Assembled carbon block conveyor

The air pump and jet cylinder combination of the assembled carbon block conveyor solves the problems of low efficiency and impurity introduction of traditional carbon block conveying, achieves efficient cleaning of impurities on the surface of carbon blocks, and ensures battery performance and the safety of the working environment.

CN223396813UActive Publication Date: 2025-09-30DONGGUAN JINSHAN BATTERY CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202423134259.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-19
Publication Date
2025-09-30
Estimated Expiration
2034-12-19

AI Technical Summary

Technical Problem

Traditional carbon block conveying methods are inefficient and easily introduce impurities, affecting battery performance and endangering the health of workers.

Method used

An assembled carbon block conveyor was designed, which uses an air pump and a jet nozzle to remove impurities on the surface of the carbon block by air flow, and intercepts impurities through a guide cover and a guide plate, and combines a material limiter and a buffer plate to ensure cleanliness.

Benefits of technology

Effectively remove impurities on the surface of carbon blocks, improve the quality of carbon blocks, protect the cleanliness of the working environment and the health of personnel, and improve the flexibility and convenience of the device.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223396813U_ABST
    Figure CN223396813U_ABST
Patent Text Reader

Abstract

The utility model relates to the technical field of carbon block conveying, in particular to an assembled carbon block conveyor. Comprising a rack, a conveyor used for conveying carbon blocks is arranged in the rack, a top frame is further arranged at the top of the rack, connecting rods are symmetrically arranged on the rear side of the top frame, a material guiding cover embedded in the rear end of the rack is connected between the two connecting rods in an inserted mode, and the material guiding cover is in sliding fit with the rack. A discharging frame used for discharging carbon blocks is further communicated with the lower portion of the material guiding cover, an air pump and an air injection cylinder with a nozzle facing the linear groove are installed between the two side walls of the machine frame, the air injection cylinder is located on the rear side of the air pump, and a connecting pipe is communicated between the air injection cylinder and an air outlet of the air pump. According to the carbon block cleaning device, the air pump and the air injection cylinder are ingeniously combined, the airflow blowing technology is adopted, impurities attached to the surfaces of carbon blocks are efficiently removed, the cleanliness of the working environment is ensured, the guide cover and the guide plate are specially arranged, the impurities can be effectively intercepted and guided to be discharged, and pollution to the working environment caused by flying of the impurities is avoided.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The utility model relates to the technical field of carbon block conveying, in particular to an assembled carbon block conveyor. Background Art

[0002] Battery carbon blocks play a key role in the battery manufacturing process, not only improving the battery's internal conductivity but also enhancing the stability of its structure. Traditional carbon block transportation often relies on manual handling or simple mechanical conveying devices. This method is not only inefficient but also easily introduces impurities such as dust and metal shavings during transportation. Once these impurities enter the battery, they can affect performance and even cause safety issues such as short circuits. Furthermore, long-term exposure to high levels of dust in work environments can damage workers' respiratory systems and increase the risk of occupational diseases.

[0003] Therefore, in order to ensure the cleanliness of carbon blocks during transportation, avoid the decrease in conductive efficiency due to impurities, and protect the health of workers, it is particularly important to design an assembled carbon block conveyor that can effectively clean impurities. Utility Model Content

[0004] In order to overcome the shortcomings of the above-mentioned prior art, the utility model provides an assembled carbon block conveyor that can effectively clean impurities, ensure the cleanliness of carbon blocks during transportation, avoid the decrease in conductive efficiency due to impurities, and protect the health of workers.

[0005] The technical solution is as follows: An assembled charcoal block conveyor comprises a frame, a conveyor, a top frame, a connecting rod, a material guide cover, a discharge frame, an air pump, a connecting pipe and a jet cylinder. A conveyor for transporting charcoal blocks is provided inside the frame, and a top frame is also provided on the top of the frame. Connecting rods are symmetrically provided on the rear side of the top frame. A material guide cover embedded in the rear end of the frame is inserted between the two connecting rods. The material guide cover and the connecting rods are fixed by nuts, and the material guide cover and the frame form a sliding fit. A discharge frame for discharging charcoal blocks is also connected to the lower part of the material guide cover, and a straight groove is provided on the rear side of the material guide cover. An air pump and a jet cylinder with a nozzle facing the straight groove are installed between the two side walls of the frame. The jet cylinder is located on the rear side of the air pump, and a connecting pipe is connected between the jet cylinder and the air outlet of the air pump for blowing away impurities.

[0006] Preferably, a collecting frame is further included, and a collecting frame for collecting carbon ash is provided at the bottom of the frame.

[0007] Preferably, a limited material rack is further included, and a limited material rack for limiting the transport amount of carbon blocks is provided on the top of the top frame.

[0008] Preferably, a rotating plate is further included, a feed port is opened on the front side of the top frame, and a rotating plate is arranged between the side walls of the feed port for rotation via a torsion spring.

[0009] Preferably, a guide plate is further included, and a guide plate for collecting impurities is obliquely arranged in the slot of the material guide cover.

[0010] Preferably, a buffer plate, a support rod and an elastic member are further included. A support rod is slidably provided on the inner lower side of the material guide cover. A buffer plate is provided between the end of the support rod facing the conveyor, and an elastic member is provided between the support rod and the material guide cover.

[0011] Preferably, the buffer plate is in an arc shape that fits the material guiding cover.

[0012] The beneficial effects of the present invention are as follows: the present invention cleverly combines the air pump and the jet cylinder, and adopts the airflow blowing technology to efficiently remove impurities attached to the surface of the carbon block, thereby significantly improving the quality of the carbon block. In order to ensure a clean working environment, the device is also specially configured with a material guide cover and a guide plate, which can effectively intercept and guide the discharge of impurities, avoiding the pollution of the working environment caused by the flying impurities. In addition, the detachable design between the connecting rod and the material guide cover not only facilitates daily cleaning and maintenance, but also significantly improves the flexibility and convenience of the device. BRIEF DESCRIPTION OF THE DRAWINGS

[0013] Figure 1 It is a schematic diagram of the three-dimensional structure of the utility model.

[0014] Figure 2 It is a three-dimensional structural diagram of the components on the rear side of the device of the present invention.

[0015] Figure 3 This is a sectional view showing the three-dimensional structure of the air pump, connecting pipe, air jet and other parts of the utility model.

[0016] Figure 4 This is a schematic diagram of the three-dimensional structure of the material guide cover, discharge frame and guide plate after being disassembled.

[0017] Figure 5 This is a three-dimensional structural cross-sectional view of components such as the buffer plate, support rod and elastic member of the utility model.

[0018] Figure numbers: 1, frame, 101, conveyor, 102, collecting frame, 2, top frame, 201, material limit frame, 3, rotating plate, 4, connecting rod, 5, material guide cover, 51, slot, 6, discharge frame, 7, guide plate, 8, air pump, 9, connecting pipe, 10, jet cylinder, 11, buffer plate, 12, support rod, 13, elastic part. DETAILED DESCRIPTION

[0019] The present invention will be further described below with reference to the accompanying drawings and specific embodiments.

[0020] Example: An assembled carbon block conveyor, such as Figure 1-Figure 5 As shown, it includes a frame 1, a conveyor 101, a top frame 2, a connecting rod 4, a material guide cover 5, a discharge frame 6, an air pump 8, a connecting pipe 9 and an air jet cylinder 10. A conveyor 101 for transporting carbon blocks is provided inside the frame 1. The conveyor 101 is a roller conveyor. A top frame 2 is also provided on the top of the frame 1. Connecting rods 4 are symmetrically provided on the left and right sides of the rear side of the top frame 2. A material guide cover 5 embedded in the rear end of the frame 1 is inserted between the two connecting rods 4. The material guide cover 5 and the connecting rod 4 are fixed by nuts, allowing the material guide cover 5 to be disassembled and assembled by removing the nuts and sliding out the connecting rod 4 to achieve an assembled effect. The material guide cover 5 forms a sliding fit with the frame 1. When the material guide cover 5 is inserted into the connecting rod 4, the middle position of the material guide cover 5 can still be firmly fixed on the frame 1 to ensure that the overall position is fixed. Since the material guide cover 5 is placed at the rear end of the frame 1, it can block impurities when the carbon blocks are transported and unloaded to avoid splashing, thereby maintaining the working environment and ensuring the safety of personnel operations. A discharge frame 6 for discharging carbon blocks is also connected to the lower part of the material guide cover 5, and a straight groove 51 is also provided on the rear side of the material guide cover 5. An air pump 8 and a jet nozzle 10 with the nozzle facing the straight groove 51 are installed between the left and right side walls of the frame 1. The jet nozzle 10 is located on the rear side of the air pump 8, and a connecting pipe 9 is connected between the jet nozzle 10 and the air outlet of the air pump 8. The air pump 8, the connecting pipe 9 and the jet nozzle 10 constitute a cleaning component, which uses a strong airflow to blow away impurities from the carbon blocks to be unloaded, effectively remove impurities on the surface of the carbon blocks, ensure the cleanliness during the transportation process, and improve the quality of the final carbon blocks.

[0021] like Figure 2 and Figure 3 As shown, a collecting frame 102 is also included. The collecting frame 102 is provided at the bottom of the frame 1 for collecting carbon ash generated during the transportation process, which helps to keep the working environment clean.

[0022] like Figure 2 and Figure 3 As shown, a limiting material rack 201 is also included. A limiting material rack 201 for limiting the amount of carbon blocks transported is provided on the top of the top frame 2. The amount of carbon blocks transported between the limiting material rack 201 and the conveyor 101 each time can be controlled to avoid overloading.

[0023] like Figure 1 and Figure 2 As shown, a rotating plate 3 is also included. A feed port is opened on the front side of the top frame 2. A rotating plate 3 is arranged between the left and right side walls of the feed port for rotation by a torsion spring, which helps to automatically adjust the feed speed and prevent carbon block blockage.

[0024] like Figure 1 、 Figure 2 and Figure 4 As shown, a guide plate 7 is also included. A guide plate 7 for collecting impurities is tiltedly arranged in the straight groove 51 of the material guide cover 5 to centrally process the impurities blown over for subsequent operations.

[0025] like Figure 4 and Figure 5 As shown, it also includes a buffer plate 11, a support rod 12 and an elastic member 13. The support rod 12 is penetrated and slidably provided on the inner lower side of the material guide cover 5, and a buffer plate 11 is provided between the end of the support rod 12 facing the conveyor 101. The buffer plate 11 is in an arc shape that fits the material guide cover 5, and an elastic member 13 is provided between the support rod 12 and the material guide cover 5. In this embodiment, the elastic member 13 is a spring, and the sliding mechanism of the support rod 12 and the elastic support of the elastic member 13 are used to achieve a buffering effect.

[0026] When the device is needed, the conveyor 101 is started, and the charcoal blocks to be transported are put into the conveyor 101 through the feed port on the top frame 2. When the charcoal blocks enter the feed port, they hit the rotating plate 3 and push it to rotate at a certain angle, and then the torsion spring is deformed, so that the rotating plate 3 provides space for the charcoal blocks to enter due to the rotation operation so that the charcoal blocks can fall. Then the charcoal blocks will fall onto the conveyor 101 and be transported from front to back by the conveyor 101. The carbon ash generated by the fall will fall to the bottom through the gap of the conveyor 101. The charcoal blocks are placed in the collection frame 102, and then in the process of moving, they will come into contact with the limiting rack 201. Due to the spacing limit formed by the limiting rack 201 and the conveyor 101, the excess charcoal blocks will be pressed and pushed forward by the limiting rack 201, and the charcoal blocks at the bottom will pass smoothly between the conveyor 101 and the limiting rack 201. Then the charcoal blocks that are in circulation will continue to move backward. At this time, the air pump 8 is started at the same time, and the air pump 8 provides air flow, which is transported to the air jet cylinder 10 through the connecting pipe 9. Finally, the air flow is discharged from the air jet cylinder 10, and the impurities on the surface of the charcoal blocks being transported are cleaned by the air flow. The impurities are blown away by the impurities. Since the nozzle of the air jet 10 is directed toward the slot 51 of the guide cover 5, the impurities blown up will flow toward the slot 51 and then fall onto the guide plate 7. The impurities are discharged by the inclined guide plate 7. The carbon blocks after the impurity treatment will move to the end of the conveyor 101 and then fall into the discharge frame 6 below the guide cover 5, so that the carbon blocks can be discharged. When the carbon blocks fall, they may tilt. After the carbon blocks tilt and fall, they will contact the buffer plate 11, and then press the buffer plate 11 downward, pushing the support rod 12 to slide, and then the carbon blocks will bounce back. The elastic member 13 is deformed under the force to cushion the falling carbon blocks, and the arc surface of the buffer plate 11 is used to guide the carbon blocks to fall. Finally, the carbon blocks are discharged from the discharge frame 6. From then on, the carbon blocks can be blown off surface impurities through the air jet 10 during transportation. Then, through the design of the guide cover 5 and the guide plate 7, the impurities can be centrally processed, thereby effectively cleaning the impurities of the carbon blocks during transportation to ensure the quality of the carbon blocks and the working environment. After the transportation of the carbon blocks is completed, the nut on the connecting rod 4 can be removed, the guide cover 5 can be taken out and then cleaned.

[0027] The embodiments of the present invention are described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Various changes can be made within the scope of knowledge possessed by those skilled in the art without departing from the purpose of the present invention.

Claims

1. An assembled carbon block conveyor, comprising a frame (1) and a conveyor (101), wherein the conveyor (101) for transporting carbon blocks is arranged inside the frame (1); characterized in that: The machine frame (1) further comprises a top frame (2), a connecting rod (4), a material guide cover (5), a material discharging frame (6), an air pump (8), a connecting pipe (9) and an air jet cylinder (10). A top frame (2) is further provided on the top of the machine frame (1). Connecting rods (4) are symmetrically provided on the rear side of the top frame (2). A material guide cover (5) embedded in the rear end of the machine frame (1) is inserted between the two connecting rods (4). The material guide cover (5) and the connecting rod (4) are fixed by nuts, and the material guide cover (5) and the machine frame (1) are shaped The guide cover (5) is provided with a discharging frame (6) for discharging carbon blocks, and a straight groove (51) is provided at the rear side of the guide cover (5). An air pump (8) and a jet nozzle (10) with a nozzle facing the straight groove (51) are installed between the two side walls of the frame (1). The jet nozzle (10) is located at the rear side of the air pump (8). A connecting pipe (9) is connected between the jet nozzle (10) and the air outlet of the air pump (8) for blowing away impurities.

2. The assembled carbon block conveyor according to claim 1, characterized in that: It also includes a collection frame (102), which is arranged at the bottom of the frame (1) for collecting carbon ash.

3. The assembled carbon block conveyor according to claim 2, characterized in that: It also includes a limited material rack (201), which is provided on the top of the top frame (2) and is used to limit the amount of carbon blocks transported.

4. The assembled carbon block conveyor according to claim 3, characterized in that: It also includes a rotating plate (3), a feed port is provided on the front side of the top frame (2), and a rotating plate (3) is provided between the side walls of the feed port for rotation via a torsion spring.

5. The assembled carbon block conveyor according to claim 4, characterized in that: It also includes a guide plate (7), which is obliquely arranged in the slot (51) of the material guide cover (5) and is used to collect impurities.

6. The assembled carbon block conveyor according to claim 5, characterized in that: The invention also includes a buffer plate (11), a support rod (12) and an elastic member (13); the support rod (12) is slidably provided on the inner lower side of the material guide cover (5); a buffer plate (11) is provided between one end of the support rod (12) facing the conveyor (101); and an elastic member (13) is provided between the support rod (12) and the material guide cover (5).

7. The assembled carbon block conveyor according to claim 6, characterized in that: The buffer plate (11) is in an arc shape that fits the material guide cover (5).