Feeding station framework for product inspection and identification and detection device
By designing a feeding station structure for product inspection, including the feed drive structure and the self-arranged feeding structure, the problem of difficulty in maintaining the one-way driving thread and fixed orientation arrangement during initial loading of T-shaped parts is solved, and efficient feeding regularity and detection efficiency are achieved.
Patent Information
- Application Number
- CN202422034713.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-21
- Publication Date
- 2025-06-27
- Estimated Expiration
- 2034-08-21
AI Technical Summary
In the prior art, when identifying and detecting surface defects of T-shaped parts, it is difficult to ensure that the T-shaped parts are initially kept in a one-way driving thread and arranged in a fixed direction, resulting in low detection efficiency.
A feeding station structure is designed, including a feeding drive structure and a self-arranged feeding structure. Through rotary vibration components, internal rotation lifting grooves, butt and arrangement guides and other components, the one-way driving thread and fixed orientation arrangement of T-shaped parts are realized.
It significantly improves the feeding regularity and inspection efficiency, ensures that the T-shaped parts travel along the one-way driving thread and are arranged in a fixed direction, thereby improving the overall inspection efficiency and automation level.
Smart Images

Figure CN223032080U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of product defect detection, and in particular to a loading station structure and an identification detection device for product inspection. Background Art
[0002] At present, in the field of industrial manufacturing, various types of defects often appear on the surface of molded products due to incorrect processes, accidental bumps, or multiple factors such as raw materials, equipment, and environment, resulting in reduced product performance and service life. Therefore, the identification, detection and elimination of product surface defects is the key to ensuring the quality of industrial products.
[0003] In the prior art, when identifying and detecting surface defects of certain T-shaped parts, the degree of functional integration is low, especially in the initial loading process. Since the number of end faces of the T-shaped parts that can remain stably placed is limited, it is difficult to ensure that the T-shaped parts are initially loaded along a unidirectional drive thread and arranged in a certain direction, which makes it difficult for the overall detection efficiency to meet the expected standard requirements, which is not conducive to controlling operating costs. Utility Model Content
[0004] To this end, the utility model provides a loading station structure and identification and detection device for product inspection to solve the technical problem in the prior art that it is difficult to ensure that the T-shaped parts are initially kept along a unidirectional driving thread and arranged in a fixed direction when identifying and detecting surface defects of T-shaped parts.
[0005] In order to achieve the above purpose, the utility model provides the following technical solutions:
[0006] A loading station architecture for product inspection, comprising:
[0007] A material conveying drive structure including a rotating vibration component;
[0008] Self-arranging feeding structure, including inner rotating lifting trough and docking arrangement guide rail;
[0009] The inner rotating material lifting trough is connected to the rotating vibration component by transmission and fixed connection;
[0010] The docking arrangement guide rail has a built-in T-shaped channel corresponding to the T-shaped part, and the docking arrangement guide rail is provided with an inverted T-shaped inlet end, and the inverted T-shaped inlet end of the docking arrangement guide rail is connected and arranged correspondingly to the output end of the inner rotating lifting trough;
[0011] The docking arrangement guide rail has a guide rail flipping portion, and the outlet end of the guide rail flipping portion is set as a positive T-shaped outlet end corresponding to the outlet end of the docking arrangement guide rail, which is used to flip the T-shaped parts arranged in an inverted T shape from the inside of the docking arrangement guide rail to a positive T shape arrangement.
[0012] On the basis of the above technical solution, the following further description is made for the present utility model:
[0013] As a further solution of the present utility model, the inner rotating and lifting material trough includes an inner material trough body and a rotating and lifting material plate;
[0014] The inner material trough body is fixedly connected in a transmission manner with the rotating and vibrating output end of the rotating and vibrating assembly;
[0015] The rotating and lifting material plate is arranged in a spiral shape and fixedly arranged on the inner wall of the inner material trough body.
[0016] As a further solution of the present utility model, the inverted T-shaped inlet end of the docking arrangement guide rail is correspondingly and continuously connected with the output end of the rotating and lifting material plate. One side of the output end of the rotating and lifting material plate is communicated with the inner material trough body. For the more stable characteristic of the inverted T-shaped by vibrating the T-shaped parts, several T-shaped parts can enter the docking arrangement guide rail in a fixed orientation in an inverted T shape, while the non-inverted T-shaped T-shaped parts cannot enter the docking arrangement guide rail and fall back to the inner material trough body under the action of vibration.
[0017] As a further solution of the present utility model, the self-arranging feeding structure further includes an outer supplementary material trough;
[0018] The outer supplementary material trough is fixedly connected in a transmission manner with the rotating and vibrating output end of the rotating and vibrating assembly;
[0019] The inner material trough body is correspondingly fixedly located at the central concave side position of the outer supplementary material trough, and the lower part of the inner material trough body is connected and communicated with the central concave side position of the outer supplementary material trough.
[0020] As a further solution of the present utility model, the self-arranging feeding structure further includes an outer guide rail limiting plate;
[0021] The outer guide rail limiting plate is fixedly assembled at intervals on the outer peripheral side of the outer supplementary material trough;
[0022] The docking arrangement guide rail is arranged between the outer guide rail limiting plate and the outer supplementary material trough.
[0023] As a further solution of the present utility model, the self-arranging feeding structure further includes a lifting supplementary feeding structure;
[0024] The lifting supplementary feeding structure is fixedly located at the outer side of the outer guide rail limiting plate, and the discharge port of the lifting supplementary feeding structure is connected and communicated with the outer supplementary material trough and / or the inner rotating and lifting material trough.
[0025] As a further solution of the present utility model, the self-arranging feeding structure further includes a material quantity detection component;
[0026] The monitoring end of the material quantity detection component correspondingly extends and is located inside the main body of the inner material tank, and the material quantity detection component is electrically connected to the lifting and replenishing material structure through an electric control module.
[0027] As a further solution of the present invention, a protective box body is fixedly provided on the outer sides of the outer replenishing material tank and the outer guide rail limiting plate;
[0028] A sound insulation layer is laid on the inner wall of the protective box body.
[0029] As a further solution of the present invention, the material conveying driving structure further includes a first linear vibration component and a linear limiting guide seat;
[0030] The linear limiting guide seat is fixedly assembled on the first linear vibration component;
[0031] The first linear vibration component and the linear limiting guide seat cooperate to form a positive T-shaped inlet end, and the positive T-shaped inlet end formed by the first linear vibration component and the linear limiting guide seat is continuously connected to the positive T-shaped outlet end corresponding to the guide rail turning part of the docking arrangement guide rail;
[0032] The first linear vibration component and the linear limiting guide seat form a positive T-shaped outlet end.
[0033] An identification and detection device includes the above-mentioned feeding station structure for product inspection. The identification and detection device further includes:
[0034] A conveying identification and detection structure is continuously connected to the positive T-shaped outlet end formed by the linear vibration component and the linear limiting guide seat.
[0035] The present invention has the following beneficial effects:
[0036] The structure and device can effectively form a one-way driving thread for T-shaped parts through the cooperation of the material conveying driving structure and the self-arranging feeding structure. At the same time, it can use the cooperation of the material conveying driving structure and the self-arranging feeding structure to realize the movement of several T-shaped parts along the one-way driving thread and the feeding with a fixed orientation, thereby significantly improving the feeding regularity and the subsequent overall detection efficiency. In addition, the lifting and replenishing material structure can be used to effectively realize the timed replenishment of T-shaped parts, further improving the overall automation degree and its functional practicality. Description of the Drawings
[0037] To more clearly illustrate the embodiments of the present utility model or the technical solutions in the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. The structures, proportions, sizes, etc. depicted in this specification are only used to cooperate with the content disclosed in the specification for those familiar with this technology to understand and read. Any modification of the structure, change in the proportional relationship, or adjustment of the size, without affecting the effects that the present utility model can produce and the purposes that can be achieved, should still fall within the scope covered by the technical content disclosed by the present utility model.
[0038] Figure 1 It is an axonometric structure diagram of the feeding drive structure, self-arranging feeding structure, and subsequent conveying and identification detection structure in the identification detection device for product inspection provided by an embodiment of the present utility model.
[0039] Figure 2 It is one of the axonometric structure diagrams of the self-arranging feeding structure in the feeding station architecture and identification detection device for product inspection provided by an embodiment of the present utility model.
[0040] Figure 3 It is an axonometric structure diagram corresponding to the lifting and replenishing feeding structure in the feeding station architecture for product inspection provided by an embodiment of the present utility model.
[0041] Figure 4 It is the second axonometric structure diagram of the self-arranging feeding structure in the feeding station architecture and identification detection device for product inspection provided by an embodiment of the present utility model.
[0042] In the drawings, the list of components represented by each reference numeral is as follows:
[0043] Feeding drive structure 1: Rotary vibration assembly 11, linear vibration assembly 12, linear limit guide seat 13;
[0044] Self-arranging feeding structure 2: Outer supplementary feeding groove 21, inner rotating and lifting feeding groove 22, inner feeding groove body 221, rotating and lifting feeding plate 222, outer guide rail limiting plate 23, docking arrangement guide rail 24, guide rail flipping part 25, material quantity detection component 26, sound insulation layer 27;
[0045] Lifting and replenishing feeding structure 3; Conveying and identification detection structure 4;
[0046] T-shaped part a. Specific embodiments
[0047] The following specific embodiments illustrate the implementation manners of the present utility model. Those skilled in the art can easily understand other advantages and effects of the present utility model from the content disclosed in this specification. Obviously, the described embodiments are part of the embodiments of the present utility model, rather than all of them. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present utility model without making creative efforts belong to the scope protected by the present utility model.
[0048] Terms such as "upper", "lower", "left", "right", "middle", etc. cited in this specification are only for the convenience of clear description, rather than to limit the scope of implementation of the present utility model. The change or adjustment of their relative relationship, without substantial change in the technical content, should also be regarded as the scope of implementation of the present utility model.
[0049] As Figures 1 to 4 shown, the embodiment of the present utility model provides a feeding station structure for product inspection and an identification and detection device including the feeding station structure. Among them, the feeding station structure includes a feeding drive structure 1, a self-arranging feeding structure 2, and a lifting feeding supplement structure 3, which are used to effectively form a one-way driving thread for T-shaped parts a through the cooperation of the feeding drive structure 1 and the self-arranging feeding structure 2. At the same time, it can use the cooperation of the feeding drive structure 1 and the self-arranging feeding structure 2 to realize the feeding of several T-shaped parts a along the one-way driving thread and arranged in a fixed orientation, thereby significantly improving the feeding regularity and the subsequent overall detection efficiency. In addition, the lifting feeding supplement structure 3 can be used to effectively realize the timed supplement of T-shaped parts a, further improving the overall automation degree and its functional practicality. The specific settings are as follows:
[0050] Please refer to Figure 1 and Figure 2, the feeding drive structure 1 includes a rotary vibration assembly 11, a linear vibration assembly 12 and a linear limit guide base 13, and the self-arranging feeding structure 2 includes an outer supplementary feeding groove 21, an inner rotary lifting feeding groove 22, an outer guide rail limiting plate 23, a docking arrangement guide rail 24 and a guide rail turning part 25; wherein, the outer supplementary feeding groove 21 is fixedly assembled at the rotary vibration output end of the rotary vibration assembly 11; the inner rotary lifting feeding groove 22 includes an inner feeding groove main body 221 and a rotary lifting plate 222 fixedly arranged on the inner wall of the inner feeding groove main body 221 and arranged in a spiral shape; the inner feeding groove main body 221 is correspondingly fixedly located at the central concave side position of the outer supplementary feeding groove 21, and a connection is provided between the lower part of the inner feeding groove main body 221 and the central concave side position of the outer supplementary feeding groove 21; so as to effectively enable the T-shaped parts a inside the inner feeding groove main body 221 to gradually shift to the rotary lifting plate 222 based on the rotary vibration centrifugal action by using the rotary vibration energy output by the rotary vibration assembly 11, and can further spiral upward along the spiral track of the rotary lifting plate 222, and at the same time, the T-shaped parts a located in the outer supplementary feeding groove 21 can instantaneously vibrate to supplement the position to the inner feeding groove main body 221.
[0051] The outer guide rail limiting plate 23 is fixedly assembled on the outer peripheral side of the outer supplementary feeding groove 21, and a docking arrangement guide rail 24 is formed between the outer guide rail limiting plate 23 and the outer supplementary feeding groove 21. The docking arrangement guide rail 24 is internally provided with a T-shaped channel corresponding to the T-shaped parts a, and the docking arrangement guide rail 24 is provided with an inverted T-shaped inlet end. A corresponding connection is provided between the inverted T-shaped inlet end of the docking arrangement guide rail 24 and the output end of the rotary lifting plate 222. A connection is provided between one side of the output end of the rotary lifting plate 222 and the inner feeding groove main body 221, so as to utilize the more stable characteristic that the T-shaped parts a vibrate into an inverted T shape, so that a plurality of T-shaped parts a can enter the docking arrangement guide rail 24 in an inverted T shape with a fixed orientation, and at the same time, the non-inverted T-shaped T-shaped parts a are blocked outside the docking arrangement guide rail 24 and can fall back to the inner feeding groove main body 221 based on the vibration action.
[0052] The docking arrangement guide rail 24 is arranged in a spiral shape based on the outer guide rail limiting plate 23, and the docking arrangement guide rail 24 has a guide rail turning part 25, so as to turn a plurality of T-shaped parts a arranged in an inverted T shape inside the guide rail into a positive T shape arrangement and continue to move forward through the guide rail turning part 25.
[0053] The straight-line limit guide seat 13 is fixedly assembled on the straight-line vibration assembly 12. The straight-line vibration assembly 12 and the straight-line limit guide seat 13 cooperate to form a positive T-shaped inlet end. The positive T-shaped inlet end formed by the straight-line vibration assembly 12 and the straight-line limit guide seat 13 is continuously connected to the positive T-shaped outlet end corresponding to the guide rail turning part 25 of the docking arrangement guide rail 24, so as to further arrange and unidirectionally drive the T-shaped part a along the positive T-shaped fixed orientation by using the straight-line vibration assembly 12 and the straight-line limit guide seat 13 based on the docking arrangement guide rail 24, effectively ensuring the initial fixed-orientation arrangement and feeding.
[0054] Please refer to Figure 3 , the base part of the lifting and replenishing structure 3 is correspondingly fixed on the outer side part of the outer guide rail limiting plate 23, and the discharge port part of the lifting and replenishing structure 3 is connected and communicated with the outer replenishing material groove 21 and / or the inner rotating and lifting material groove 22, so as to regularly replenish the T-shaped part a corresponding to the material groove through the lifting and replenishing structure 3, effectively improving the overall automation degree and its functional practicability.
[0055] As a preferred solution of this embodiment, please refer to Figure 4 , the self-arranging feeding structure 2 further includes a material quantity detection component 26. The monitoring end of the material quantity detection component 26 correspondingly extends inside the inner material groove body 221, and the material quantity detection component 26 is electrically connected to the lifting and replenishing structure 3 through an electric control module by a circuit, so as to monitor the quantity of the T-shaped part a inside the inner material groove body 221 in real time through the material quantity detection component 26, and further send a monitoring signal to the electric control module. The electric control module outputs an instruction to control the lifting and replenishing structure 3 to replenish the T-shaped part a corresponding to the material groove, further improving the automation degree.
[0056] As another preferred solution of this embodiment, please continue to refer to Figure 4 , a protective box body is also fixedly arranged on the outer side part of the outer replenishing material groove 21 and the outer guide rail limiting plate 23. The inner wall of the protective box body is provided with a sound insulation layer 27, so as to significantly reduce the vibration noise generated by a plurality of T-shaped parts a through the sound insulation layer 27.
[0057] Please continue to refer to Figure 1 , the identification and detection device further includes a conveying identification and detection structure 4. The conveying identification and detection structure 4 is continuously connected to the positive T-shaped outlet end formed by the straight-line vibration assembly 12 and the straight-line limit guide seat 13, so as to enable the T-shaped part a to continue to travel to complete subsequent detection.
[0058] The use process of the above feeding station structure and identification and detection device for product inspection is as follows:
[0059] The material feeding drive structure 1 is started through the electric control module. The rotary vibration assembly 11 in the material feeding drive structure 1 outputs rotary vibration energy, so that the T-shaped part a located inside the inner material tank body 221 in the self-arranging feeding structure 2 is gradually displaced to the spiral lifting plate 222 based on the rotary vibration centrifugal action, and can further spiral upward along the spiral track of the spiral lifting plate 222 until it reaches the inverted T-shaped inlet end position of the docking arrangement guide rail 24;
[0060] Taking advantage of the more stable characteristic of the T-shaped part a vibrating into an inverted T-shape, a number of T-shaped parts a enter the docking arrangement guide rail 24 in a fixed orientation in an inverted T-shape, and at the same time, the non-inverted T-shaped T-shaped parts a cannot enter the docking arrangement guide rail 24, but fall back to the inner material tank body 221 under the vibration action;
[0061] After that, a number of T-shaped parts a arranged in an inverted T-shape inside the docking arrangement guide rail 24 are turned into a positive T-shape arrangement by the guide rail flipping part 25, and are further transmitted to the linear vibration assembly 12 in the material feeding drive structure 1. The linear vibration assembly 12 arranges and unidirectionally drives the T-shaped parts a in a fixed orientation along the positive T-shape to the subsequent conveying and identification detection structure 4 to complete the established detection process. That's all.
[0062] Although the present invention has been described in detail above with general descriptions and specific embodiments, on the basis of the present invention, some modifications or improvements can be made, which are obvious to those skilled in the art. Therefore, these modifications or improvements made without departing from the spirit of the present invention all fall within the scope of protection required by the present invention.
Claims
1. A loading station structure for product inspection, characterized in that: include: A material conveying drive structure including a rotating vibration component; Self-arranging feeding structure, including inner rotating lifting trough and docking arrangement guide rail; The inner rotating material lifting trough is connected to the rotating vibration component by transmission and fixed connection; The docking arrangement guide rail has a built-in T-shaped channel corresponding to the T-shaped part, and the docking arrangement guide rail is provided with an inverted T-shaped inlet end, and the inverted T-shaped inlet end of the docking arrangement guide rail is connected and arranged correspondingly to the output end of the inner rotating lifting trough; The docking arrangement guide rail has a guide rail flipping portion, and the outlet end of the guide rail flipping portion is set as a positive T-shaped outlet end corresponding to the outlet end of the docking arrangement guide rail, which is used to flip the T-shaped parts arranged in an inverted T shape from the inside of the docking arrangement guide rail to a positive T shape arrangement.
2. The loading station structure for product inspection according to claim 1 is characterized in that: The inner rotary lifting trough comprises an inner trough body and a rotary lifting plate; The inner trough body is transmission-fixedly connected to the rotary vibration output end of the rotary vibration assembly; The rotary lifting plate is arranged in a spiral shape and fixedly connected to the inner wall of the inner material trough body.
3. The loading station structure for product inspection according to claim 2 is characterized in that: The inverted T-shaped inlet end of the docking arrangement guide rail is correspondingly connected to the output end of the rotary lifting material plate, and one side of the output end of the rotary lifting material plate is connected to the inner material trough body, which is used to make the T-shaped parts vibrate into a more stable inverted T shape, so that several T-shaped parts can enter the docking arrangement guide rail in a certain direction in an inverted T shape, and at the same time, T-shaped parts that are not in an inverted T shape cannot enter the docking arrangement guide rail, but fall back to the inner material trough body due to vibration.
4. The loading station structure for product inspection according to claim 2 is characterized in that: The self-arranged feeding structure also includes an external filling trough; The external filling material trough is transmission-fixedly connected to the rotary vibration output end of the rotary vibration component; The inner material trough body is fixedly connected to the central concave side of the outer filling material trough, and the lower part of the inner material trough body is connected to the central concave side of the outer filling material trough.
5. The loading station structure for product inspection according to claim 4 is characterized in that: The self-arranged feeding structure also includes an outer guide rail limiting plate; The outer guide rail limit plates are fixedly installed at intervals on the outer peripheral side of the outer filling slot; The docking arrangement guide rail is arranged between the outer guide rail limiting plate and the outer filling material trough.
6. The loading station structure for product inspection according to claim 5 is characterized in that: The self-arranging feeding structure also includes a lifting and feeding structure; The lifting and replenishing material structure is fixedly located on the outer side of the outer guide rail limiting plate, and the discharge port of the lifting and replenishing material structure is connected to the outer replenishing material trough and / or the inner rotating lifting material trough.
7. The loading station structure for product inspection according to claim 6 is characterized in that: The self-arranged feeding structure also includes a material quantity detection component; The monitoring end of the material quantity detection component extends correspondingly to the inside of the inner material trough body, and the material quantity detection component is connected to the lifting and feeding structure through a circuit via an electric control module.
8. The loading station structure for product inspection according to claim 5, characterized in that: A protective box is also fixedly provided on the outer side of the external filling material trough and the outer guide rail limit plate; The inner wall of the protection box is paved with a sound insulation layer.
9. The loading station structure for product inspection according to claim 1, characterized in that: The feeding drive structure also includes a first linear vibration component and a linear limiting guide seat; The linear limiting guide seat is fixedly mounted on the first linear vibration component; The first linear vibration component cooperates with the linear limit guide seat to form a positive T-shaped inlet end, and the positive T-shaped inlet end formed by the first linear vibration component and the linear limit guide seat is continuously connected with the positive T-shaped outlet end of the docking arrangement guide rail corresponding to the guide rail flipping portion; The first linear vibration component and the linear limiting guide seat are formed with a positive T-shaped outlet end.
10. An identification and detection device, characterized in that: The material loading station structure for product inspection according to claim 9, wherein the identification and detection device further comprises: The conveying identification detection structure is connected and arranged between the positive T-shaped outlet end portion formed by the linear vibration component and the linear limiting guide seat.