Feeding system and feeding pipeline
By setting up a conversion air duct in the feeding system, the gas output from the air supply mechanism is converted into vortex current, the problem of high labor costs caused by manual operation dependence is solved, and the automatic inflation and transportation of materials is realized, and the conveying efficiency and speed are improved.
Patent Information
- Application Number
- CN202210046686.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-01-14
- Publication Date
- 2025-08-19
- Estimated Expiration
- 2042-01-14
AI Technical Summary
The dependence on manual operations in the prior art leads to the problem of high labor costs.
A feeding system is designed, including an air supply mechanism, a feeding mechanism and a storage mechanism. By setting up a conversion air duct in the feeding pipeline, it is composed of multiple crossed curved pipes. The conversion air duct converts the gas output from the air supply mechanism into vortex, realizing automatic inflation and transportation of materials.
Automatic inflation and transportation of materials is realized, the dependence on human resources is reduced, and the material transportation efficiency and transportation speed are improved.
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Figure CN116477361B_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of transportation equipment, and in particular to a feeding system and a feeding pipeline. Background Art
[0002] In the transportation of fragile goods, a large number of inflatable products need to be produced to serve as external protection for fragile goods, thereby improving transportation safety.
[0003] In the related art, inflatable products are inflated by manual inflation, and a collection device is arranged near the inflation equipment to collect and store the inflatable products. After the collection device is full, the collection device is moved to the material placement area by manual transportation.
[0004] However, the current solution relies heavily on manual operations, resulting in high labor costs. Summary of the Invention
[0005] The embodiments of the present application provide a feeding system and a feeding pipeline to solve the problem in related technologies of heavy reliance on manual operation and resulting in high labor costs.
[0006] In order to solve the above problems, the present application discloses a feeding system, which includes:
[0007] The air supply mechanism, the feeding mechanism, the storage mechanism and the multiple sub-sections are connected in sequence to form a feeding pipeline;
[0008] At least one section of the feeding pipe is a curved section, one end of the feeding pipe is a discharge port facing the storage mechanism, the other end of the feeding pipe is an air inlet connected to the air supply mechanism, and a side wall of the feeding pipe is provided with a feeding port facing the feeding mechanism;
[0009] A conversion air duct is provided between the feed port and the air inlet in the feeding pipe, and the conversion air duct is composed of a plurality of intersecting curved pipes, the air inlet of the curved pipe faces the air inlet, and the air outlet of the curved pipe faces the feed port; the conversion air duct is used to convert the gas output by the air supply mechanism into a vortex.
[0010] The embodiment of the present application discloses a feeding pipe,
[0011] The feeding pipeline is composed of a plurality of sections connected in sequence, and at least one section of the feeding pipeline is a curved section;
[0012] One end of the feeding pipe is a discharge port, the other end of the feeding pipe is an air inlet, and a side wall of the feeding pipe is provided with a feeding port;
[0013] A conversion air duct is provided between the feed port and the air inlet in the feeding pipe, and the conversion air duct is composed of a plurality of intersecting curved pipes, the air inlet of the curved pipe faces the air inlet, and the air outlet of the curved pipe faces the feed port; the conversion air duct is used to convert the gas entering from the air inlet into a vortex.
[0014] Compared with the related art, the embodiments of the present application have the following advantages:
[0015] In the embodiment of the present application, the inflation and transportation links of the material realize an automated process, reducing dependence on human resources, and the airflow provided by the air supply mechanism can be converted into a vortex and output through multiple cross-curved pipes in the conversion duct of the feeding pipe. In the process of the airflow changing the moving direction in the conversion duct and forming an organized vortex, the moving speed of the airflow is greatly improved. Therefore, under the action of the vortex with a higher moving speed, the material in the feeding pipe can be blown up more easily, which increases the weight of the material that can be transported by the feeding pipe and speeds up the moving speed of the material, thereby improving the material transportation efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 This is a schematic diagram of the appearance and structure of a feeding system according to an embodiment of the present application;
[0017] Figure 2 This is a structural side view of a feeding system according to an embodiment of the present application;
[0018] Figure 3 This is a partial structural diagram of a feeding system according to an embodiment of the present application;
[0019] Figure 4 This is an embodiment of the present application Figure 2 Schematic diagram of the structure of the local area A of the middle feeding system;
[0020] Figure 5 This is an embodiment of the present application Figure 2 Schematic diagram of the partial structure of the feeding system;
[0021] Figure 6 This is a schematic diagram of the appearance structure of another feeding system according to an embodiment of the present application. DETAILED DESCRIPTION
[0022] In order to make the above-mentioned purposes, features and advantages of the present application more obvious and easy to understand, the present application is further described in detail below with reference to the accompanying drawings and specific implementation methods.
[0023] Reference Figure 1, which shows a schematic diagram of the appearance structure of a feeding system provided in an embodiment of the present application, including: an air supply mechanism 10, a feeding mechanism 20, a storage mechanism 30 and a feeding pipeline 40 composed of multiple parts connected in sequence.
[0024] The air supply mechanism 10 may be a device for providing air flow, such as a blower. The air supply mechanism 10 may inhale external air under control, generate air flow, and deliver the flowing gas to the air inlet 51 of the feeding pipe 40 .
[0025] The feeding mechanism 20 may include an inflation workbench 21, and an air source device 22 and an inflation device 23 disposed on the inflation workbench 21. The air source device 22 may include an air compressor and a gas cylinder. The air compressor compresses the gas provided by the gas cylinder and supplies it to the inflation device 23. The inflation port of the inflation device 23 inflates the material to be inflated. After inflation is completed, the material can enter the feeding pipe 40 through the feed port 52.
[0026] The storage mechanism 30 may include a support platform 31 with a certain height and a material receiving container 32. The support platform 31 is used to raise the height of the material receiving container 32 to match the height of the feeding pipe 40, and the material receiving container 32 is used to receive the inflated material 60 output from the discharge port 53 of the feeding pipe 40 for storage.
[0027] The feeding pipe 40 is provided with three openings, namely, an outlet 53 facing the storage mechanism 30, an air inlet 51 connected to the air supply mechanism 10, and a feed port 52 facing the feeding mechanism 20; the air inlet 51 is used to input the air flow provided by the air supply mechanism 51 into the feeding pipe 40, and the air flow moves along the direction from the air inlet 51 to the outlet 53. The feed port 52 is located above the air inlet 51. The feed port 52 is used to input the inflated material 60 provided by the feeding mechanism 20 into the feeding pipe 40. Inside the feeding pipe 40, the air flow input through the air inlet 51 can drive the material 60 to move in the pipe along the direction from the feed port 52 to the outlet 53, and output from the outlet 53 to the storage mechanism 30 for storage.
[0028] Further references Figure 2 , which shows a structural side view of a feeding system provided in an embodiment of the present application. The feeding pipe 40 has a vertical division 42 and a curved division 41. The vertical division 42 can be perpendicular to the ground. The purpose is to provide a vertical conveying channel, thereby minimizing the area occupied by the feeding pipe 40 on the site. The curved division 41 is used to change the conveying direction of the material 60, so that the material 60 can be conveyed and guided to the storage mechanism 30 arranged on the other side of the feeding mechanism.
[0029] For details, please refer to Figure 3, which shows a partial structural diagram of a feeding system provided in an embodiment of the present application. When the material 60 is an air column row formed by connecting a plurality of air columns 61 of slender cylindrical structures in sequence, the air column row itself has weight, and after adding the weight of the filled gas, the air column row as a whole has a relatively high weight. This makes it possible to realize the automatic inflation and transportation of materials, and when the air column row is transported as a whole by the air flow input only by the air supply mechanism 10 in the feeding pipe 40, problems such as slow conveying speed and low conveying efficiency will occur. It should be noted that the material in the embodiment of the present application can also be other inflatable structures, such as an air pillow row formed by connecting a plurality of air pillows of elliptical pillow structures in sequence.
[0030] Further references Figure 4 , which shows the embodiment of the present application provided Figure 2 Schematic diagram of the structure of the local area A of the feeding system. In order to solve the above problems, the embodiment of the present application can be provided with a conversion duct 71 between the feed port 52 and the air inlet 51 in the feeding pipe 40. The conversion duct 71 is composed of a plurality of intersecting curved pipes 72. The air inlet of the curved pipe 72 faces the air inlet 51, and the air outlet of the curved pipe 72 faces the feed port 52. When the air supply mechanism 10 provides airflow, the airflow can enter the conversion duct 71 along the direction C. The conversion duct 71 can convert the airflow into a vortex through a plurality of intersecting curved pipes 72 and output it through the air outlet of the curved pipe 72, wherein the vortex refers to the airflow movement that rotates and is organized along the axis direction of the feeding track generated during the air intake process. In the process of the airflow changing its moving direction and forming an organized vortex in the conversion duct 71, the moving speed of the airflow is greatly improved. Therefore, under the action of the vortex with a higher moving speed, the material in the feeding pipe can be blown up more easily, which increases the weight of the material that can be transported by the feeding pipe and speeds up the moving speed of the material, thereby improving the material transportation efficiency.
[0031] Further, refer to Figure 2 In the embodiment of the present application, a plurality of rotating wheel mechanisms 80 may be arranged along the height direction on the first inner wall of the feeding pipe 40 having a feeding port; and an auxiliary air duct 73 may be arranged along the height direction on the second inner wall of the feeding pipe 40 opposite to the first inner wall; and one end of the auxiliary air duct 73 faces the air inlet, and the other end faces the discharge port, and a plurality of air outlet holes 74 are arranged at intervals on the side wall of the auxiliary air duct 73 facing away from the second inner wall.
[0032] Further references Figure 4 and 5 , Figure 5 It shows that the embodiment of the present application provides Figure 2From the partial structural diagram of the feeding system, it can be seen that through the above design, the auxiliary air duct 73 on the second inner wall of the feeding pipe 40 can receive a part of the airflow provided by the air inlet 51 along the direction B, and the airflow can be discharged outward from the air outlet 74 opened on the auxiliary air duct 73 when moving along the auxiliary air duct 73, thereby forming a force in the direction X on the material 60 being transported in the vertical section 42 of the feeding pipe 40, and forming a force in the direction Y on the material 60 being transported in the curved section 41 of the feeding pipe 40, so that the material 60 contacts the rotating wheel mechanism 80 on the first inner wall of the feeding pipe 40, and the rotating wheel mechanism 80 can effectively reduce the friction between the material 60 and the first inner wall of the feeding pipe 40 through the rotation of the rotating wheel, thereby improving the transportation speed of the material, thereby further improving the transportation efficiency of the material.
[0033] In a logistics and transportation scenario where a feeding system is used, refer to Figure 1 The material 60 transported by the feeding pipe 40 can be an air column row formed by connecting multiple air columns with slender cylindrical structures in sequence, or an air pillow row formed by connecting multiple air pillows with elliptical pillow structures in sequence. The material 60 enters the feeding pipe 40 after being inflated by the feeding device 20, and is transported to the storage mechanism 30 for storage through the feeding pipe 40 under the action of the air flow provided by the air supply mechanism 10. When fragile goods transported in the logistics transportation scenario need to be outer packaged, the material 60 of suitable length can be cut out from the storage mechanism 30 for packaging of the fragile goods. After packaging is completed, the fragile goods can be transported subsequently.
[0034] In another material transportation scenario where the feeding system is applied, the materials transported by the feeding pipe can be other inflatable products, such as inflatable bagged potato chips, inflatable toys, etc. This type of material enters the feeding pipe after being inflated by the feeding device, and is transported to the storage mechanism through the feeding pipe under the action of the air flow provided by the air supply mechanism for storage. When the storage mechanism is full, it can be pulled to the sorting area for sorting and transportation.
[0035] In the embodiment of the present application, the inflation and transportation links of the material realize an automated process, reducing dependence on human resources, and the airflow provided by the air supply mechanism can be converted into a vortex and output through multiple cross-curved pipes in the conversion duct of the feeding pipe. In the process of the airflow changing the moving direction in the conversion duct and forming an organized vortex, the moving speed of the airflow is greatly improved. Therefore, under the action of the vortex with a higher moving speed, the material in the feeding pipe can be blown up more easily, which increases the weight of the material that can be transported by the feeding pipe and speeds up the moving speed of the material, thereby improving the material transportation efficiency.
[0036] Reference Figure 1 and Figure 2, the embodiment of the present application provides a feeding system, comprising: an air supply mechanism 10, a feeding mechanism 20, a storage mechanism 30 and a feeding pipe 40 formed by connecting a plurality of sections in sequence; at least one section of the feeding pipe 40 is a curved section 41, one end of the feeding pipe 40 is a discharge port 53 facing the storage mechanism, the other end of the feeding pipe 40 is an air inlet 51 connected to the air supply mechanism 10, and a side wall of the feeding pipe 40 is provided with a feeding port 52 facing the feeding mechanism 20; a conversion air duct 71 is provided between the feeding port 52 and the air inlet 51 in the feeding pipe 40, Figure 4 The conversion air duct 71 is composed of a plurality of intersecting curved pipes 72 , the air inlet of the curved pipe 72 faces the air inlet 51 , and the air outlet of the curved pipe 72 faces the feed port 52 ; the conversion air duct 71 is used to convert the gas output by the air supply mechanism 10 into a vortex.
[0037] Reference Figure 4 In order to achieve high material transportation efficiency in an automated transportation scenario, the embodiment of the present application can be provided with a conversion duct 71 between the feed port 52 and the air inlet 51 in the feeding pipe 40. The conversion duct 71 is composed of a plurality of intersecting curved pipes 72. The air inlet of the curved pipe 72 faces the air inlet 51, and the air outlet of the curved pipe 72 faces the feed port 52. When the air supply mechanism 10 provides airflow, the airflow can enter the conversion duct 71 along the direction C. The conversion duct 71 can convert the airflow into a vortex through a plurality of intersecting curved pipes 72 and output it through the air outlet of the curved pipe 72, wherein the vortex refers to the organized airflow movement that rotates along the axis of the feeding track generated during the air intake process. In the process of the airflow changing its moving direction and forming an organized vortex in the conversion duct 71, the moving speed of the airflow is greatly improved. Therefore, under the action of the vortex with a higher moving speed, the material in the feeding pipe can be blown up more easily, thereby increasing the weight of the material that can be transported by the feeding pipe and accelerating the moving speed of the material, thereby improving the material transportation efficiency.
[0038] To sum up, in the embodiment of the present application, the inflation and transportation links of the materials realize an automated process, reduce dependence on human resources, and can convert the airflow provided by the air supply mechanism into a vortex and output it through multiple cross-curved pipes in the conversion duct of the feeding pipe. In the process of the airflow changing the moving direction in the conversion duct and forming an organized vortex, the moving speed of the airflow is greatly improved. Therefore, under the action of the vortex with a higher moving speed, the material in the feeding pipe can be blown up more easily, which increases the weight of the material that can be transported by the feeding pipe and speeds up the movement speed of the material, thereby improving the material transportation efficiency.
[0039] Optional, see Figure 1In one implementation, the feeding pipe 40 includes: a first vertical section 42 and a curved section 41 connected in sequence; an end of the first vertical section 42 away from the curved section 41 is an air inlet 51, and an end of the curved section 41 away from the first vertical section 42 is a discharge port 53.
[0040] In an embodiment of the present application, the first vertical section 42 can be perpendicular to the ground in order to provide a vertical conveying channel, thereby minimizing the area occupied by the loading pipe 40 on the site. The curved section 41 is used to change the conveying direction of the material 60 so that the material 60 can be conveyed and guided to the storage mechanism 30 arranged on the other side of the feeding mechanism.
[0041] Optional, see Figure 6 In another implementation, the feeding pipe 40 further includes: a second vertical division 43; one end of the second vertical division 43 is connected to an end of the curved division 41 away from the first vertical division 42, and the other end of the second vertical division 43 is a discharge port.
[0042] In an embodiment of the present application, in another implementation method, the feeding pipe 40 can be formed by connecting the first vertical division 43, the curved division 41 and the second vertical division 43 in sequence. The first vertical division 42 can be perpendicular to the ground, with the purpose of providing a vertical conveying channel, thereby minimizing the area occupied by the feeding pipe 40 on the site. The curved division 41 is used to change the conveying direction of the material 60, and the second vertical division 43 is used to provide a transmission space for the material 60 in the new transport direction, so that the material 60 can be conveyed and guided to the storage mechanism 30 on the other side of the feeding mechanism. Since the second vertical division 43 is suspended from the ground, it has no significant impact on the occupied space of the site.
[0043] Optional, see Figure 2 The feeding pipe 40 further includes: a flow guide cover 44 , which is arranged at the discharge port of the feeding pipe 40 , and the flow guide cover 44 is an arc-shaped structure facing the storage mechanism 30 .
[0044] In an embodiment of the present application, a guide hood 44 is provided at the discharge port of the feeding pipe 40, and the material can be accurately guided to the storage mechanism 30 below through the arc-shaped guide structure of the guide hood 44, thereby forming a limiting guide for the movement of the material, reducing the probability of the material deviating from the opening of the storage mechanism, and improving the transportation stability.
[0045] Optional, see Figure 2On the first inner wall of the feeding pipe 40 where the feeding port is provided, a plurality of rotating wheel mechanisms 80 are arranged along the height direction; and on the second inner wall of the feeding pipe 40 opposite to the first inner wall, an auxiliary air duct 73 is arranged along the height direction; and one end of the auxiliary air duct 73 faces the air inlet, and the other end faces the discharge port, and a plurality of air outlet holes 74 are arranged at intervals on the side wall of the auxiliary air duct 73 facing away from the second inner wall.
[0046] Optional, see Figure 2 The outlet direction of the air outlet hole 74 is toward the direction away from the air inlet 51, and the angle a between the central axis of the air outlet hole 74 and the side wall of the auxiliary air duct 73 away from the second inner wall is an acute angle.
[0047] In the examples of this application, further reference is made to Figure 4 and 5 , which shows the embodiment of the present application provided Figure 2 From the partial structural diagram of the feeding system, it can be seen that through the above design, the auxiliary air duct 73 on the second inner wall of the feeding pipe 40 can receive a part of the airflow provided by the air inlet 51 along the direction B, and the angle a between the central axis of the air outlet 74 and the side wall of the auxiliary air duct 73 away from the second inner wall is an acute angle. Therefore, when the airflow moves along the auxiliary air duct 73, it can be discharged outward from the air outlet 74 opened on the auxiliary air duct 73, thereby forming a force in the direction X on the material 60 being transported in the vertical section 42 of the feeding pipe 40, and forming a force in the direction Y on the material 60 being transported in the curved section 41 of the feeding pipe 40, so that the material 60 contacts the rotating wheel mechanism 80 on the first inner wall of the feeding pipe 40, and the rotating wheel mechanism 80 can effectively reduce the friction between the material 60 and the first inner wall of the feeding pipe 40 through the rotation of the rotating wheel, thereby improving the transportation speed of the material, thereby further improving the transportation efficiency of the material.
[0048] Optional, see Figure 2 The rotating wheel mechanism provided at the non-bending section 42 of the feeding pipe 40 is a universal rotating wheel 82 ; the rotating wheel mechanism provided at the bending section 41 of the feeding pipe 40 is a unidirectional rotating roller 81 .
[0049] In the embodiment of the present application, the universal rotating wheel 82 provided on the non-bending section 42 of the feeding pipe 40 can rotate in any direction, thereby reducing the friction between the material 60 transported by the non-bending section 42 and the inner wall of the non-bending section 42 in any direction of movement, greatly improving the transmission speed of the material in the non-bending section, and the one-way rotating roller 81 provided on the curved section 41 of the feeding pipe 40, Figure 2 It can rotate unidirectionally in clockwise direction, achieving the purpose of directional transmission of materials and reducing the probability of large deviation in the direction of material transmission.
[0050] Optional, see Figure 1 The feeding mechanism 20 includes: an inflation workbench 21, and an air source device 22 and an inflation device 23 arranged on the inflation workbench 21; the inflation device 23 is used to inflate the material 60 with gas provided by the air source device 22, and transport the inflated material 60 to the feed port 52.
[0051] In an embodiment of the present application, the gas source device 22 may include an air compressor and a gas cylinder. The air compressor compresses the gas provided by the gas cylinder and provides it to the inflation device 23. The material to be inflated is inflated through the inflation port of the inflation device 23. After inflation is completed, the material can enter the feeding pipe 40 through the feed port 52. Providing a feeding mechanism can realize the full automation of the inflation process, reducing dependence on human resources. In addition, multiple inflation ports can be set in the inflation device to achieve the purpose of inflating the material in large quantities and improve the inflation efficiency.
[0052] Optionally, when the material is an inflatable air column, the inflation device includes at least one inflation port, and a check valve is provided at the inflation port. After the inflation device inflates the inflatable air column through the inflation port, the check valve is used to seal the air inlet of the inflatable air column.
[0053] In an embodiment of the present application, a sealing valve can be provided at the opening of the inflatable air column. After the inflating device injects gas into the opening of the inflatable air column through the inflation port, the inflating device can further prevent the sealing valve from detaching from the opening of the inflatable air column through a check valve, thereby forming an effective seal for the opening of the inflatable air column and improving the inflation stability.
[0054] Optional, see Figure 1 The storage mechanism 30 includes: a support platform 31 and a material receiving container 32 arranged on the support platform 31; the opening of the material receiving container 32 faces the discharge port 53.
[0055] In the embodiment of the present application, the support platform 31 is used to raise the height of the material receiving container 32 to match the height of the feeding pipe 40, and the material receiving container 32 is used to receive the inflated material 60 output from the discharge port 53 of the feeding pipe 40 for storage.
[0056] Optional, see Figure 1 The surface of the receiving container 32 is a hollow structure, and a material taking port 33 is provided on the side of the receiving container 32 near the support platform 31.
[0057] In the embodiment of the present application, by providing a hollowed-out surface on the receiving container 32, staff can easily observe the current material carrying capacity of the receiving container 32, so that they can promptly observe when the receiving container is full of material, thereby improving management convenience. Specifically, the receiving container 32 can be a storage box with a hollowed-out side structure, or a suspended storage net. In addition, a material extraction port 33 is provided on the side of the receiving container 32 near the support platform 31, allowing staff to quickly remove materials from the extraction port 33 when needed, thereby improving the convenience of material use.
[0058] Optional, see Figure 6 The air supply mechanism 10 , the feeding mechanism 20 and the feeding pipe 40 are arranged on a base 90 , and a moving wheel 91 is provided at the bottom of the base 90 .
[0059] In the embodiment of the present application, the air supply mechanism 10, the feeding mechanism 20 and the feeding pipe 40 are arranged on a movable base 90, which helps to move the air supply mechanism 10, the feeding mechanism 20 and the feeding pipe 40 as a whole. Figure 6 The scenario shown includes multiple storage mechanisms 30 arranged side by side. When the air supply mechanism 10, the feeding mechanism 20 and the loading pipe 40 work together to transport materials to one of the storage mechanisms 30 and it is full, the air supply mechanism 10, the feeding mechanism 20 and the loading pipe 40 can be moved as a whole through the moving wheels 91 set at the bottom of the base 90, so that they are moved to another storage mechanism 30 that is not full yet, and the newly produced inflatable material continues to be transported, thereby improving the management convenience.
[0060] To sum up, in the embodiment of the present application, the inflation and transportation links of the materials realize an automated process, reduce dependence on human resources, and can convert the airflow provided by the air supply mechanism into a vortex and output it through multiple cross-curved pipes in the conversion duct of the feeding pipe. In the process of the airflow changing the moving direction in the conversion duct and forming an organized vortex, the moving speed of the airflow is greatly improved. Therefore, under the action of the vortex with a higher moving speed, the material in the feeding pipe can be blown up more easily, which increases the weight of the material that can be transported by the feeding pipe and speeds up the movement speed of the material, thereby improving the material transportation efficiency.
[0061] Reference Figure 2The embodiment of the present application also provides a feeding pipe, the feeding pipe 40 is composed of multiple sections connected in sequence, at least one section in the feeding pipe 40 is a curved section 41; one end of the feeding pipe 40 is a discharge port 53, the other end of the feeding pipe 40 is an air inlet 51, and a feeding port 52 is provided on the side wall of the feeding pipe 40; a conversion air duct 71 is provided between the feeding port 52 and the air inlet 51 in the feeding pipe 40, and the conversion air duct 71 is composed of multiple intersecting curved pipes, the air inlet of the curved pipe faces the air inlet 51, and the air outlet of the curved pipe faces the feeding port 52; the conversion air duct 71 is used to convert the gas entering from the air inlet into a vortex.
[0062] For the detailed description of the feeding pipe, please refer to the above embodiment and will not be repeated here.
[0063] To sum up, in the embodiment of the present application, the inflation and transportation links of the materials realize an automated process, reduce dependence on human resources, and can convert the airflow provided by the air supply mechanism into a vortex and output it through multiple cross-curved pipes in the conversion duct of the feeding pipe. In the process of the airflow changing the moving direction in the conversion duct and forming an organized vortex, the moving speed of the airflow is greatly improved. Therefore, under the action of the vortex with a higher moving speed, the material in the feeding pipe can be blown up more easily, which increases the weight of the material that can be transported by the feeding pipe and speeds up the movement speed of the material, thereby improving the material transportation efficiency.
[0064] The various embodiments in this specification are described in a progressive manner, and each embodiment focuses on the differences from other embodiments. The same or similar parts between the various embodiments can be referenced to each other.
[0065] The embodiments of the present application are described with reference to the flowcharts and / or block diagrams of the methods, terminal devices (systems), and computer program products according to the embodiments of the present application. It should be understood that each process and / or box in the flowchart and / or block diagram, as well as the combination of the processes and / or boxes in the flowchart and / or block diagram, can be implemented by computer program instructions. These computer program instructions can be provided to a processor of a general-purpose computer, a special-purpose computer, an embedded processor, or other programmable data processing terminal device to produce a machine, so that the instructions executed by the processor of the computer or other programmable data processing terminal device generate instructions for implementing the steps in the process. Figure 1 a process or multiple processes and / or boxes Figure 1 A device that provides the functions specified in a block or multiple blocks.
[0066] These computer program instructions may also be stored in a computer readable memory that can direct a computer or other programmable data processing terminal device to operate in a specific manner, so that the instructions stored in the computer readable memory produce a manufactured product including an instruction device, which implements the process Figure 1 a process or multiple processes and / or boxes Figure 1 The function specified in one or more boxes.
[0067] These computer program instructions can also be loaded onto a computer or other programmable data processing terminal device so that a series of operating steps are executed on the computer or other programmable terminal device to produce a computer-implemented process, thereby providing instructions for executing on the computer or other programmable terminal device to implement the process. Figure 1 a process or multiple processes and / or boxes Figure 1 The steps for the function specified in one or more boxes.
[0068] Although preferred embodiments of the present invention have been described, those skilled in the art may make additional changes and modifications to these embodiments once they become aware of the basic inventive concepts. Therefore, the appended claims are intended to be interpreted as including the preferred embodiments and all changes and modifications that fall within the scope of the embodiments of the present invention.
[0069] Finally, it should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or terminal device that includes a series of elements includes not only those elements, but also other elements not explicitly listed, or elements inherent to such process, method, article, or terminal device. In the absence of further limitations, an element defined by the phrase "comprising a ..." does not exclude the presence of additional identical elements in the process, method, article, or terminal device that includes the element.
[0070] The above is a detailed introduction to the method, device, electronic device and storage medium for obtaining a service area provided by the present application. Specific examples are used herein to illustrate the principles and implementation methods of the present application. The description of the above embodiments is only used to help understand the method and core ideas of the present application. At the same time, for those skilled in the art, according to the ideas of the present application, there may be changes in the specific implementation methods and application scope. In summary, the content of this specification should not be understood as limiting the present application.
Claims
1. A feeding system, characterized in that: include: The air supply mechanism, the feeding mechanism, the storage mechanism and the multiple sub-sections are connected in sequence to form a feeding pipeline; At least one section of the feeding pipe is a curved section, one end of the feeding pipe is a discharge port facing the storage mechanism, the other end of the feeding pipe is an air inlet connected to the air supply mechanism, and a side wall of the feeding pipe is provided with a feeding port facing the feeding mechanism; A conversion duct is provided between the feed port and the air inlet in the feeding pipe, the conversion duct being composed of a plurality of intersecting curved pipes, the air inlets of the curved pipes facing the air inlet, and the air outlets of the curved pipes facing the feed port; the conversion duct is used to convert the gas output by the air supply mechanism into a vortex; On the first inner wall of the feeding pipe where the feeding port is provided, a plurality of rotating wheel mechanisms are arranged along the height direction; An auxiliary air duct is arranged along the height direction on a second inner wall of the feeding pipe opposite to the first inner wall; One end of the auxiliary air duct faces the air inlet, and the other end of the auxiliary air duct faces the discharge port. A plurality of air outlet holes are arranged at intervals on a side wall of the auxiliary air duct away from the second inner wall.
2. The system according to claim 1, wherein: The feeding pipe comprises: a first vertical section and a curved section connected in sequence; One end of the first vertical section away from the curved section is the air inlet, and one end of the curved section away from the first vertical section is the discharge port.
3. The system according to claim 2, characterized in that The feeding pipeline further includes: a second vertical subsection; One end of the second vertical branch is connected to an end of the curved branch facing away from the first vertical branch, and the other end of the second vertical branch is the discharge port.
4. The system according to claim 1, wherein: The feeding pipe further includes: a flow guide cover, which is arranged at the discharge port of the feeding pipe, and the flow guide cover is an arc-shaped structure facing the storage mechanism.
5. The system according to claim 1, wherein: The air outlet direction of the air outlet is toward a direction away from the air inlet, and the angle between the central axis of the air outlet and the side wall of the auxiliary air duct away from the second inner wall is an acute angle.
6. The system according to claim 1, wherein: The rotating wheel mechanism provided on the non-bending portion of the feeding pipe is a universal rotating wheel; The rotating wheel mechanism provided at the curved portion of the feeding pipe is a one-way rotating roller.
7. The system according to claim 1, wherein: The feeding mechanism comprises: An inflatable workbench, and an air source device and an inflating device arranged on the inflatable workbench; The inflation device is used to inflate the material with the gas provided by the gas source device and transport the inflated material to the feed port.
8. The system according to claim 7, characterized in that In the case where the material is an inflatable air column, the inflating device includes at least one inflating port, and a check valve is provided at the position of the inflating port. After the inflating device inflates the inflatable air column through the inflating port, the check valve is used to seal the air inlet of the inflatable air column.
9. A feeding pipe, characterized in that: The feeding pipeline is composed of a plurality of sections connected in sequence, and at least one section of the feeding pipeline is a curved section; One end of the feeding pipe is a discharge port, the other end of the feeding pipe is an air inlet, and a side wall of the feeding pipe is provided with a feeding port; A conversion duct is provided between the feed port and the air inlet in the feeding pipe, the conversion duct being composed of a plurality of intersecting curved pipes, the air inlets of the curved pipes facing the air inlet, and the air outlets of the curved pipes facing the feed port; the conversion duct is used to convert the gas entering from the air inlet into a vortex; On the first inner wall of the feeding pipe where the feeding port is provided, a plurality of rotating wheel mechanisms are arranged along the height direction; An auxiliary air duct is arranged along the height direction on a second inner wall of the feeding pipe opposite to the first inner wall; One end of the auxiliary air duct faces the air inlet, and the other end of the auxiliary air duct faces the discharge port. A plurality of air outlet holes are arranged at intervals on a side wall of the auxiliary air duct away from the second inner wall.
Citation Information
Patent Citations
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