Anti-blocking type granular carclazyte packaging machine
By designing an anti-clogging granular clay packaging machine, and utilizing the structure of the storage chamber, transfer disc, and guide chamber, combined with the drive mechanism and mixing unit, the clogging problem during the granular clay filling process is solved, achieving stable control of output and ensuring filling quality.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HUANGSHAN BAIYUE ACTIVATED CLAY
- Filing Date
- 2025-05-16
- Publication Date
- 2026-04-17
AI Technical Summary
Granular clay can easily clog valve bags during the filling process, making it more difficult to control the output and affecting the filling quality.
Design an anti-clogging granular clay packaging machine, comprising a storage chamber, a transfer disc, and a guide chamber. The granular clay is stably transferred by the intermittently rotating transfer disc. A through-hole unit is set between the storage chamber and the guide chamber to ensure connectivity. Combined with a stirring unit, clogging is prevented. Precise control is achieved using a drive mechanism and a discharge pipe.
It reduces the risk of clogging, ensures smooth filling process and stable output, and improves filling quality.
Smart Images

Figure CN224131352U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of filling devices, specifically to an anti-clogging granular clay packaging machine. Background Technology
[0002] Granular bleaching clay uses activated clay as its main raw material. It appears as irregular small granules and has a higher specific surface area and particle strength than activated clay. It exhibits stable performance and high adsorption capacity, and is widely used in the petrochemical industry for aromatic hydrocarbon purification and aviation kerosene refining. It is also used in the refining of lubricating oil, base oil, diesel oil, and other petroleum products to remove residual olefins, gums, asphalt, alkaline nitrogen compounds, and other impurities. After production, granular bleaching clay needs to be packaged for convenient transportation and sales. Valve bags are typically used for packaging. However, during the filling process, the continuous input of granular bleaching clay into the valve bags leads to a continuous output of granular bleaching clay from the equipment hopper, posing a risk of blockage. This also increases the difficulty of controlling the output of granular bleaching clay and, to some extent, affects the filling quality. Utility Model Content
[0003] The purpose of this invention is to provide an anti-clogging granular clay packaging machine. This packaging machine can reduce the risk of clogging caused by continuous material feeding and can, to a certain extent, achieve rough control over the amount of material discharged from the equipment, thus ensuring the quality of filling valve bags.
[0004] The technical solution adopted by this utility model to solve the above problems is:
[0005] A clog-resistant granular clay packaging machine, comprising:
[0006] The machine body has a storage chamber and a guide chamber arranged vertically.
[0007] The transfer disc is used to transfer the granular clay in the storage chamber to the guide chamber. The transfer disc is rotatably mounted on the machine body and located between the storage chamber and the guide chamber. The machine body is equipped with a drive mechanism for driving the transfer disc to rotate intermittently relative to the machine body.
[0008] The discharge pipe is used to fill the granular clay in the guide chamber into the valve bag. The discharge pipe is located on the side of the machine body and its cavity is connected to the guide chamber.
[0009] The bottom surface of the storage cavity, the transfer plate, and the top surface of the guide cavity are all provided with the same number of through hole units. Each through hole unit is arranged in a circular shape with equal spacing. The through hole units between the storage cavity and the guide cavity are staggered. The through hole unit on the guide cavity is located in the middle of two corresponding through hole units on the storage cavity. When the transfer plate and the machine body are in a relatively stationary state, the through hole units on the storage cavity or the guide cavity correspond one-to-one with the through hole units on the transfer plate and are connected.
[0010] As a further improvement to the above technical solution, an extension rod is provided at the center of the top surface of the transfer plate. The top end of the extension rod passes through the bottom surface of the storage cavity and is located inside the storage cavity. Several stirring units are arranged at equal intervals along the axial direction of the extension rod. The stirring units are located inside the storage cavity. Each stirring unit includes several stirring rods. Each stirring rod is arranged at equal angles around the central axis of the extension rod. The stirring rods between adjacent stirring units are staggered.
[0011] As a further improvement to the above technical solution, the through hole unit includes two through holes, which are arranged radially along the circular trajectory formed by the through hole units, and the corresponding through holes on each through hole unit are located on the same circular trajectory.
[0012] As a further improvement to the above technical solution, a guide plate is provided in the cavity of the machine body. The guide plate is inclined relative to the machine body and the two enclose each other to form a guide cavity.
[0013] As a further improvement to the above technical solution, the inner end of the discharge pipe is fixed to the machine body, and the top end of the outer end of the discharge pipe extends along its axial direction to form a insert for insertion into the valve pocket.
[0014] As a further improvement to the above technical solution, a lifting plate is slidably provided on the machine body. The lifting plate is located directly below the discharge pipe, and the lifting plate moves vertically relative to the machine body through a linear drive device.
[0015] As a further improvement to the above technical solution, the drive mechanism includes a motor, which is mounted on the side of the machine body, and the output shaft of the motor and the transfer disk are connected by a gear transmission mechanism.
[0016] As a further improvement to the above technical solution, the bottom surface of the machine body is provided with four universal wheels with braking structures, and the four universal wheels are installed in a square shape on the bottom surface of the machine body.
[0017] Compared with the prior art, this utility model has the following advantages and effects:
[0018] (1) By setting up the structure between the storage chamber, the transfer plate and the guide chamber, and combining the intermittent driving effect of the drive mechanism on the transfer plate, the transfer plate is alternately connected with the storage chamber and the guide chamber, thereby reducing the risk of blockage caused by continuous material discharge. It also makes it easier to stop the equipment from discharging, thereby stopping the filling operation of the granular clay in the valve bag and replacing the valve bag on the discharge pipe, thus improving the convenience of use.
[0019] (2) By setting the structure of the through hole unit on the transfer plate, the size of the space for the granular clay on the transfer plate is fixed, ensuring that the amount of granular clay entering the transfer plate from the storage chamber in a single transfer can be kept within a certain range, thereby enabling a rough control of the amount of material discharged from the equipment to a certain extent and ensuring the quality of filling the valve bag. Attached Figure Description
[0020] Figure 1 This is a structural schematic diagram of an anti-clogging granular clay packaging machine according to this utility model.
[0021] Figure 2 This is a partial structural enlarged view of the anti-clogging granular clay packaging machine of this utility model from one perspective.
[0022] Figure 3 This is an enlarged longitudinal cross-sectional view of a portion of the anti-clogging granular clay packaging machine of this utility model.
[0023] Figure 4 This is an enlarged longitudinal cross-sectional view of a partial part of the anti-clogging granular clay packaging machine of this utility model.
[0024] Figure 5 This is a partial structural enlarged view from a second perspective of the anti-clogging granular clay packaging machine of this utility model.
[0025] The components include: body 1, storage chamber 11, guide chamber 12, transfer plate 2, discharge pipe 3, insert 31, drive mechanism 4, motor 41, gear transmission mechanism 42, through hole unit 5, through hole 51, caster wheel 61, guide plate 62, extension rod 7, stirring unit 8, stirring rod 81, lifting plate 9, linear drive device 91, and guide rod 92. Detailed Implementation
[0026] The present invention will be further described in detail below with reference to the accompanying drawings and through embodiments. The following embodiments are explanations of the present invention, but the present invention is not limited to the following embodiments.
[0027] See Figures 1-5This embodiment discloses an anti-clogging granular clay packaging machine, comprising a machine body 1, a transfer disc 2, and a discharge pipe 3. The machine body 1 has a storage chamber 11 and a guide chamber 12 arranged vertically. The transfer disc 2 is used to transfer the granular clay in the storage chamber 11 to the guide chamber 12. The transfer disc 2 is rotatably mounted on the machine body 1 and located between the storage chamber 11 and the guide chamber 12. The machine body 1 is provided with a drive mechanism 4 for driving the transfer disc 2 to rotate intermittently relative to the machine body 1. The discharge pipe 3 is used to fill the granular clay in the guide chamber 12 into a valve bag. The discharge pipe 3 is located on the side of the machine body 1. The cavity of the storage cavity 11 is connected to the guide cavity 12. The bottom surface of the storage cavity 11, the transfer plate 2 and the top surface of the guide cavity 12 are all provided with the same number of through hole units 5. Each through hole unit 5 is arranged in a circular shape with equal spacing. The through hole units 5 between the storage cavity 11 and the guide cavity 12 are staggered. The through hole unit 5 on the guide cavity 12 is located in the middle of the two corresponding through hole units 5 on the storage cavity 11. When the transfer plate 2 and the machine body 1 are in a relatively static state, the through hole units 5 on the storage cavity 11 or the guide cavity 12 correspond one-to-one with the through hole units 5 on the transfer plate 2 and are connected.
[0028] When packaging granular bleaching clay, the granular bleaching clay is dropped into the storage chamber 11. At this time, the through hole unit 5 between the transfer disc 2 and the guide chamber 12 is connected. Then, the drive mechanism 4 drives the transfer disc 2 to rotate relative to the machine body 1 at a certain angle, so that the through hole unit 5 between the transfer disc 2 and the storage chamber 11 is connected. At this time, the granular bleaching clay in the storage chamber 11 can enter the transfer disc 2. When the drive mechanism 4 drives the transfer disc 2 to rotate at a certain angle again, the through hole unit 5 between the transfer disc 2 and the guide chamber 12 is reconnected, so that the granular bleaching clay in the transfer disc 2 enters the guide chamber 12 and enters the valve bag sleeved on the discharge pipe 3 through the guide chamber 12 for filling the valve bag with granular bleaching clay.
[0029] See Figure 1 The bottom surface of the machine body 1 is provided with four universal wheels 61 with brake structures. The four universal wheels 61 are squarely installed on the bottom surface of the machine body 1, which improves the convenience of adjusting the placement position of the device.
[0030] See Figure 2 The through-hole unit 5 includes two through holes 51, which are arranged radially along the circular trajectory formed by each through-hole unit 5. The corresponding through holes 51 on each through-hole unit 5 are located on the same circular trajectory, so that the through holes 51 of each through-hole unit 5 on the storage cavity 11, the transfer disk 2 and the guide cavity 12 are arranged in an orderly manner. This ensures that when the transfer disk 2 rotates intermittently relative to the machine body 1, the storage cavity 11, the transfer disk 2 and the guide cavity 12 can achieve communication between the through holes 51 on both, thus ensuring the transfer effect of the transfer disk 2.
[0031] See Figure 2 , Figure 3 An extension rod 7 is located at the center of the top surface of the transfer disc 2. The top end of the extension rod 7 passes through the bottom surface of the storage cavity 11 and is located inside the storage cavity 11. Several stirring units 8 are arranged at equal intervals along the axial direction of the extension rod 7. The stirring units 8 are located inside the storage cavity 11. Each stirring unit 8 includes several stirring rods 81. The stirring rods 81 are arranged at equal angles around the central axis of the extension rod 7, and the stirring rods 81 between adjacent stirring units 8 are staggered. When the transfer disc 2 rotates relative to the machine body 1, it can drive the extension rod 7 to rotate together, so that the stirring rods 81 on the extension rod 7 agitate the granular clay in the storage cavity 11, thereby reducing the clogging of the inlet of the through hole 51 by the granular clay to a certain extent.
[0032] See Figure 3 The drive mechanism 4 includes a motor 41, which is mounted on the side of the body 1. The output shaft of the motor 41 and the transfer disk 2 are connected by a gear transmission mechanism 42, which reduces the limitation on the installation position of the motor 41 on the body 1.
[0033] See Figure 4 The cavity of the machine body 1 is provided with a guide plate 62. The guide plate 62 is inclined relative to the machine body 1 and the two enclose each other to form a guide cavity 12, so that the granular clay entering the guide cavity 12 can be guided into the discharge pipe 3 through the guide plate 62.
[0034] See Figure 4 , Figure 5 The inner end of the discharge pipe 3 is fixed to the machine body 1, and the top end of the outer end of the discharge pipe 3 extends along its axial direction to form a insert 31 for inserting into the valve bag, which facilitates the connection and installation of the valve bag on the discharge pipe 3 and extends the length of the discharge pipe 3, so that the valve bag can be hung on the machine body 1 through the discharge pipe 3 for filling.
[0035] See Figure 5 A lifting plate 9 is slidably mounted on the machine body 1. The lifting plate 9 is located directly below the discharge pipe 3. The lifting plate 9 moves vertically relative to the machine body 1 through a linear drive device 91, so that the user can adjust the height of the lifting plate 9 on the machine body 1 according to the length of the valve bag, so as to achieve the effect of supporting the valve bag with the lifting plate 9 and reduce the burden on the discharge pipe 3 due to the valve bag hanging during filling.
[0036] In this embodiment, the linear drive device 91 is a linear module. Meanwhile, to ensure the stability of the lifting plate 9 sliding vertically relative to the body 1, two guide rods 92 can be installed on the body 1. The two guide rods 92 are symmetrically arranged relative to the linear drive device 91, and both ends of the lifting plate 9 are respectively fitted onto the two guide rods 92.
[0037] The above description in this specification is merely illustrative of the present invention. Those skilled in the art to which this invention pertains may make various modifications or additions to the described specific embodiments or use similar methods to replace them, as long as they do not depart from the content of this specification or exceed the scope defined in the claims, all of which shall fall within the protection scope of this invention.
Claims
1. A clog-resistant granular clay packaging machine, characterized in that, include: The machine body has a storage chamber and a guide chamber arranged vertically. The transfer disc is used to transfer the granular clay in the storage chamber to the guide chamber. The transfer disc is rotatably mounted on the machine body and located between the storage chamber and the guide chamber. The machine body is equipped with a drive mechanism for driving the transfer disc to rotate intermittently relative to the machine body. The discharge pipe is used to fill the granular clay in the guide chamber into the valve bag. The discharge pipe is located on the side of the machine body and its cavity is connected to the guide chamber. The bottom surface of the storage cavity, the transfer plate, and the top surface of the guide cavity are all provided with the same number of through hole units. Each through hole unit is arranged in a circular shape with equal spacing. The through hole units between the storage cavity and the guide cavity are staggered. The through hole unit on the guide cavity is located in the middle of two corresponding through hole units on the storage cavity. When the transfer plate and the machine body are in a relatively stationary state, the through hole units on the storage cavity or the guide cavity correspond one-to-one with the through hole units on the transfer plate and are connected.
2. The anti-jamming type particulate white earth packing machine as claimed in claim 1, wherein: An extension rod is provided at the center of the top surface of the transfer plate. The top end of the extension rod passes through the bottom surface of the storage cavity and is located inside the storage cavity. Several stirring units are arranged at equal intervals along the axial direction of the extension rod. The stirring units are located inside the storage cavity. Each stirring unit includes several stirring rods. Each stirring rod is arranged at equal angles around the central axis of the extension rod. The stirring rods between adjacent stirring units are staggered.
3. The anti-jamming type particulate white earth packing machine as claimed in claim 1, wherein: The through-hole unit includes two through holes, which are arranged radially along the circular trajectory formed by the through-hole units. Corresponding through holes on each through-hole unit are located on the same circular trajectory.
4. The anti-jamming type particulate white earth packing machine as claimed in claim 1, wherein: The machine body has a guide plate inside its cavity. The guide plate is inclined relative to the machine body and the two enclose each other to form a guide cavity.
5. The anti-clogging granular clay packaging machine according to claim 1, characterized in that: The inner end of the discharge pipe is fixed to the machine body, and the top end of the outer end of the discharge pipe extends axially to form a insert for insertion into the valve pocket.
6. The anti-jamming type particulate white earth packing machine as claimed in claim 1, wherein: A lifting plate is slidably mounted on the machine body. The lifting plate is located directly below the discharge pipe. The lifting plate moves vertically relative to the machine body through a linear drive device.
7. The anti-jamming type particulate white earth packing machine as claimed in claim 1, wherein: The drive mechanism includes a motor, which is mounted on the side of the machine body. The output shaft of the motor and the transfer plate are connected by a gear transmission mechanism.
8. The anti-jamming type particulate white earth packing machine as claimed in claim 1, wherein: The bottom surface of the machine body is equipped with four omnidirectional wheels with brake structures. The four omnidirectional wheels are squarely mounted on the bottom surface of the machine body.