Mixing mechanism for glass glaze production
Technical Field
The utility model relates to the technical field of glass glaze production and mixing, in particular to a mixing mechanism for glass glaze production.
Background
The glass glaze is an industrial material, and after the glaze is roasted, the glass glaze is bright in color, high in hardness, and suitable for surface decoration of glass wine bottles in softening temperature, expansion coefficient and other properties.
The glass glaze is prepared by mixing colored Liu and fluxing agent and stirring the colored Liu and the fluxing agent into paste with scraper oil (binder), so that the mixing operation is critical during glass glaze production, the production quality and efficiency of the glass glaze are directly influenced, the traditional mixing unidirectional stirring structure has lower stirring efficiency, and based on the lower stirring efficiency, the purpose of further improving the mixing operation efficiency of the glass glaze is realized.
Disclosure of utility model
The utility model aims to solve the problems in the background and provides a mixing mechanism for glass glaze production.
The utility model provides a mixing mechanism for glass glaze production, which comprises a tank body structure and a mixing component, wherein the tank body structure consists of a mixing tank main body, a feed inlet and a discharge outlet, the feed inlet is fixed on one side of the top of the mixing tank main body, the discharge outlet is fixed in the middle of the bottom of the mixing tank main body, the feed inlet and the discharge outlet are communicated with the inner side of the mixing tank main body, the mixing component is distributed on the top and the inner side of the mixing tank main body, and the mixing component comprises an upper stirring unit and a lower stirring unit;
the upper stirring unit is used for stirring the upper layer of the raw material in the circumferential direction;
The lower stirring unit is used for scattering and stirring the lower layer of the raw materials and is used for realizing the mutual flow mixing of the raw materials at the lower layer and the upper and lower raw materials.
As a still further proposal of the utility model, the upper stirring unit comprises a driving motor, a central rotating shaft, a connecting arm, a driven gear, a connecting rotating shaft, an n-type stirring rod and a fixed inner gear ring;
The driving motor is fixed in the middle of the top of the mixing tank main body, and the central rotating shaft is connected to the output end of the driving motor and penetrates through the inner side of the mixing tank main body;
The fixed inner gear ring is fixed at the top of the inner wall of the mixing tank main body, the connecting arm is fixed at the position, close to the top of the inner wall of the mixing tank main body, of the outer side of the driving motor, the connecting rotating shaft is fixed at the bottom of the driven gear and is rotationally connected with the connecting arm, the bottom of the connecting rotating shaft penetrates to the lower part of the connecting arm to be fixedly connected with the n-type stirring rod, and the driven gear is meshed with the inner teeth of the fixed inner gear ring;
The driving motor drives the connecting arm, the driven gear and the connecting rotating shaft to circumferentially run, and the fixed inner gear ring limits the connecting arm which circumferentially runs to realize the autorotation of the connecting arm, the driven gear and the connecting rotating shaft, so as to realize the full stirring of the upper layer of the raw materials.
As a still further scheme of the utility model, the lower stirring unit comprises a connecting rod, a fixed straight cylinder and a horn cylinder;
The connecting rod is fixed on the outer side of the driving motor and is close to the bottom of the inner wall of the mixing tank main body, the fixed straight cylinder is fixed on one side of the connecting rod, and the horn cylinder is fixed on one end of the fixed straight cylinder;
The inner diameter of one end of the horn barrel far away from the fixed straight barrel is larger than the inner side of the fixed straight barrel, and the large-caliber port of the horn barrel faces to the rotating directions of the fixed straight barrel and the horn barrel;
the mixed liquid entering the fixed straight cylinder from the large-caliber port of the horn cylinder realizes the accelerated flow, flows out through the rear end of the fixed straight cylinder and forms turbulent flow at the rear end of the fixed straight cylinder.
As a still further scheme of the utility model, a plurality of circumferentially distributed spiral blades are also fixed on the inner side of one end of the horn barrel far away from the fixed straight barrel, and the middle parts of the spiral blades are fixedly connected.
As a still further proposal of the utility model, a plurality of groups of connecting arms, driven gears, connecting rotating shafts and n-shaped stirring rods are uniformly arranged in a ring shape by taking a central rotating shaft as a center;
And the connecting rods, the fixed straight cylinders and the horn cylinders are annularly and uniformly provided with a plurality of groups by taking the central rotating shaft as a center.
Compared with the prior art, the utility model has the beneficial effects that:
Through setting up the mixing subassembly, can realize the stirring of the upper and lower floor of mixed liquor in step, but simultaneously flow each other between the upper and lower floor mixed liquor, compare in one-way stirring structure, whole mixing efficiency is faster, the mixture is more even.
Drawings
FIG. 1 is a schematic diagram of the structure of the present utility model;
FIG. 2 is a structural cross-sectional view of the interior of the mixing tank body of the present utility model;
FIG. 3 is a cutaway exploded view of the present utility model;
Fig. 4 is a structural distribution diagram of parts of a mixing assembly according to the present utility model.
In the figure, 1, a tank structure, 101, a mixing tank main body, 102, a feed inlet, 103, a discharge outlet, 2, a mixing component, 201, a driving motor, 202, a central rotating shaft, 203, a connecting arm, 204, a driven gear, 205, a connecting rotating shaft, 206, an n-type stirring rod, 207, a fixed annular gear, 208, a connecting rod, 209, a fixed straight cylinder, 210, a horn cylinder, 211 and a helical blade.
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 to 4, in an embodiment of the present utility model, a mixing mechanism for glass frit production includes a tank structure 1 composed of a mixing tank main body 101, a feed inlet 102, and a discharge outlet 103, and a mixing assembly 2, wherein the feed inlet 102 is fixed on one side of the top of the mixing tank main body 101, the discharge outlet 103 is fixed in the middle of the bottom of the mixing tank main body 101, and both the feed inlet 102 and the discharge outlet 103 are communicated with the inner side of the mixing tank main body 101, the mixing assembly 2 is distributed on the top and the inner side of the mixing tank main body 101, and the mixing assembly 2 includes an upper stirring unit and a lower stirring unit;
the upper stirring unit is used for stirring the upper layer of the raw material in the circumferential direction;
The lower stirring unit is used for scattering and stirring the lower layer of the raw materials and realizing the mutual flow mixing of the lower layer raw materials and the upper and lower raw materials;
The upper stirring unit comprises a driving motor 201, a central rotating shaft 202, a connecting arm 203, a driven gear 204, a connecting rotating shaft 205, an n-type stirring rod 206 and a fixed inner gear ring 207;
the driving motor 201 is fixed in the middle of the top of the mixing tank main body 101, and the central rotating shaft 202 is connected to the output end of the driving motor 201 and penetrates through the inner side of the mixing tank main body 101;
The fixed inner gear ring 207 is fixed on the top of the inner wall of the mixing tank main body 101, the connecting arm 203 is fixed on the outer side of the driving motor 201 at a position close to the top of the inner wall of the mixing tank main body 101, the connecting rotating shaft 205 is fixed on the bottom of the driven gear 204 and is rotationally connected with the connecting arm 203, the bottom of the connecting rotating shaft 205 penetrates through the lower part of the connecting arm 203 to be fixedly connected with the n-type stirring rod 206, and the driven gear 204 is meshed with the inner teeth of the fixed inner gear ring 207;
the driving motor 201 drives the connecting arm 203, the driven gear 204 and the connecting rotating shaft 205 to circularly run, and the fixed inner gear ring 207 limits the connecting arm 203 which circularly runs to realize the autorotation of the connecting arm 203, the driven gear 204 and the connecting rotating shaft 205, so as to realize the full stirring of the upper layer of the raw materials;
The lower stirring unit comprises a connecting rod 208, a fixed straight cylinder 209 and a horn cylinder 210;
The connecting rod 208 is fixed on the outer side of the driving motor 201 and is close to the bottom of the inner wall of the mixing tank main body 101, the fixed straight cylinder 209 is fixed on one side of the connecting rod 208, and the horn cylinder 210 is fixed on one end of the fixed straight cylinder 209;
The inner diameter of one end of the horn barrel 210 far away from the fixed straight barrel 209 is larger than the inner side of the fixed straight barrel 209, and the large-caliber port of the horn barrel 210 faces to the rotation directions of the fixed straight barrel 209 and the horn barrel 210;
The mixed liquid entering the fixed straight cylinder 209 from the large-caliber port of the horn cylinder 210 realizes the accelerated flow, flows out through the rear end of the fixed straight cylinder 209 and forms turbulent flow at the rear end of the fixed straight cylinder 209;
The inner side of one end of the horn 210 far away from the fixed straight cylinder 209 is also fixed with a plurality of circumferentially distributed helical blades 211, and the middle parts of the helical blades 211 are fixedly connected.
In this embodiment, when the glass glaze is produced and mixed uniformly, the corresponding raw materials can be poured into the mixing tank main body 101 through the feed inlet 102 according to the corresponding raw material installation proportion, wherein the liquid raw materials are firstly put in, the driving motor 201 can be started to stir after the liquid raw materials are put in, and then the powdery raw materials are synchronously poured, and the mixing and stirring principle is as follows:
the driving motor 201 drives the central rotating shaft 202 to rotate, the central rotating shaft 202 drives the connecting arm 203 and the connecting rod 208 to synchronously rotate, wherein the connecting arm 203 drives the driven gear 204, the connecting rotating shaft 205 and the n-type stirring rod 206 to circumferentially run, the driven gear 204 rotates under the limiting action of the fixed annular gear 207, so that the n-type stirring rod 206 circumferentially runs and rotates, the bottom end of the n-type stirring rod 206 is inserted below the liquid level, and the rotating n-type stirring rod 206 agitates the upper layer area of the raw materials, so that the powdery raw materials floating above the liquid level are scattered, and the powdery raw materials can be rapidly mixed with the liquid raw materials;
In addition, the connecting rod 208 drives the fixed straight cylinder 209 and the horn cylinder 210 to rotate circumferentially, the raw material mixed liquid in the lower layer area enters the fixed straight cylinder 209 through the horn cylinder 210, in the process, along with the reduction of the inner diameter of the channel, the flow speed of the mixed liquid is increased, when the rapidly flowing mixed liquid flows out from the rear end through the fixed straight cylinder 209, the mixed liquid is blocked by the mixed liquid in the rear end area, turbulence occurs, in addition, by the arrangement of the helical blades 211, the mixed liquid can also have a rotating flow effect when entering the inside of the horn cylinder 210, thereby further enhancing the turbulence effect, not only realizing the mutual mixing of the mixed liquid in the area, but also enabling the mixed liquid in the area to diffuse to the periphery, so that the mixed liquid in the upper layer and the lower layer form mutual flow, and the layering condition is avoided;
Through the cooperation of above a plurality of parts, can realize the stirring of the upper and lower floor of mixed solution in step, but simultaneously flow each other between the upper and lower floor mixed solution, compare in one-way stirring structure, whole mixing efficiency is faster, the mixing is more even.
Referring to fig. 1 to 4, a plurality of groups of connecting arms 203, driven gears 204, connecting shafts 205, and n-type stirring rods 206 are uniformly arranged in a ring shape with the central shaft 202 as the center;
And the connecting rod 208, the fixed straight cylinder 209 and the horn cylinder 210 are annularly and uniformly provided with a plurality of groups by taking the central rotating shaft 202 as a center.
In the embodiment, the structure not only ensures more uniform and efficient mixing and stirring, but also ensures more uniform stress of the central rotating shaft 202.
The foregoing description is only a preferred embodiment of the present utility model, but the scope of the present utility model is not limited thereto, and any person skilled in the art, who is within the scope of the present utility model, should make equivalent substitutions or modifications according to the technical solution of the present utility model and the inventive concept thereof, and should be covered by the scope of the present utility model.