High-precision optical microscope detection equipment

CN223727064UActive Publication Date: 2025-12-26SUZHOU XINYIDA INTELLIGENT EQUIP TECH CO LTD
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Patent Information

Application Number
CN202520359198.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-04
Publication Date
2025-12-26
Estimated Expiration
2035-03-04

AI Technical Summary

Technical Problem

Existing microscopes require moving the object in multiple directions when inspecting large-area objects, resulting in low inspection accuracy and object wobbling.

Method used

The system employs a detection mechanism, a full-scale measurement mechanism, and a steering mechanism. A motor drives the gears to rotate, and the internal gear ring affects the gears, increasing the distance between the center of the microscope and the stage. The moving end of the cylinder contracts, and the slider moves the microscope, ensuring a stable detection process.

Benefits of technology

This technology enables microscopes to completely detect objects without shaking, improving detection accuracy and efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses high-precision optical microscope detection equipment, which comprises a detection mechanism, a full detection mechanism and a steering mechanism, and is characterized in that the detection mechanism comprises a bottom plate, a placement table connected with the top of the bottom plate, a microscope suspended at the top of the placement table and the full detection mechanism; the full measurement mechanism comprises a sliding block connected with the top end of the microscope and a supporting plate movably connected to the bottom of the sliding block in a sleeving mode. According to the utility model, after an object is placed on the placing table, the motor drives the gear to rotate, then the inner gear ring influences the gear, the gear indirectly drives the movable sleeve disc to rotate, then parts in the full-detection mechanism rotate along with the gear, in the process that the microscope detects the object from top to bottom, the movable end of the air cylinder contracts, and then the sliding block drives the microscope to move; the distance between the microscope and the center of the placing table is increased, so that the microscope can detect the whole object, the object cannot shake in the whole detection operation, and the detection precision is ensured.
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Description

TECHNICAL FIELD

[0001] The utility model relates to detection equipment technical field, concretely is a kind of high-precision optical microscope detection equipment. BACKGROUND

[0002] Microscope is the combination of a lens or several lenses and is a kind of optical instrument, and is the symbol that mankind enters atomic era.

[0003] Some larger area objects are placed on the object table, and the microscope cannot detect every position of the object, so the object needs to be moved in multiple directions, and the object moves and shakes to different degrees, resulting in low detection accuracy. UTILITY MODEL CONTENT

[0004] The utility model aims at solving one of the technical problems existing in prior art or related art.

[0005] Therefore, the utility model adopts the technical scheme that:

[0006] A kind of high-precision optical microscope detection equipment, including detection mechanism, full measurement mechanism and steering mechanism, the detection mechanism includes bottom plate, the placement table being connected with the top of the bottom plate, the microscope being suspended in the top of the placement table, full measurement mechanism, the full measurement mechanism includes the slider being connected with the top end of the microscope, the support plate being movably sleeved in the bottom of the slider, the cylinder one being connected between the slider and support plate, the frame being slidably connected between the support plate and cylinder one, the cylinder two being connected between the support plate and frame, steering mechanism, the steering mechanism includes the movable sleeve disc being fixedly connected with the bottom end of the frame, the internal gear ring being movably installed in the inside of the movable sleeve disc, the gear being engaged in the inside of the internal gear ring, the motor being connected between the movable sleeve disc and gear.

[0007] By adopting the above technical scheme, after the object is placed on the placement table, the motor rotates with the gear, then the internal gear ring affects the gear, so that the gear indirectly drives the movable sleeve disc to rotate, then the parts in the full measurement mechanism rotate, during the process that the microscope detects the object from top to bottom, the movable end of the cylinder one contracts, then the slider displaces with the microscope, the distance between the microscope and the center of the placement table increases, which enables the microscope to detect the entire object, and the detection operation does not appear the object shaking, so as to ensure the detection accuracy.

[0008] In a preferred example, the utility model can be further configured as: the cylinder one and the cylinder two are of the same model, the cylinder body of the cylinder one is embedded in the bottom of the support plate, the cylinder body of the cylinder two is fixedly connected with the top end of the frame, and the movable end of the cylinder two penetrates through the top end of the frame.

[0009] The utility model discloses a further configuration in a preferable example can be: bottom plate, the placement platform, the movable sleeve tray, the inner gear ring vertical coaxial, movable sleeve tray, inner gear ring are made of wear -resisting material.

[0010] The utility model discloses a further configuration in a preferable example can be: bottom plate bottom is equipped with a plurality of inner support feet, and a plurality of inner support feet are equidistant, and the annular arrangement.

[0011] The utility model discloses a further configuration in a preferable example can be: inner gear ring bottom is equipped with a plurality of outer support feet, and a plurality of outer support feet are respectively located a plurality of inner support feet outer side, and the outer support foot bottom and inner support foot bottom are located same horizontal plane.

[0012] The utility model discloses a further configuration in a preferable example can be: the shape, the texture of inner support foot are same with outer support foot, and both are rotated and are connected with two bolts.

[0013] The utility model discloses a further configuration in a preferable example can be: the bottom plate and inner gear ring are formed with annular walkway between, and the gear is located annular walkway inside.

[0014] Through adopting above-mentioned technical scheme, the utility model has obtained the beneficial effect that:

[0015] 1. In the utility model, after placing the object on the placement platform, the motor rotates with the gear, then the inner gear ring affects the gear, so that the gear indirectly drives the movable sleeve tray to rotate, then the parts in the full measurement mechanism rotate, during the process that the microscope detects the object from top to bottom, the cylinder first movable end contracts, then the slider displaces with the microscope, the distance between the microscope and the center of the placement platform increases, which makes the microscope can detect the whole object, and the whole detection operation will not appear the object shaking condition, guaranteeing the detection precision.

[0016] 2. In the utility model, the cylinder second movable end telescopes, can adjust the height of the microscope through the supporting plate and the slider, helps the microscope to focus quickly, and improves the detection efficiency. ACCURACY

[0017] Figure 1 It is the overall structure perspective drawing of the utility model;

[0018] Figure 2 It is the overall structure bottom view of the utility model;

[0019] Figure 3 It is the detection mechanism schematic view of the utility model;

[0020] Figure 4 It is the full measurement mechanism schematic view of the utility model;

[0021] Figure 5 It is the steering mechanism schematic view of the utility model.

[0022] Reference signs:

[0023] 100, detection mechanism; 110, bottom plate; 120, placement table; 130, microscope;

[0024] 200, full measurement mechanism; 210, sliding block; 220, support plate; 230, cylinder one; 240, frame; 250, cylinder two;

[0025] 300, turning mechanism; 310, movable sleeve disc; 320, inner gear ring; 330, gear; 340, motor;

[0026] 400, inner support leg;

[0027] 500, outer support leg;

[0028] 600, annular walkway. DETAILED DESCRIPTION

[0029] In order to make the purpose, technical scheme and advantages of the utility model more clear and obvious, the utility model is further explained in detail below in combination with specific embodiments and referring to the drawings. It should be noted that the embodiments of the utility model and the features in the embodiments can be combined with each other without conflict.

[0030] It is understood that the description is only exemplary and is not intended to limit the scope of the utility model.

[0031] Some embodiments of the utility model provide a high-precision optical microscope detection equipment, which is described below in combination with the drawings.

[0032] Embodiment one:

[0033] In combination with Figures 1-5 The utility model provides a high-precision optical microscope detection equipment, which comprises a detection mechanism 100, a full measurement mechanism 200 and a turning mechanism 300, the detection mechanism 100 includes bottom plate 110, with the placement table 120 that the top of bottom plate 110 is connected, the microscope 130 that hangs in the top of placement table 120;

[0034] Full measurement mechanism 200, the full measurement mechanism 200 includes the sliding block 210 that the top end of microscope 130 is connected, the support plate 220 that is movably sleeved in the bottom of sliding block 210, cylinder one 230 that is connected between sliding block 210 and support plate 220, frame 240 that is slidingly connected between support plate 220 and cylinder one 230, cylinder two 250 that is connected between support plate 220 and frame 240;

[0035] Turning to the mechanism 300, the mechanism 300 comprises a movable sleeve plate 310 fixed to the bottom end of the frame 240, an inner gear ring 320 movably mounted inside the movable sleeve plate 310, a gear 330 engaged with the inner side of the inner gear ring 320, and a motor 340 connected between the movable sleeve plate 310 and the gear 330.

[0036] Further, the cylinder one 230 and the cylinder two 250 are of the same model, the cylinder one 230 is embedded in the bottom of the support plate 220, the cylinder two 250 is fixed to the top end of the frame 240, and the movable end of the cylinder two 250 movably penetrates the top end of the frame 240. Using the same model can reduce the difficulty in selecting the cylinder one 230 and the cylinder two 250, and then the position and connection of the two can be set to be firm enough, and then the microscope 130 can be moved stably.

[0037] Further, the bottom plate 110, the placement table 120, the movable sleeve plate 310, and the inner gear ring 320 are vertically coaxial, the movable sleeve plate 310 and the inner gear ring 320 are made of wear-resistant material, and the layout design is adopted to ensure that the movable sleeve plate 310 does not collide with the bottom plate 110 when the frame 240 rotates.

[0038] Embodiment two:

[0039] In combination Figures 1-2 As shown in the embodiment one, a plurality of inner support feet 400 are mounted on the bottom of the bottom plate 110, the plurality of inner support feet 400 are arranged at equal intervals in a ring shape, and the inner support feet 400 are arranged to firmly support the bottom plate 110.

[0040] Further, a plurality of outer support feet 500 are mounted on the bottom of the inner gear ring 320, the plurality of outer support feet 500 are respectively located outside the plurality of inner support feet 400, the bottom of the outer support feet 500 is located on the same horizontal plane as the bottom of the inner support feet 400, and the outer support feet 500 are arranged to separate the inner gear ring 320 from the bottom plate 110, avoiding the influence of the rotation of the movable sleeve plate 310 on the bottom plate 110.

[0041] Further, the shape and texture of the inner support feet 400 are the same as those of the outer support feet 500, and both the inner support feet 400 and the outer support feet 500 are screwed with two bolts, and the bolts are arranged to ensure that the inner support feet 400 and the outer support feet 500 are firmly fixed.

[0042] Embodiment three:

[0043] In combination Figure 1 , 2In the above embodiment, the annular walkway 600 is formed between the bottom plate 110 and the inner gear ring 320, and the gear 330 is located inside the annular walkway 600, so that the annular walkway 600 provides conditions for the gear 330 to rotate with the movable sleeve disc 310.

[0044] The working principle and use process of the utility model are as follows: when the device is put into practical use, the object is placed on the top of the placing table 120, then the cylinder two 250 adjusts the height of the microscope 130 through the supporting plate 220 and the sliding block 210, helps the microscope 130 to focus, then the cylinder one 230 adjusts the distance between the microscope 130 and the center of the placing table 120 by translating with the sliding block 210, ensures that the microscope 130 can detect more positions, in this process, the motor 340 rotates with the gear 330, then the inner gear ring 320 affects the gear 330, so that the gear 330 indirectly rotates with the movable sleeve disc 310, then the parts in the full measurement mechanism 200 rotate, so that the microscope 130 can completely detect the object, in the whole detection process, the object does not vibrate, which ensures the detection accuracy.

[0045] Although the embodiments of the utility model have been shown and described, those skilled in the art can understand that various changes, modifications, replacements and variations can be made to these embodiments without departing from the principles and purposes of the utility model, the scope of the utility model is defined by the claims and its equivalents.

Claims

1. A high-precision optical microscope inspection apparatus characterized by comprising: The utility model relates to a full-automatic detection device for microstructure, which comprises the following parts: a detection mechanism (100) comprising a bottom plate (110), a placing table (120) connected to the top of the bottom plate (110), and a microscope (130) suspended from the top of the placing table (120); a full detection mechanism (200) comprising a sliding block (210) connected to the top end of the microscope (130), a support plate (220) movably sleeved to the bottom of the sliding block (210), a cylinder I (230) connected between the sliding block (210) and the support plate (220), a frame (240) slidingly connected between the support plate (220) and the cylinder I (230), and a cylinder II (250) connected between the support plate (220) and the frame (240); a turning mechanism (300) comprising a movable sleeve disc (310) fixed to the bottom end of the frame (240), an internal gear ring (320) movably installed inside the movable sleeve disc (310), a gear (330) engaged with the inner side of the internal gear ring (320), and a motor (340) connected between the movable sleeve disc (310) and the gear (330).

2. The high precision optical microscope inspection apparatus according to claim 1, wherein The cylinder I (230) and the cylinder II (250) are of the same model, the cylinder body of the cylinder I (230) is embedded in the bottom of the support plate (220), the cylinder body of the cylinder II (250) is fixed to the top end of the frame (240), and the movable end of the cylinder II (250) movably penetrates the top end of the frame (240).

3. The high precision optical microscope inspection apparatus according to claim 1, wherein The bottom plate (110), the placing table (120), the movable sleeve disc (310), and the internal gear ring (320) are vertically coaxial, and the movable sleeve disc (310) and the internal gear ring (320) are made of wear-resistant materials.

4. The high precision optical microscope inspection apparatus according to claim 1, wherein A plurality of internal supporting legs (400) are installed on the bottom of the bottom plate (110), and the plurality of internal supporting legs (400) are equally spaced and arranged in a ring shape.

5. A high precision optical microscope inspection apparatus according to claim 4, wherein A plurality of external supporting legs (500) are installed on the bottom of the internal gear ring (320), and the plurality of external supporting legs (500) are respectively located outside the plurality of internal supporting legs (400), and the bottom of the external supporting leg (500) is located on the same horizontal plane as the bottom of the internal supporting leg (400).

6. A high precision optical microscope inspection apparatus according to claim 5, wherein The shape and texture of the internal supporting leg (400) are the same as those of the external supporting leg (500), and both are screwed with two bolts.

7. The high precision optical microscope inspection apparatus according to claim 1, wherein An annular walkway (600) is formed between the bottom plate (110) and the internal gear ring (320), and the gear (330) is located inside the annular walkway (600).