Driving mechanism of tank body of solid powder mixing device

By designing a driving mechanism for the tank of a solid powder mixing device, the motor drives the transmission system to rotate the mixing cylinder, and after the stirring is completed, the residual powder is tilted and the residual powder is discharged, the problem of residual powder after mixing is solved, and the mixing efficiency and uniformity are improved.

CN222984268UActive Publication Date: 2025-06-17CHONGQING XIONGJIAN BIOTECHNOLOGY CO LTD
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Patent Information

Application Number
CN202421440551.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-06-24
Publication Date
2025-06-17
Estimated Expiration
2034-06-24

AI Technical Summary

Technical Problem

After the existing solid powder continuous mixing device completes mixing and stirring, the powder is easily retained in the horizontally placed mixing cylinder, which affects the uniformity and efficiency of subsequent mixing and stirring.

Method used

A driving mechanism of the tank of a solid powder mixing device is designed, including a continuous mixing cylinder and an auxiliary component. The drive shaft drives the main gear and the tooth chain to rotate through the motor, and then drives the connecting shaft and the continuous mixing cylinder to rotate. The mixing and stirring device is combined with the stirring device, and after the stirring is completed, the discharge end of the mixing cylinder is tilted through the motor operation to facilitate the discharge of residual powder.

Benefits of technology

It effectively solves the problem of residual powder after mixing, improves the efficiency and uniformity of mixing and stirring, and facilitates subsequent mixing operations of powder.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of mixing and stirring equipment, in particular to a driving mechanism of a tank body of a solid powder mixing device, which comprises a continuous mixing barrel and an auxiliary component, and the auxiliary component comprises a connecting shaft, an auxiliary gear, a toothed chain, a main gear, a transmission shaft, a motor, a bottom frame and a support frame; after the solid powder is mixed and stirred, the connecting shaft rotates along with the rotation of the motor to drive the discharging end of the continuous mixing barrel to obliquely face the collecting device, so that the powder in the continuous mixing barrel is discharged, and some residual solid powder can be discharged from the inclined continuous mixing barrel through a tool; therefore, the problems that when an existing solid powder continuous mixing device completes mixing and stirring of solid powder and then needs to discharge the solid powder, the solid powder is prone to being left in a horizontal continuous mixing barrel, the residual powder easily affects mixing and stirring of subsequent different powder, and use is inconvenient are solved.
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Description

Technical Field

[0001] The utility model relates to the technical field of mixing and stirring equipment, in particular to a driving mechanism for the tank body of a solid powder mixing device. Background Art

[0002] In the production processes of products in fields or industries such as feed, pesticides, veterinary drugs, medicine, chemical fertilizers, organic fertilizers, and food, the mixing of various solid powders is involved to varying degrees, and some are very important components in the production process.

[0003] Currently, the prior art (CN219482398U) discloses a continuous solid powder mixing device, including a continuous mixing cylinder. A discharge port is opened on the continuous mixing cylinder, and a sealing door is installed on the discharge port through a hinge and a lock. The continuous mixing cylinder is fixed on a fixed frame, and a stirring component is movably installed inside the continuous mixing cylinder. At the same time, the rotating shaft of the stirring component is fixed to the output shaft of a stirring motor through a coupling, and the stirring motor is screwed and fixed on the outer surface of the fixed frame. In this continuous solid powder mixing device, the stirring motor drives the stirring component to rotate and stir inside the continuous mixing cylinder to perform axial stirring and mixing work on the materials inside the continuous mixing cylinder; under the operation of a driving motor, the continuous mixing cylinder can be driven to move horizontally, driving the materials inside it to perform horizontal stirring and mixing work, so that different kinds of materials inside the continuous mixing cylinder can be continuously and fully mixed, improving the mixing uniformity and working efficiency of the materials.

[0004] However, when using the above method and it is necessary to discharge the solid powder after mixing and stirring, solid powder is likely to remain in the horizontally placed continuous mixing cylinder, and the remaining powder is likely to affect the subsequent mixing and stirring of different powders, resulting in inconvenient use. Summary of the Utility Model

[0005] The purpose of the utility model is to provide a driving mechanism for the tank body of a solid powder mixing device, aiming to solve the problem that when the existing continuous solid powder mixing device needs to discharge the solid powder after mixing and stirring, solid powder is likely to remain in the horizontally placed continuous mixing cylinder, and the remaining powder is likely to affect the subsequent mixing and stirring of different powders, resulting in inconvenient use.

[0006] To achieve the above purpose, the utility model provides a driving mechanism for the tank body of a solid powder mixing device, including a continuous mixing cylinder and an auxiliary component. The auxiliary component includes a connecting shaft, a secondary gear, a chain, a main gear, a transmission shaft, a motor, a chassis, and a support frame;

[0007] The connecting shaft is fixedly connected to the continuous mixing cylinder and is located on the side of the continuous mixing cylinder. The auxiliary gear is fixedly connected to the connecting shaft and is located on the side of the connecting shaft away from the continuous mixing cylinder. The toothed chain meshes with the auxiliary gear and is located on one side of the auxiliary gear. The main gear meshes with the toothed chain and is located on the side of the toothed chain away from the auxiliary gear. The transmission shaft is fixedly connected to the main gear and is located on one side of the main gear. The output end of the motor is fixedly connected to the transmission shaft and is located on one side of the transmission shaft. The chassis is fixedly connected to the motor and is located at the bottom of the motor. The support frame is fixedly connected to the chassis, is rotatably connected to the connecting shaft, and is located on one side of the chassis.

[0008] Wherein, the auxiliary assembly further includes a rotating ring and a shielding cover. The rotating ring is rotatably connected to the connecting shaft and is located on the side of the connecting shaft close to the support frame. The shielding cover is fixedly connected to the rotating ring, is fixedly connected to the support frame, and is located on the side of the rotating ring away from the connecting shaft.

[0009] Wherein, the auxiliary assembly further includes a mounting frame and a baffle. The mounting frame is fixedly connected to the chassis and is located on the side of the chassis close to the motor. The baffle is fixedly connected to the mounting frame and is located on the side of the mounting frame.

[0010] Wherein, the auxiliary assembly further includes a moving mechanism, and the moving mechanism is arranged on one side of the chassis.

[0011] Wherein, the moving mechanism includes a connecting frame, moving wheels and a push rod. The connecting frame is fixedly connected to the chassis and is located at the bottom of the chassis. The moving wheels are rotatably connected to the connecting frame and are located on the side of the connecting frame. The push rod is fixedly connected to the chassis and is located on one side of the chassis.

[0012] Wherein, the push rod includes a reference frame, an electric telescopic rod and a cross bar. The reference frame is fixedly connected to the chassis and is located on one side of the chassis. The electric telescopic rod is fixedly connected to the reference frame and is located on the top of the reference frame. The cross bar is fixedly connected to the output end of the electric telescopic rod and is located on the top of the electric telescopic rod.

[0013] The driving mechanism of the tank body of a solid powder mixing device of the present utility model. After putting the solid powder to be mixed and stirred into the continuous mixing cylinder, start the stirring device arranged therein to mix and stir the solid powder. At the same time, start the motor, and the output end of the motor drives the transmission shaft to rotate, so that the main gear on the upper side of the transmission shaft rotates accordingly, and the tooth chain meshing with the main gear starts to slide, thereby driving the sub-gear at the other end of the main gear to start rotating. The sub-gear drives the connecting shaft to rotate, so that the continuous mixing cylinder on the connecting shaft rotates accordingly, and cooperates with the stirring device in the continuous mixing cylinder to mix and stir the solid powder, which can improve the stirring efficiency. And through the forward and reverse rotation of the motor, drive the connecting shaft to rotate forward and backward, so that the continuous mixing cylinder rotates forward and backward accordingly. After completing the mixing and stirring of the solid powder, through the operation of the motor, the connecting shaft rotates accordingly, driving the discharge end of the continuous mixing cylinder to tilt towards the collection device, which is convenient for discharging the solid powder therein. And some residual solid powder can be discharged from the inclined continuous mixing cylinder by the staff using tools, thus solving the problem that when the existing solid powder continuous mixing device needs to discharge the solid powder after completing the mixing and stirring, it is easy for the horizontal continuous mixing cylinder to have residual solid powder therein, and the residual powder is easy to affect the mixing and stirring of subsequent different powders, resulting in inconvenient use. BRIEF DESCRIPTION OF THE DRAWINGS

[0014] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art.

[0015] Figure 1 It is a schematic structural diagram of the whole of the first embodiment of the present utility model.

[0016] Figure 2 It is a cross-sectional view of the whole of the first embodiment of the present utility model.

[0017] Figure 3 It is a schematic structural diagram of the whole of the second embodiment of the present utility model.

[0018] Figure 4 It is a side view of the whole of the second embodiment of the present utility model.

[0019] 101 - Continuous mixing cylinder, 102 - Auxiliary component, 103 - Connecting shaft, 104 - Sub - gear, 105 - Tooth chain, 106 - Main gear, 107 - Transmission shaft, 108 - Motor, 109 - Chassis, 110 - Support frame, 111 - Rotating ring, 112 - Shielding cover, 113 - Mounting bracket, 114 - Baffle, 201 - Moving mechanism, 202 - Connecting frame, 203 - Moving wheel, 204 - Push rod, 205 - Reference frame, 206 - Electric telescopic rod, 207 - Cross bar. Specific implementation mode

[0020] The first embodiment of this application is as follows:

[0021] Please refer to Figures 1 to 2 , Figure 1 which is the overall structural schematic diagram of the first embodiment of the present utility model, Figure 2 and which is the overall sectional view of the first embodiment of the present utility model.

[0022] A driving mechanism for the tank body of a solid powder mixing device of the present utility model includes a continuous mixing cylinder 101 and an auxiliary component 102. The auxiliary component 102 includes a connecting shaft 103, a sub - gear 104, a tooth chain 105, a main gear 106, a transmission shaft 107, a motor 108, a chassis 109, a support frame 110, a rotating ring 111, a shielding cover 112, a mounting bracket 113 and a baffle 114; Through the foregoing solution, when the existing continuous solid powder mixing device needs to discharge the solid powder after mixing and stirring the solid powder, solid powder is likely to remain in the horizontally placed continuous mixing cylinder 101, and the remaining powder is likely to affect the subsequent mixing and stirring of different powders, resulting in inconvenient use.

[0023] For this specific implementation mode, different solid powders are placed in the continuous mixing cylinder 101 for stirring. The usage method of the continuous mixing cylinder 101 is detailedly recorded in the patent with the publication number CN219482398U, which is not the protection scope of this application and will not be elaborated herein.

[0024] Among them, the connecting shaft 103 is fixedly connected to the continuous mixing cylinder 101 and is located on the side of the continuous mixing cylinder 101. The secondary gear 104 is fixedly connected to the connecting shaft 103 and is located on the side of the connecting shaft 103 away from the continuous mixing cylinder 101. The tooth chain 105 meshes with the secondary gear 104 and is located on one side of the secondary gear 104. The main gear 106 meshes with the tooth chain 105 and is located on the side of the tooth chain 105 away from the secondary gear 104. The transmission shaft 107 is fixedly connected to the main gear 106 and is located on one side of the main gear 106. The output end of the motor 108 is fixedly connected to the transmission shaft 107 and is located on one side of the transmission shaft 107. The chassis 109 is fixedly connected to the motor 108 and is located at the bottom of the motor 108. The support frame 110 is fixedly connected to the chassis 109, is rotatably connected to the connecting shaft 103, and is located on one side of the chassis 109. After putting the solid powder to be mixed and stirred into the continuous mixing cylinder 101, start the stirring device arranged therein to mix and stir the solid powder. At the same time, start the motor 108. The output end of the motor 108 drives the transmission shaft 107 to rotate, so that the main gear 106 on the upper side of the transmission shaft 107 rotates accordingly, and the tooth chain 105 meshing with the main gear 106 starts to slide, thereby driving the secondary gear 104 at the other end of the main gear 106 to start rotating. The secondary gear 104 drives the connecting shaft 103 to rotate, so that the continuous mixing cylinder 101 on the connecting shaft 103 rotates accordingly, and cooperates with the stirring device in the continuous mixing cylinder 101 to mix and stir the solid powder, which can improve the stirring efficiency. By the forward and reverse rotation of the motor 108, the connecting shaft 103 is driven to rotate forward and backward, so that the continuous mixing cylinder 101 rotates forward and backward accordingly. After completing the mixing and stirring of the solid powder, through the operation of the motor 108, the connecting shaft 103 rotates accordingly, driving the discharge end of the continuous mixing cylinder 101 to tilt towards the collection device, which is convenient for discharging the solid powder therein. And some residual solid powder can be discharged from the inclined continuous mixing cylinder 101 by the staff using tools, thus solving the problem that when the existing continuous solid powder mixing device needs to discharge the solid powder after completing the mixing and stirring of the solid powder, the horizontal continuous mixing cylinder 101 is prone to residual solid powder therein, and the residual powder is likely to affect the mixing and stirring of subsequent different powders, resulting in inconvenient use.

[0025] Secondly, the rotating ring 111 is rotatably connected to the connecting shaft 103 and is located on the side of the connecting shaft 103 close to the support frame 110. The shielding cover 112 is fixedly connected to the rotating ring 111 and is also fixedly connected to the support frame 110, and is located on the side of the rotating ring 111 away from the connecting shaft 103. The sub-gear 104 and the connecting shaft 103 can be shielded by the shielding cover 112, and the rotation of the connecting shaft 103 can be prevented from damaging the shielding cover 112 through the rotating ring 111.

[0026] Thirdly, the mounting bracket 113 is fixedly connected to the chassis 109 and is located on the side of the chassis 109 close to the motor 108. The baffle 114 is fixedly connected to the mounting bracket 113 and is located on the side of the mounting bracket 113. By providing the baffle 114 on the mounting bracket 113, the motor 108 can be shielded to prevent foreign objects from entering and jamming the motor 108, affecting its normal use.

[0027] The driving mechanism of the tank body of a solid powder mixing device described in this embodiment can shield the secondary gear 104 and the connecting shaft 103 through the shielding cover 112, and through the rotating ring 111, it can prevent the rotation of the connecting shaft 103 from damaging the shielding cover 112. By arranging the baffle 114 on the mounting bracket 113, the motor 108 can be shielded to prevent foreign objects from entering and jamming the motor 108, affecting its normal use. After putting the solid powder to be mixed and stirred into the continuous mixing cylinder 101, start the stirring device arranged therein to mix and stir the solid powder. At the same time, start the motor 108. The output end of the motor 108 drives the transmission shaft 107 to rotate, so that the main gear 106 on the upper side of the transmission shaft 107 rotates accordingly. The tooth chain 105 meshing with the main gear 106 starts to slide, and then drives the secondary gear 104 at the other end of the main gear 106 to start rotating. The secondary gear 104 drives the connecting shaft 103 to rotate, so that the continuous mixing cylinder 101 on the connecting shaft 103 rotates accordingly, cooperating with the stirring device in the continuous mixing cylinder 101 to mix and stir the solid powder, which can improve the stirring efficiency. By the forward and reverse rotation of the motor 108, the connecting shaft 103 is driven to rotate forward and backward, so that the continuous mixing cylinder 101 rotates forward and backward accordingly. After completing the mixing and stirring of the solid powder, through the operation of the motor 108, the connecting shaft 103 rotates accordingly, driving the discharge end of the continuous mixing cylinder 101 to tilt towards the collection device, facilitating the discharge of the solid powder therein. Some residual solid powder can be discharged from the inclined continuous mixing cylinder 101 by the staff using tools, thus solving the problem that when the existing solid powder continuous mixing device needs to discharge the solid powder after completing the mixing and stirring, it is easy for the horizontal continuous mixing cylinder 101 to have residual solid powder therein, and the residual powder is likely to affect the mixing and stirring of subsequent different powders, resulting in inconvenient use.

[0028] The second embodiment of this application is as follows:

[0029] On the basis of the first embodiment, please refer to Figures 3 to 4 , Figure 3 which is the overall structural schematic diagram of the second embodiment of the present utility model, Figure 4 and

[0030] The auxiliary component 102 of the driving mechanism of the tank body of a solid powder mixing device in this embodiment further includes a moving mechanism 201. The moving mechanism 201 includes a connecting frame 202, moving wheels 203, a push rod 204, a reference frame 205, an electric telescopic rod 206 and a cross bar 207.

[0031] Among them, the connecting frame 202 is fixedly connected to the chassis 109 and is located at the bottom of the chassis 109. The moving wheel 203 is rotatably connected to the connecting frame 202 and is located on the side of the connecting frame 202. The push rod 204 is fixedly connected to the chassis 109 and is located on one side of the chassis 109. According to the usage requirements, the staff can hold the push rod 204 to drive the moving wheel 203 to start rotating, so that the mixing device on the chassis 109 starts to move as a whole.

[0032] Secondly, the reference frame 205 is fixedly connected to the chassis 109 and is located on one side of the chassis 109. The electric telescopic rod 206 is fixedly connected to the reference frame 205 and is located at the top of the reference frame 205. The cross bar 207 is fixedly connected to the output end of the electric telescopic rod 206 and is located at the top of the electric telescopic rod 206. According to the usage requirements, the staff can start the electric telescopic rod 206. The output end of the electric telescopic rod 206 starts to rise, pushing the cross bar 207 to move, so that the cross bar 207 moves to a position convenient for the staff to grasp, and then it is convenient for the staff to hold the cross bar 207 and push the moving wheel 203 to rotate.

[0033] For the driving mechanism of the tank body of the solid powder mixing device described in this embodiment, according to the usage requirements, the staff can start the electric telescopic rod 206. The output end of the electric telescopic rod 206 starts to rise, pushing the cross bar 207 to move, so that the cross bar 207 moves to a position convenient for the staff to grasp, and then it is convenient for the staff to hold the cross bar 207 and push the moving wheel 203 to rotate, so that the mixing device on the chassis 109 starts to move as a whole, and the mixing device as a whole is moved to a designated position, which is convenient for subsequent use.

[0034] The above-disclosed are only one or more preferred embodiments of the present application, and the scope of rights of the present application cannot be limited by this. Those of ordinary skill in the art can understand the whole or part of the processes of implementing the above embodiments, and the equivalent changes made according to the claims of the present application still fall within the scope covered by the present application.

Claims

1. A driving mechanism for a tank of a solid powder mixing device, comprising a continuous mixing cylinder, characterized in that: Also included are auxiliary components; The auxiliary assembly includes a connecting shaft, a pinion gear, a toothed chain, a main gear, a transmission shaft, a motor, a chassis and a support frame; The connecting shaft is fixedly connected to the continuous mixing cylinder and is located on the side of the continuous mixing cylinder. The sub-gear is fixedly connected to the connecting shaft and is located on the side of the connecting shaft away from the continuous mixing cylinder. The tooth chain is meshed with the sub-gear and is located on the side of the sub-gear. The main gear is meshed with the tooth chain and is located on the side of the tooth chain away from the sub-gear. The transmission shaft is fixedly connected to the main gear and is located on one side of the main gear. The output end of the motor is fixedly connected to the transmission shaft and is located on one side of the transmission shaft. The base frame is fixedly connected to the motor and is located at the bottom of the motor. The support frame is fixedly connected to the base frame, rotatably connected to the connecting shaft, and is located on one side of the base frame.

2. The driving mechanism of the tank of a solid powder mixing device according to claim 1, characterized in that: The auxiliary component also includes a rotating ring and a shielding cover. The rotating ring is rotatably connected to the connecting shaft and is located on a side of the connecting shaft close to the support frame. The shielding cover is fixedly connected to the rotating ring and is located on a side of the rotating ring away from the connecting shaft.

3. The driving mechanism of the tank of a solid powder mixing device according to claim 2, characterized in that: The auxiliary component also includes a mounting frame and a baffle. The mounting frame is fixedly connected to the base frame and is located on a side of the base frame close to the motor. The baffle is fixedly connected to the mounting frame and is located on a side of the mounting frame.

4. The driving mechanism of the tank of a solid powder mixing device according to claim 3, characterized in that: The auxiliary component further includes a moving mechanism, and the moving mechanism is arranged on one side of the base frame.

5. The driving mechanism of the tank of a solid powder mixing device according to claim 4, characterized in that: The moving mechanism includes a connecting frame, a moving wheel and a push rod. The connecting frame is fixedly connected to the base frame and is located at the bottom of the base frame. The moving wheel is rotatably connected to the connecting frame and is located on the side of the connecting frame. The push rod is fixedly connected to the base frame and is located on one side of the base frame.

6. The driving mechanism of the tank of a solid powder mixing device according to claim 5, characterized in that: The push rod includes a reference frame, an electric telescopic rod and a cross bar. The reference frame is fixedly connected to the base frame and is located on one side of the base frame. The electric telescopic rod is fixedly connected to the reference frame and is located on the top of the reference frame. The cross bar is fixedly connected to the output end of the electric telescopic rod and is located on the top of the electric telescopic rod.

Citation Information

Patent Citations

  • Solid powder continuous mixing device

    CN219482398U