Environment-friendly high titanium slag recovery crusher
Technical Field
The utility model relates to the technical field of crushing devices, in particular to an environment-friendly high-titanium slag recycling crusher.
Background
The high titanium slag is a titanium ore concentrate formed by a physical production process commonly called as titanium ore concentrate, titanium ore is melted by electric furnace heating, titanium dioxide and iron in the titanium ore are melted and separated to obtain the titanium oxide concentrate with high content, and the high titanium slag needs to be crushed into different granularities in the production and processing process of the high titanium slag so as to meet the production requirements.
A high-titanium slag crushing device with the publication number of CN218554196U comprises a machine body, two crushing rollers for crushing high-titanium slag are arranged in the machine body and located at the upper side and the lower side of the machine body, a box body with a hollow structure is arranged above a shell, the top end of a connecting pipe is inserted into the box body, fans for discharging dust are arranged at the two sides of the top surface of the box body, and the high-titanium slag is crushed through the plurality of rotating crushing rollers on one hand, and on the other hand, when the high-titanium slag is crushed, the fans drive airflow to flow, smoke dust in the machine body is sucked into a dust filter cylinder, the smoke dust can be intercepted and filtered under the action of the dust filter cylinder, the smoke dust and the like are prevented from being diffused into the air, meanwhile, the plurality of dust filter cylinders can rotate, and dust on the surface of the dust filter cylinder can be cleaned under the action of bristles, so that dust adhesion is prevented from affecting the filtering capacity of the dust filter cylinder.
Although the device can crush high titanium slag and can avoid the diffusion of smoke dust and the like into the air, the device does not have a filtering and screening mechanism, cannot recover and re-crush the incompletely crushed high titanium slag, and needs to be manually filtered and screened by a user and then re-crushed, so that the working efficiency of the user is lower.
Disclosure of utility model
The utility model aims to provide an environment-friendly high titanium slag recovery crusher so as to solve the problems in the background technology.
In order to achieve the above purpose, the present utility model provides the following technical solutions:
The utility model provides a breaker is retrieved to environment-friendly high titanium sediment, includes the shell, shell inner wall bottom is equipped with filtering mechanism, filtering mechanism is including the mounting box, the mounting box bottom passes through bolt fixed connection with shell inner wall bottom, the mounting box top is close to the position symmetry of left and right sides and has offered the guide inclined plane, mounting box inner wall rear side surface passes through bolt fixedly connected with driving motor, driving motor's output shaft coaxial coupling has the half gear, mounting box inner wall sliding connection has the slide, the slide top passes through bolt fixedly connected with rack, rack and half gear intermeshing, rack top runs through mounting box top and with mounting box sliding connection, the slope is provided with the filter in the shell, the slide top is close to the left side and is close to the position symmetry fixedly connected with spring of front and back both sides.
Preferably, the front end of the shell is provided with an opening, and the right end of the shell is provided with a discharge hole.
Preferably, the left side surface of the shell is fixedly connected with an L-shaped mounting frame through bolts, and the right side surface of a vertical beam of the L-shaped mounting frame is fixedly connected with a crushing motor through bolts.
Preferably, gears are symmetrically and rotationally connected to the left side surface of the shell and close to the front side and the rear side of the shell through bearings, and the gears close to the rear side of the shell are coaxially connected with an output shaft of the crushing motor.
Preferably, the right side surface of the inner wall of the shell and the positions close to the front side and the rear side are symmetrically and rotationally connected with crushing rollers through bearings, and the left ends of the crushing rollers penetrate through the left end of the shell and are fixedly connected with gears corresponding to the positions of the left ends of the crushing rollers through bolts.
Preferably, a feed back mechanism is arranged on the right side of the shell, the feed back mechanism comprises a feed back box, the left side surface of the feed back box is fixedly connected with the right side surface of the shell through bolts, and the left end of the feed back box is provided with a feed inlet.
Preferably, the left surface of the inner wall of the feed back box is fixedly connected with a discharge pipe through a bolt, and the left end of the discharge pipe sequentially penetrates through the left end of the feed back box and the right end of the shell and is led into the inner cavity of the shell.
Preferably, the top of the feed back box is fixedly connected with a rotating motor through a bolt, an output shaft of the rotating motor is coaxially connected with a mounting rod, the bottom end of the mounting rod penetrates through the top of the feed back box, and a spiral feeding plate is fixedly connected to the circumferential outer wall of the mounting rod through the bolt.
Preferably, the bottom of the filter plate is fixedly connected with the top of the rack through bolts, the surfaces of the left side and the right side of the filter plate are respectively attached to the surfaces of the left side and the right side of the inner wall of the shell, the positions, close to the left side and the right side, of the top of the filter plate are symmetrically provided with filter holes, and the filter holes are uniformly and equidistantly arranged.
Compared with the prior art, the utility model has the beneficial effects that:
1. According to the environment-friendly high-titanium slag recycling crusher, the filtering mechanism is arranged, so that the device can screen out incompletely crushed high-titanium slag;
2. According to the environment-friendly high titanium slag recycling crusher, the device can convey the incompletely crushed high titanium slag which is screened out to the position between the two crushing rollers for re-crushing by arranging the feed back mechanism.
Drawings
FIG. 1 is a schematic diagram of the overall structure of the present utility model;
FIG. 2 is a schematic cross-sectional view of the present utility model;
FIG. 3 is a schematic view of the structure of the crushing motor according to the present utility model;
FIG. 4 is a schematic diagram of a feed back mechanism according to the present utility model;
FIG. 5 is a schematic view of a filtering mechanism according to the present utility model;
Fig. 6 is a schematic cross-sectional view of the mounting box of the present utility model.
The meaning of each scale number in the figure is:
1. A housing; 11, an opening, 12, a discharge hole, 13, an L-shaped mounting rack, 14, a crushing motor, 15, a gear, 16 and a crushing roller;
2. A feed back mechanism; 21 parts of a feed returning box, 22 parts of a feed inlet, 23 parts of a discharge pipe, 24 parts of a rotating motor, 25 parts of a mounting rod, 26 parts of a spiral feeding plate;
3. A filtering mechanism; 31, an installation box, 32, a material guiding inclined plane, 33, a driving motor, 34, a half gear, 35, a sliding plate, 36, racks, 37, a filter plate, 38, a filter hole, 39 and a spring.
Detailed Description
The following description of the embodiments of the present utility model will be made clearly and completely with reference to the accompanying drawings, in which it is apparent that the embodiments described are only some embodiments of the present utility model, but not all embodiments. All other embodiments, which can be made by those skilled 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. 1-6, the present utility model provides a technical solution:
The utility model provides an environment-friendly high titanium slag recovery breaker, includes shell 1, and shell 1 front end has seted up opening 11 for be convenient for the user takes out broken high titanium slag completely, and shell 1 right-hand member has seted up discharge gate 12 for with broken incomplete high titanium slag leading-in feed inlet 22.
Specifically, the left side surface of the shell 1 is fixedly connected with an L-shaped mounting frame 13 through bolts, and the right side surface of a vertical beam of the L-shaped mounting frame 13 is fixedly connected with a crushing motor 14 through bolts and is used for driving a gear 15 close to the rear side to rotate.
Specifically, the left side surface of the shell 1 and the positions near the front side and the rear side are symmetrically and rotationally connected with gears 15 through bearings, the gears 15 near the rear side are coaxially connected with the output shaft of the crushing motor 14, and the two gears 15 are meshed with each other.
Specifically, the right side surface of the inner wall of the shell 1 and the positions close to the front side and the rear side are symmetrically and rotationally connected with crushing rollers 16 through bearings, and the left end of each crushing roller 16 penetrates through the left end of the shell 1 and is fixedly connected with a gear 15 corresponding to the left end of the shell through bolts so as to crush high titanium slag.
Further, a feed back mechanism 2 is arranged on the right side of the shell 1, the feed back mechanism 2 comprises a feed back box 21, the left side surface of the feed back box 21 is fixedly connected with the right side surface of the shell 1 through bolts, and a feed inlet 22 is formed in the left end of the feed back box 21 and used for guiding incompletely crushed high titanium slag into the feed back box 21.
Specifically, the left side surface of the inner wall of the feed back box 21 is fixedly connected with a discharge pipe 23 through bolts, the left end of the discharge pipe 23 sequentially penetrates through the left end of the feed back box 21 and the right end of the shell 1 and is led into the inner cavity of the shell 1, and the discharge pipe 23 is positioned above the two crushing rollers 16 and is used for guiding high titanium slag into the shell 1.
It is to be added that the top of the feed back box 21 is fixedly connected with a rotating motor 24 through a bolt, and is used for driving a mounting rod 25 to rotate, an output shaft of the rotating motor 24 is coaxially connected with the mounting rod 25, the bottom end of the mounting rod 25 penetrates through the top of the feed back box 21, and a spiral feeding plate 26 is fixedly connected to the circumferential outer wall of the mounting rod 25 through the bolt and is used for driving high titanium slag at the bottom of the inner cavity of the feed back box 21 to move upwards.
As the preference of this embodiment, the inner wall bottom of shell 1 is equipped with filtering mechanism 3, and filtering mechanism 3 includes mounting box 31, and mounting box 31 bottom and shell 1 inner wall bottom pass through bolt fixed connection, and the guide inclined plane 32 has been seted up to the position symmetry that is close to the left and right sides on mounting box 31 top, is used for preventing that high titanium sediment from falling to mounting box 31 top.
Specifically, the rear surface of the inner wall of the installation box 31 is fixedly connected with a driving motor 33 through bolts for driving a half gear 34 to rotate, and an output shaft of the driving motor 33 is coaxially connected with the half gear 34 for driving a rack 36 to move.
Specifically, the inner wall of the installation box 31 is slidably connected with a sliding plate 35 for compressing a spring 39, the top of the sliding plate 35 is fixedly connected with a rack 36 through a bolt, the rack 36 is meshed with the half gear 34, and the top end of the rack 36 penetrates through the top end of the installation box 31 and is slidably connected with the installation box 31 for driving the filter plate 37 to move.
Specifically, a filter plate 37 is obliquely arranged in the shell 1, the bottom of the filter plate 37 is fixedly connected with the top of the rack 36 through bolts, the surfaces on the left side and the right side of the filter plate 37 are respectively attached to the surfaces on the left side and the right side of the inner wall of the shell 1, the positions, close to the left side and the right side, of the top of the filter plate 37 are symmetrically provided with filter holes 38, and the filter holes 38 are uniformly and equidistantly arranged and are used for filtering out completely crushed high titanium slag and guiding the incompletely crushed high titanium slag to the discharge hole 12.
Specifically, springs 39 are symmetrically and fixedly connected to the top of the slide 35 near the left side and near the front and rear sides, so as to define the position of the slide 35.
It should be noted that, the structure and the working principle of the crushing roller 16 in this embodiment are the same as those known to those skilled in the art, and are not described herein.
In the specific use process, a user firstly turns on the driving motor 33, the driving motor 33 drives the half gear 34 to rotate, so that the rack 36 is driven to move upwards, the filter plate 37 is driven to move upwards, in the process, the rack 36 drives the slide plate 35 to move upwards, and the slide plate 35 compresses the two springs 39;
Until the teeth on the half gear 34 are no longer engaged with the rack 36, the two springs 39 start to restore the original length, so that the slide plate 35 is driven to move downwards, so that the rack 36 is driven to move downwards, the filter plate 37 is driven to move downwards, and until the teeth on the half gear 34 are engaged with the rack 36 again, the half gear 34 drives the rack 36 to move upwards again, and in the process, the filter plate 37 reciprocates up and down;
A user pours high titanium slag to be crushed into the top of the shell 1, the crushing motor 14 is turned on, the crushing motor 14 drives the gear 15 close to the rear side to rotate, so that the gear 15 close to the front side is driven to rotate, and the two gears 15 respectively drive the two crushing rollers 16 to rotate, so that the high titanium slag is crushed;
The crushed high titanium slag falls to the top of the filter plate 37, the crushed complete high titanium slag falls from the filter holes 38, the incompletely crushed high titanium slag is guided to the discharge hole 12 by the inclined filter plate 37 and is guided to the feed inlet 22 by the discharge hole 12, and the incompletely crushed high titanium slag is guided to the feed return box 21 by the feed inlet 22;
the rotating motor 24 is turned on, the rotating motor 24 drives the mounting rod 25 to rotate, and the spiral feeding plate 26 is driven to rotate, so that high titanium slag in the feed back box 21 is driven to move upwards, and the high titanium slag is led into the shell 1 by the discharge pipe 23 and falls between the two crushing rollers 16 to be crushed again until the high titanium slag moves to the same height as the discharge pipe 23.
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. The scope of the utility model is defined by the appended claims and equivalents thereof.