Raw material mixing device for crystal sand glass production
By designing a combination of material spreading and rotating mechanisms in the production of crystal sand glass, uniform material spreading and rotation of the mixing tank are achieved, solving the problem of uneven material mixing and improving production efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-12-26
- Publication Date
- 2026-03-27
AI Technical Summary
In the existing technology, during the production of crystal sand glass, the existing mixing device suffers from uneven material mixing, resulting in low production efficiency.
A raw material mixing device for crystal sand glass production was designed. By combining a feeding mechanism and a rotating mechanism, the feeding mechanism evenly feeds two sets of materials into the mixing tank, and the rotating mechanism rotates the mixing tank, which in turn rotates in the opposite direction with the agitator to ensure uniform mixing of the materials.
It improves the uniformity of material mixing and production efficiency, and solves the problem of low production efficiency caused by uneven material mixing.
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Figure CN121732025A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of crystal sand glass production, in particular to a raw material mixing device for crystal sand glass production. BACKGROUND
[0002] Crystal sand glass is a kind of special glass made of high-purity quartz sand (silicon dioxide content ≥ 99.9%) as the main raw material, its core characteristics are highly similar to quartz glass, with the characteristics of high temperature resistance, low thermal expansion and high light transmission, and can be widely used in industrial and decorative fields.
[0003] At present, the raw materials of crystal sand glass mainly include quartz sand (main component is silicon dioxide) and soda ash (sodium carbonate), in the production process, the quartz sand and soda ash are mixed in a certain proportion and then high-temperature melted to form liquid glass, and then the glass products are made through forming, cooling and other processes, in the mixing process, the two kinds of raw materials are respectively put into the mixing tank, and are mixed uniformly through the rotation of the stirrer, but due to the stratification of the two kinds of raw materials when they are put in, more time is needed to stir them to make them mix uniformly, thereby reducing the production efficiency. Therefore, we propose a raw material mixing device for crystal sand glass production. SUMMARY
[0004] The purpose of the present application is to provide a raw material mixing device for crystal sand glass production to solve the problems raised in the background art.
[0005] To achieve the above purpose, the present application provides the following technical scheme: a raw material mixing device for crystal sand glass production, comprising an outer shell, a mixing tank rotatably connected inside the outer shell, a discharge pipe extending to the outside of the outer shell communicated at the bottom end of the mixing tank, a top cover fixedly connected to the end of the outer shell, a stirrer installed inside the mixing tank, and a power source connected to the end of the stirrer and the top cover; a material scattering mechanism, the material scattering mechanism comprises a discharging assembly and a swing assembly, the material scattering assembly is installed on the top cover and extends into the mixing tank, the material scattering assembly is used for scattering the raw materials needed for crystal sand glass production in the mixing tank, the swing assembly is arranged in cooperation with the discharging assembly, and the swing assembly is used for driving the discharging assembly to swing so that the raw materials are uniformly scattered in the mixing tank; a rotating mechanism, the rotating mechanism is installed in the mixing tank and arranged in cooperation with the swing assembly, and the rotating mechanism is used for driving the mixing tank to rotate, so that the raw materials are uniformly scattered in the mixing tank through the rotation of the mixing tank and the swinging of the discharging assembly.
[0006] Preferably, the blanking assembly comprises two groups of support frames fixedly connected with the top cover, support frames are fixedly connected with blanking hoppers, the end of the blanking hopper is rotatably connected with a blanking pipe, the end of the blanking pipe extends into the mixing tank and is inclined, an electromagnetic valve is installed on the blanking pipe, the outer side of the blanking pipe is rotatably connected with a fixed ring fixedly connected with the top cover, the swing assembly is installed between the two groups of blanking pipes, facilitating the simultaneous blanking of two materials, and cooperating with the adjustment of the electromagnetic valve, facilitating the blanking of different proportions of materials, and ensuring that the two groups of materials are simultaneously blanked.
[0007] Preferably, the swing assembly comprises a first flat gear and a second flat gear fixedly connected with the two groups of blanking pipes respectively, the outer sides of the first flat gear and the second flat gear are engaged with first racks, the two groups of first racks are symmetrically arranged, and a reciprocating member is installed between the two groups of racks, the reciprocating member is used to drive the two groups of first racks to reciprocate, facilitating the reciprocating swing of the two groups of blanking pipes, and making the material scattering uniform.
[0008] Preferably, the reciprocating member comprises an incomplete gear connected with the power source, the outer sides of the incomplete gear are engaged with second and third racks respectively, the second and third racks are fixedly connected with a connecting plate therebetween, the second and third racks are fixedly connected with the two groups of first racks respectively, and the second and third racks are both provided with support members, facilitating the reciprocating movement of the two groups of first racks, and further reciprocating rotation of the first and second flat gears, realizing the reciprocating swing of the two groups of blanking pipes.
[0009] Preferably, the support member comprises a fixed block fixedly connected with the second and third racks respectively, the fixed block is fixedly connected with a sliding column, the end of the sliding column is fixedly connected with a sliding block, and the outer side of the sliding block is slidably connected with a sliding rail fixedly connected with the top cover, facilitating the support of the swing assembly and making it more stable.
[0010] Preferably, the rotating mechanism comprises a rotating disc fixedly connected with the mixing tank, the inner side of the rotating disc is fixedly connected with a gear ring, the inner side of the gear ring is engaged with a third flat gear, the shaft center of the third flat gear is fixedly connected with a rotating shaft rotatably connected with the top cover, and the outer side of the third flat gear is engaged with a fourth flat gear connected with the power source, facilitating the rotation of the mixing tank, making the material scattering more uniform, and improving the mixing efficiency in cooperation with the action of the stirrer.
[0011] Preferably, the power source comprises a fixed frame fixed between the two groups of the lower hopper, the fixed frame is fixedly connected with a shaft sleeve, the end of the shaft sleeve is fixedly connected with a motor, the output end of the motor is fixedly connected with a shaft coupling, the end of the shaft coupling is fixedly connected with a power shaft, the power shaft extends to the inside of the mixing tank and is connected with the stirrer, the power shaft is rotatably connected with the top cover, and the power shaft is also fixedly connected with the incomplete gear and the fourth spur gear respectively, and the power source provides stable power for the stirrer, the rotating mechanism and the swinging assembly.
[0012] Preferably, the stirrer comprises a connector fixedly connected with the power shaft, the end of the connector is fixedly connected with a stirring shaft, the outer side of the stirring shaft is fixedly connected with a plurality of fixed sleeves, and a plurality of stirring blades are fixedly connected on the fixed sleeves, so that the stirring efficiency is improved.
[0013] Preferably, the bottom end of the shell is fixedly connected with a plurality of supporting legs, so that the stability of the device is improved.
[0014] Compared with the prior art, the beneficial effects of the present application are: The raw material mixing device for crystal sand glass production provided by the present application can uniformly spread two groups of materials into the mixing tank through the spreading mechanism, so that the two groups of materials will not be layered, and the mixing tank is rotated through the action of the rotating mechanism, so that the materials are uniformly spread in the mixing tank. In this process, the rotating direction of the stirrer is opposite to the rotating direction of the mixing tank, thereby improving the mixing efficiency of the materials and the production efficiency, and solving the problem of low material mixing efficiency in the prior art, which reduces the glass production efficiency. BRIEF DESCRIPTION OF DRAWINGS
[0015] Figure 1 It is a schematic diagram of the overall structure of the present application; Figure 2 It is a schematic diagram of the cross-sectional structure of the present application; Figure 3 It is a schematic diagram of the overall structure of the present application Figure 2 It is a schematic diagram of the structure after removing the shell; Figure 4 It is a schematic diagram of the spreading assembly structure of the present application; Figure 5 It is a schematic diagram of the connection structure of the material feeding assembly and the swinging assembly of the present application; Figure 6 It is a schematic diagram of the swinging assembly structure of the present application; Figure 7 It is a schematic diagram of the rotating mechanism structure of the present application; Figure 8 Figure 1 is a schematic diagram of the power source and stirrer connection structure of the present application.
[0016] In the figure: 1, the shell; 2, the mixing tank; 3, the discharge pipe; 4, the top cover; 5, the stirrer; 6, the power source; 7, the material scattering mechanism; 8, the discharging assembly; 9, the swing assembly; 10, the rotating mechanism; 11, the support frame; 12, the discharge hopper; 13, the discharge pipe; 14, the fixed ring; 15, the electromagnetic valve; 17, the first spur gear; 18, the second spur gear; 19, the first rack; 20, the reciprocating member; 21, the incomplete gear; 22, the second rack; 23, the third rack; 24, the connecting plate; 25, the support; 26, the fixed block; 27, the sliding column; 28, the sliding block; 29, the sliding rail; 30, the rotating disc; 31, the gear ring; 32, the third spur gear; 33, the rotating shaft; 34, the fourth spur gear; 35, the fixed frame; 36, the shaft sleeve; 37, the motor; 38, the shaft coupling; 39, the power shaft; 40, the connector; 41, the stirring shaft; 42, the fixed sleeve; 43, the stirring blade; 44, the support leg. DETAILED DESCRIPTION
[0017] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present application. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative work fall within the scope of the present application.
[0018] Please refer to Figures 1-8 The present application provides a technical solution: a raw material mixing device for crystal sand glass production, which comprises a shell 1, a mixing tank 2 rotatably connected inside the shell 1, a discharge pipe 3 extending to the outside of the shell 1 and communicating with the bottom end of the mixing tank 2, a top cover 4 fixedly connected to the end of the shell 1, a stirrer 5 installed inside the mixing tank 2, and a power source 6 connected to the end of the stirrer 5; a material scattering mechanism 7, which comprises a discharging assembly 8 and a swing assembly 9, the material scattering assembly being installed on the top cover 4 and extending into the mixing tank 2, the material scattering assembly being used to scatter the raw materials required for crystal sand glass production inside the mixing tank 2, the swing assembly 9 being arranged in cooperation with the discharging assembly 8, and the swing assembly 9 being used to swing the discharging assembly 8 to make the raw materials evenly scattered in the mixing tank 2; and a rotating mechanism 10, which is installed in the mixing tank 2 and arranged in cooperation with the swing assembly 9, and is used to drive the mixing tank 2 to rotate, so that the raw materials are evenly scattered in the mixing tank 2 through the rotation of the mixing tank 2 and the swinging of the discharging assembly 8.
[0019] Among them, the bottom end of the shell 1 is fixedly connected with a plurality of support legs, through the design of the support legs, the stability of the device can be improved.
[0020] By setting the material scattering mechanism 7 and the rotating mechanism 10, the two groups of materials are uniformly scattered into the mixing tank 2 by the material scattering mechanism 7, so that the two groups of materials do not appear to be layered, and the mixing tank 2 is rotated by the rotating mechanism 10, further uniformly scattering the materials in the mixing tank 2.
[0021] In the embodiment of the present application, please refer to Figure 4 and Figure 5 The discharging assembly 8 in the drawing includes two groups of support frames 11 fixedly connected with the top cover 4, the support frames 11 are fixedly connected with the discharging hoppers 12, the end of the discharging hopper 12 is rotatably connected with the discharging pipe 13, the end of the discharging pipe 13 extends into the mixing tank 2 and is inclined, the discharging pipe 13 is also provided with the electromagnetic valve 15, the outer side of the discharging pipe 13 is rotatably connected with the fixed ring 14 fixedly connected with the top cover 4, and the swing assembly 9 is installed between the two groups of discharging pipes 13, which facilitates the simultaneous discharging of the two groups of materials, and cooperates with the adjustment of the electromagnetic valve 15 to facilitate the discharging of different proportions of materials and ensure that the two groups of materials are discharged at the same time.
[0022] The electromagnetic valve 15 can adjust the flow rate of the discharging pipe 13, thereby controlling the proportion of the materials entering the mixing tank 2, so that the two groups of materials can be discharged at the same time, avoiding the serious stratification of the materials caused by the discharging of a single group of materials, and affecting the efficiency of the later material mixing.
[0023] In the embodiment of the present application, please refer to Figure 5 and Figure 6 The swing assembly 9 in the drawing includes the first and second flat gears 17 and 18 fixedly connected with the two groups of discharging pipes 13 respectively, the outer sides of the first and second flat gears 17 and 18 are engaged with the first gear racks 19, the two groups of first gear racks 19 are symmetrically arranged, and the reciprocating member 20 is installed between the two groups of gear racks, the reciprocating member 20 is used to drive the two groups of first gear racks 19 to reciprocate, thereby facilitating the reciprocating swing of the two groups of discharging pipes 13, and uniformly scattering the materials.
[0024] The reciprocating member 20 drives the two groups of first gear racks 19 to reciprocate, the reciprocating movement of the two groups of first gear racks 19 drives the first and second flat gears 17 and 18 to reciprocate, so that the two groups of discharging pipes 13 reciprocate, and cooperates with the inclined design of the end of the discharging pipe 13 to uniformly scatter the materials in the mixing tank 2.
[0025] In the embodiment of the present application, please refer to Figure 5 and Figure 6The reciprocating member 20 in the drawing comprises an incomplete gear 21 connected with the power source 6, the outer side of the incomplete gear 21 is respectively engaged with a second rack 22 and a third rack 23, the second rack 22 and the third rack 23 are fixedly connected with a connecting plate 24, the second rack 22 and the third rack 23 are respectively fixedly connected with two groups of first racks 19, and the second rack 22 and the third rack 23 are respectively provided with a supporting piece 25, so as to drive the two groups of first racks 19 to reciprocate, and then drive the first gear 17 and the second gear 18 to reciprocate, and realize the reciprocating swing of the two groups of discharge pipes 13.
[0026] When the incomplete gear 21 rotates, the second rack 22 and the third rack 23 will be engaged respectively, and the second rack 22 and the third rack 23 can be moved forward and backward through the engagement with the second rack 22 and the third rack 23, so that the two groups of first racks 19 are moved forward and backward reciprocally.
[0027] In the embodiment of the present application, please refer to Figure 5 and Figure 6 The supporting piece 25 in the drawing comprises a fixed block 26 fixedly connected with the second rack 22 and the third rack 23 respectively, the fixed block 26 is fixedly connected with a sliding column 27, the end of the sliding column 27 is fixedly connected with a sliding block 28, and the outer side of the sliding block 28 is slidingly connected with a sliding rail 29 fixedly connected with the top cover 4, so as to support the swing assembly 9 and make it more stable.
[0028] The second rack 22 and the third rack 23 are supported by the sliding column 27 and the sliding block 28, and are cooperated with sliding, so as to improve the stability.
[0029] In the embodiment of the present application, please refer to Figure 3 and Figure 7 The rotating mechanism 10 in the drawing comprises a rotating disc 30 fixedly connected with the mixing tank 2, the inner side of the rotating disc 30 is fixedly connected with a gear ring 31, the inner side of the gear ring 31 is engaged with a third gear 32, the axis of the third gear 32 is fixedly connected with a rotating shaft 33 rotationally connected with the top cover 4, and the outer side of the third gear 32 is engaged with a fourth gear 34 connected with the power source 6, so as to drive the mixing tank to rotate, make the material scattering more uniform, and improve the mixing efficiency in cooperation with the action of the stirrer 5.
[0030] The fourth gear 34 is driven to rotate by the action of the power source 6, the rotating disc 30 drives the mixing tank 2 to rotate through the transmission action of the fourth gear 34, the third gear 32 and the gear ring 31, and the reciprocating swing of the discharge pipe 13 makes the material more uniformly scattered in the mixing tank 2.
[0031] In the embodiment of the present application, please refer to Figure 3 andFigure 8 The power source 6 in the drawing comprises a fixing frame 35 fixed between the two groups of hopper 12, the fixing frame 35 is fixedly connected with a shaft sleeve 36, the end of the shaft sleeve 36 is fixedly connected with a motor 37, the output end of the motor 37 is fixedly connected with a shaft coupling 38, the end of the shaft coupling 38 is fixedly connected with a power shaft 39, the power shaft 39 extends to the inside of the mixing tank 2 and is connected with the stirrer 5, the power shaft 39 is rotatably connected with the top cover 4, and the power shaft 39 is also fixedly connected with the incomplete gear 21 and the fourth flat gear 34 respectively, the power source 6 provides stable power for the stirrer 5, the rotating mechanism and the swing assembly 9.
[0032] When the motor 37 is started, the shaft coupling 38 drives the power shaft 39 to rotate, and then the rotation of the power shaft 39 drives the stirrer 5 to rotate, and drives the incomplete gear 21 and the fourth flat gear 34 fixedly connected therewith to rotate.
[0033] In the embodiment of the application, please refer to Figure 3 and Figure 8 The stirrer 5 in the drawing comprises a connector 40 fixedly connected with the power shaft 39, the end of the connector 40 is fixedly connected with a stirring shaft 41, the outer side of the stirring shaft 41 is fixedly connected with a plurality of fixing sleeves 42, and the fixing sleeves 42 are fixedly connected with a plurality of stirring blades 43, and through the design of the plurality of stirring blades 43, the stirring efficiency can be improved.
[0034] In the implementation process, the flow rate of the two groups of hopper 13 is adjusted by the electromagnetic valve 15 during the discharging process, the electromagnetic valve 15 can be adjusted according to the proportion of the two groups of materials, so that the two groups of materials can be discharged at the same time, and the single-group material discharging does not seriously affect the subsequent mixing efficiency. Wherein, after the flow regulation is completed, the two groups of materials are transported to the two groups of discharge hoppers 12, and the materials are transported to the discharge pipes 13 through the action of the discharge hoppers 12, and then the materials are transported to the inside of the mixing tank 2 through the discharge pipes 13. In this process, the motor 37 is started, and after the motor 37 is started, the power shaft 39 will be driven to rotate through the coupling 38. The power shaft 39 drives the incomplete gear 21 to rotate through the rotating action of the power shaft 39. When the incomplete gear 21 rotates, it will be engaged with the second rack 22 and the third rack 23 respectively. When the incomplete gear 21 is engaged with the second rack 22, the second rack 22 will be moved at this time, and the third rack 23 will not be engaged with the incomplete gear 21 at this time. At this time, the second rack 22 will drive the third rack 23 to move through the action of the connecting plate 24. At this time, the two groups of first racks 19 will move due to the movement of the second rack 22 and the third rack 23. Through the movement of the two groups of first racks 19, the first gear 17 and the second gear 18 will be driven to rotate, and the two groups of discharge pipes 13 will be rotated. When the incomplete gear 21 is engaged with the third rack 23, the second rack 22 will not be engaged with the incomplete gear 21 at this time. In this process, the second rack 22 and the third rack 23 will move in the opposite direction, and the two groups of first racks 19 will move in the opposite direction, and the first gear 17 and the second gear 18 will rotate in the opposite direction, and the two groups of discharge pipes 13 will rotate in the opposite direction. Through the engagement of the incomplete gear 21 with the second rack 22 and the third rack 23, the two groups of discharge pipes 13 will be driven to reciprocate, and the materials will be uniformly spread in the mixing tank 2. Further, in the process of rotating the power shaft 39, the fourth gear 34 fixedly connected with the power shaft 39 will also be driven to rotate. Through the rotation of the fourth gear 34, the third gear 32 will be driven to rotate. Through the rotation of the third gear 32, the gear ring 31 will be driven to rotate. Through the rotation of the gear ring 31, the rotating disc 30 drives the mixing tank 2 to rotate. Through the rotation of the mixing tank 2 and the reciprocating swing of the discharge pipe 13, the materials are more uniformly spread in the mixing tank 2, improving the subsequent mixing efficiency. Further, in the process of rotating the power shaft 39, the connector 40 fixedly connected with the power shaft 39 will also be driven to rotate. Through the rotation of the connector 40, the stirring shaft 41 will be driven to rotate. Through the rotation of the stirring shaft 41, the fixed sleeve 42 drives the stirring blade 43 to rotate, and the materials are mixed and stirred through the rotation of the stirring blade 43.
[0035] It is worth noting that in this scheme, the stirring blade 43 will stir the materials during the uniform discharging process. On the one hand, the materials enter the mixing tank 2 more uniformly, and on the other hand, the materials are mixed more uniformly and faster through stirring, thereby improving the mixing efficiency. It is also worth noting that the rotation direction of the stirring shaft 41 and the stirring blade 43 is consistent with the rotation direction of the fourth spur gear 34, and the rotation direction of the mixing tank 2 is consistent with the rotation direction of the gear ring 31 and the third spur gear 32, but the rotation direction of the third spur gear 32 and the fourth spur gear 34 is opposite, that is, the rotation direction of the mixing tank 2 and the stirring shaft 41 and the stirring blade 43 is opposite, and the effect of opposite rotation can improve the efficiency of material mixing.
[0036] It is to be noted that the relationship terms such as first and second in the present text are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any such actual relationship or order between the entities or operations. Moreover, the term "comprise", "include" or any other variant thereof is intended to cover non-exclusive inclusion, so that the process, method, article or equipment including a series of elements not only includes those elements, but also includes other elements not explicitly listed or inherent to such process, method, article or equipment.
[0037] Although the embodiments of the present application have been shown and described, it is understood that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present application, and the scope of the present application is defined by the appended claims and their equivalents.
Claims
1. A raw material mixing device for the production of crystal sand glass, characterized in that, include: The outer shell (1) is rotatably connected to the inside of the outer shell (1). The bottom end of the mixing tank (2) is connected to a discharge pipe (3) extending to the outside of the outer shell (1). The end of the outer shell (1) is also fixedly connected to a top cover (4). The mixing tank (2) is equipped with a stirrer (5). The end of the stirrer (5) is connected to a power source (6) connected to the top cover (4). The material spreading mechanism (7) includes a feeding component (8) and a swing component (9). The feeding component is installed on the top cover (4) and extends into the mixing tank (2). The feeding component is used to spread the raw materials required for the production of crystal sand glass into the mixing tank (2). The swing component (9) is configured to cooperate with the feeding component (8). The swing component (9) is used to drive the feeding component (8) to swing so that the raw materials are evenly sprinkled into the mixing tank (2). Rotating mechanism (10) is installed in the mixing tank (2) and is configured to cooperate with the swing assembly (9). The rotating mechanism (10) is used to drive the mixing tank (2) to rotate. The raw materials are evenly sprinkled in the mixing tank (2) by the rotation of the mixing tank (2) and the swing of the feeding assembly (8).
2. The raw material mixing device for producing crystal sand glass according to claim 1, characterized in that: The feeding assembly (8) includes two sets of support frames (11) fixedly connected to the top cover (4). A feeding hopper (12) is fixedly connected to the support frame (11). The end of the feeding hopper (12) is rotatably connected to a feeding pipe (13). The end of the feeding pipe (13) extends into the mixing tank (2) and is inclined. A solenoid valve (15) is also installed on the feeding pipe (13). A fixing ring (14) fixedly connected to the top cover (4) is rotatably connected to the outer side of the feeding pipe (13). The swing assembly (9) is installed between the two sets of feeding pipes (13).
3. The raw material mixing device for producing crystal sand glass according to claim 2, characterized in that: The swing assembly (9) includes a first spur gear (17) and a second spur gear (18) that are fixedly connected to the two sets of feed tubes (13). The outer surfaces of the first spur gear (17) and the second spur gear (18) are meshed with first racks (19). The two sets of first racks (19) are symmetrically arranged, and a reciprocating component (20) is installed between the two sets of racks. The reciprocating component (20) is used to drive the two sets of first racks (19) to move back and forth.
4. The raw material mixing device for producing crystal sand glass according to claim 3, characterized in that: The reciprocating component (20) includes an incomplete gear (21) connected to the power source (6). The outer side of the incomplete gear (21) is respectively meshed with a second rack (22) and a third rack (23). A connecting plate (24) is fixedly connected between the second rack (22) and the third rack (23). The second rack (22) and the third rack (23) are respectively fixedly connected to two sets of the first rack (19), and a support member (25) is installed on both the second rack (22) and the third rack (23).
5. The raw material mixing device for producing crystal sand glass according to claim 4, characterized in that: The support member (25) includes a fixing block (26) that is fixedly connected to the second rack (22) and the third rack (23) respectively. A sliding column (27) is fixedly connected to the fixing block (26). A sliding block (28) is fixedly connected to the end of the sliding column (27). A slide rail (29) that is fixedly connected to the top cover (4) is slidably connected to the outer side of the sliding block (28).
6. The raw material mixing device for producing crystal sand glass according to claim 5, characterized in that: The rotating mechanism (10) includes a rotating disk (30) fixedly connected to the mixing tank (2), a gear ring (31) fixedly connected to the inner side of the rotating disk (30), a third flat gear (32) meshing on the inner side of the gear ring (31), a rotating shaft (33) fixedly connected to the top cover (4) at the axis of the third flat gear (32), and a fourth flat gear (34) connected to the power source (6) meshing on the outer side of the third flat gear (32).
7. The raw material mixing device for producing crystal sand glass according to claim 6, characterized in that: The power source (6) includes a fixed frame (35) fixed between the two sets of feeding hoppers (12), a bushing (36) fixedly connected to the fixed frame (35), a motor (37) fixedly connected to the end of the bushing (36), a coupling (38) fixedly connected to the output end of the motor (37), a power shaft (39) fixedly connected to the end of the coupling (38), the power shaft (39) extends into the mixing tank (2) and is connected to the agitator (5), the power shaft (39) is rotatably connected to the top cover (4), and the power shaft (39) is also fixedly connected to the incomplete gear (21) and the fourth flat gear (34) respectively.
8. The raw material mixing device for producing crystal sand glass according to claim 7, characterized in that: The stirrer (5) includes a connector (40) fixedly connected to the power shaft (39). The end of the connector (40) is fixedly connected to a stirring shaft (41). Multiple sets of fixing sleeves (42) are fixedly connected to the outer side of the stirring shaft (41). Multiple sets of stirring blades (43) are fixedly connected to the fixing sleeves (42).
9. A raw material mixing device for producing crystal sand glass according to claim 8, characterized in that: Multiple sets of support legs (44) are fixedly connected to the bottom end of the outer shell (1).