Horizontal vibrating screen for clean production of new materials
The technical field is as follows:
the utility model relates to a horizontal vibrating screen technical field specifically is a horizontal vibrating screen is used in new material cleaning production.
Background art:
in the existing electrolytic aluminum production process, the aluminum anode needs to be screened in the production process, and the quality of the anode, particularly the compressive strength and the rupture strength, are seriously affected if the material proportion of each grain size fraction does not meet the requirement, so that the requirement on the stability of the vibrating screen is high;
but current horizontal shale shaker for single level vibrates and sieves, sieves inefficiency, and inside filter screen direct mount in horizontal shale shaker to the filter screen is fixed knot structure, collides with the material in service, very easily causes the damage, increases cost of maintenance, and reduces production efficiency, for this reason, provides a new material horizontal shale shaker for clean production.
The utility model has the following contents:
an object of the utility model is to provide a new material is horizontal shale shaker for cleaner production to solve the problem that proposes among the above-mentioned background art.
The utility model discloses by following technical scheme implement: a horizontal vibrating screen for new material cleaning production comprises a vibrating screening assembly and a damping support assembly, wherein the vibrating screening assembly comprises a first shell, a first vibrating motor, a feeding pipe, a first discharging port, a second discharging port, a bearing, a second shell, a second vibrating motor, a connecting vibrating pipe, a vibrating pipe connecting plate, a sliding rail, a sliding block, a first connecting plate, a second connecting plate and a filter screen;
the lower surface welding of the first shell is provided with a first vibrating motor, the front surface of the first shell is provided with a second shell, the inner side wall welding of the second shell is provided with a second vibrating motor, the output shaft welding of the second vibrating motor is provided with a connecting vibrating tube, the outer side wall welding of the connecting vibrating tube is provided with a bearing, the outer side wall of the bearing penetrates through the inner side walls of the first shell and the second shell, the upper surface and the lower surface of the connecting vibrating tube are symmetrically welded with four second connecting plates, one side of the first shell, far away from the second shell, is provided with a vibrating tube connecting plate, one side of the connecting vibrating tube, far away from the second vibrating motor, is welded on one side of the vibrating tube connecting plate, the inner side wall of the first shell is symmetrically welded with four slide rails, the inner side wall of the slide rails is connected with slide blocks, and the first connecting plate is welded on one side adjacent to the two slide blocks, two the adjacent one side of second connecting plate welds in the front surface and the rear surface of first connecting plate, the internal thread of first connecting plate is connected with the filter screen.
As further preferable in the present technical solution: the upper surface of first casing runs through there is the inlet pipe, first discharge gate has been seted up to one side of first casing, the second discharge gate has been seted up to one side of first casing and the below that is located first discharge gate.
As further preferable in the present technical solution: the shock absorption support assembly comprises a support bottom plate, a first support column, a second support column, a pipe body, a rod body, a U-shaped damping plate, a spring, a through hole, a third connecting plate and a connecting rod;
the welding of the upper surface middle part of supporting baseplate has the body, the inside wall sliding connection of body has the body of rod, the upper surface of the body of rod welds in the lower surface of second casing, first vibrating motor's lower surface welds in supporting baseplate's upper surface.
As further preferable in the present technical solution: the upper surface of supporting baseplate and the symmetrical welding of one side that is located first vibrating motor have two first support columns, the upper surface of supporting baseplate and the symmetrical welding of opposite side that is located first vibrating motor have two second support columns, two first support column and two the connecting rod has all been welded to the adjacent one side of second support column.
As further preferable in the present technical solution: the equal symmetrical welding of upper surface of first support column and second support column has two springs, two the upper surface welding of spring has the third connecting plate, third connecting plate one side threaded connection is in the lateral wall of first casing.
As further preferable in the present technical solution: the upper surfaces of the first supporting column and the second supporting column are both bonded with U-shaped damping plates, and through holes matched with the springs are formed in the inner side walls of the U-shaped damping plates.
The utility model has the advantages that: the utility model discloses an install the filter screen on first connecting plate, borrow by the slider of connection on first connecting plate to slide in the slide rail, realize that the filter screen can be along with the same operation of vibration to reduce the impact that fixed collision brought, just be in the utility model discloses an outside has set up first vibrating motor, can give vertical vibration, increases the efficiency of sieving.
Description of the drawings:
in order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the drawings used in the description of the embodiments or the prior art will be briefly described below, it is obvious that the drawings in the following description are only some embodiments of the present invention, and for those skilled in the art, other drawings can be obtained according to these drawings without creative efforts.
Fig. 1 is a schematic structural view of the present invention;
FIG. 2 is a schematic side view of the present invention;
fig. 3 is a schematic view of the internal structure of the first housing of the present invention;
fig. 4 is a schematic top view of the first connecting plate according to the present invention.
In the figure: 1. vibrating the screen assembly; 101. a first housing; 102. a first vibration motor; 103. a feed pipe; 104. a first discharge port; 105. a second discharge port; 11. a bearing; 12. a second housing; 13. a second vibration motor; 14. connecting a vibrating tube; 15. a vibrating tube connecting plate; 16. a slide rail; 17. a slider; 18. a first connecting plate; 19. a second connecting plate; 20. a filter screen; 2. a shock-absorbing support assembly; 201. a support base plate; 21. a first support column; 22. a second support column; 23. a pipe body; 24. a rod body; 25. a U-shaped damping plate; 26. a spring; 27. a through hole; 28. a third connecting plate; 29. a connecting rod.
The specific implementation mode is as follows:
the technical solutions in the embodiments of the present invention will be described clearly and completely with reference to the accompanying drawings in the embodiments of the present invention, and it is obvious that the described embodiments are only some embodiments of the present invention, not all embodiments. Based on the embodiments in the present invention, all other embodiments obtained by a person skilled in the art without creative work belong to the protection scope of the present invention.
Examples
Referring to fig. 1-4, the present invention provides a technical solution: a horizontal vibrating screen for new material cleaning production comprises a vibrating screen assembly 1 and a damping support assembly 2, wherein the vibrating screen assembly 1 comprises a first shell 101, a first vibrating motor 102, a feeding pipe 103, a first discharging port 104, a second discharging port 105, a bearing 11, a second shell 12, a second vibrating motor 13, a connecting vibrating pipe 14, a vibrating pipe connecting plate 15, a sliding rail 16, a sliding block 17, a first connecting plate 18, a second connecting plate 19 and a filter screen 20;
the lower surface of the first shell 101 is welded with a first vibration motor 102, the front surface of the first shell 101 is provided with a second shell 12, the inner side wall of the second shell 12 is welded with a second vibration motor 13, the output shaft of the second vibration motor 13 is welded with a connecting vibration tube 14, the outer side wall of the connecting vibration tube 14 is welded with a bearing 11, the outer side wall of the bearing 11 penetrates through the inner side walls of the first shell 101 and the second shell 12, the upper surface and the lower surface of the connecting vibration tube 14 are symmetrically welded with four second connecting plates 19, one side of the first shell 101 far away from the second shell 12 is penetrated with a vibration tube connecting plate 15, one side of the connecting vibration tube 14 far away from the second vibration motor 13 is welded on one side of the vibration tube connecting plate 15, the inner side wall of the first shell 101 is symmetrically welded with four slide rails 16, the inner side walls of the slide rails 16 are slidably connected with slide blocks 17, one side adjacent to two slide blocks 17 is welded with a first connecting plate 18, two second connecting plates 19 are welded to the front and rear surfaces of the first connecting plate 18 at adjacent sides thereof, and a filter net 20 is screwed into the first connecting plate 18.
In this embodiment, specifically: the upper surface of first casing 101 has run through there is the inlet pipe 103, and first discharge gate 104 has been seted up to one side of first casing 101, and second discharge gate 105 has been seted up to one side of first casing 101 and the below that is located first discharge gate 104, through setting up inlet pipe 103, puts into first casing 101 inside with the material that will sieve, and the material that will sieve is discharged through setting up first discharge gate 104 and second discharge gate 105.
In this embodiment, specifically: the shock absorption support component 2 comprises a support bottom plate 201, a first support column 21, a second support column 22, a pipe body 23, a rod body 24, a U-shaped damping plate 25, a spring 26, a through hole 27, a third connecting plate 28 and a connecting rod 29;
the welding of the upper surface middle part of supporting baseplate 201 has body 23, and the inside wall sliding connection of body 23 has the body of rod 24, and the upper surface of the body of rod 24 welds the lower surface at second casing 12, and the lower surface of first vibrating motor 102 welds in the upper surface of supporting baseplate 201, through setting up the body of rod 24 at the inside slip of body 23, with the help of the elasticity of spring 26 to make first vibrating motor 102 normal operating.
In this embodiment, specifically: the upper surface of supporting baseplate 201 and the symmetrical welding in one side that is located first vibrating motor 102 have two first support columns 21, the upper surface of supporting baseplate 201 and the symmetrical welding in the opposite side that is located first vibrating motor 102 have two second support columns 22, two first support columns 21 and the adjacent welding in one side of two second support columns 22 have connecting rod 29, give the overall support through setting up first support column 21 and second support column 22, increase stability through connecting rod 29.
In this embodiment, specifically: the upper surfaces of the first supporting column 21 and the second supporting column 22 are symmetrically welded with two springs 26, the upper surfaces of the two springs 26 are welded with a third connecting plate 28, one side of the third connecting plate 28 is in threaded connection with the outer side wall of the first shell 101, and vibration of the first vibration motor 102 and the second vibration motor 13 is reduced by arranging the springs 26.
In this embodiment, specifically: first support column 21 has U type damping plate 25 with the upper surface of second support column 22 all bonds, and the through-hole 27 with spring 26 looks adaptation is seted up to the inside wall of U type damping plate 25, through the through-hole 27 that sets up U type damping plate 25, reduces spring 26's elastic deformation to increase the shock attenuation nature.
In this embodiment, a switch set for controlling the start and the stop of the first vibration motor 102 and the second vibration motor 13 is installed on one side of the first casing 101, and the switch set is connected with an external commercial power to supply power to the first vibration motor 102 and the second vibration motor 13.
In this embodiment: the first vibration motor 102 is of the type YZU-15-4.
In this embodiment: the second vibration motor 13 is of a type YZU-10-4.
Working principle or structural principle: when in use, an operator firstly turns on the first vibration motor 102 and the second vibration motor 13 in the second shell 12 through the switch group, the feeding pipe 103 is used for feeding materials into the first shell 101, the vibration surface of the second vibration motor 13 drives the connected connecting vibration pipe 14 to generate vibration, so that the second connecting plate 19 connected to the vibration connecting pipe 14 is interlocked, the slider 17 of the first connecting plate 18 slides inside the slide rail 16 to realize horizontal vibration of the first connecting plate 18, the first vibration motor 102 connected below the first casing 101 gives vertical vibration to the first casing 101, and the rod 24 slides inside the pipe 23 and the spring 26 is deformed, thereby normal operating increases the efficiency of sieving, utilizes spring 26 to weaken the vibration effect, and the deformation that spring 26 received is reduced to through-hole 27 on the U type damping plate 25, reinforcing shock attenuation effect.
The above description is only a preferred embodiment of the present invention, and should not be taken as limiting the invention, and any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention should be included in the protection scope of the present invention.