions of the tensioning belt wheels 3-26 on the tensioning belt wheel installation seats 3-25 through the connecting rods 3-24 to tension the transmission belts 3-20, then the motors 3-30 drive the output gears 3-31 to rotate, the output gears 3-31 drive the receiving gears 3-34 to rotate through the transmission belts 3-32, the receiving gears 3-34 drive the swinging rods 3-35 to rotate around the centers of the output gears 3-31, the swinging rods 3-35 drive the swinging annular gear panels 3-29 to swing in a reciprocating mode, the swinging annular gear panels 3-29 drive the connecting plates 3-28 connected with the T-shaped lower gear surfaces to move in a reciprocating mode, and the connecting plates 3-28 connected with the T-shaped lower gear surfaces drive the swinging rods 3-27 to move the crushed aggregates with qualified sizes to fall into the grinding device 5 in a reciprocating mode In the grinding shell 5-15, in order to enter crushed aggregates passing through a sieve plate 3-27 into a receiving pipe 4-2 of a circulating device 4 along the sieve plate 3-27, a crushing cylinder 2-1 is fixedly arranged on a screening box 3-1, the screening box 3-1 is fixedly arranged on a support rod 3-36, a feed inlet 3-2 is arranged on the screening box 3-1, a discharge outlet 3-3 is arranged on the screening box 3-1, a coarse material circulating port 3-4 is arranged on the screening box 3-1, a sieve plate power cavity 3-5 is arranged on the screening box 3-1, a rotating shaft III 3-6 is rotatably arranged on a sliding block 3-9, a crushing roller 3-7 is fixedly arranged on a rotating shaft III 3-6, a receiving belt wheel 3-8 is fixedly arranged on the rotating shaft III 3-6, a sliding block 3-9 is slidably arranged inside a screening box 3-1, a spring mounting rod 3-10 is fixedly arranged on the sliding block 3-9, a spring 3-11 is sleeved on the spring mounting rod 3-10, a motor 3-12 is fixedly arranged on the screening box 3-1, a bevel gear 3-13 is fixedly arranged on the motor 3-12, a transmission shaft three 3-14 is rotatably arranged on the screening box 3-1, a receiving bevel gear 3-15 is fixedly arranged on a transmission shaft three 3-14, the receiving bevel gear 3-15 is meshed with the bevel gear 3-13, a transmission gear three 3-16 is fixedly arranged on the transmission shaft three 3-14, a transmission shaft four 3-17 is rotatably arranged on the screening box 3-1, and a transmission gear four 3-18 is fixedly arranged on a transmission shaft four 3-17, a transmission gear IV 3-18 is meshed with a transmission gear III 3-16, an output belt wheel 3-19 is fixedly arranged on a transmission shaft IV 3-17, a transmission belt 3-20 is arranged on a receiving belt wheel 3-8, an output belt wheel 3-19 and a tensioning belt wheel 3-26, a tensioning cylinder 3-21 is fixedly arranged on a screening box 3-1, a sliding plate 3-22 is slidably arranged in the tensioning cylinder 3-21, a spring III 3-23 is sleeved on a connecting rod 3-24, the connecting rod 3-24 is fixedly arranged on the sliding plate 3-22, a tensioning belt wheel mounting seat 3-25 is fixedly arranged on the connecting rod 3-24, the tensioning belt wheel 3-26 is rotatably arranged on a tensioning belt wheel mounting seat 3-25, a screen plate 3-27 is slidably arranged in the screening box 3-1, connecting T-shaped lower tooth surface connecting plates 3-28 are fixedly arranged on the sieve plates 3-27, the connecting T-shaped lower tooth surface connecting plates 3-28 are meshed with swinging annular tooth panels 3-29, the swinging annular tooth panels 3-29 are rotatably arranged in the sieve plate power cavities 3-5, motors 3-30 are fixedly arranged in the sieve plate power cavities 3-5, output gears 3-31 are fixedly arranged on the motors 3-30, transmission belts 3-32 are arranged on the output gears 3-31 and receiving gears 3-34, receiving gear mounting frames 3-33 are fixedly arranged in the sieve plate power cavities 3-5, receiving gears 3-34 are rotatably arranged on the receiving gear mounting frames 3-33, swinging rods 3-35 are fixedly arranged on the receiving gears 3-34, the swing rods 3-35 are slidably arranged on the swing annular toothed panels 3-29, and the support rods 3-36 are fixedly arranged on the installation support plate 1.
The fourth concrete implementation mode:
the embodiment is described below with reference to fig. 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, and 16, and the embodiment further describes the embodiment, where the circulating device 4 includes a circulating cylinder 4-1, a receiving pipe 4-2, a discharging pipe 4-3, a supporting rod four 4-4, a motor mounting column 4-5, a motor four 4-6, a driving shaft four 4-7, and a pushing spiral plate 4-8, the motor four 4-6 drives the driving shaft four 4-7 to rotate, the driving shaft four 4-7 drives the pushing spiral plate 4-8 to rotate, the rotating pushing spiral plate 4-8 cooperates with the circulating cylinder 4-1 to return the crushed aggregates to the crushing cylinder 2-1 through the discharging pipe 4-3, and the above processes are repeated, the circulating cylinder 4-1 is fixedly arranged on a supporting rod four 4-4, the receiving pipe 4-2 is fixedly arranged on a coarse material circulating opening 3-4, the receiving pipe 4-2 is fixedly arranged on the circulating cylinder 4-1, the discharging pipe 4-3 is fixedly arranged on the circulating cylinder 4-1, the supporting rod four 4-4 is fixedly arranged on a mounting supporting plate 1, a motor mounting column 4-5 is fixedly arranged on the mounting supporting plate 1, a motor four 4-6 is fixedly arranged on a motor mounting column 4-5, a driving shaft four 4-7 is rotatably arranged on the circulating cylinder 4-1, the driving shaft four 4-7 is fixedly arranged on the motor four 4-6, and a material pushing spiral plate 4-8 is fixedly arranged on the driving shaft four 4-7.
The fifth concrete implementation mode:
the embodiment is described below with reference to fig. 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, and 16, and the embodiment further describes the embodiment, where the grinding device 5 includes a motor five 5-1, a bevel gear five 5-2, a reciprocating rotation shaft five 5-3, a half bevel gear one 5-4, a half bevel gear two 5-5, a fixed feed cylinder 5-6, a fixed pipe 5-7, a spring five 5-8, a sliding plate five 5-9, a connecting rod five 5-10, a rotation shaft six 5-11, a grinding roller 5-12, a transmission shaft five 5-13, a transmission gear five 5-14, a grinding housing 5-15, an inner gear ring 5-16, and a discharge grinding hole 5-17, the motor five 5-1 of the grinding device 5 drives the bevel gear five 5-2 to rotate, when the bevel gear five 5-2 is meshed with the half bevel gear 5-4, the half bevel gear 5-4 is enabled to rotate forwards, when the bevel gear five 5-2 is meshed with the half bevel gear two 5-5, the half bevel gear 5-5 is enabled to rotate backwards, the bevel gear five 5-2 enables the reciprocating rotating shaft five 5-3 to rotate in a reciprocating mode through the half bevel gear one 5-4 and the half bevel gear two 5-5, the reciprocating rotating shaft five 5-3 enables the fixed feeding cylinder 5-6 to rotate in a reciprocating mode, the fixed feeding cylinder 5-6 enables the grinding roller 5-12 to rotate in a reciprocating mode through the connecting rod five 5-10, then the spring five 5-8 pushes the connecting rod five 5-10 outwards through the sliding plate five 5-9, the connecting rod five 5-10 enables the grinding roller 5-12 to cling to the grinding shell 5-15, then the reciprocating rotating shaft five 5-3 drives the inner gear ring 5-16 to rotate in a reciprocating manner through the transmission gear five 5-14, the inner gear ring 5-16 drives the grinding shell 5-15 to rotate in a reciprocating manner and the rotating direction of the grinding roller 5-12 is opposite to that of the grinding roller so that grinding is more sufficient and then the grinding is discharged from the discharge grinding hole 5-17, the motor five 5-1 is fixedly installed on the installation supporting plate 1 through an installation column, the bevel gear five 5-2 is fixedly installed on the motor five 5-1, the reciprocating rotating shaft five 5-3 is fixedly installed on the fixed feeding cylinder 5-6, the half bevel gear one 5-4 is fixedly installed on the reciprocating rotating shaft five 5-3, the half bevel gear two 5-5 is fixedly installed on the reciprocating rotating shaft five 5-3, the fixed feeding cylinder 5-6 is fixedly installed on the discharge hole 3-3, the fixed pipe 5-7 is fixedly arranged on a five reciprocating rotating shaft 5-3, the spring five 5-8 is slidably arranged in the fixed feeding cylinder 5-6, the sliding plate five 5-9 is slidably arranged in the fixed feeding cylinder 5-6, the connecting rod five 5-10 is fixedly arranged on the sliding plate five 5-9, the rotating shaft six 5-11 is rotatably arranged on the connecting rod five 5-10, the grinding roller 5-12 is fixedly arranged on the rotating shaft six 5-11, the transmission shaft five 5-13 is rotatably arranged on the fixed feeding cylinder 5-6, the transmission gear five 5-14 is fixedly arranged on the transmission shaft five 5-13, the transmission gear five 5-14 is respectively meshed with the five reciprocating rotating shaft 5-3 and the inner toothed ring 5-16, the grinding shell 5-15 is rotatably arranged on the five reciprocating rotating shaft 5-3, the inner gear ring 5-16 is fixed on the grinding shell 5-15, and the discharging grinding hole 5-17 is arranged on the grinding shell 5-15.
The sixth specific implementation mode:
the present embodiment is described below with reference to fig. 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, and 16, and the present embodiment further describes an embodiment two, in which the rotating shaft 2-4 of the crushing device 2 is provided with a matching motor, the number of the crushing blades 2-5 is six, and the number of the crushing blades 2-7 is three.
The seventh embodiment:
this embodiment mode will be described with reference to fig. 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15 and 16, and this embodiment mode will further describe embodiment mode three, the screening device is characterized in that the number of the rotating shaft three 3-6, the number of the crushing roller 3-7 and the number of the receiving belt wheels 3-8 are two, the number of the sliding block 3-9, the number of the spring mounting rod 3-10 and the number of the spring 3-11 are four, the number of the transmission shaft four 3-17, the number of the transmission gear four 3-18, the number of the output belt wheel 3-19, the number of the transmission belt 3-20, the number of the tensioning cylinder 3-21, the number of the sliding plate 3-22, the number of the spring three 3-23, the number of the connecting rod 3-24, the number of the tensioning belt wheel mounting seat 3-25 and the number of the tensioning belt wheel 3-26 are two, and the number of the connecting.
The working principle of the invention is as follows:
a working principle for stone waste treatment equipment is that before use, whether the connection condition between the devices meets the requirements is checked, crushed materials to be treated are added into a crushing cylinder 2-1 of a crushing device 2, then a matching motor of a rotating shaft 2-4 drives the rotating shaft 2-4 to rotate, the rotating shaft 2-4 drives a crushing cutter 2-5 to rotate, the rotating shaft 2-4 drives a rotating gear 2-8 to rotate, the rotating gear 2-8 drives a transmission gear 2-10 to rotate, the transmission gear 2-10 drives a rotating cylinder 2-6 to rotate, the rotating cylinder 2-6 drives a crushing cutter two 2-7 to rotate, the rotating directions of the crushing cutter two 2-7 and the crushing cutter 2-5 are opposite, and the crushed materials fall into a screening box 3-1 of a screening device 3, then the motor 3-12 drives the bevel gear 3-13 to rotate, the bevel gear 3-13 drives the receiving bevel gear 3-15 to rotate, the receiving bevel gear 3-15 drives the transmission shaft three 3-14 to rotate, the transmission shaft three 3-14 drives the transmission gear three 3-16 to rotate, the transmission gear three 3-16 drives the transmission gear four 3-18 to rotate, the transmission gear four 3-18 drives the transmission shaft four 3-17 to rotate, the transmission shaft four 3-17 drives the output belt wheel 3-19 to rotate, the output belt wheel 3-19 drives the receiving belt wheel 3-8 to rotate through the transmission belt 3-20, the receiving belt wheel 3-8 drives the rotating shaft three 3-6 to rotate, the rotating shaft three 3-6 drives the crushing roller 3-7 to rotate, and the two crushing rollers 3-7 rotate oppositely to extrude crushed aggregates, when the crushed aggregates are too hard, the crushing roller 3-7 moves towards two ends, meanwhile, the crushing roller 3-7 drives the sliding block 3-9 to move and then compresses the spring 3-11, in order to keep the position of the sliding plate 3-22 in the tensioning cylinder 3-21 of the transmission belt 3-20 to change the compression amount, the sliding plate 3-22 changes the position of the tensioning belt wheel 3-26 on the tensioning belt wheel mounting seat 3-25 through the connecting rod 3-24 to tension the transmission belt 3-20, then the motor II 3-30 drives the output gear II 3-31 to rotate, the output gear II 3-31 drives the receiving gear II 3-34 to rotate through the transmission belt II 3-32, the receiving gear II 3-34 drives the swinging rod 3-35 to rotate around the center of the output gear II 3-31, the swinging rods 3-35 push the swinging annular gear panels 3-29 to swing in a reciprocating manner, the swinging annular gear panels 3-29 push the connecting plates 3-28 connected with the T-shaped lower gear faces to move in a reciprocating manner, the connecting plates 3-28 connected with the T-shaped lower gear faces drive the sieve plates 3-27 to move in a reciprocating manner to enable the crushed aggregates with qualified sizes to fall into the grinding shell 5-15 of the grinding device 5, the crushed aggregates passing through the sieve plates 3-27 enter the receiving pipe 4-2 of the circulating device 4 along the sieve plates 3-27, then the motor IV 4-6 drives the driving shaft IV 4-7 to rotate, the driving shaft IV 4-7 drives the pushing spiral plates 4-8 to rotate, the rotating pushing spiral plates 4-8 are matched with the circulating cylinder 4-1 to return the crushed aggregates to the crushing cylinder 2-1 through the discharge pipe 4-3, repeating the process, driving the bevel gear five 5-2 to rotate by the motor five 5-1 of the grinding device 5, enabling the half bevel gear one 5-4 to rotate positively when the bevel gear five 5-2 is meshed with the half bevel gear one 5-4, enabling the half bevel gear two 5-5 to rotate reversely when the bevel gear five 5-2 is meshed with the half bevel gear two 5-5, enabling the reciprocating rotating shaft five 5-3 to rotate in a reciprocating manner by the bevel gear five 5-2 through the half bevel gear one 5-4 and the half bevel gear two 5-5, enabling the fixed feeding cylinder 5-6 to rotate in a reciprocating manner by the reciprocating rotating shaft five 5-3 which rotates in a reciprocating manner, enabling the grinding roller 5-12 to rotate in a reciprocating manner by the fixed feeding cylinder 5-6 through the connecting rod five 5-10, then pushing the connecting rod five 5-10 outwards by the spring five 5-8 through the sliding plate five 5-9, the connecting rod five 5-10 enables the grinding roller 5-12 to be tightly attached to the grinding shell 5-15, then the reciprocating rotating shaft five 5-3 drives the inner toothed ring 5-16 to rotate in a reciprocating mode through the transmission gear five 5-14, the inner toothed ring 5-16 drives the grinding shell 5-15 to rotate in a reciprocating mode, and the rotating direction of the grinding roller 5-12 is opposite to the rotating direction of the grinding roller 5-12, so that grinding is more sufficient and then the grinding roller is discharged from the discharging grinding hole 5-17.
It is to be understood that the above description is not intended to limit the present invention, and the present invention is not limited to the above examples, and that various changes, modifications, additions and substitutions which are within the spirit and scope of the present invention and which may be made by those skilled in the art are also within the scope of the present invention.