Uniform mixing mechanism for glass glaze production
By combining upper and lower stirring units and designing a bell-shaped spiral blade, the problem of low efficiency in traditional mixing structures is solved, achieving uniform and rapid mixing of glass glaze and improving production efficiency.
Patent Information
- Application Number
- CN202423149721.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-20
- Publication Date
- 2025-11-21
- Estimated Expiration
- 2034-12-20
AI Technical Summary
Traditional glass enamel production processes involve inefficient mixing operations, which negatively impacts both production quality and efficiency.
The mixing assembly uses a combination of an upper and lower stirring unit. The upper stirring unit achieves circumferential stirring of the upper layer of raw materials, while the lower stirring unit disperses the lower layer of raw materials and mixes them with the upper and lower layers. Combined with a trumpet-shaped tube and spiral blades, the flow is accelerated to form turbulence and improve mixing efficiency.
This allows for more uniform and rapid mixing of the upper and lower layers of glass glaze, improving the efficiency of the mixing operation.
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Figure CN223570526U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to glass glaze production mixing technical field, specifically a kind of mixing mechanism for glass glaze production. BACKGROUND
[0002] Glass glaze is an industrial material, after glaze barbecue, color is bright, hardness is big, its softening temperature, expansion coefficient etc. Property all adapt to the surface decoration of glass wine bottle.
[0003] Glass glaze is made by coloring Liu and fluxing agent after mixing, then with scraper oil (binder) stirring into paste, therefore, mixing operation is crucial when glass glaze production, directly influence the production quality and efficiency of glass glaze, and the traditional mixing one-way stirring structure stirring efficiency is lower, based on this, to realize the purpose of further improving the mixing operation efficiency of glass glaze, provide a kind of mixing mechanism for glass glaze production. UTILITY MODEL CONTENT
[0004] The utility model aims at: in order to solve the problem in the above background, provide a kind of mixing mechanism for glass glaze production.
[0005] To achieve the above object, the utility model provides the following technical scheme: a kind of mixing mechanism for glass glaze production, including by the tank body structure of mixing tank main body, feed inlet, discharge outlet, mixing assembly, the feed inlet is fixed in the top side of mixing tank main body, the discharge outlet is fixed in the bottom middle part of mixing tank main body, and the feed inlet, discharge outlet are all with the inside of mixing tank main body conduction, the mixing assembly is distributed in the top and inside of mixing tank main body, and the mixing assembly includes upper stirring unit, lower stirring unit;
[0006] The upper stirring unit is used to raw material upper layer and carries out circumferential direction agitation;
[0007] The lower stirring unit is used to disperse, agitate to raw material lower layer, for realizing the mutual flow mixing of lower layer raw material and upper and lower raw material.
[0008] As the further scheme of the utility model: the upper stirring unit includes driving motor, center pivot, connecting arm, driven gear, connecting pivot, n type stirring rod and fixed inner tooth ring;
[0009] The driving motor is fixed in the top middle part of mixing tank main body, and the center pivot is connected to driving motor output end and penetrates to the inside of mixing tank main body;
[0010] The fixed inner tooth ring is fixed to the top of the inner wall of the mixing tank body, the connecting arm is fixed to the position close to the top of the inner wall of the mixing tank body on the outside of the driving motor, the connecting rotating shaft is fixed to the bottom of the driven gear and is rotationally connected with the connecting arm, the bottom of the connecting rotating shaft penetrates to the below of the connecting arm and is fixedly connected with the n-shaped stirring rod, and the driven gear is engaged with the inner teeth of the fixed inner tooth ring.
[0011] The driving motor drives the connecting arm, the driven gear and the connecting rotating shaft to rotate circumferentially, the fixed inner tooth ring limits the circumferential rotation of the connecting arm to realize the rotation of the connecting arm, the driven gear and the connecting rotating shaft, so that the upper layer of the raw materials is fully stirred.
[0012] As a further scheme of the utility model, the lower stirring unit comprises a connecting rod, a fixed straight cylinder and a horn cylinder.
[0013] The connecting rod is fixed to the outside of the driving motor and close to the bottom of the inner wall of the mixing tank body, the fixed straight cylinder is fixed to one side of the connecting rod, and the horn cylinder is fixed to one end of the fixed straight cylinder.
[0014] The inner diameter of the end of the horn cylinder away from the fixed straight cylinder is larger than the inner side of the fixed straight cylinder, and the large-diameter port of the horn cylinder is directed to the rotating direction of the fixed straight cylinder and the horn cylinder.
[0015] The mixed liquid entering the fixed straight cylinder from the large-diameter port of the horn cylinder realizes accelerated flow, and then forms turbulent flow after flowing out of the rear end of the fixed straight cylinder.
[0016] As a further scheme of the utility model, the inner side of the end of the horn cylinder away from the fixed straight cylinder is further fixed with a plurality of circumferentially distributed spiral blades, and the middle portions of the plurality of spiral blades are fixedly connected.
[0017] As a further scheme of the utility model, the connecting arm, the driven gear, the connecting rotating shaft and the n-shaped stirring rod are evenly provided with a plurality of groups in a ring shape around the central rotating shaft.
[0018] And the connecting rod, the fixed straight cylinder and the horn cylinder are evenly provided with a plurality of groups in a ring shape around the central rotating shaft.
[0019] Compared with the prior art, the utility model has the advantages that:
[0020] Through the mixing assembly, the upper and lower layers of the mixed liquid can be stirred synchronously, and the upper and lower layers of the mixed liquid can flow to each other, so that the overall mixing efficiency is faster and the mixing is more uniform compared with the one-way stirring structure. BRIEF DESCRIPTION OF DRAWINGS
[0021] Fig. 1 The utility model discloses a structure schematic diagram;
[0022] Fig. 2 It is the structure sectional view of the mixed tank main body inside the utility model;
[0023] Fig. 3 It is the sectional split drawing of the utility model;
[0024] Fig. 4 It is the structure distribution drawing of the mixing assembly partial part of the utility model.
[0025] In the drawing: 1, tank body structure;101, mixed tank main body;102, feed inlet;103, discharge outlet;2, mixing assembly;201, driving motor;202, center shaft;203, connecting arm;204, driven gear;205, connecting shaft;206, n type stirring rod;207, fixed inner tooth ring;208, connecting rod;209, fixed straight cylinder;210, horn cylinder;211, helical blade. DETAILED DESCRIPTION
[0026] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the utility model.
[0027] Please refer to Figs. 1-4 In the embodiments of the utility model, a mixing mechanism for glass glaze production comprises a tank body structure 1 composed of a mixed tank main body 101, a feed inlet 102 and a discharge outlet 103, and a mixing assembly 2, the feed inlet 102 is fixed to one side of the top of the mixed tank main body 101, the discharge outlet 103 is fixed to the middle of the bottom of the mixed tank main body 101, and the feed inlet 102 and the discharge outlet 103 are both in communication with the inner side of the mixed tank main body 101, and the mixing assembly 2 is distributed on the top and inner side of the mixed tank main body 101, and the mixing assembly 2 comprises an upper stirring unit and a lower stirring unit.
[0028] The upper stirring unit is used for stirring the upper layer of raw materials in the circumferential direction.
[0029] The lower stirring unit is used for dispersing and stirring the lower layer of raw materials, so as to realize the mutual flow mixing of the lower layer of raw materials and the upper and lower layers of raw materials.
[0030] The upper stirring unit comprises a driving motor 201, a center shaft 202, a connecting arm 203, a driven gear 204, a connecting shaft 205, an n type stirring rod 206 and a fixed inner tooth ring 207.
[0031] The drive motor 201 is fixed to the top center of the mixing tank body 101, and the central rotating shaft 202 is connected to the output end of the drive motor 201 and extends through to the inside of the mixing tank body 101;
[0032] The fixed internal gear ring 207 is fixed to the top of the inner wall of the mixing tank body 101. The connecting arm 203 is fixed to the outside of the drive motor 201 near the top of the inner wall of the mixing tank body 101. The connecting shaft 205 is fixed to the bottom of the driven gear 204 and is rotatably connected to the connecting arm 203. The bottom of the connecting shaft 205 extends through to the bottom of the connecting arm 203 and is fixedly connected to the n-type stirring rod 206. The driven gear 204 meshes with the internal teeth of the fixed internal gear ring 207.
[0033] The drive motor 201 drives the connecting arm 203, the driven gear 204, and the connecting shaft 205 to rotate in a circular motion. The fixed internal gear ring 207 limits the rotation of the connecting arm 203, the driven gear 204, and the connecting shaft 205, thereby achieving full agitation of the upper layer of raw materials.
[0034] The lower stirring unit includes a connecting rod 208, a fixed straight cylinder 209, and a bell-shaped cylinder 210;
[0035] The connecting rod 208 is fixed to the outside of the drive motor 201 and close to the bottom of the inner wall of the mixing tank body 101. The fixed straight cylinder 209 is fixed to one side of the connecting rod 208, and the horn 210 is fixed to one end of the fixed straight cylinder 209.
[0036] The inner diameter of the end of the horn tube 210 away from the fixed straight tube 209 is larger than the inner side of the fixed straight tube 209, and the large-diameter port of the horn tube 210 is oriented towards the fixed straight tube 209 and the rotation direction of the horn tube 210.
[0037] The mixture enters the fixed straight cylinder 209 from the large-diameter port of the horn tube 210 to achieve accelerated flow, and then flows out through the rear end of the fixed straight cylinder 209 to form turbulence.
[0038] Multiple circumferentially distributed spiral blades 211 are fixed on the inner side of the end of the horn tube 210 away from the fixed straight tube 209, and the middle of the multiple spiral blades 211 are fixedly connected.
[0039] In this embodiment: when mixing the glass glaze during production, the corresponding raw materials can be poured into the mixing tank body 101 through the feed inlet 102. Liquid raw materials are added first, and after the liquid raw materials are added, the drive motor 201 is started to stir. Then, powdered raw materials are poured in simultaneously. The mixing and stirring principle is as follows:
[0040] The driving motor 201 drives the central rotating shaft 202 to rotate, and the central rotating shaft 202 drives the connecting arm 203, the connecting rod 208 to rotate synchronously, wherein the connecting arm 203 drives the driven gear 204, the connecting rotating shaft 205, the n-shaped stirring rod 206 to rotate circumferentially, the driven gear 204 rotates under the limiting action of the fixed inner tooth ring 207, so that the n-shaped stirring rod 206 rotates circumferentially while rotating, and the bottom end of the n-shaped stirring rod 206 is inserted below the liquid level, the rotating n-shaped stirring rod 206 stirs the upper layer of the raw materials, so that the powdery raw materials floating on the liquid level are scattered, and the powdery raw materials can be quickly mixed with the liquid raw materials;
[0041] In addition, the connecting rod 208 drives the fixed straight cylinder 209 and the horn cylinder 210 to rotate circumferentially, and the raw material mixture in the lower layer area enters the inside of the fixed straight cylinder 209 through the horn cylinder 210, in this process, as the inner diameter of the channel decreases, the flow rate of the mixture increases, and when the fast-flowing mixture flows out from the rear end of the fixed straight cylinder 209, the mixture is blocked by the mixture in the rear end area, and turbulence occurs, in addition, through the arrangement of the spiral blade 211, the mixture entering the inside of the horn cylinder 210 will also have a rotational flow effect, thereby further enhancing the turbulence effect, not only realizing the mutual mixing of the mixture in this area, but also enabling the mixture in this area to diffuse to all directions, so that the upper and lower layers of the mixture flow relative to each other, avoiding stratification.
[0042] Through the cooperation of the above multiple parts, the upper and lower layers of the mixture can be stirred synchronously, and the upper and lower layers of the mixture can flow relative to each other, compared with the one-way stirring structure, the overall mixing efficiency is faster and the mixing is more uniform.
[0043] Please refer to Figs. 1-4 , the connecting arm 203, the driven gear 204, the connecting rotating shaft 205 and the n-shaped stirring rod 206 are arranged in a ring around the central rotating shaft 202.
[0044] And the connecting rod 208, the fixed straight cylinder 209 and the horn cylinder 210 are arranged in a ring around the central rotating shaft 202.
[0045] In this embodiment: through this structure, not only the mixing and stirring are more uniform and efficient, but also the stress on the central rotating shaft 202 is more uniform.
[0046] The above is only a preferred specific embodiment of the present application, but the protection scope of the present application is not limited thereto, any skilled person in the art can make equivalent replacement or change according to the technical scheme and the inventive concept of the present application within the technical range disclosed by the present application, which should be covered within the protection scope of the present application.
Claims
1. A mixing mechanism for producing glass glaze, comprising a tank structure (1) consisting of a mixing tank body (101), an inlet (102), and an outlet (103), and a mixing assembly (2), wherein the inlet (102) is fixed to one side of the top of the mixing tank body (101), and the outlet (103) is fixed to the middle of the bottom of the mixing tank body (101), and both the inlet (102) and the outlet (103) are in communication with the inner side of the mixing tank body (101), characterized in that, The mixing components (2) are distributed on the top and inner side of the mixing tank body (101), and the mixing components (2) include an upper stirring unit and a lower stirring unit; The upper stirring unit is used to stir the upper layer of raw materials in a circumferential direction; The lower stirring unit is used to break up and stir the lower layer of raw materials, so as to achieve mutual flow and mixing of the lower layer of raw materials with the upper and lower materials.
2. The mixing mechanism for producing glass glaze according to claim 1, characterized in that, The upper stirring unit includes a drive motor (201), a central rotating shaft (202), a connecting arm (203), a driven gear (204), a connecting rotating shaft (205), an n-shaped stirring rod (206), and a fixed internal gear ring (207); The drive motor (201) is fixed at the top center of the mixing tank body (101), and the central rotating shaft (202) is connected to the output end of the drive motor (201) and extends through to the inside of the mixing tank body (101); The fixed internal gear ring (207) is fixed to the top of the inner wall of the mixing tank body (101), the connecting arm (203) is fixed to the outside of the drive motor (201) near the top of the inner wall of the mixing tank body (101), the connecting shaft (205) is fixed to the bottom of the driven gear (204) and rotatably connected to the connecting arm (203), the bottom of the connecting shaft (205) extends through to the bottom of the connecting arm (203) and is fixedly connected to the n-type stirring rod (206), and the driven gear (204) meshes with the internal teeth of the fixed internal gear ring (207); The drive motor (201) drives the connecting arm (203), driven gear (204), and connecting shaft (205) to rotate in a circle. The fixed internal gear ring (207) limits the rotating connecting arm (203) to achieve the rotation of the connecting arm (203), driven gear (204), and connecting shaft (205), which is used to achieve full agitation of the upper layer of raw materials.
3. The mixing mechanism for producing glass glaze according to claim 2, characterized in that, The lower stirring unit includes a connecting rod (208), a fixed straight cylinder (209), and a horn cylinder (210); The connecting rod (208) is fixed to the outside of the drive motor (201) and close to the bottom of the inner wall of the mixing tank body (101). The fixed straight cylinder (209) is fixed to one side of the connecting rod (208). The horn (210) is fixed to one end of the fixed straight cylinder (209). The inner diameter of the end of the horn tube (210) away from the fixed straight tube (209) is larger than the inner side of the fixed straight tube (209), and the large-diameter port of the horn tube (210) is oriented towards the fixed straight tube (209) and the rotation direction of the horn tube (210); The mixture enters the fixed straight cylinder (209) from the large-diameter port of the horn tube (210) to achieve accelerated flow, and then flows out through the rear end of the fixed straight cylinder (209) to form turbulence.
4. The mixing mechanism for producing glass glaze according to claim 3, characterized in that, The inner side of the end of the horn tube (210) away from the fixed straight tube (209) is also fixed with a plurality of circumferentially distributed spiral blades (211), and the middle parts of the plurality of spiral blades (211) are fixedly connected.
5. The mixing mechanism for producing glass glaze according to claim 3, characterized in that, The connecting arm (203), driven gear (204), connecting shaft (205), and n-type stirring rod (206) are arranged in multiple sets in a ring around the central shaft (202); Furthermore, multiple sets of the connecting rod (208), fixed straight cylinder (209), and horn cylinder (210) are evenly arranged in a ring around the central rotating shaft (202).