Support off-line detection machine

By designing a bracket offline detection machine, using the feed mechanism and laser detector automatic detection chip, the problem of traditional inefficiency is solved and the detection effect is achieved with accurate and reliable operation.

CN222956950UActive Publication Date: 2025-06-10XIAMEN HUAYE PRECISE MOLD CO LTD
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Patent Information

Application Number
CN202421583836.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-05
Publication Date
2025-06-10
Estimated Expiration
2034-07-05

AI Technical Summary

Technical Problem

Traditional chip flatness detection efficiency is inefficient, and workers need to hold a laser detector to detect the chips in the pallet, which is relatively inefficient.

Method used

A bracket offline detection machine is designed, including a machine, a translation module, a laser detector, a feed rail, a detection table, a feed mechanism, a pallet and a display screen. The chip is sent to the detection station through the feed mechanism, and the laser detector is used for detection. After the detection is completed, the display screen shows a qualified or unqualified state.

Benefits of technology

It realizes accurate and reliable chip detection and improves detection efficiency. Workers only need to remove qualified and unqualified chips according to the color code of the display.

✦ Generated by Eureka AI based on patent content.

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    Figure CN222956950U_ABST
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Abstract

The utility model discloses an off-line detection machine for a bracket. The off-line detection machine comprises a machine table, a translation module, a laser detector, a feeding guide rail, a detection table, a feeding mechanism, a tray and a display screen, the laser detector is installed on the machine table through the translation module, the feeding guide rail is installed on the table top of the machine table, the detection table is connected to the feeding guide rail in a sliding mode, the tray is installed in the middle of the detection table, the feeding mechanism is installed on the machine table and connected with the detection table, and the display screen is installed on the front portion of the table top of the machine table and located below the detection table. During detection, the laser detector detects a plurality of chips in the tray, after detection is completed, the tray leaves the detection station and returns to the discharging station, the display screen located below the discharging station correspondingly displays the states of qualified and unqualified chips in the form of colors, and workers take out the qualified and unqualified chips according to the colors displayed by the display screen. The method has the advantages of accurate and reliable operation.
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Description

Technical Field

[0001] The utility model relates to a chip detection device, in particular to a bracket off-line detector. Background Art

[0002] Before the chip is used, its flatness needs to be detected. In the traditional detection method, a worker holds a laser detector to detect the chips placed in the tray, and takes out the unqualified chips from the tray. This traditional detection technology has low detection efficiency. Content of the Utility Model

[0003] The purpose of the utility model is to provide a bracket off-line detector with accurate and reliable operation.

[0004] To achieve the above purpose, the technical solution of the utility model is:

[0005] The utility model is a bracket off-line detector, which includes a machine table, a translation module, a laser detector, a feeding guide rail, a detection table, a feeding mechanism, a tray, and a display screen;

[0006] The translation module is installed at the rear of the machine table surface. The laser detector is installed on the slider of the translation module. The feeding guide rail is installed in the middle of the machine table surface and is perpendicular to the moving direction of the laser detector. The detection table is slidably connected to the feeding guide rail and can extend below the laser detector. The tray is installed in the middle of the detection table. The feeding mechanism is installed on the bottom surface of the machine table and is connected to the bottom surface of the detection table to drive the detection table to move back and forth along the feeding guide rail. The display screen is installed at the front of the machine table surface and is located below the detection table.

[0007] The feeding mechanism is composed of two groups of driving components, and the two groups of driving components are installed in parallel on the bottom surface of the machine table surface;

[0008] Each driving component includes a driving motor, a motor mounting plate, a lead screw, two lead screw mounting blocks, and a lead screw nut block; the driving motor is fixed on the bottom surface of the machine table surface through the motor mounting plate. The output shaft of the driving motor is connected to one end of the lead screw through a coupling. The middle part of the lead screw is rotatably penetrated through the two lead screw mounting blocks. The two lead screw mounting blocks are respectively installed at intervals on the bottom surface of the machine table surface. The lead screw nut on the lead screw nut block is screwed on the middle part of the lead screw, and the upper part of the lead screw nut block passes through the through groove on the machine table surface and is connected to one side of the bottom surface of the detection table.

[0009] Two parallel through grooves are opened on the machine table surface to allow the lead screw nut blocks on the two groups of driving components to pass through respectively.

[0010] Two parallel disk grooves are opened in the middle of the detection table; trays are respectively sleeved in the two disk grooves with a gap.

[0011] After adopting the above solution, since the utility model includes a machine table, a translation module, a laser detector, a feeding guide rail, a detection table, a feeding mechanism, a tray, and a display screen, multiple chips placed in the tray are fed into the detection station by the feeding mechanism, the laser detector detects the chips, after the detection is completed, the tray leaves the detection station and returns to the discharging station, and the display screen located below the discharging station will display the status of qualified and unqualified chips in corresponding colors, and workers take out the qualified and unqualified chips respectively according to the colors displayed on the display screen, which has the advantages of accurate and reliable operation.

[0012] The following further describes the utility model in conjunction with the accompanying drawings and specific embodiments. Description of the Drawings

[0013] Figure 1 is the top perspective view of the utility model;

[0014] Figure 2 is the bottom perspective view of the utility model. Detailed Embodiment

[0015] As Figure 1 、 Figure 2 shown, the utility model is a bracket off-line detector, including a machine table 1, a translation module 2, a laser detector 3, a feeding guide rail 4, a detection table 5, a feeding mechanism 6, a tray 7, a display screen 8, and a detection chip (not shown in the figure).

[0016] The translation module 2 is installed at the rear of the tabletop 11 of the machine table 1, the laser detector 3 is installed on the slider of the translation module 2, the feeding guide rail 4 is installed in the middle of the tabletop 11 of the machine table 1 and is perpendicular to the moving direction of the laser detector 3, the detection table 5 is slidably connected to the feeding guide rail 4 and the detection table 5 can extend below the laser detector 3, the tray 7 is installed in the middle of the detection table 5, the feeding mechanism 6 is installed at the bottom of the tabletop 11 of the machine table 1 and is connected to the bottom surface of the detection table 5 to drive the detection table 5 to move back and forth along the feeding guide rail 4, the display screen 8 is installed at the front of the tabletop 11 of the machine table 1 and is located below the detection table 5, and the detection chip is electrically connected to the laser detector 3 and the display screen 8 respectively through data lines.

[0017] The feeding mechanism 6 is composed of two groups of driving components 61, and the two groups of driving components 61 are installed in parallel at the bottom of the tabletop 11 of the machine table 1;

[0018] The driving assembly 61 includes a driving motor 611, a motor mounting plate 612, a lead screw 613, two lead screw mounting blocks 614, and a lead screw nut block 615. The driving motor 611 is fixed to the bottom surface of the tabletop 11 of the machine table 1 through the motor mounting plate 612. The output shaft of the driving motor 611 is connected to one end of the lead screw 613 through a coupling. The middle part of the lead screw 613 is rotatably inserted through the two lead screw mounting blocks 614. The two lead screw mounting blocks 614 are respectively and spacedly mounted on the bottom surface of the tabletop 11 of the machine table 1. The lead screw nut on the lead screw nut block 615 is screwed onto the middle part of the lead screw 613, and the upper part of the lead screw nut block 615 passes through the through slot 12 on the tabletop 11 of the machine table 1 and is connected to one side of the bottom surface of the detection table 5.

[0019] Two mutually parallel through slots 12 are formed on the tabletop 11 of the machine table 1 to allow the lead screw nut blocks 615 on the two sets of driving assemblies 61 to pass through upward respectively. The lead screw nut blocks 615 are respectively fixed to both sides of the bottom surface of the detection table 5.

[0020] Two mutually parallel disc slots 51 are formed in the middle of the detection table 5. Pallets 7 are respectively sleeved in the two disc slots 51 with a gap.

[0021] The working principle of the present utility model:

[0022] Multiple chips placed in the pallet 7 are sent to the detection station by the feeding mechanism 6. The laser detector 3 detects the chips 100. After the detection is completed, the pallet 7 leaves the detection station and returns to the discharging station (above the display screen 8). The display screen 8 located below the discharging station will display the states of the qualified and unqualified chips 100 in corresponding colors. Workers take out the qualified and unqualified chips 100 respectively according to the colors displayed on the display screen.

[0023] The above is only a preferred embodiment of the present utility model, and thus cannot limit the scope of implementation of the present utility model. That is, equivalent changes and modifications made according to the scope of the patent application of the present utility model and the content of the specification should still fall within the scope covered by the patent of the present utility model.

Claims

1. A stent offline detection machine, characterized in that: It includes machine platform, translation module, laser detector, feeding guide rail, testing table, feeding mechanism, tray and display screen; The translation module is installed at the rear of the machine table, the laser detector is installed on the slider of the translation module, the feed guide rail is installed in the middle of the machine table and is perpendicular to the moving direction of the laser detector, the detection table is slidably connected to the feed guide rail and the detection table can extend to the bottom of the laser detector, the tray is installed in the middle of the detection table, the feed mechanism is installed on the bottom of the machine table and is connected to the bottom of the detection table, driving the detection table to move forward and backward along the feed guide rail, and the display screen is installed at the front of the machine table and is located below the detection table.

2. The stent offline detection machine according to claim 1, characterized in that: The feeding mechanism is composed of two sets of driving components, which are installed in parallel on the bottom surface of the machine table; The driving assembly includes a driving motor, a motor mounting plate, a screw, two screw mounting blocks, and a screw nut block; the driving motor is fixed to the bottom surface of the machine table through the motor mounting plate, the output shaft of the driving motor is connected to one end of the screw through a coupling, the middle part of the screw can be rotatably inserted into the two screw mounting blocks on both sides, the two screw mounting blocks are respectively installed on the bottom surface of the machine table at intervals, the screw nut on the screw nut block is screwed to the middle part of the screw, and the upper part of the screw nut block passes through the through slot on the machine table and is connected to one side of the bottom surface of the detection table.

3. The stent offline detection machine according to claim 1, characterized in that: The table top of the machine is provided with two through slots parallel to each other so as to allow the screw nut blocks on the two sets of driving components to pass through respectively.

4. The stent offline detection machine according to claim 1, characterized in that: The middle part of the testing table is provided with two tray slots parallel to each other; trays are respectively sleeved in the two tray slots.