3C structural member size detection mechanism
By combining a high-strength steel frame, a precision displacement platform, and fine-tuning functions, the problem of error accumulation in the inspection of modular 3C structural components has been solved, achieving high-precision and low-error inspection results.
Patent Information
- Application Number
- CN202511727110.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-24
- Publication Date
- 2026-02-27
AI Technical Summary
Existing 3C structural component dimension inspection mechanisms suffer from error accumulation issues in modular and combined structures, affecting inspection accuracy and consistency.
It adopts a high-strength steel frame, adjustable legs, translation and lifting modules, high-precision drive system and shockproof design, combined with a modular testing platform and a precision displacement platform, and ensures that each component is accurately positioned and tested in the same testing process through fine adjustment function.
It achieves high-precision, low-error detection of 3C structural components, improves the consistency and accuracy of detection, and reduces the accumulation of errors caused by multiple process flows.
Smart Images

Figure CN121576966A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of 3C structure, in particular to a kind of 3C structure size detection mechanism. BACKGROUND
[0002] 3C structure, i.e. the structure component in computer, communication and consumer electronics product, is indispensable component of these products. They not only provide the external form and internal skeleton of product, but also ensure the stability of product installation and connection, and realize the dynamic function of product. The 3C structure size detection mechanism in prior art generally includes base and adjusting mechanism, adjusting mechanism includes translation module, installation bottom plate, swing arm and detection jig, base is used to carry 3C structure as detection platform. But part of 3C structure in prior art is modular combined structure, each module is mutually assembled; prior art often adopts one by one to place each component on detection platform, which often has certain defects, there is certain error in the process of adjusting-calibrating of equipment each time, and this error can be superimposed after these modules are combined into integrated structure, thereby affecting the precision of this kind of 3C structure. SUMMARY
[0003] The present application aims to provide a kind of 3C structure size detection mechanism to solve the problems raised in the background.
[0004] To achieve the above object, the present application provides the following technical scheme: A kind of C structure size detection mechanism, including detection rack and the detection platform being set in detection rack;The frame body of the detection rack is provided with translation module, the lifting module is installed on the translation module, the bottom of the lifting module is provided with detection workpiece;The detection platform includes support base, support machine frame being set on support base and the frame of the base frame being installed on support machine frame;The detection platform further includes bearing platform, the installation end of bearing platform is provided with displacement platform, the displacement platform is slidably arranged on the base frame of the base frame, the base frame is provided with drive machine part, the drive end of drive machine part is connected with displacement platform, a plurality of branch component carriages are provided on the bearing platform, and the side of the branch component carriage is installed on the load surface of the bearing platform by driving support.
[0005] As a further scheme of the present application: the support machine frame includes support base and support load frame being set on support base, the support load frame is triangular frame body, and the positioning support rack is arranged in the support load frame;The base frame of the base frame includes main support frame and base frame end being set at both ends of main support frame, and the base frame end is arranged in the frame body of support load frame and is connected with positioning support rack.
[0006] As a further scheme of the present application: the frame body of the main support frame is provided with a platform loading section, and guide rails are arranged between the frame bodies at both ends of the main support frame.
[0007] As a further scheme of the present application: the displacement platform comprises an outer displacement frame plate, an inner displacement frame plate and a combined top seat, the outer displacement frame plate and the inner displacement frame plate are arranged in the platform loading section, the plate body of the outer displacement frame plate is slidably attached to the inner wall of the frame body of the main support frame, the inner displacement frame plate is fixedly attached to the inner wall of the outer displacement frame plate to form a laminated plate structure, and the combined top seat comprises a sleeve block mounted along the plate body of the inner displacement frame plate, an inner sleeve ring arranged in the sleeve block and a lifting plug-in block mounted in the inner sleeve ring.
[0008] As a further scheme of the present application: the bottom edge of the outer displacement frame plate is further provided with a loading seat, the bearing platform is arranged at the bottom of the loading seat, the inner wall of the plate body of the inner displacement frame plate is provided with a sliding base block, the sliding base block is provided with a clamping groove, and the guide rail is arranged in the corresponding sliding base block and the rail groove is embedded in the clamping groove.
[0009] As a further scheme of the present application: the driving mechanism comprises a driving cylinder, a cylinder driving rod mounted at the driving end of the driving cylinder and a connecting block mounted at the rod end of the cylinder driving rod, and the connecting block is fixedly connected with the combined top seat.
[0010] As a further scheme of the present application: the support component loading platform comprises a bearing base plate and a loading panel arranged at the top of the bearing base plate, the two sides of the bearing base plate are provided with positioning pieces, the positioning pieces on the two sides are fixedly connected with the driving support component, the upper surface of the loading panel is provided with an adsorption panel, the bearing base plate is provided with an optical positioning ruler, and the optical positioning ruler is located at the outer side of the loading panel.
[0011] As a further scheme of the present application: the driving support component comprises a folding frame plate arranged at the side edge of the support component loading platform, each group of folding frame plates is provided with two folding frame plates and is arranged at the two sides of the bearing base plate, the folding frame plate is mounted on the plate body of the bearing platform through a folding support cylinder, the plate body of the bearing platform is further provided with a rotating motor, a driving rotating shaft is mounted at the driving end of the rotating motor, and the rod end of the driving rotating shaft is connected with the corresponding folding support cylinder through a rotating support.
[0012] As a further scheme of the present application: the mounting end of the folding frame plate is provided with a fine adjustment sliding plate, the fine adjustment sliding plate is provided with a sliding line groove, and the loading panel is coveringly mounted on the corresponding sliding line groove.
[0013] As a further embodiment of the present invention: the bearing platform is further provided with a fixing bolt and a plug-in support rod provided on the fixing bolt, and the plug-in support rod is plugged into the folding frame plate.
[0014] Compared with the prior art, the beneficial effects of the present invention are: This invention's testing platform utilizes a high-strength steel frame with adjustable feet at the bottom for stability. High-precision drive for translation and lifting modules enables precise workpiece movement and adjustment. The vibration-damping base and slide rail design reduce vibration and improve testing accuracy. Modular 3C structural components are placed on the support platform, with fine-tuning ensuring optimal testing positions. High-precision testing equipment, such as measuring probes and laser scanners, monitors in real time and transmits data to the control system for rapid component quality assessment.
[0015] By employing a modular inspection method and combining a precision displacement platform with driving mechanisms, this invention achieves high-precision inspection of various components in 3C structural parts. The modularly assembled components are inspected within the same inspection process, reducing error accumulation caused by multiple process flows and improving the consistency and accuracy of the inspection.
[0016] It should be understood that the above general description and the following detailed description are exemplary and explanatory only, and do not limit this application. Attached Figure Description
[0017] The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments consistent with this application and, together with the description, serve to explain the principles of this application. Furthermore, these drawings and textual descriptions are not intended to limit the scope of the concept in any way, but rather to illustrate the concepts of this application to those skilled in the art through reference to specific embodiments.
[0018] Figure 1 This is a schematic diagram of the overall structure of the 3C structural component size detection mechanism provided in an embodiment of the present invention.
[0019] Figure 2 This is a schematic diagram of the structure of the support platform provided in an embodiment of the present invention.
[0020] Figure 3 This is a schematic diagram of the installation of the scaffolding base frame provided in an embodiment of the present invention.
[0021] Figure 4 This is a schematic diagram of the displacement platform provided in an embodiment of the present invention.
[0022] Figure 5 For the present invention Figure 4 A schematic diagram of the structure of region B in the middle.
[0023] Figure 6 For the present invention Figure 2Structure schematic view of middle A area.
[0024] Figure 7 Structure schematic view of bottom view of bearing platform provided for the embodiment of the present application.
[0025] Figure 8 Structure schematic view of driving support provided for the embodiment of the present application.
[0026] In the figure: 11, detection rack; 12, detection platform; 13, translation module; 14, lifting module; 15, detection workpiece; 21, support base; 22, support frame; 23, support base frame; 24, bearing platform; 25, displacement platform; 26, driving machine part; 27, support part platform; 28, driving support; 31, support base; 32, support load frame; 33, positioning support rack; 34, base frame end; 35, main support frame; 36, guide rail; 37, platform loading interval; 41, outer support displacement frame plate; 42, inner support displacement frame plate; 43, combined top seat; 44, platform mounting seat; 45, sliding base block; 46, clamping groove; 47, sleeve block; 48, lifting plug-in block; 49, inner sleeve ring; 51, driving cylinder; 52, cylinder body driving rod; 53, connecting block; 61, adsorption panel; 62, positioning piece; 63, bearing base plate; 64, object carrying panel; 65, optical positioning ruler; 71, rotating motor; 72, driving rotating shaft; 73, rotating support; 74, overturning support cylinder; 75, folding frame plate; 76, fine adjustment sliding plate; 77, sliding line groove; 81, fixing bolt; 82, plug-in support rod. DETAILED DESCRIPTION
[0027] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application, which are shown in the drawings. When the following description refers to the drawings, the same numbers in different drawings represent the same or similar elements unless otherwise indicated.
[0028] Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative work belong to the scope of protection of the present application.
[0029] The specific implementation of the present application will be described in detail below in combination with specific embodiments.
[0030] In one embodiment, please refer to Figure 1 and Figure 2, provide a kind of 3C structural member size detection mechanism, including detection rack 11 and the detection platform 12 being arranged in detection rack 11;The frame body of the detection rack 11 is provided with translation module 13, the lifting module 14 is installed on the translation module 13, and the detection workpiece 15 is installed on the bottom of the lifting module 14;The detection platform 12 includes support base 21, support machine frame 22 being arranged on support base 21 and the frame base frame 23 being installed on support machine frame 22;The detection platform 12 further includes bearing platform 24, and the mounting end of bearing platform 24 is provided with displacement platform 25, the displacement platform 25 is slidably arranged on frame base frame 23, and the driving machine piece 26 is arranged on the frame base frame 23, the driving end of driving machine piece 26 is connected with displacement platform 25, and a plurality of branch component carriages 27 are arranged on bearing platform 24, and the side of branch component carriage 27 is all installed on the load surface of bearing platform 24 by driving branch 28.
[0031] Detection rack 11 is welded by high-strength steel material, to ensure its stability and bearing capacity.The bottom of the rack is provided with adjustable legs, so as to adjust the levelness in different working environments.Translation module 13 selects high-precision linear guide and servo motor driving system, and is installed on the top beam of detection rack 11.Through programming control, the accurate movement of detection workpiece 15 in horizontal direction can be realized.Lifting module 14 is installed on the slider of translation module 13, adopts ball screw and servo motor combination, realizes the lifting adjustment of detection workpiece 15 in vertical direction.The bottom of lifting module 14 is fixed with detection workpiece 15 through special fixture, to ensure the stability and accuracy in detection process.
[0032] The support base 21 of the detection platform 12 is a bottom support process, which is padded with shockproof material to reduce the influence of external vibration on detection accuracy. The frame base frame 23 is fixed on the support machine frame 22 by bolts, and is designed in the form of a sliding rail to facilitate the sliding installation of the displacement platform 25. The displacement platform 25 is designed to be lightweight, and the bottom is provided with a sliding block which cooperates with the sliding rail on the frame base frame 23 to realize smooth and unobstructed sliding. The control of the driving machine part 26 is realized by PLC or a special controller, and multiple motion modes and speeds can be preset. The bearing platform 24 is uniformly distributed with several part support tables 27, and each table is used to place the 3C structural parts to be detected. For the modular combined structure of the 3C structural parts, each part is placed on the part support table 27 in turn, and each 3C structural part of the modular combination is detected in the same detection process. Through the fine adjustment function of the driving part 28, the horizontal and vertical fine adjustment of each part support table 27 can be realized to ensure that all parts are in the best detection position. This fine adjustment capability is particularly important for precise modular structural parts, which can reduce the detection inaccuracy caused by installation errors. The detection workpiece 15 can use high-precision measurement probes, laser scanners or visual recognition systems, etc., and each modular part is detected according to the preset program. The detection content may include size, shape, position accuracy, assembly gap and other aspects. The detection data is transmitted to the control system in real time, and the standard value is compared through algorithm analysis to quickly judge whether each part is qualified.
[0033] Through the individual modular detection mode and the cooperation of the precise displacement platform 25 and the driving machine part 26, the present application realizes high-precision detection of each part of the 3C structural part. The detection of each part of the modular assembly is completed in the same detection process, which reduces the error accumulation caused by multi-process flow and improves the consistency and accuracy of detection.
[0034] In one embodiment, please refer to Figure 1 and Figure 3 , this embodiment is a further design based on the above embodiment, and the specific implementation structure of the support machine frame 22 is designed as follows: The support machine frame 22 includes a support base 31 erected on the support base 21 and a support load frame 32 arranged on the support base 31, and the support load frame 32 is a triangular frame body, and a positioning support rack 33 is arranged in the support load frame 32. The frame base frame 23 includes a main support frame 35 and a base frame end 34 arranged at both ends of the main support frame 35, and the base frame ends 34 at both ends are erected in the frame body of the support load frame 32 and are in opposite connection with the positioning support rack 33. The frame body of the main support frame 35 is provided with a platform loading interval 37, and the frame bodies at both ends of the main support frame 35 are provided with guide rails 36.
[0035] Support base 31 as the basis of the entire support frame 22, support load frame 32 is designed as a triangular frame, this structure not only has good stability, but also can effectively disperse the load, reduce the pressure on the support base 31. In the support load frame 32, the positioning support rack 33 is installed. The rack is assembled from precision machined parts, has high rigidity and stability. Its main function is to provide accurate positioning and support for the rack base frame 23, to ensure the stability of the bearing platform 24 during detection. The base frame end 34 is arranged at both ends of the main support frame 35 and is arranged in the frame of the support load frame 32. By accurately docking the positioning support rack 33, the base frame end 34 not only realizes the stable connection with the support load frame 32, but also ensures the accurate positioning and stability of the entire rack base frame 23.
[0036] The accurate setting of the guide rail 36 and the smooth movement of the displacement platform 25 ensure the accurate positioning and stable movement of each component during detection. This helps to realize high-precision detection of each component of the 3C structure, and improves the accuracy of the detection results.
[0037] In one embodiment, please refer to Figure 1 、 Figure 2 、 Figure 4 and Figure 5 , this embodiment is a further design based on the above embodiment, and for the specific implementation structure of the support frame 22, the embodiment is designed as follows: The displacement platform 25 includes an outer displacement frame plate 41, an inner displacement frame plate 42 and a combined top seat 43. The outer displacement frame plate 41 and the inner displacement frame plate 42 are arranged in the platform loading interval 37. The plate body of the outer displacement frame plate 41 is slidably attached to the inner wall of the frame body of the main support frame 35. The inner displacement frame plate 42 is fixedly attached to the inner wall of the outer displacement frame plate 41 to form a laminated plate structure. The combined top seat 43 is installed on and fixed to the plate body of the outer displacement frame plate 41 and the inner displacement frame plate 42. The displacement platform 25 effectively increases the rigidity and load capacity of the overall structure through the lamination of the inner and outer two frame plates.
[0038] The bottom edge of the outer displacement frame plate 41 is also provided with a loading platform mounting seat 44, and the bearing platform 24 is arranged at the bottom of the loading platform mounting seat 44. The inner wall of the plate body of the inner displacement frame plate 42 is provided with a sliding base block 45, and the sliding base block 45 is provided with a clamping groove 46. The guide rail 36 is inserted into the corresponding sliding base block 45 and the rail groove is embedded with the clamping groove 46.
[0039] The design of the size detection mechanism of the 3C structural member in this embodiment aims to efficiently and accurately complete the precise size detection task of modular products. The stacked plate design of the outer displacement frame plate 41 and the inner displacement frame plate 42 not only enhances the overall rigidity of the displacement platform, but also ensures that it can maintain high stability even when moving at high speed or under heavy load. The combined top seat 43 includes a sleeve block 47 mounted on the inner displacement frame plate 42, an inner sleeve ring 49 arranged in the sleeve block 47, and a lifting plug-in block 48 mounted in the inner sleeve ring 49. The lifting plug-in block 48 can be adjusted up and down according to detection needs, and the relative position of the outer displacement frame plate 41 and the inner displacement frame plate 42 can be adjusted according to the work needs, and then the relative adjustment of the stage mounting seat 44 mounted on the outer displacement frame plate 41 is made, and the stage mounting seat 44 is used as the support structure of the bearing platform 24, that is, the relative height between the bearing platform 24 and the displacement platform 25 is adjusted to adapt to the detection needs of structural members of different sizes and shapes. The clamping groove 46 in the sliding base block 45 is tightly embedded in the track groove of the guide rail 36, ensuring the stability and accuracy of the displacement platform 25 during movement.
[0040] The combination of the stacked plate structure and the precise guide mechanism in this embodiment enables the displacement platform 25 to achieve high-precision positioning in both horizontal and vertical directions, ensuring accurate alignment and measurement of structural members during detection. The design of the combined top seat 43 allows the displacement platform 25 to have flexible adjustability in the vertical direction, which can be quickly adjusted according to different detection needs, improving the adaptability and flexibility of the detection mechanism.
[0041] For the specific implementation structure of the driving mechanism 26, this embodiment designs the driving mechanism 26 to include a driving cylinder 51, a cylinder body drive rod 52 mounted on the driving end of the driving cylinder 51, and a connecting block 53 mounted on the rod end of the cylinder body drive rod 52. The connecting block 53 is fixedly connected with the combined top seat 43. Power is transmitted to the combined top seat 43 through the cylinder body drive rod 52 and the connecting block 53, thereby driving the entire displacement platform 25 to move smoothly on the guide rail 36.
[0042] In one embodiment, referring to Figure 2 and Figure 6 , this embodiment is a further design based on the above-mentioned embodiment. For the specific implementation structure of the support component stage 27, this embodiment is designed as follows: The support component stage 27 includes a bearing base plate 63 and a load panel 64 arranged on the top of the bearing base plate 63. The bearing base plate 63 is provided with positioning pieces 62 on both sides, and the positioning pieces 62 on both sides are connected with the driving support 28. The upper surface of the load panel 64 is provided with an adsorption panel 61, and the bearing base plate 63 is provided with an optical positioning ruler 65, which is located on the outer side of the load panel 64.
[0043] The carrier panel 64 is a component in direct contact with the 3C structure, and its surface is made of a material that is slip-resistant, wear-resistant, and easy to clean. On the upper surface of the carrier panel 64, we specially set up the adsorption panel 61. The adsorption panel 61 is embedded with tiny vacuum suction cups or magnetic adsorption devices, which can select appropriate adsorption methods according to the characteristics of different 3C structure components (such as material, shape, etc.), ensuring that the structure components remain stable during the detection process and avoiding scratches or damage caused by physical clamping.
[0044] The optical positioning ruler 65 is also installed on the carrier substrate 63. The optical positioning ruler 65 is located on the outer side of the carrier panel 64, and based on the vacuum suction or magnetic adsorption positioning, it captures and measures the edge position of the structure in real time to implement positioning, ensuring that the object to be detected is accurately positioned at the predetermined position.
[0045] For the adjustment implementation of the support component stage 27, please refer to Figure 2 、 Figure 7 and Figure 8 , the design of this embodiment is as follows: The drive support 28 includes a folding frame plate 75 arranged on the side of the support component stage 27, and each set of folding frame plate 75 is provided with two and located on both sides of the carrier substrate 63. The folding frame plate 75 is installed on the plate body of the carrier platform 24 through the folding support cylinder 74, and the plate body of the carrier platform 24 is also provided with a rotating motor 71. The drive end of the rotating motor 71 is installed with a drive shaft 72, and the rod end of the drive shaft 72 is connected with the corresponding folding support cylinder 74 through a rotating support 73. The mounting end of the folding frame plate 75 is provided with a fine adjustment sliding plate 76, and the fine adjustment sliding plate 76 is provided with a sliding line groove 77. The carrier panel 64 is installed on the corresponding sliding line groove 77 in a cover closing manner.
[0046] The fine adjustment sliding plate 76 is made of high-strength and low-friction coefficient materials, such as stainless steel or aluminum alloy surface treated specially to reduce the resistance and wear during sliding. The carrier panel 64 is designed to be detachable, and is quickly connected with the sliding line groove 77 on the fine adjustment sliding plate 76 through precise positioning pins or magnetic attraction devices, so that the working position of the support component stage 27 in the horizontal direction can be adjusted appropriately.
[0047] Flexibility and adjustability; the folding frame plate 75 not only supports the carrier substrate 63, but also realizes flexible connection with the carrier platform 24 through the folding support cylinder 74. This design allows the folding frame plate 75 to be flipped and tilted within a certain small angle range to adapt to the detection needs of structure components of different shapes and angles.
[0048] The inside of the turnover support cylinder 74 is provided with a bearing or sliding mechanism to reduce friction and wear and improve the smoothness of the turnover. The rotating motor 71 serves as a power source and transmits power to the driving rotating shaft 72 through a speed reducer. The rod end of the driving rotating shaft 72 is connected to the turnover support cylinder 74 through the rotating support 73 to realize direct power transmission and conversion. The rotating motor 71 is integrated with an encoder or position sensor, which can monitor and feedback the position information of the rotating shaft in real time. The control system accurately controls the motor according to these information to ensure that the folding frame plate 75 can be turned over at a predetermined angle and speed.
[0049] The present embodiment realizes high-precision adjustment of the position of the structural member through fine adjustment of the precise cooperation of the sliding plate 76 and the sliding line slot 77 and the precise control of the rotating motor 71, significantly improving the detection accuracy. The combination of the turnover adjustment of the folding frame plate 75 and the horizontal fine adjustment of the fine adjustment sliding plate 76 enables the detection mechanism to adapt to the detection requirements of structural members of different shapes, sizes and angles, improving the flexibility and versatility of the equipment.
[0050] Thus, for modular combined 3C structural members, detection efficiency can be effectively improved, and the modular components can be detected synchronously and individually. The component carrier 27 can be adjusted according to the different structures of the modular components, and it is crucial to accurately evaluate the key indicators such as size tolerance, surface quality and assembly precision of the structural members, which helps to improve product quality. Modular components complete detection in the same detection process, which can reduce error accumulation caused by multi-process flow, improve detection consistency and accuracy, and detection data can be directly analyzed and compared through algorithm to quickly judge whether each component is qualified.
[0051] Preferably, the bearing platform 24 is also provided with a fixing bolt 81 and a plug-in support rod 82 arranged on the fixing bolt 81, and the plug-in support rod 82 is plug-in installed in the folding frame plate 75. After the angle adjustment is completed, the plug-in support rod 82 is further locked to improve the stability.
[0052] It is obvious to those skilled in the art that the present application is not limited to the details of the above exemplary embodiments, and can be implemented in other specific forms without departing from the spirit or essential characteristics of the present application. Therefore, from any point of view, the embodiments should be regarded as exemplary and non-limiting, and the scope of the present application is defined by the appended claims rather than the above description, and all changes falling within the meaning and scope of the equivalent elements of the claims are intended to be included in the present application.
[0053] Furthermore, it should be understood that although the specification is described in terms of embodiments, not every embodiment includes every feature described. The specification can include implicit combinations of explicitly mentioned features and / or explicit combinations of implicitely mentioned features. Each embodiment depends on the explicit combinations of features and / or the implicit combinations of features made specifically within that embodiment, and each such embodiment can be combined with every other such embodiment to create further embodiments.
Claims
1. A 3C structural component dimension inspection mechanism, comprising an inspection frame (11) and an inspection platform (12) disposed within the inspection frame (11); characterized in that, The frame of the inspection machine (11) is provided with a translation module (13), a lifting module (14) is installed on the translation module (13), and the inspection workpiece (15) is installed at the bottom of the lifting module (14). The testing platform (12) includes a support base (21), a support frame (22) set on the support base (21), and a scaffolding frame (23) installed on the support frame (22). The detection platform (12) also includes a support platform (24). The installation end of the support platform (24) is provided with a displacement platform (25). The displacement platform (25) is slidably mounted on the scaffolding base frame (23). The scaffolding base frame (23) is provided with a driving mechanism (26). The driving end of the driving mechanism (26) is connected to the displacement platform (25). The support platform (24) is provided with several support component platforms (27). The side edges of the support component platforms (27) are all mounted on the surface of the support platform (24) through driving supports (28).
2. The 3C structural component dimension detection mechanism according to claim 1, characterized in that, The support frame (22) includes a support base (31) erected on a support base (21) and a support frame (32) set on the support base (31). The support frame (32) is a triangular frame. A positioning support frame (33) is set inside the support frame (32). The scaffolding frame (23) includes a main support frame (35) and base frame ends (34) set at both ends of the main support frame (35). The base frame ends (34) at both ends are erected in the frame of the support frame (32) and are connected to the positioning support frame (33).
3. The 3C structural component dimension detection mechanism according to claim 2, characterized in that, The main support frame (35) has a platform loading area (37) inside its frame, and a guide rail (36) is installed between the frames at both ends of the main support frame (35).
4. The 3C structural component dimension detection mechanism according to claim 3, characterized in that, The displacement platform (25) includes an outer support displacement frame plate (41), an inner support displacement frame plate (42), and a combined top seat (43). The outer support displacement frame plate (41) and the inner support displacement frame plate (42) are both erected in the loading area (37) of the platform. The plate of the outer support displacement frame plate (41) slides against the inner wall of the frame of the main support frame (35), and the inner support displacement frame plate (42) is attached and fixed to the inner wall of the outer support displacement frame plate (41) to form a stacked plate structure. The combined top seat (43) includes a sleeve block (47) installed on the upper edge of the inner support displacement frame plate (42), an inner sleeve ring (49) set in the sleeve block (47), and a lifting insertion block (48) installed in the inner sleeve ring (49).
5. The 3C structural component dimension detection mechanism according to claim 4, characterized in that, The bottom edge of the outer support displacement frame plate (41) is also provided with a platform mounting base (44), the bearing platform (24) is provided at the bottom of the platform mounting base (44), the inner wall of the inner support displacement frame plate (42) is provided with a sliding base block (45), the sliding base block (45) is provided with a locking groove (46), the guide rail (36) passes through the corresponding sliding base block (45) and the rail groove is engaged with the locking groove (46).
6. The 3C structural component dimension detection mechanism according to claim 5, characterized in that, The drive mechanism (26) includes a drive cylinder (51), a cylinder drive rod (52) installed at the drive end of the drive cylinder (51), and a connecting block (53) installed at the rod end of the cylinder drive rod (52). The connecting block (53) is fixedly connected to the combined top seat (43).
7. The 3C structural component dimension detection mechanism according to any one of claims 1-6, characterized in that, The support platform (27) includes a support substrate (63) and a loading panel (64) disposed on the top of the support substrate (63). Positioning pieces (62) are provided on both sides of the support substrate (63). The positioning pieces (62) on both sides are connected to the drive support (28). An adsorption panel (61) is provided on the upper surface of the loading panel (64). An optical positioning ruler (65) is provided on the support substrate (63). The optical positioning ruler (65) is located on the outer edge of the loading panel (64).
8. The 3C structural component dimension detection mechanism according to claim 7, characterized in that, The drive support (28) includes a folding frame plate (75) disposed on the side edge of the support platform (27). Each set of folding frame plates (75) has two plates, which are respectively located on both sides of the support base plate (63). The folding frame plate (75) is installed on the plate of the support platform (24) through a flip support cylinder (74). The plate of the support platform (24) is also provided with a rotating motor (71). The drive end of the rotating motor (71) is equipped with a drive shaft (72). The rod end of the drive shaft (72) is connected to the corresponding flip support cylinder (74) through a rotating support (73).
9. The 3C structural component dimension detection mechanism according to claim 8, characterized in that, The mounting end of the folding shelf (75) is provided with a fine-tuning slide plate (76), and the fine-tuning slide plate (76) is provided with a sliding groove (77). The loading panel (64) is installed on the corresponding sliding groove (77) in a cover-like manner.
10. The 3C structural component dimension detection mechanism according to claim 8, characterized in that, The carrying platform (24) is also provided with a fixing bolt (81) and a plug-in support rod (82) provided on the fixing bolt (81). The plug-in support rod (82) is plugged into the folding frame plate (75).