Partitioned blanking framework and assembly line device
By designing an automated partitioned material feeding architecture, and utilizing material guiding and dropping control structures, the automatic partitioned material feeding of products is realized, solving the problem of manual partitioning in existing technologies and improving the efficiency and functional flexibility of material feeding operations.
Patent Information
- Application Number
- CN202520041491.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-08
- Publication Date
- 2025-12-26
- Estimated Expiration
- 2035-01-08
AI Technical Summary
The existing material feeding structure lacks automatic partitioning function, which leads to the need for manual partitioning in subsequent processes, making operation difficult and increasing operating costs.
A partitioned feeding architecture was designed, including a feeding guide trough structure, a feeding channel, a dropping control structure, and a guiding control structure. Automated partitioned feeding is achieved through electronic control components. The guiding drive component and the dropping drive component control the indexing guide plate and the indexing control plate to realize switchable single-channel guiding and partitioned feeding.
The system enables automated product partitioning and unloading, improving unloading efficiency, enhancing functional flexibility and practicality, reducing manual intervention, and lowering operational difficulty and costs.
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Figure CN223722192U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to a flow line material guiding technical field, specifically, relates to a partition unloading architecture and flow line device. BACKGROUND
[0002] In today's industrial manufacturing field, product quality control runs through the whole production process, after accurately and efficiently identifying and detecting product surface defects and removing inferior products, it is necessary to further unload and store high-quality products. However, the existing unloading architecture generally does not have automatic partition function, and manual re-partition is still required in subsequent processes, which is difficult to operate and is not conducive to controlling operating costs. UTILITY MODEL CONTENTS
[0003] Therefore, the utility model provides a partition unloading architecture and flow line device to solve the problem that the product unloading architecture in the prior art is difficult to realize automatic partition unloading and storage, and the overall function flexibility is poor.
[0004] In order to achieve the above purpose, the utility model provides the following technical scheme:
[0005] A partition unloading architecture comprises:
[0006] The unloading guide groove structure is provided with at least one group of material distribution channels, and the unloading guide groove structure is provided with a material falling opening part corresponding to the bottom position of at least one group of material distribution channels;
[0007] The material falling control structure is assembled in the unloading guide groove structure, and the material falling control structure is provided with a transposition control plate, and the transposition control plate is controllably transposed and opened and closed corresponding to the material falling opening part.
[0008] On the basis of the above technical scheme, the utility model is further described as follows:
[0009] As a further scheme of the utility model,
[0010] The unloading guide groove structure comprises a guide groove main body;
[0011] The guide groove main body is provided as a linearly extended U-shaped material guide groove body, and the inlet end of the U-shaped guide groove main body is connected with the material outlet end of the flow line assembly structure.
[0012] As a further scheme of the utility model,
[0013] The unloading guide groove structure further comprises a spacing plate;
[0014] The spacing plate is vertically fixedly connected and assembled at the outlet end of the U-shaped guide groove main body, and the spacing plate is correspondingly arranged at the middle position of the outlet end of the U-shaped guide groove main body.
[0015] The outlet end of the guide groove body is separated by the partition plate to form two groups of the distribution channels.
[0016] As a further scheme of the utility model,
[0017] The partitioned storage structure is provided with four groups of storage sub-warehouses.
[0018] The four groups of storage sub-warehouses are all cuboid structures and are integrally combined into a rectangular arrangement.
[0019] As a further scheme of the utility model,
[0020] The distribution channels are provided with two groups.
[0021] The outlet end of the guide groove body is fixedly connected and assembled with two groups of first discharging parts, the two groups of first discharging parts and the two groups of distribution channels are respectively and correspondingly connected and arranged, and the two groups of first discharging parts are correspondingly arranged between the two storage sub-warehouses of the partitioned storage structure.
[0022] As a further scheme of the utility model,
[0023] The bottom of the guide groove body corresponding to the two groups of distribution channels is provided with a discharging port, and the bottom of the guide groove body is fixedly connected and assembled with two groups of second discharging parts; the two groups of second discharging parts and the two groups of discharging ports are respectively and correspondingly connected and arranged, and the two groups of second discharging parts are correspondingly arranged between the other two storage sub-warehouses of the partitioned storage structure.
[0024] As a further scheme of the utility model, further comprising:
[0025] The material guiding control structure comprises a material guiding driving assembly and a transposition material guiding plate.
[0026] The material guiding driving assembly is a material guiding driving motor, and the base part of the material guiding driving assembly is fixedly connected and assembled at the bottom position of the guide groove body.
[0027] The transposition material guiding plate is connected and assembled at the inner side of the guide groove body, and the transposition material guiding plate is correspondingly located at the middle position of the inlet end of the two groups of distribution channels.
[0028] The rotary kinetic energy output end of the material guiding driving assembly and the rotary driving shaft of the transposition material guiding plate are transmissionally connected and arranged, the transposition material guiding plate is driven to transposition by the rotary kinetic energy output by the material guiding driving assembly, and the two groups of distribution channels form switchable single channels based on the transposition material guiding plate.
[0029] As a further scheme of the utility model,
[0030] The blanking regulation structure further comprises a blanking driving assembly;
[0031] The blanking driving assembly is a blanking driving motor, and a base part of the blanking driving assembly is fixedly arranged on at least one side of the guide groove body;
[0032] The index regulation plates are arranged in two groups, and each of the two groups of index regulation plates is correspondingly arranged in the two groups of material distribution channels and is arranged to controllably rotate and open and close the blanking ports.
[0033] The rotation driving shafts of the two groups of index regulation plates are connected and arranged in transmission with the rotation energy output ends of the blanking driving assembly, the blanking driving assembly outputs rotation energy to drive the two groups of index regulation plates to rotate, the index regulation plates rotate to open the blanking ports to connect the second material feeding part and form a blocking effect, or the index regulation plates rotate to close the blanking ports to guide the first material feeding part through the material distribution channels.
[0034] A pipeline device comprises the partitioned material feeding structure.
[0035] As a further scheme of the utility model, the utility model further comprises:
[0036] The electric control assembly comprises a power module and a control module connected through a circuit.
[0037] The input end of a relay is connected to the control output end of the control module through a circuit, and the output end of the relay is connected to the material guiding driving assembly and the blanking driving assembly through a circuit.
[0038] The control input end of the control module is connected to a counting sensor through a circuit.
[0039] The counting sensor is arranged in the material storage compartment.
[0040] The utility model has the following beneficial effects:
[0041] The structure and device can be used as the function structure basis of the overall material feeding and partitioned material storage by cooperating the material feeding guide groove structure and the partitioned material storage structure, can switchably guide the material through the material guiding regulation structure corresponding to the material feeding guide groove structure, and can further realize the partitioned material feeding based on the single channel through the blanking regulation structure, so that the specific target compartment of the material feeding to the partitioned material storage structure is realized, the product material feeding operation efficiency is effectively ensured, and the overall function flexibility and practicability are enhanced. BRIEF DESCRIPTION OF DRAWINGS
[0042] In order to more clearly illustrate the embodiments of the present application or the technical solutions in the prior art, the following will briefly introduce the drawings needed to be used in the embodiments or the prior art description. The structure, proportion, size, etc. shown in the specification are only used to cooperate with the content disclosed in the specification, so as to be understood and read by those skilled in the art. Any modification of the structure, change of the proportion relationship or adjustment of the size, which does not affect the effects and purposes that can be produced by the present application, should still fall within the scope of the technical content disclosed by the present application.
[0043] Figure 1 The overall axial structure schematic diagram of the partitioned blanking framework provided by the embodiment of the present application.
[0044] Figure 2 The assembly structure schematic diagram corresponding to the blanking guide groove structure of the partitioned blanking framework provided by the embodiment of the present application.
[0045] Figure 3 The assembly structure schematic diagram corresponding to the guide material control structure of the partitioned blanking framework provided by the embodiment of the present application.
[0046] Figure 4 The assembly structure schematic diagram corresponding to the blanking control structure of the partitioned blanking framework provided by the embodiment of the present application.
[0047] Figure 5 The overall assembly structure schematic diagram of the assembly line device provided by the embodiment of the present application.
[0048] In the drawings, the component list represented by each reference numeral is as follows:
[0049] The blanking guide groove structure 1: the guide groove main body 11, the partition plate 12, the material distribution channel 13, the first blanking part 14, the blanking port part 15, the second blanking part 16, the protective shell 17;
[0050] The partitioned material storage structure 2, the material storage sub-chamber 21, the guide block 22;
[0051] The guide material control structure 3: the guide material driving assembly 31, the transposition guide material plate 32;
[0052] The blanking control structure 4: the blanking driving assembly 41, the transposition control plate 42;
[0053] The assembly line component structure 5. DETAILED DESCRIPTION
[0054] The following specific embodiments illustrate the embodiments of the present application, and those skilled in the art can easily understand other advantages and effects of the present application from the disclosed content. Obviously, the described embodiments are only some of the embodiments of the present application, not all. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor are within the scope of protection of the present application.
[0055] The terms such as "upper", "lower", "left", "right", "middle" and the like cited in the specification are only for the convenience of clear description, and are not intended to limit the scope of the present application. Changes or adjustments of the relative relationship without substantial changes in technical content are also considered as the scope of the present application.
[0056] As shown in Figures 1 to 5 The embodiment of the present application provides a partitioned unloading architecture and a flow line device comprising the partitioned unloading architecture and a flow line assembly structure 5, wherein the partitioned unloading architecture comprises an unloading guide groove structure 1, a partitioned storage structure 2, a guide control structure 3 and a blanking control structure 4, which are used as the functional architecture basis of the overall unloading and partitioned storage by cooperating the unloading guide groove structure 1 with the partitioned storage structure 2, and can utilize the guide control structure 3 to complete the switchable single-channel guide corresponding to the unloading guide groove structure 1, and further realize the partitioned unloading based on the single channel by means of the blanking control structure 4, so as to realize the specific target compartment corresponding to the unloading to the partitioned storage structure 2, effectively guarantee the product unloading operation efficiency, and enhance the overall functional flexibility and practicality. The specific settings are as follows:
[0057] Please refer to Figure 1 and Figure 2 The unloading guide groove structure 1 comprises a guide groove body 11 and a partition plate 12; wherein the guide groove body 11 is arranged as a linearly extended U-shaped guide groove body, and the inlet end of the U-shaped guide groove body 11 is connected in correspondence with the outlet end of the flow line assembly structure 5; the partition plate 12 is vertically fixedly connected and assembled at the outlet end of the U-shaped guide groove body 11, and the partition plate 12 is arranged in correspondence with the middle position of the outlet end of the U-shaped guide groove body 11, the outlet end of the guide groove body 11 is divided into two groups of material distribution channels 13 by the partition plate 12, and the outlet end of the guide groove body 11 is fixedly connected and assembled with two groups of first unloading portions 14, the two groups of first unloading portions 14 and the two groups of material distribution channels 13 are respectively and correspondingly connected in sequence, and the two groups of first unloading portions 14 are arranged in correspondence with two storage compartments 21 of the partitioned storage structure 2.
[0058] The guide groove body 11 is provided with a discharging port 15 corresponding to the bottom of each of the two groups of material distribution channels 13, and the bottom of the guide groove body 11 is fixedly connected with two groups of second discharging portions 16, which are respectively and correspondingly connected with the two groups of discharging ports 15, and the two groups of second discharging portions 16 are correspondingly arranged between the other two storage compartments 21 of the partitioned storage structure 2, so as to effectively serve as the basis of the function of overall discharging and partitioned storage by corresponding cooperation between the two groups of first discharging portions 14, the second discharging portions 16 and the storage compartments 21 of the partitioned storage structure 2.
[0059] Specifically, the partitioned storage structure 2 is provided with four groups of storage compartments 21, which are all cuboid structures and are arranged in a rectangular shape, so as to realize partitioned discharging and storage by corresponding cooperation between the four groups of storage compartments 21 and the two groups of first discharging portions 14 and the two groups of second discharging portions 16.
[0060] As a preferred embodiment of the present embodiment, the four groups of storage compartments 21 are fixedly connected with guide blocks 22 corresponding to the combined corner ends, so as to effectively reduce the accumulation of materials at the discharging position by the guide blocks 22.
[0061] As another preferred embodiment of the present embodiment, the top of the guide groove body 11 is also fixedly connected with a protective cover 17, so as to effectively improve the protection performance of the overall material guiding process by the protective cover 17.
[0062] Please refer to Figures 1 to 3 The material guiding control structure 3 comprises a material guiding driving assembly 31 and a transposition material guiding plate 32. The material guiding driving assembly 31 is a material guiding driving motor, and the base of the material guiding driving assembly 31 is fixedly connected and assembled at the bottom of the guide groove body 11. The transposition material guiding plate 32 is transpositionally connected and assembled at the inner side of the guide groove body 11, and the transposition material guiding plate 32 is correspondingly located at the middle position of the inlet end of the two groups of material distribution channels 13. The rotary kinetic energy output end of the material guiding driving assembly 31 is drivingly connected and assembled with the rotary driving shaft of the transposition material guiding plate 32, so as to drive the transposition material guiding plate 32 to transposition by the output rotary kinetic energy of the material guiding driving assembly 31, and the transposition material guiding plate 32 can form a switchable single-channel material guiding function corresponding to the two groups of material distribution channels 13.
[0063] Please refer to Figures 1 to 4The blanking regulation structure 4 comprises a blanking driving assembly 41 and a rotation regulation plate 42; wherein the blanking driving assembly 41 is arranged as a blanking driving motor, and the base part of the blanking driving assembly 41 is fixedly arranged on at least one side of the guide groove body 11; the rotation regulation plate 42 is arranged in two groups, and each of the two groups of the rotation regulation plate 42 is correspondingly arranged in the two groups of the material distribution channels 13, and each of the two groups of the rotation regulation plate 42 is correspondingly arranged as a controllable rotation opening and closing of the two groups of the blanking port 15; the rotation driving shaft of the two groups of the rotation regulation plate 42 is connected and arranged in transmission with the rotation kinetic energy output end of the blanking driving assembly 41; so as to drive the two groups of the rotation regulation plate 42 to rotate by the rotation kinetic energy output by the blanking driving assembly 41, so as to form a switchable single-channel material guiding function based on the two groups of the material distribution channels 13, further control the rotation of the rotation regulation plate 42 to open the blanking port 15, and form a blocking effect by the rotation regulation plate 42 to connect the second blanking part 16, or control the rotation of the rotation regulation plate 42 to close the blanking port 15, and then guide the first blanking part 14 by the corresponding single material distribution channel 13, so as to realize controllable partition blanking.
[0064] It should be noted that the pipeline assembly structure 5 further comprises an electric control assembly, the electric control assembly comprises a power module and a control module connected by a circuit, the control module can be selected but is not limited to a single-chip microcomputer control board with a model number of AT80C51 and a microcontroller with a model number of STM32, and the control output end of the control module is connected with the input end of a relay through a circuit, and the output end of the relay is connected with the material guiding driving assembly 31 and the blanking driving assembly 41 through a circuit.
[0065] In an optional embodiment, the four groups of the material storage compartments 21 are each internally provided with a counting sensor, and the counting sensor and the control input end of the control module are connected through a circuit, so as to realize effective automatic counting of the four groups of the material storage compartments 21, and improve the automation degree of the overall structure.
[0066] Although the utility model has been described in detail above with general description and specific embodiments, some modifications or improvements can be made on the basis of the utility model, which is obvious to those skilled in the art. Therefore, these modifications or improvements made on the basis of not deviating from the spirit of the utility model all belong to the scope of protection required by the utility model.
Claims
1. A zoned blanking architecture, comprising: The device comprises: a blanking guide groove structure provided with at least one group of material distribution channels, and the blanking guide groove structure is provided with a blanking port corresponding to the bottom position of the at least one group of material distribution channels; a blanking control structure assembled in the blanking guide groove structure, and the blanking control structure is provided with a position control plate which can be controlled to rotate and open and close corresponding to the blanking port.
2. The zoning blanking frame according to claim 1, wherein: the blanking guide groove structure comprises a guide groove main body; the guide groove main body is provided as a linearly extended U-shaped material guide groove body, and the inlet end of the U-shaped guide groove main body is connected in correspondence with the material outlet end of the assembly line component structure.
3. The zoning blanking frame according to claim 2, wherein: the blanking guide groove structure further comprises a spacing plate; the spacing plate is vertically and fixedly assembled at the outlet end of the U-shaped guide groove main body, and the spacing plate is correspondingly arranged at the middle position of the outlet end of the U-shaped guide groove main body; the outlet end of the guide groove main body is divided into two groups of material distribution channels by the spacing plate.
4. The zoning blanking frame according to claim 2, wherein: the zoning material storage structure is provided with four groups of material storage compartments; the four groups of material storage compartments are all cuboid structures and are integrally combined as a rectangular arrangement.
5. The zoning blanking frame according to claim 4, wherein: the material distribution channels are provided with two groups; the outlet end of the guide groove main body is fixedly assembled with two groups of first blanking parts, and the two groups of first blanking parts and the two groups of material distribution channels are respectively and correspondingly connected in sequence, and the two groups of first blanking parts correspond to two material storage compartments of the zoning material storage structure.
6. The zoning blanking frame according to claim 5, wherein: the guide groove main body is provided with a blanking port corresponding to the bottom of the two groups of material distribution channels, and the bottom of the guide groove main body is fixedly assembled with two groups of second blanking parts; the two groups of second blanking parts and the two groups of blanking ports are respectively and correspondingly connected in sequence, and the two groups of second blanking parts correspond to the other two material storage compartments of the zoning material storage structure.
7. The zoned dosing architecture of claim 6, wherein, Further comprising: a material guide control structure comprising a material guide driving assembly and a position control plate; the material guide driving assembly is provided as a material guide driving motor, and the base part of the material guide driving assembly is fixedly assembled at the bottom position of the guide groove main body; the position control plate is assembled at the inner side of the guide groove main body, and the position control plate is located at the middle position of the inlet end of the two groups of material distribution channels; the rotary kinetic energy output end of the material guide driving assembly and the rotary driving shaft of the position control plate are transmissionally and assembledly connected, the position control plate is driven to rotate by the rotary kinetic energy output of the material guide driving assembly, and the two groups of material distribution channels form switchable single channels based on the position control plate.
8. The zoning blanking frame according to claim 7, wherein: the blanking control structure further comprises a blanking driving assembly; The blank driving assembly is a blank driving motor, and a base part of the blank driving assembly is fixedly arranged on at least one side of the guide groove body; The two groups of rotation control plates are respectively and correspondingly arranged in the two groups of material distribution channels, and are respectively and correspondingly arranged in the two groups of blanking ports for controllable rotation opening and closing; The rotation driving shafts of the two groups of rotation control plates are connected to the rotation energy output ends of the blank driving assembly, and the rotation energy output by the blank driving assembly drives the two groups of rotation control plates to rotate.
9. A pipelined apparatus characterized by, The blanking port is opened to connect the second blanking part, and the rotation control plate forms a blocking effect, or the blanking port is closed to guide the first blanking part from the material distribution channel.
10. The pipelining device of claim 9, wherein, The partitioned blanking framework as claimed in claim 8 is included. Further comprising: An electric control assembly including a power module and a control module connected by a circuit; The control output end of the control module is connected with the input end of a relay through a circuit, and the output end of the relay is connected with the guide driving assembly and the blank driving assembly through a circuit; The control input end of the control module is connected with a counting sensor through a circuit; The counting sensor is arranged in the material storage compartment.