NG table

By designing an NG (Not In order to receive) stage that includes a detection mechanism and a prompting device, the problem that existing NG stages cannot distinguish the size of spring diaphragm reworkpieces is solved, enabling accurate classification of reworkpieces, avoiding rework and scrap, and improving the accuracy and efficiency of detection.

CN223538228UActive Publication Date: 2025-11-11CHONGQING SHANLIAN SCI & TECH DEV CO LTD
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Patent Information

Application Number
CN202422749771.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-12
Publication Date
2025-11-11
Estimated Expiration
2034-11-12

AI Technical Summary

Technical Problem

The existing NG station cannot distinguish whether the spring diaphragm rework piece is too large or too small, which may result in the production of rework pieces or scrapped parts during rework.

Method used

An NG (Not In Work) platform was designed, including an inspection mechanism, a horizontal platform surface, support columns, inspection components, and prompting devices. The size of the spring diaphragm is distinguished by the different sizes of inspection column one and inspection column two, and the prompting devices indicate the specific type to employees, avoiding rework or scrap.

Benefits of technology

This method enables effective classification of spring diaphragms, avoiding the re-production and scrapping of reworkpieces and improving the accuracy and efficiency of inspection.

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Abstract

The utility model relates to the technical field of detection equipment, in particular to an NG table which comprises a detection mechanism, the detection mechanism comprises a horizontal table top, a plurality of supporting columns and a detection assembly, the detection assembly comprises a first detection column, a second detection column and two prompt pieces, when a spring diaphragm is detected, the spring diaphragm is sleeved with the first detection column, and if the first detection column penetrates through the spring diaphragm, the first detection column is driven to move; if the detection column II penetrates through the spring diaphragm, the spring diaphragm is larger and slides to the horizontal table top along the detection column I, the prompting piece prompts that a larger rework piece exists, if the rework piece cannot be sleeved, the spring diaphragm is sleeved towards the detection column II, if the detection column II penetrates through the spring diaphragm, the spring diaphragm is qualified and slides to the horizontal table top along the detection column II, and the other prompting piece prompts that a qualified product exists, and if the detection column still cannot be sleeved, the spring diaphragm is not qualified. And when the spring diaphragms on the surface of the first detection column or the second detection column are fully stacked, the two prompt pieces respectively prompt that the spring diaphragms need to be processed, so that the size of the reworked parts is distinguished, and the effect of avoiding reworking or even scrapping is achieved.
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Description

Technical Field

[0001] This utility model relates to the field of testing equipment technology, and in particular to an NG testing station. Background Technology

[0002] Spring diaphragms are commonly used in clutches of various machines and are an important component of the clutch. Due to the high process requirements in the production and processing of spring diaphragms, there is a high rework rate. In order to ensure product quality, an NG (Not Good) testing machine is needed to inspect the products and distinguish between qualified products and rework products.

[0003] However, the existing NG station cannot distinguish whether the specific type of rework piece is too large or too small, which will lead to the production of rework pieces or even scrapped parts during rework. Utility Model Content

[0004] The purpose of this utility model is to provide an NG (Not in Work) stage, which aims to solve the problem that existing NG stages cannot distinguish whether the specific type of rework piece is too large or too small, which will lead to the production of rework pieces or even scrapped parts during rework.

[0005] To achieve the above objectives, this utility model provides an NG (Not Innocent Good) testing platform, including a testing mechanism. The testing mechanism includes a horizontal platform, multiple support columns, and a testing component. The testing component includes a first testing column, a second testing column, and two indicator pieces. The horizontal platform is located below the testing component. The multiple support columns are fixedly connected to the bottom of the horizontal platform. The testing component is located above the horizontal platform. The first testing column is fixedly connected to the top of the horizontal platform. The second testing column is fixedly connected to the horizontal platform and located on one side of the first testing column. The two indicator pieces are respectively disposed on the first testing column and the second testing column.

[0006] The detection mechanism further includes multiple connecting columns and multiple supporting legs. The multiple connecting columns are fixedly connected between the multiple supporting columns and are arranged in upper and lower layers. Each supporting leg is fixedly connected to the bottom of each supporting column.

[0007] The detection mechanism further includes a reinforcing column and multiple reinforcing ribs. The reinforcing column is fixedly connected between two connecting columns and away from the horizontal platform surface. The multiple reinforcing ribs are respectively fixedly connected between the multiple connecting columns and the multiple supporting columns.

[0008] The indicator includes a squeeze switch and a full material light. The squeeze switch is fixedly connected above the surface of the first or second detection column, and the full material light is fixedly connected above the horizontal platform surface and electrically connected to the squeeze switch.

[0009] The indicator also includes a push-button switch and an on / off indicator light. The push-button switch is fixedly connected above the platform surface, and the on / off indicator light is fixedly connected above the platform surface and electrically connected to the push-button switch.

[0010] This utility model discloses an NG (Not Good) testing station. When inspecting spring diaphragms, the spring diaphragm is moved towards a testing column. If the first testing column passes through the spring diaphragm, the diaphragm is too large and slides down the first testing column, temporarily stacking on the horizontal platform. Simultaneously, a notification indicates to the employee that there is an oversized rework piece. If it cannot be fitted, the spring diaphragm is moved towards a second testing column. If the second testing column passes through the spring diaphragm, the diaphragm is acceptable and slides down the second testing column, temporarily stacking on the horizontal platform. Another notification indicates to the employee that there is an acceptable piece. If it still cannot be fitted, the spring diaphragm is too small and is placed in another container for collection. When the surface of the first or second testing column is full of stacked spring diaphragms, both notifications will individually prompt the employee to proceed with processing. This avoids the problem of existing NG testing stations being unable to distinguish whether a rework piece is too large or too small, which could lead to the production of rework pieces or even scrapped parts during rework. This system effectively distinguishes the size of rework pieces, thus preventing rework or even scrapping. Attached Figure Description

[0011] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the accompanying drawings used in the description of the embodiments or the prior art will be briefly introduced below.

[0012] Figure 1 This is a schematic diagram of the overall structure of this utility model.

[0013] Figure 2 This is a top view of the entire utility model.

[0014] Figure 3 yes Figure 1 A magnified view of a portion of point A in the middle.

[0015] Figure 4 yes Figure 1 A magnified view of a section at point B in the middle.

[0016] 1-Floored platform, 2-Support column, 3-Detection component, 4-Detection column one, 5-Detection column two, 6-Indicator, 7-Connecting column, 8-Support foot, 9-Reinforcing column, 10-Reinforcing rib, 11-Squeeze switch, 12-Full material light, 13-Press switch, 14-Presence / absence light. Detailed Implementation

[0017] The embodiments of the present invention are described in detail below. Examples of the embodiments are shown in the accompanying drawings. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain the present invention, but should not be construed as limiting the present invention.

[0018] Please see Figures 1-4 ,in Figure 1 This is a schematic diagram of the overall structure of this utility model; Figure 2 This is a top view of the entire utility model; Figure 3 yes Figure 1 A magnified view of a section at point A in the middle; Figure 4 yes Figure 1 A magnified view of a section at point B in the middle.

[0019] This utility model provides an NG (Not in a Service) platform: including a detection mechanism, the detection mechanism including a horizontal platform 1, multiple support columns 2, a detection component 3, multiple connecting columns 7, multiple support feet 8, reinforcing columns 9 and multiple reinforcing ribs 10, the detection component 3 including a first detection column 4, a second detection column 5 and two indicator components 6, the indicator components 6 including a squeeze switch 11, a full material light 12, a press switch 13 and an on / off light 14. The aforementioned solution solves the problem that existing NG platforms cannot distinguish whether the specific type of rework piece is too large or too small, which will lead to the re-production of rework pieces or even scrapped parts during rework.

[0020] In this specific embodiment, the platform surface 1 is located below the detection component 3, and multiple support columns 2 are fixedly connected to the lower part of the platform surface 1. The detection component 3 is located above the platform surface 1, and detection column one 4 is fixedly connected to the upper part of the platform surface 1. Detection column two 5 is fixedly connected to the platform surface 1 and located on one side of detection column one 4. Two indicator elements 6 are respectively disposed on detection column one 4 and detection column two 5. Detection column two 5 is slightly thinner than detection column one 4. When detecting the spring diaphragm, the spring diaphragm is moved towards detection column one 4. If detection column one 4 passes through the spring diaphragm... If a spring diaphragm is too large, it will slide down along the first detection post 4 and temporarily stack on the horizontal platform 1. At the same time, the indicator 6 will notify the employee that there is a workpiece that is too large. If it cannot be fitted, the employee will move the spring diaphragm towards the second detection post 5. If the second detection post 5 passes through the spring diaphragm, the spring diaphragm is qualified and will slide down along the second detection post 5 and temporarily stack on the horizontal platform 1. At the same time, another indicator 6 will notify the employee that there is a qualified workpiece. If it still cannot be fitted, the spring diaphragm is a workpiece that is too small and should be placed in another container for collection. When the spring diaphragms on the surface of the first detection post 4 or the second detection post 5 are full, the two indicator 6 will respectively notify the employee that processing is required.

[0021] The multiple connecting columns 7 are fixedly connected between the multiple supporting columns 2, and are respectively in upper and lower layers. Each supporting foot 8 is fixedly connected to the bottom of each supporting column 2. The multiple connecting columns 7 connect the multiple supporting columns 2 into a whole, making the entire NG platform more stable. The multiple supporting feet 8 support the entire NG platform.

[0022] Secondly, the reinforcing column 9 is fixedly connected between the two connecting columns 7 and away from the platform surface 1. The multiple reinforcing ribs 10 are respectively fixedly connected between the multiple connecting columns 7 and the multiple supporting columns 2. The reinforcing column 9 can make the connection of the multiple connecting columns 7 in the lower layer more stable and less prone to damage. The multiple reinforcing ribs 10 can share the pressure of the multiple connecting columns 7 and the multiple supporting columns 2, increasing the stability of the NG platform.

[0023] Meanwhile, the squeeze switch 11 is fixedly connected above the surface of the first detection column 4 or the second detection column 5, and the full material light 12 is fixedly connected above the horizontal platform surface 1 and electrically connected to the squeeze switch 11. When the spring diaphragm slides down the first detection column 4 or the second detection column 5, it will stack on the horizontal platform surface 1 along the surface of the first detection column 4 or the second detection column 5. When the stacking height reaches the squeeze switch 11, the squeeze switch 11 remains in a squeezed state, so that the corresponding full material light 12 continues to light up, prompting the employee that the detection can no longer be carried out and the detected spring diaphragm needs to be processed.

[0024] Finally, the push switch 13 is fixedly connected above the platform surface 1, and the presence / absence light 14 is fixedly connected above the platform surface 1 and electrically connected to the push switch 13. When the spring diaphragm slides down along the detection column 1 4 or the detection column 2 5, it will stack on the platform surface 1 along the surface of the detection column 1 4 or the detection column 2 5. The spring diaphragm that is in direct contact with the platform surface 1 will press the push switch 13, causing the corresponding presence / absence light 14 to light up, prompting the employee that there is a workpiece that is too large to be returned or a qualified workpiece.

[0025] When testing the spring diaphragm, the spring diaphragm is moved towards the first testing post 4. If the first testing post 4 passes through the spring diaphragm, the spring diaphragm is too large and slides down along the first testing post 4, temporarily stacking on the horizontal platform surface 1. At the same time, the spring diaphragm that is directly in contact with the horizontal platform surface 1 will press the push switch 13, causing the corresponding presence / absence light 14 to light up, indicating to the employee that there is a workpiece that is too large. If it cannot be moved, the spring diaphragm is moved towards the second testing post 5. If the second testing post 5 passes through the spring diaphragm, the spring diaphragm is qualified and slides down along the second testing post 5, temporarily stacking on the horizontal platform surface 1. At the same time, the spring diaphragm that is directly in contact with the horizontal platform surface 1 will press the push switch 13, causing the corresponding presence / absence light 14 to light up, indicating to the employee that there is a qualified workpiece. If it still cannot be moved, the spring diaphragm is a workpiece that is too small and is placed in another container for collection, awaiting further processing. When the spring diaphragms on surface 5 are fully stacked, they will press the squeeze switch 11, keeping the squeeze switch 11 in an unpressed state, causing the corresponding full material light 12 to remain lit, indicating to the employee that testing can no longer continue and the tested spring diaphragms need to be processed; multiple connecting columns 7 connect multiple supporting columns 2 into a whole, making the entire NG platform more robust; multiple supporting feet 8 support the entire NG platform; the reinforcing column 9 makes the connection of the multiple connecting columns 7 in the lower layer more stable and less prone to damage; multiple reinforcing ribs 10 can distribute the pressure of multiple connecting columns 7 and multiple supporting columns 2, increasing the robustness of the NG platform and extending its service life. This avoids the problem that existing NG platforms cannot distinguish whether the specific type of reworkpiece is too large or too small, which would lead to the production of reworkpieces or even scrapped parts during rework. This achieves the effect of distinguishing the size of reworkpieces, thereby avoiding rework or even scrapping.

[0026] The above-disclosed embodiments are merely one or more preferred embodiments of this application and should not be construed as limiting the scope of this application. Those skilled in the art can understand that all or part of the processes for implementing the above embodiments and equivalent changes made in accordance with the claims of this application still fall within the scope of this application.

Claims

1. An NG platform, characterized in that, Including testing institutions, The testing mechanism includes a horizontal platform, multiple support columns, and testing components; The platform surface is located below the detection component, and multiple support columns are fixedly connected to the platform surface below it. The detection component is located above the platform surface and includes a first detection column, a second detection column, and two indicator components. The first detection column is fixedly connected to the platform surface above it, and the second detection column is fixedly connected to the platform surface and located on one side of the first detection column. The two indicator components are respectively located on the first detection column and the second detection column.

2. The NG station as described in claim 1, characterized in that, The detection mechanism also includes multiple connecting columns and multiple supporting legs. The multiple connecting columns are fixedly connected between the multiple supporting columns and are arranged in upper and lower layers. Each supporting leg is fixedly connected to the bottom of each supporting column.

3. The NG station as described in claim 2, characterized in that, The testing mechanism also includes a reinforcing column and multiple reinforcing ribs. The reinforcing column is fixedly connected between two of the connecting columns and away from the horizontal platform surface. The multiple reinforcing ribs are respectively fixedly connected between the multiple connecting columns and the multiple supporting columns.

4. The NG station as described in claim 1, characterized in that, The indicator includes a squeeze switch and a full material light. The squeeze switch is fixedly connected above the surface of the first or second detection column, and the full material light is fixedly connected above the horizontal platform surface and electrically connected to the squeeze switch.

5. The NG station as described in claim 2, characterized in that, The indicator also includes a push-button switch and an on / off indicator light. The push-button switch is fixedly connected above the platform surface, and the on / off indicator light is fixedly connected above the platform surface and electrically connected to the push-button switch.