Disclosure of utility model
The utility model aims to solve the defects in the prior art and provides a glass lining stirrer with a secondary stirring structure.
In order to achieve the above purpose, the present utility model adopts the following technical scheme:
The utility model provides a glass lining agitator with secondary stirring structure, includes the agitator tank, the top surface of agitator tank is fixed with the motor, and the output shaft of motor extends to the inside of agitator tank, and the inside of agitator tank is provided with stirring subassembly, and stirring subassembly is including fixing the tertiary telescopic link at motor output shaft, and the outer wall of tertiary telescopic link is fixed with three stirring leaf.
As a further scheme of the utility model, a supporting plate is fixed on the inner wall of the stirring tank, a mounting groove is formed in the top surface of the supporting plate, a one-way bearing is fixed in the mounting groove, a reciprocating screw rod is fixed in the inner ring of the one-way bearing, a screw joint is fixed at the bottom end of a three-stage telescopic rod, the screw joint is in threaded connection with the reciprocating screw rod, a mounting frame is arranged on the outer wall of the three-stage telescopic rod, and a filter screen is fixed in the mounting frame.
As a further scheme of the utility model, the outer wall of the mounting frame is fixedly provided with a scraping strip, and the scraping strip is tightly attached to the inner wall of the stirring tank.
As a further scheme of the utility model, the mounting frame is rotationally connected with the outer wall of the three-stage telescopic rod through a bearing, two limiting rods are fixed in the stirring tank, two limiting grooves are formed in the outer wall of the mounting frame, and the limiting rods are slidably arranged in the limiting grooves.
As a further scheme of the utility model, the top surface of the stirring tank is communicated and fixed with a feeding pipe, the bottom surface of the stirring tank is of a funnel-shaped structure, and the bottom surface of the stirring tank is communicated and fixed with an electromagnetic discharge valve.
As a further scheme of the utility model, the length of the multifilament rod is two thirds of the depth of the inner cavity of the stirring tank, and the length of the multifilament rod is smaller than the maximum telescopic stroke of the three-stage telescopic rod.
Compared with the prior art, the utility model has the following beneficial effects:
Through setting up tertiary telescopic link as the main shaft of agitator, the reciprocal lead screw of rethread adoption one-way bearing connection and the screwed joint threaded connection of tertiary telescopic link bottom, make tertiary telescopic link when forward clockwise rotation, constantly drive the stirring leaf and mix the stirring to the inside material mixing of agitator tank, make the material carry out preliminary mixing, the material is after mixing, because the local saturation of material lower floor, when the material that leads to the material lower floor to appear the sediment, tertiary telescopic link is anticlockwise rotatory again, make reciprocal lead screw drive tertiary telescopic link constantly flexible, make the filter screen hold up the precipitate and repeatedly move between the upper and lower floor of material, make the unsaturated material intensive mixing of sediment and upper strata, thereby accomplish the secondary mixing stirring to the material, effectively avoided when quantitative mixing material, because of filtering out the material of sediment, lead to the mixing proportion and the unexpected of material, cause the poor problem of mixing effect of material.
Drawings
FIG. 1 is a schematic perspective view of a glass lining stirrer with a secondary stirring structure;
FIG. 2 is a schematic diagram of a schematic perspective sectional structure of a stirring tank of a glass lining stirrer with a secondary stirring structure;
FIG. 3 is a schematic perspective view of a glass lining stirrer with a secondary stirring structure at a supporting plate;
Fig. 4 is a schematic perspective view of a three-stage telescopic rod of a glass lining stirrer with a secondary stirring structure.
In the figure, 1, a stirring tank, 101, a motor, 2, a three-stage telescopic rod, 201, stirring blades, 202, a supporting plate, 203, an installation groove, 204, a one-way bearing, 205, a reciprocating screw rod, 206, a screw joint, 207, a mounting rack, 208, a filter screen, 3, a scraping strip, 4, a limiting rod, 401, a limiting groove and 5, and a feeding pipe.
Detailed Description
The utility model is further described in connection with the following detailed description, in order to make the technical means, the creation characteristics, the achievement of the purpose and the effect of the utility model easy to understand.
In the description of the present utility model, it should be noted that the directions or positional relationships indicated by the terms "upper", "lower", "inner", "outer", "front", "rear", "both ends", "one end", "the other end", etc. are based on the directions or positional relationships shown in the drawings, are merely for convenience of describing the present utility model and simplifying the description, and do not indicate or imply that the devices or elements referred to must have a specific direction, be configured and operated in the specific direction, and thus should not be construed as limiting the present utility model. Furthermore, the terms "first," "second," and the like, are used for descriptive purposes only and are not to be construed as indicating or implying relative importance.
In the description of the present utility model, unless explicitly stated or limited otherwise, the terms "mounted," "configured to," "connected," and the like are to be construed broadly as, for example, "connected" may be fixedly connected, may be detachably connected, or integrally connected, may be mechanically connected or electrically connected, may be directly connected or indirectly connected through an intermediate medium, and may be communication between two elements. The specific meaning of the above terms in the present utility model will be understood in specific cases by those of ordinary skill in the art.
As shown in fig. 1-4, a glass lining stirrer with secondary stirring structure comprises a stirring tank 1, wherein a motor 101 is fixed on the top surface of the stirring tank 1, an output shaft of the motor 101 extends to the inside of the stirring tank 1, a stirring assembly is arranged in the stirring tank 1 and comprises a three-stage telescopic rod 2 fixed on the output shaft of the motor 101, and three stirring blades 201 are fixed on the outer wall of the three-stage telescopic rod 2.
As shown in fig. 2-4, in this embodiment, the inner wall of the stirring tank 1 is fixed with the support plate 202, the mounting groove 203 is provided on the top surface of the support plate 202, the unidirectional bearing 204 is fixed in the mounting groove 203, the reciprocating screw rod 205 is fixed in the inner ring of the unidirectional bearing 204, the threaded joint 206 is fixed at the bottom end of the tertiary telescopic rod 2, the threaded joint 206 is in threaded connection with the reciprocating screw rod 205, the mounting bracket 207 is arranged on the outer wall of the tertiary telescopic rod 2, the filter screen 208 is fixed in the mounting bracket 207, the reciprocating screw rod 205 connected by the unidirectional bearing 204 is in threaded connection with the threaded joint 206 at the bottom end of the tertiary telescopic rod 2, so that the tertiary telescopic rod 2 continuously drives the stirring blade 201 to mix and stir the materials in the stirring tank 1 in a clockwise direction, and the materials are primarily mixed, after the materials are mixed, when the materials are locally saturated at the lower layer of the materials, the precipitated materials are caused, the tertiary telescopic rod 2 reversely rotates anticlockwise, the reciprocating telescopic rod 2 is driven to continuously stretch, the filter screen 208 is caused to support the upper layer of the materials, the upper layer of the filter screen 208 is used as the main shaft of the stirrer, the mixed materials are not saturated, the mixed materials are completely, and the mixed materials are not mixed completely, and the problem of the mixing effect is avoided is caused.
As shown in fig. 2-4, in this embodiment, the outer wall of the mounting frame 207 is fixed with the scraping strip 3, the scraping strip 3 is tightly attached to the inner wall of the stirring tank 1, and by setting the scraping strip 3, the scraping strip 3 can be driven to scrape the stirring tank 1 in the process of moving up and down the mounting frame 207, so as to scrape down the particulate material attached to the inner wall of the stirring tank 1, thereby ensuring the mixing effect of the materials.
As shown in fig. 2-4, in this embodiment, the mounting bracket 207 is rotatably connected with the outer wall of the tertiary telescopic rod 2 through a bearing, two limiting rods 4 are fixed in the stirring tank 1, two limiting grooves 401 are formed in the outer wall of the mounting bracket 207, the limiting rods 4 are slidably arranged in the limiting grooves 401, the mounting bracket 207 is rotatably connected with the outer wall of the tertiary telescopic rod 2, the limiting rods 4 are slidably arranged in the limiting grooves 401, the mounting bracket 207 can be limited, the mounting bracket 207 can be prevented from rotating along with the tertiary telescopic rod 2, excessive friction between the scraping strips 3 and the inner wall of the stirring tank 1 is caused, and the service life of the scraping strips 3 and the stirring tank 1 is reduced.
As shown in fig. 2-4, in this embodiment, the top surface of the stirring tank 1 is communicated with and fixed with a feeding tube 5, the bottom surface of the stirring tank 1 is of a funnel-shaped structure, the bottom surface of the stirring tank 1 is communicated with and fixed with an electromagnetic discharge valve, materials to be stirred and mixed can be added into the stirring tank 1 through the feeding tube 5, and the stirred and mixed materials can be discharged out of the stirring tank 1 through the electromagnetic discharge valve.
As shown in fig. 2-4, in this embodiment, the length of the reciprocating screw rod 205 is two-thirds of the depth of the inner cavity of the stirring tank 1, the length of the reciprocating screw rod 205 is also smaller than the maximum telescopic travel of the three-stage telescopic rod 2, by setting the length of the reciprocating screw rod 205 to be two-thirds of the depth of the inner cavity of the stirring tank 1, the filter screen 208 is ensured to mix and stir the precipitated material to the upper layer of the material, the mixing effect of the material is ensured, and the movement of the screw joint 206 is prevented from being limited by the three-stage telescopic rod 2 by the length of the reciprocating screw rod 205 being smaller than the maximum telescopic travel of the three-stage telescopic rod 2, so that the screw joint 206 cannot reciprocate.
From the above description, it can be seen that the above embodiment of the present utility model achieves the following technical effects that, in use, the feeding tube 5 adds the material to be mixed into the stirring tank 1, then the motor 101 is started to rotate clockwise and drive the three-stage telescopic rod 2 to rotate clockwise, and continuously drive the stirring vane 201 to mix and stir the material in the stirring tank 1, so as to mix the material initially, the reciprocating screw 205 rotates along with the three-stage telescopic rod 2 due to the unidirectional bearing 204, then the material is mixed, after the material is mixed, due to the local saturation of the lower layer of the material, when the material is caused to the precipitation, the motor 101 rotates anticlockwise and drives the three-stage telescopic rod 2 to rotate anticlockwise, at this time, the reciprocating screw 205 does not rotate along with the three-stage telescopic rod 2 any more, so that the reciprocating screw 205 and the screw joint 206 rotate relatively, so that the screw joint 206 moves up and down on the outer wall of the reciprocating screw 205, thereby driving the three-stage telescopic rod 2 to stretch out and draw down, so that the filter screen 208 supports the precipitate to mix and mix the material in the upper layer, so that the precipitated material and the upper layer of the lower layer of the stirring tank 2 are mixed together, and the scraper 3 can be fully connected with the inner wall 207, and the inner wall of the stirring tank 1 can be completely arranged along with the stirring tank 1, and the stirring tank 3 can be prevented from moving along with the stirring tank 1, and the 3 can be completely, and the stirring tank is set up by the inner wall of the stirring rod 3, and the stirring rod 3 can be completely through the stirring rod 3, and the stirring rod 3 can be completely and the stirring rod 3 through the stirring rod 3 and the stirring rod 3, the service life who causes scraping strip 3 and agitator tank 1 reduces, can add the material that needs stirring to mix to the inside of agitator tank 1 through filling tube 5, can discharge agitator tank 1 with the material after stirring mixing through the electromagnetism baiting valve, through setting up the length of reciprocating screw rod 205 for two-thirds of agitator tank 1 inner chamber degree of depth, guarantee that filter screen 208 can mix the stirring with the upper strata of holding in the palm of the material of sediment, guarantee the mixed effect of material, the length through reciprocating screw rod 205 still is less than the biggest flexible stroke of tertiary telescopic link 2, prevent that the removal of screwed joint 206 from receiving the restriction of tertiary telescopic link 2, cause screwed joint 206 unable reciprocating motion.
The foregoing has shown and described the basic principles and main features of the present utility model and the advantages of the present utility model. It will be understood by those skilled in the art that the present utility model is not limited to the embodiments described above, and that the above embodiments and descriptions are merely illustrative of the principles of the present utility model, and various changes and modifications may be made without departing from the spirit and scope of the utility model, which is defined in the appended claims. The scope of the utility model is defined by the appended claims and equivalents thereof.