Loading fixture for industrial inspection apparatus and industrial inspection apparatus

By designing a loading fixture for industrial testing equipment and employing vacuum adsorption and sealing technologies, the problem of insufficient product placement accuracy was solved, achieving stable adsorption of products during the testing process and improving production efficiency and yield.

CN224526986UActive Publication Date: 2026-07-21DONG GUAN GAO WEI GUANG XUE DIAN ZI YOU XIAN GONG SI
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
DONG GUAN GAO WEI GUANG XUE DIAN ZI YOU XIAN GONG SI
Filing Date
2025-08-12
Publication Date
2026-07-21

AI Technical Summary

Technical Problem

Existing industrial testing equipment is inadequate in detecting and verifying the accuracy of product placement, especially in terms of real-time monitoring of product levelness, which leads to frequent vacuum leakage and affects production efficiency and yield.

Method used

Design a loading fixture for industrial testing equipment, including a support body and an adsorption component. Through vacuum adsorption and sealing design, ensure that the product maintains a stable adsorption state during the testing process. The support platform is made of high-strength alloy material and precision machining, combined with a vacuum component and a sensor for real-time monitoring.

Benefits of technology

It effectively prevents vacuum leakage, improves product yield and production efficiency, reduces material waste, and ensures the accuracy and stability of the testing process.

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Abstract

The application relates to a loading jig for an industrial detection device and the industrial detection device, the loading jig comprising: a bearing main body for placing a product to be detected; and a suction member arranged on the bearing main body and used for tightly sucking the product to be detected on the bearing main body. The loading jig for the industrial detection device and the industrial detection device provided by the application can effectively prevent the product from leaking vacuum in the assembly production process, avoid the phenomenon of inaccurate suction position caused by the product leaking vacuum in the production process, thereby improving the product yield, improving the efficiency, and reducing the waste.
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Description

Technical Field

[0001] This application relates to the field of industrial fixture technology, and in particular to a loading fixture for industrial testing equipment and industrial testing equipment. Background Technology

[0002] Currently, industrial inspection equipment used on production lines suffers from a serious problem of vacuum leakage defects. Specifically, when incoming optical components are placed on the LUT (Loading Unit) for vacuum adsorption, insufficient control over the product's levelness often results in significant horizontal tilting. This tilt directly triggers a vacuum adsorption alarm during the subsequent AA (Active Alignment) process when picking up optical sub-assemblies, causing production interruptions. More seriously, an effective error-proofing mechanism has yet to be established for this process defect, allowing this quality anomaly to continue flowing into subsequent processes. This poses a significant quality control risk, potentially leading not only to poor product performance but also to substantial material scrapping, resulting in significant economic losses for the company.

[0003] Currently, existing technologies are insufficient to accurately detect and confirm the placement precision of products, particularly lacking the ability to monitor product level in real time, making it difficult to meet the stringent requirements of high-precision optical component manufacturing processes. Furthermore, the current manual methods for handling vacuum leakage issues have multiple drawbacks: operator subjectivity is prone to error, the process lacks standardization, and quality risks exist; simultaneously, manual intervention is time-consuming, labor-intensive, and inefficient, requiring significant manpower costs, all of which severely restrict improvements in production efficiency and yield.

[0004] Therefore, there is an urgent need in this field for a new technical solution to address the aforementioned technical problems. Utility Model Content

[0005] The purpose of this application is to provide a loading fixture and industrial testing equipment for use in industrial testing equipment, which can effectively prevent vacuum leakage during product assembly and production, avoid inaccurate adsorption position caused by vacuum leakage during product production, thereby improving product yield, increasing efficiency, and reducing waste.

[0006] In a first aspect, embodiments of this application provide a loading fixture for industrial testing equipment. The loading fixture includes: a support body for placing a product to be tested, the support body having a support portion; an adsorption member disposed on the support body for tightly adsorbing the product to be tested onto the support body, the adsorption end of the adsorption member being located on the support portion, the adsorption member having a vacuuming member, and a vacuuming hole being disposed on the side wall of the support body, the vacuuming member being connected to the vacuuming hole to evacuate the interior of the support body, so as to facilitate the adsorption member adsorbing the product to be tested; when loading the product to be tested, at least a portion of the product to be tested is located within the support portion, and the product to be tested located within the support portion is in close contact with the adsorption end of the adsorption member.

[0007] In one possible implementation, the support portion is recessed inward along the plate surface of the support body to form a groove; when the product to be tested is loaded, at least a portion of the product to be tested is located within the groove.

[0008] In one possible implementation, the groove is divided into a first bearing position and a second bearing position, the adsorption member is located at the first bearing position, and the width of the first bearing position is greater than the width of the second bearing position.

[0009] In one possible implementation, the interior of the supporting body is a hollow structure, and the main end of the adsorption member is snapped into the hollow structure of the supporting body.

[0010] In one possible implementation, a bushing is also included, which is disposed within the hollow structure of the supporting body and connected to the main body end of the adsorption member for fixing the main body end of the adsorption member.

[0011] In one possible implementation, the end of the bushing that is connected to the main body of the adsorption member is seamlessly connected.

[0012] In one possible implementation, the vacuuming component includes a first vacuuming element and a second vacuuming element, the first vacuuming element and the second vacuuming element being perpendicular to each other on the supporting body.

[0013] In one possible implementation, the supporting body is constructed of a high-strength alloy material.

[0014] In one possible implementation, the adsorption end of the adsorption member is a vacuum suction cup, the size and shape of which can be configured to fit the size and shape of the product to be tested.

[0015] Secondly, embodiments of this application provide an industrial testing device, including the loading fixture for industrial testing devices described above, wherein the loading fixture is used to load the product to be tested.

[0016] According to the loading fixture for industrial testing equipment provided in this application embodiment, the fixture can effectively prevent vacuum leakage during product assembly and production. Through vacuum adsorption and sealing, the fixture ensures that the product maintains a stable adsorption state throughout the processing, thereby avoiding inaccurate adsorption position, lens misalignment, or detachment caused by vacuum leakage. This design significantly improves the stability of lenses in optical inspection, ensures product assembly accuracy and consistency, greatly increases production yield, and reduces material waste caused by defective products. Simultaneously, by reducing rework and debugging time, overall production efficiency is significantly improved, saving enterprises valuable time and cost resources.

[0017] Furthermore, based on the loading fixture for industrial testing equipment described above, the present application provides an industrial testing equipment that, by employing the aforementioned loading fixture, possesses all the technical effects of the loading fixture. Compared to the industrial testing equipment before the improvement, the industrial testing equipment provided by this application can effectively prevent vacuum leakage during product assembly and production, and avoid inaccurate adsorption positions caused by vacuum leakage during product production. Attached Figure Description

[0018] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort. In addition, in the drawings, the same parts use the same reference numerals, and the drawings are not drawn to scale.

[0019] Figure 1 This illustration shows a structural schematic diagram of a loading fixture for industrial testing equipment provided in an embodiment of this application;

[0020] Figure 2 This document shows a disassembled cross-section of a loading fixture for industrial testing equipment provided in an embodiment of this application.

[0021] Figure 3 This is a cross-sectional view of a loading fixture for industrial testing equipment provided in an embodiment of this application.

[0022] Explanation of reference numerals in the attached figures:

[0023] 1. Main bearing structure; 11. First bearing position; 12. Second bearing position;

[0024] 2. Adsorption components;

[0025] 3. Bushing;

[0026] 4. Vacuum-evacuating component; 41. First vacuum-evacuating component; 42. Second vacuum-evacuating component;

[0027] 5. Vacuum extraction port. Detailed Implementation

[0028] To make the objectives, technical solutions, and advantages of the embodiments of this application clearer, the technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.

[0029] Currently, existing technologies in the field of optical inspection processes still have significant limitations, particularly in the detection and verification of product placement accuracy. Existing inspection equipment and methods struggle to achieve precise measurements. Specifically, the ability to monitor product level in real time is severely lacking, failing to continuously and stably acquire accurate levelness data. This technological shortcoming directly impacts the quality control of high-precision optical component manufacturing processes. More concerning is the prevalent manual handling of vacuum leakage issues during production, which presents numerous problems: First, operators are easily influenced by subjective factors, leading to significant errors in results; second, the lack of standardized operating procedures makes this non-standardized approach highly susceptible to quality issues; third, manual intervention is not only time-consuming but also requires highly skilled operators, significantly increasing labor costs. These technical and managerial deficiencies have become key bottlenecks restricting improvements in production efficiency and product yield.

[0030] The embodiments of this application aim to solve at least one of the above-mentioned technical problems, and therefore provide a loading fixture for industrial testing equipment and industrial testing equipment. The loading fixture is applied to industrial testing equipment, which can effectively prevent vacuum leakage during product assembly and production, avoid inaccurate adsorption position caused by vacuum leakage during product production, thereby improving product yield, increasing efficiency, and reducing waste.

[0031] Specifically, such as Figures 1 to 3 As shown (all embodiments in this application revolve around...) Figures 1 to 3(Description) This application provides a loading fixture for industrial testing equipment. The loading fixture includes a support body 1 and an adsorption component 2: the support body 1 is used to place the product to be tested; the adsorption component 2 is disposed on the support body 1 and is used to tightly adsorb the product to be tested onto the support body 1.

[0032] In a specific example, this example details a loading fixture for industrial testing equipment, which mainly consists of two core components: a support body 1 and an adsorption component 2. The support body 1 is made of high-strength alloy material, and its surface is precision-machined to form a flat support platform specifically designed for the stable placement of various products to be tested. It should be noted that in this example, the products to be tested are optical components such as optical prisms and lenses. The adsorption component 2 is installed at a specific position on the support body 1. This component includes a vacuum suction cup, connected to an external air source via a vacuum pipeline, which generates a strong adsorption force, ensuring a tight, gapless fixation between the product to be tested and the support body 1, effectively preventing displacement or vibration of the product during testing.

[0033] Furthermore, to further enhance the stability and reliability of the loading fixture, the bottom of the supporting body 1 is designed with a flat base. The base can be height adjusted according to different working environments and the installation requirements of the testing equipment to ensure that the supporting body 1 remains level, thereby providing a stable working platform for the product to be tested. At the same time, the vacuum suction cup of the adsorption component 2 can be flexibly configured according to the shape and size of the product to be tested to adapt to the testing needs of industrial products of different specifications and types.

[0034] The carrier body 1 is provided with a carrier part, and the adsorption end of the adsorption component 2 is located in the carrier part; when loading the product to be tested, at least a part of the product to be tested is located in the carrier part, and the product to be tested located in the carrier part is in close contact with the adsorption end of the adsorption component 2.

[0035] Specifically, the carrier section is processed to form a specific shaped receiving space. The adsorption end of the adsorption mechanism is positioned and fixed in a preset position on the carrier section. When loading the product to be tested, the operator or industrial robotic arm needs to accurately place a specific part of the product to be tested (at least a part of the product as a whole) into the receiving space of the carrier section. In this state, the surface of the product to be tested located in the carrier section will form a tight physical contact with the adsorption end of the adsorption component 2, generating a stable contact pressure between the two, ensuring that the adsorption end can effectively perform its adsorption function. This structural design ensures both the accuracy of product positioning, avoiding product level deviation, and the reliability of the adsorption effect.

[0036] Furthermore, to further enhance the contact stability between the carrier and the test product, the inner wall of the carrier may undergo special treatment, such as using a material with a high coefficient of friction or designing a micro-textured structure to increase friction with the surface of the test product. This design effectively prevents slippage or displacement of the test product during adsorption, thereby ensuring the accuracy and repeatability of the entire testing process.

[0037] Meanwhile, the adsorption end of adsorption component 2 can further employ magnetic adsorption combined with vacuum adsorption to accommodate test products of different materials and shapes. In some cases, the adsorption end may also be equipped with a sensor to monitor the adsorption status in real time, ensuring that the adsorption force is always within the optimal operating range. This intelligent monitoring mechanism can effectively prevent the test product from falling off due to insufficient adsorption force, or from being damaged by excessive adsorption force.

[0038] In this embodiment, the adsorption component 2 is provided with a vacuuming component 4, and the side wall of the support body 1 is provided with a vacuuming hole 5. The vacuuming component 4 is connected to the vacuuming hole 5 to evacuate the interior of the support body 1 so that the adsorption component 2 can adsorb the product to be tested.

[0039] Specifically, the vacuuming component 4 is connected to multiple vacuuming holes 5 pre-drilled on the side wall of the support body 1. The vacuuming holes 5 are arranged along the side wall of the support body 1. When the system is working, the vacuuming component 4 continuously and stably evacuates the internal cavity of the support body 1 through the vacuuming holes 5, thereby creating a negative pressure environment inside the support body 1. This negative pressure significantly enhances the adsorption strength and stability of the adsorption component 2 on the product to be tested, ensuring that the product remains firmly fixed during the testing process, preventing displacement or loosening, and creating favorable conditions for subsequent accurate testing.

[0040] To further enhance system stability and ease of operation, the connection between the vacuuming component 4 and the vacuuming port 5 can employ quick-connect couplings or sealed connection technology, making connection and disassembly processes faster and simpler. Simultaneously, this design facilitates maintenance or replacement of the vacuuming component 4 when needed, without affecting the normal operation of the entire system.

[0041] In one possible implementation, the bearing portion is recessed inward along the plate surface of the bearing body 1 to form a groove; when loading the product to be tested, at least a portion of the product to be tested is located in the groove.

[0042] In a specific example, the support portion is recessed inward to a specific depth along the surface of the support body 1 to form a groove structure with a predetermined size and shape. When the product under test is loaded, at least one part or main component of the product under test will be precisely positioned and stably accommodated in the internal space of the groove. This design ensures accurate positioning of the product during the test and provides reliable support and protection.

[0043] Furthermore, this groove design offers other advantages, such as effectively reducing potential movement or slippage of the product under test during transportation or handling, thereby lowering the risk of damage due to vibration or impact. The size and shape of the groove can be customized to the specific dimensions and shape of the product under test to ensure optimal fit and stability.

[0044] In one possible implementation, the groove is divided into a first bearing position 11 and a second bearing position 12, with the adsorption member 2 located in the first bearing position 11, and the width of the first bearing position 11 being greater than the width of the second bearing position 12.

[0045] In a specific example, the adsorption component 2 is disposed within the first support position 11. It is worth noting that the lateral width of the first support position 11 is significantly larger than the width of the second support position 12. This differentiated design allows the first support position 11 to better accommodate and fix the adsorption component 2, while the second support position 12 can be used to realize other auxiliary functions.

[0046] Furthermore, this structural division allows for stable support and precise positioning of the adsorption component 2 within the first support position 11. Due to the large width of the first support position 11, it provides sufficient contact area, ensuring that the adsorbed product does not shift or tilt during use. This is crucial for maintaining the stability and durability of the adsorption effect.

[0047] Meanwhile, although the second support position 12 is smaller in width, its existence is equally important. It may be designed to mount other auxiliary components, such as sensors, indicator lights, or other small electronic devices. Although these components may be much smaller in size than the adsorption component 2, they play a supporting role in the overall functionality. For example, sensors can be used to monitor the working status of the adsorption component 2, while indicator lights can provide intuitive feedback on the usage status to the user.

[0048] In practical applications, this groove design not only improves the integration of the device but also simplifies the assembly and maintenance process. Users can easily replace the adsorption component 2 as needed without worrying about affecting the function of other components. At the same time, this design also allows for future upgrades and expansions, enabling the device to adapt to ever-changing technological requirements and market trends.

[0049] In one possible implementation, the interior of the supporting body 1 is a hollow structure, and the main body end of the adsorption component 2 is snapped into the hollow structure of the supporting body 1.

[0050] In a specific example, the supporting body 1 adopts a hollow design, forming a hollow cavity structure inside. The main end of the adsorption component 2 can be securely embedded and fixed inside the hollow structure of the supporting body 1. This snap-fit ​​structure not only ensures a reliable connection between the adsorption component 2 and the supporting body 1, but also facilitates subsequent disassembly and maintenance.

[0051] Furthermore, this snap-fit ​​design also considers ease of operation and structural stability. The hollow structure of the supporting body 1 is finely machined on its inner wall to ensure smooth insertion of the main body end of the adsorption component 2 and a tight fit after insertion, thus preventing loosening or displacement during use. Simultaneously, the hollow structure of the supporting body 1 is also designed with a locking mechanism, such as a spring lock, buckle, or other form of locking device, to ensure that the adsorption component 2 will not accidentally detach under external force.

[0052] In practical applications, the snap-fit ​​connection between the hollow structure of the supporting body 1 and the main body end of the adsorption component 2 not only needs to meet mechanical strength requirements but also needs to consider material compatibility to prevent material performance degradation due to factors such as temperature changes, humidity changes, or chemical corrosion. Therefore, a protective material may be coated on the contact surface of the two or a corrosion-resistant alloy material may be used to improve the overall durability and reliability of the structure.

[0053] In addition, the hollow structure design of the supporting body 1 may also take into account the optimization of weight and cost, by using lightweight materials or hollow design to reduce the overall weight while controlling manufacturing costs.

[0054] In one possible implementation, the loading fixture provided in this application embodiment further includes a bushing 3, which is disposed within the hollow structure of the bearing body 1 and connected to the main body end of the adsorption member 2 for fixing the main body end of the adsorption member 2.

[0055] In a specific example, bushing 3 is assembled within a hollow cavity structure formed inside the supporting body 1, with its specific installation position located within the internal space of the hollow structure. One end of bushing 3 is mechanically connected to the main body end of the adsorption component 2, while the other end fits tightly with the supporting body 1. The main function of this design is to reliably position and fix the main body end of the adsorption component 2, ensuring its stable positional relationship during operation, thereby improving the structural rigidity and working accuracy of the entire loading fixture. The addition of bushing 3 not only enhances the stability of the assembly but also provides necessary support and protection for the adsorption component 2. In practical applications, bushing 3 can be equipped with a sealing ring to increase sealing performance.

[0056] In one possible implementation, the end of the bushing 3 that is connected to the main body end of the adsorption member 2 is connected in a seamless manner.

[0057] In a specific example, this seamless connection method ensures the integrity and sealing of the connection points, avoiding gaps or voids that may occur with traditional connection methods, thereby significantly improving the stability and reliability of the overall structure. Specifically, this seamless connection process can be achieved through precision hot pressing, laser welding, or other advanced connection technologies, forming a robust and continuous integrated structure between the bushing 3 and the main body end of the adsorption component 2, or by using the aforementioned sealing ring to seal the connection point.

[0058] In one possible implementation, the vacuuming component 4 includes a first vacuuming element 41 and a second vacuuming element 42, wherein the first vacuuming element 41 and the second vacuuming element 42 are perpendicular to each other on the supporting body 1.

[0059] In a specific example, the first vacuum pumping component is arranged along the longitudinal direction of the supporting body 1, while the second vacuum pumping component is arranged along the transverse direction of the supporting body 1. These two vacuum pumping components are spatially arranged at a 90-degree perpendicular angle. This mutually perpendicular arrangement enables a more comprehensive and uniform vacuuming effect inside the supporting body 1. The first vacuum pumping component 41 and the second vacuum pumping component 42 work together to ensure the stability and reliability of the entire vacuuming process.

[0060] To further optimize performance, the first and second vacuum pumping units can be equipped with their own vacuum pumps and control systems. These systems can be adjusted independently.

[0061] In one possible implementation, the supporting body 1 is constructed of a high-strength alloy material.

[0062] In a specific example, the load-bearing body 1 is designed to be made of a high-strength alloy material. This high-strength alloy material is typically a metal composite material with excellent mechanical properties, such as titanium alloys, nickel-based superalloys, or special steels, to ensure that the load-bearing body 1 maintains structural integrity and stability under heavy loads. By using this high-strength alloy material, the tensile strength, compressive strength, and fatigue life of the load-bearing body 1 can be significantly improved, enabling it to adapt to various harsh working environments and long-term use requirements.

[0063] In one possible implementation, the adsorption end of the adsorption member 2 is a vacuum suction cup, the size and shape of which can be configured to fit the size and shape of the product to be tested.

[0064] In a specific example, the adsorption end of the adsorption component 2 can adopt a vacuum suction cup structure design. The specific dimensions and outline of the vacuum suction cup can be customized according to actual application requirements. Specifically, the diameter, edge curvature, and overall shape characteristics of the vacuum suction cup can be precisely constructed to perfectly match the surface dimensions and outline of the product to be tested, thereby ensuring that the adsorption component 2 can stably and reliably adsorb and fix products of different specifications. This adaptable design makes the adsorption component 2 suitable for the testing needs of products of various sizes and shapes, greatly improving the versatility and applicability of the equipment.

[0065] Secondly, embodiments of this application provide an industrial testing device, including the loading fixture for industrial testing devices described above, wherein the loading fixture is used to load the product to be tested.

[0066] This industrial testing equipment, by integrating the aforementioned loading fixture, achieves automated loading, positioning, and testing of products under test, significantly improving the efficiency and accuracy of industrial testing. The equipment is suitable for quality testing of various industrial products, including electronic components and precision mechanical parts, and features easy operation and high testing accuracy.

[0067] According to the loading fixture for industrial testing equipment provided in this application embodiment, the fixture can effectively prevent vacuum leakage during product assembly and production. Through vacuum adsorption and sealing, the fixture ensures that the product maintains a stable adsorption state throughout the processing, thereby avoiding inaccurate adsorption position, lens misalignment, or detachment caused by vacuum leakage. This design significantly improves the stability of lenses in optical inspection, ensures product assembly accuracy and consistency, greatly increases production yield, and reduces material waste caused by defective products. Simultaneously, by reducing rework and debugging time, overall production efficiency is significantly improved, saving enterprises valuable time and cost resources.

[0068] It should be noted that the terms "one embodiment," "embodiment," "exemplary embodiment," "some embodiments," etc., mentioned in the specification indicate that the described embodiment may include a specific feature, structure, or characteristic, but not every embodiment necessarily includes that specific feature, structure, or characteristic. Furthermore, such phrases do not necessarily refer to the same embodiment. Moreover, when a specific feature, structure, or characteristic is described in connection with an embodiment, implementing such a feature, structure, or characteristic in conjunction with other embodiments, whether explicitly described or not, is within the knowledge scope of those skilled in the art.

[0069] It should be readily understood that the terms “on,” “above,” and “on top of” in this disclosure should be interpreted in the broadest possible sense, such that “on” means not only “directly on something” but also “on something” with an intermediate feature or layer therebetween, and that “above” or “on top of” means not only “on top of something” but also “on top of something” without an intermediate feature or layer therebetween (i.e., directly on something).

[0070] Furthermore, for ease of explanation, spatially relative terms such as "below," "below," "under," "above," and "above" may be used to describe the relationship of one element or feature relative to other elements or features as shown in the figures. Spatially relative terms are intended to encompass different orientations of the device in use or operation other than those shown in the figures. The device may have other orientations (rotated 90 degrees or in other orientations), and the spatially relative descriptive terms used herein may be interpreted accordingly.

[0071] It should be noted that, in this document, relational terms such as "first" and "second" are used merely to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.

[0072] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this application, and are not intended to limit them. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some or all of the technical features therein. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of this application.

Claims

1. A loading fixture for industrial testing equipment, characterized in that, The loading fixture includes: A support body for placing the product to be tested, and the support body is provided with a support section; An adsorption component is disposed on the support body for tightly adsorbing the product to be tested onto the support body. The adsorption end of the adsorption component is located on the support part. A vacuuming component is disposed on the adsorption component. A vacuuming hole is disposed on the side wall of the support body. The vacuuming component is connected to the vacuuming hole to evacuate the interior of the support body so that the adsorption component can adsorb the product to be tested. When the product to be tested is loaded, at least a portion of the product to be tested is located within the support portion, and the product to be tested located within the support portion is in close contact with the adsorption end of the adsorption member.

2. The loading fixture for industrial testing equipment according to claim 1, characterized in that, The bearing portion is recessed inward along the plate surface of the bearing body to form a groove; When the product under test is loaded, at least a portion of the product under test is located within the groove.

3. The loading fixture for industrial testing equipment according to claim 2, characterized in that, The groove is divided into a first bearing position and a second bearing position. The adsorption component is located in the first bearing position, and the width of the first bearing position is greater than the width of the second bearing position.

4. The loading fixture for industrial testing equipment according to claim 1, characterized in that, The interior of the supporting body is a hollow structure, and the main body end of the adsorption component is snapped into the hollow structure of the supporting body.

5. The loading fixture for industrial testing equipment according to claim 4, characterized in that, It also includes a bushing, which is disposed within the hollow structure of the supporting body and connected to the main body end of the adsorption component, for fixing the main body end of the adsorption component.

6. The loading fixture for industrial testing equipment according to claim 5, characterized in that, The end of the bushing that connects to the main body of the adsorption component is seamlessly connected.

7. The loading fixture for industrial testing equipment according to claim 1, characterized in that, The vacuuming component includes a first vacuuming component and a second vacuuming component, which are perpendicular to each other on the supporting body.

8. The loading fixture for industrial testing equipment according to claim 1, characterized in that, The supporting body is constructed of a high-strength alloy material.

9. The loading fixture for industrial testing equipment according to claim 1, characterized in that, The adsorption end of the adsorption component is a vacuum suction cup, and the size and shape of the vacuum suction cup can be configured to fit the size and shape of the product to be tested.

10. An industrial testing device, characterized in that, include: The loading fixture for industrial testing equipment as described in any one of claims 1 to 9, wherein the loading fixture is used to load the product to be tested.