Spraying table with water flow cyclic utilization function
Technical Field
The utility model relates to the technical field of copper wire treatment, in particular to a spraying table with water flow recycling.
Background
Copper line is used in each field widely because its good electrical conductivity and heat conductivity, when handling the copper line through the processing platform, need use spray set to spray the copper line, get rid of copper line surface dirty dirt to follow-up processing is convenient for, but current is because the impurity adhesion on copper line surface is firm, and is only limited through rivers washing effect, often still leaves partial residual impurity on copper line surface after washing, and is limited to the clearance effect of copper line, consequently, we release a spraying platform with rivers cyclic utilization.
In the prior art, the utility model patent CN219464146U discloses a copper wire treatment table with a spraying function, which comprises a treatment table, a water storage cavity and a spraying mechanism, wherein one side of the treatment table is provided with a deflection mechanism extending into the treatment table. This kind of copper line processing table with function sprays, deflection mechanism through setting up, brush yoke, at the motor during operation, the output of motor drives three pivots and the first half gear in outside under the effect of belt pulley, belt rotates for three second half gear and inboard back shaft rotate together, make at first half gear and the in-process of second half gear contact and separation, can make shower nozzle, brush yoke do reciprocal deflection motion, thereby can enlarge the spray area, improve the efficiency of spraying dust removal, dirt removal, can realize the clear brush to copper line surface dust, dirt through the brush yoke simultaneously, thereby can further improve cleaning performance.
However, the prior art has the following problems that 1, when the existing spraying table is used, refractory impurities on the surface of a copper wire are cleaned through the brush frame matched with the spray nozzle, but the brush frame only swings back and forth above the copper wire, the cleaning area is limited, cleaning dead angles exist, 2, the existing spraying table can recycle spraying water, but impurities flushed from the copper wire can be accumulated on a filter screen, the filter screen is blocked by the impurities on the long filter screen, the water draining speed is influenced, the copper wire is required to be cleaned manually, the manual labor amount is increased, and the copper wire treatment speed is reduced.
Disclosure of utility model
The utility model aims to provide a spraying table with water flow recycling function, so as to solve the problems in the background technology.
The spray table with the water flow recycling function comprises a shell, wherein a spray assembly is arranged on the inner wall of one side of the shell, the bottom of one side of the spray assembly is meshed with one side of a driving assembly, a filtering assembly is arranged in the middle of the driving assembly, a water pump is fixedly connected to the bottom of the inner side of the shell, one side of the water pump is communicated with one end of a water pipe, the other end of the water pipe is connected with the top end of the spray assembly, a bin gate is arranged at the bottom of one side of the shell, the spray assembly comprises a rotary cylinder and a spray frame which are respectively arranged on the inner wall of one side of the shell, the top end of the rotary cylinder is communicated with a hose, a water storage cavity is formed in the middle of the rotary cylinder, a plurality of spray pipes and a plurality of cleaning brushes are respectively arranged in the middle of the spray frame, and a gear ring is fixedly connected to the outer side of one end of the rotary cylinder.
Preferably, one end of the spray pipes close to the central axis of the spray frame is communicated with a spray head, the middle parts of the spray pipes are movably connected with a rotating ball, and one end of the spray pipes far away from the spray frame is welded with a water inlet ball.
Preferably, the water inlet ball is movably connected in the inner ring wall of the rotary cylinder, and a water inlet hole is formed in the surface of the part of the water inlet ball, which is positioned in the water storage cavity.
Preferably, the central axes of the rotary cylinder and the spray frame coincide, one end of the rotary cylinder is rotationally connected with the inner wall of one side of the shell, and the spray frame is welded with the inner wall of the shell.
Preferably, the driving assembly comprises a motor fixedly connected to one side of the shell, and an output end of the motor sequentially penetrates through the shell, the main bevel gear and the rotating disc.
Preferably, one side of the rotating disc far away from the motor is rotationally connected with a connecting rod through a connecting shaft, and one end of the connecting rod is rotationally connected with a rack through the connecting shaft.
Preferably, the rack is slidably connected to the middle part of the guide rod, the guide rod is fixedly connected between the inner walls of the shell, and the rack is meshed with the gear ring.
Preferably, one side of the main bevel gear is meshed with a secondary bevel gear, the middle part of the secondary bevel gear is fixedly connected with a reciprocating screw rod, and one end of the reciprocating screw rod, which is far away from the secondary bevel gear, is rotationally connected with the inner wall of the shell.
Preferably, the filtering component comprises two sundry tanks fixedly connected to the inner walls of the two sides of the shell, a filter screen is arranged between the two sundry tanks, and a plurality of water draining holes are formed in the bottom surfaces of the two sundry tanks.
Preferably, the top surface laminating of filter screen has the removal scraper blade, the top of removal scraper blade is connected with reciprocating block, swing joint between reciprocating block and the reciprocating screw, the middle part of removal scraper blade is run through there is the gag lever post, weld between the both ends of gag lever post and the both sides inner wall of shell.
Compared with the prior art, the utility model has the following beneficial effects:
1. The rotary drum is driven to rotate reciprocally at a small angle through the driving assembly, at the moment, the rotary drum can drive the internal spray head to swing reciprocally to flush the surface of the copper wire, meanwhile, under the driving of the external traction mechanism, the copper wire can gradually pass through the rotary drum, friction can be generated between the copper wire and the cleaning brush when the copper wire moves, so that stubborn impurities on the surface of the copper wire are brushed off, and the cleaning brush and the spray head are distributed outside the copper wire at equal angles, so that the surface of the copper wire can be flushed comprehensively, and the effect of removing the impurities is more comprehensive;
2. The impurity accumulated on the surface of the filter screen is cleaned through the movable scraping plate in the filter assembly, the impurity is pushed into impurity grooves on two sides to be temporarily stored, the accumulated impurity on the filter screen is prevented from being excessive to influence the filtering speed, after spraying is finished, the bin gate is opened to uniformly clean the impurity in the impurity grooves, when water flow sprayed by copper wires falls into the upper part of the filter screen, the impurity in the water flow can be intercepted by the filter screen, filtered water flow can fall into the bottom of the shell through the filter assembly, the water pump at the bottom of the inner side of the shell pumps the water flow into a hose through the water pipe again, and finally the water flow enters the water storage cavity to be sprayed out again through the spray head, so that the water flow is recycled.
Drawings
FIG. 1 is a schematic view of a partial front view in cross section of a three-dimensional structure of the present utility model;
FIG. 2 is a schematic diagram of a front perspective structure of the present utility model;
FIG. 3 is a schematic diagram of a front cross-sectional perspective structure of the present utility model;
FIG. 4 is a schematic view of a left-hand cross-sectional perspective structure of the present utility model;
FIG. 5 is a schematic top perspective view of the drive assembly of the present utility model;
FIG. 6 is a schematic diagram of a front cross-sectional perspective view of a spray assembly of the present utility model;
FIG. 7 is an enlarged perspective view of the structure of the present utility model at A in FIG. 6;
fig. 8 is an enlarged perspective view of the structure of fig. 7 at B according to the present utility model.
In the figure, 1, a shell, 2, a spraying assembly, 201, a rotary cylinder, 202, a spraying frame, 203, a hose, 204, a water storage cavity, 205, a spraying pipe, 206, a cleaning brush, 207, a gear ring, 208, a spray head, 209, a rotary ball, 2010, a water inlet ball, 3, a driving assembly, 301, a motor, 302, a main bevel gear, 303, a rotary disk, 304, a connecting rod, 305, a rack, 306, a guide rod, 307, a secondary bevel gear, 308, a reciprocating screw, 4, a filtering assembly, 401, a sundry tank, 402, a filter screen, 403, a movable scraper, 404, a reciprocating block, 405, a limiting rod, 5, a water pump, 6, a water pipe, 7 and a bin gate.
Detailed Description
The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings and specific embodiments, and it is apparent that the described embodiments are only some embodiments of the present utility model, not all embodiments. All other embodiments, which can be made by a person of ordinary skill in the art based on the embodiments of the utility model without making any inventive effort, are intended to be within the scope of the utility model.
Referring to fig. 1 to 8, the present utility model provides the following technical solutions:
A spray table with water flow recycling comprises a shell 1, wherein a spray assembly 2 is arranged on the inner wall of one side of the shell 1, one side bottom of the spray assembly 2 is meshed with one side of a driving assembly 3, a filtering assembly 4 is arranged in the middle of the driving assembly 3, a water pump 5 is fixedly connected to the bottom of the inner side of the shell 1, one side of the water pump 5 is communicated with one end of a water pipe 6, the other end of the water pipe 6 is connected with the top end of the spray assembly 2, a bin gate 7 is arranged at the bottom of one side of the shell 1, the driving assembly 3 improves power for the copper wire spray device, the filtering assembly 4 filters impurities in cleaning water, the water pump 5 pumps water below the filtering assembly 4 into a rotary cylinder 201 in the spray assembly 2 through the water pipe 6, and the water pump is sprayed out of a spray head 208 again to recycle water flow.
In this embodiment, as shown in fig. 1, 3, 6, 7 and 8, the spray assembly 2 includes a rotary drum 201 and a spray frame 202 respectively disposed on one side inner wall of the casing 1, the top end of the rotary drum 201 is connected with a hose 203, a water storage cavity 204 is disposed in the middle of the rotary drum 201, a plurality of spray pipes 205 and a plurality of cleaning brushes 206 are disposed in the middle of the spray frame 202, a gear ring 207 is fixedly connected to the outer side of one end of the rotary drum 201, the central axes of the rotary drum 201 and the spray frame 202 coincide, one end of the rotary drum 201 is rotationally connected with one side inner wall of the casing 1, the spray frame 202 is welded with one side inner wall of the casing 1, the rotary drum 201 is driven to reciprocate by the gear ring 207, and the rotary drum 201 rotates to drive the spray pipes 205 and the cleaning brushes 206 to synchronously rotate, so as to change angles of spraying and brushing, thereby copper wires passing through the middle of the rotary drum 201 are cleaned, the cleaning brushes 206 are distributed in equal angles, and the copper wires covered on the surface of the copper wires at the axis of the rotary drum 201 are brushed.
In this embodiment, as shown in fig. 6, 7 and 8, one end of a plurality of spray pipes 205 close to the central axis of the spray rack 202 is communicated with a spray head 208, the middle part of the plurality of spray pipes 205 is movably connected with a rotary ball 209, one end of the plurality of spray pipes 205 far away from the spray rack 202 is welded with a water inlet ball 2010, the water inlet ball 2010 is movably connected in the inner ring wall of the rotary cylinder 201, and a water inlet hole is formed in a part of the surface of the water inlet ball 2010 located in the water storage cavity 204, water in the water storage cavity 204 can enter the water inlet ball 2010, then flows into the spray pipes 205 from the water inlet ball 2010 and finally is sprayed out from a spray head 208 at the end part of the spray pipes 205, so that impurities on the surface of copper wires are washed, and under the action of the rotary ball 209, the spray pipes 205 can move with the rotary ball 209 as a midpoint when moving along with the rotary cylinder 201, so that the spray heads 208 at the end part of the spray pipes 205 are reciprocally swung and washed.
In this embodiment, as shown in fig. 1 and 5, the driving assembly 3 includes a motor 301 fixedly connected to one side of the housing 1, a main bevel gear 302 and a rotating disc 303 sequentially penetrate through the output end of the motor 301, one side of the rotating disc 303 away from the motor 301 is rotationally connected with a connecting rod 304 through a connecting shaft, one end of the connecting rod 304 is rotationally connected with a rack 305 through the connecting shaft, the rack 305 is slidingly connected to the middle part of a guide rod 306, the guide rod 306 is fixedly connected between the inner wall of the housing 1, the rack 305 is meshed with the gear ring 207, the rotating disc 303 is driven by the motor 301 to rotate, the rotating disc 303 drives the rack 305 to reciprocate along the axial direction of the guide rod 306 by the connecting rod 304, at this time, the rack 305 drives the engaged gear ring 207 to reciprocate, so that the rotating cylinder 201 can drive a water inlet ball 2010 at the end of the inner spray pipe 205 to reciprocate, at this time, the spray pipe 205 moves with the middle rotary ball 209 as a rotary pivot, and the nozzle 208 at the other end of the spray pipe 205 reciprocates in the opposite direction to the water inlet ball 2010, thereby flushing copper wire.
In this embodiment, as shown in fig. 1 and 5, one side of the main bevel gear 302 is meshed with the auxiliary bevel gear 307, the middle part of the auxiliary bevel gear 307 is fixedly connected with the reciprocating screw 308, one end of the reciprocating screw 308 away from the auxiliary bevel gear 307 is rotationally connected with the inner wall of the housing 1, when the motor 301 rotates, the main bevel gear 302 can be simultaneously driven to rotate, when the main bevel gear 302 rotates, the reciprocating screw 308 is driven to rotate through the auxiliary bevel gear 307, and when the reciprocating screw 308 rotates, the moving scraper 403 in the filter assembly 4 is driven to move.
In this embodiment, as shown in fig. 1, fig. 4 and fig. 5, the filtering component 4 includes two sundries tanks 401 fixedly connected to inner walls of two sides of the housing 1, a filter screen 402 is disposed between the two sundries tanks 401, a plurality of water draining holes are disposed on bottom surfaces of the two sundries tanks 401, a moving scraper 403 is attached to top surfaces of the filter screen 402, top portions of the moving scraper 403 are connected with a reciprocating block 404, the reciprocating block 404 is movably connected with the reciprocating screw 308, a limit rod 405 penetrates through middle portions of the moving scraper 403, two ends of the limit rod 405 are welded with inner walls of two sides of the housing 1, the reciprocating screw 308 is driven to rotate by the driving component 3, the reciprocating screw 308 drives the reciprocating block 404 to make reciprocating rectilinear motion along the reciprocating screw 308, at this moment, the reciprocating block 404 drives the moving scraper 403 below to clean up impurities accumulated on surfaces of the filter screen 402 back and forth, the impurities are pushed into the sundries tanks 401 on two sides to temporarily store, the impurities accumulated on the filter screen 402 are prevented from influencing filtering speed, and after finishing, the impurities in the sundries tanks 401 are uniformly cleaned by opening the bin door 7.
As shown in fig. 1 to 8, the working process of the spraying table with water flow recycling according to the utility model is as follows:
Firstly, pass the middle part of shell 1 with the copper line, make copper line coincide with the axis of rotary drum 201, then start drive assembly 3 and drive rotary drum 201 and carry out the reciprocal rotation of low-angle, rotary drum 201 can drive inside shower nozzle 208 and carry out reciprocal swing and wash the copper line surface this moment, simultaneously under outside traction mechanism's drive, the copper line can pass gradually in from rotary drum 201, can rub with cleaning brush 206 when the copper line removes, thereby brush the intractable impurity on copper line surface, because of cleaning brush 206 and shower nozzle 208 equal angular distribution are in the copper line outside, consequently can carry out comprehensive washing to the copper line surface, the effect of getting rid of impurity is more comprehensive, remove the impurity through the removal scraper blade 403 in the filter module 4 to filter screen 402 surface pile up impurity and clear up, push impurity in the debris groove 401 of both sides temporarily store, prevent that the impurity of piling up on the filter screen 402 from excessively influencing the filtration rate, after the spraying, open the storehouse door 7 to unified clearance of impurity in the debris groove 401.
The foregoing has shown and described the basic principles, principal features and advantages of the utility model. It will be understood by those skilled in the art that the present utility model is not limited to the above-described embodiments, and that the above-described embodiments and descriptions are only preferred embodiments of the present utility model, and are not intended to limit the utility model, and that various changes and modifications may be made therein without departing from the spirit and scope of the utility model as claimed.