Part measuring equipment

The component measurement equipment, which combines a platform and a vision recognition component, automatically identifies and triggers measurements, solving the inefficiency problem caused by manual identification and achieving automated measurement and efficient utilization.

CN224136561UActive Publication Date: 2026-04-17DELIXI ELECTRIC
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
DELIXI ELECTRIC
Filing Date
2025-04-08
Publication Date
2026-04-17

AI Technical Summary

Technical Problem

The current component measurement process involves a lot of manual intervention, resulting in low measurement efficiency and wasted human resources. Furthermore, the equipment cannot be used during unattended periods, leading to low utilization.

Method used

By combining a platform, a vision recognition component, and a measurement component, the vision recognition component automatically identifies the type of part and triggers the measurement component to perform dimensional measurement, thus achieving automated measurement.

Benefits of technology

It reduced labor costs, improved measurement efficiency, and increased equipment utilization by utilizing unattended times such as nighttime.

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Abstract

The utility model provides part measuring equipment. The part measuring equipment comprises an object placing table, a visual identification assembly and a measuring assembly. The object placing table is used for placing a to-be-measured part, a visual identification assembly is arranged above the object placing table, and the visual identification assembly is used for identifying the type of the to-be-measured part placed on the object placing table and sending a trigger instruction to the measuring assembly after identifying the to-be-measured part on the object placing table. The measuring assembly is used for measuring the size of the to-be-measured part placed on the object placing table after receiving the trigger instruction. Therefore, the visual identification assembly replaces manual identification of the type of the to-be-measured part, and the measurement assembly is triggered to measure the size of the to-be-measured part on the object placing table according to the identified type of the to-be-measured part. The measurement process is automatically completed, the labor cost is reduced, and the size measurement efficiency is improved. In addition, dimension measurement can be carried out at night and other time when people are unattended, and the utilization rate of part measurement equipment is improved.
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Description

Technical Field

[0001] This disclosure relates to the field of measurement technology, and in particular to a component measurement device. Background Technology

[0002] In fields such as mold equipment, gear measurement, blade measurement, mechanical manufacturing, tooling and fixtures, automotive mold parts, and electronics, it is often necessary to measure the dimensions of parts.

[0003] When measuring the dimensions of parts, manual assistance is usually required to complete the measurement with the help of the measuring equipment.

[0004] However, this wastes human resources and is inefficient in measurement. Utility Model Content

[0005] This disclosure provides a component measurement device to solve the problem of low measurement efficiency in current component measurement methods.

[0006] In a first aspect, this disclosure provides a component measuring device, comprising: a platform, a vision recognition component, and a measuring component; the platform is used to place the component to be measured; the vision recognition component is disposed above the platform; the vision recognition component is used to identify the type of the component to be measured placed on the platform, and after identifying the type of the component to be measured on the platform, sends a trigger command to the measuring component; the measuring component is used to measure the size of the component to be measured placed on the platform according to the type of the component to be measured on the platform after receiving the trigger command.

[0007] In some embodiments, the visual recognition component is further configured to identify the coordinate information of the component to be tested placed on the platform, and to carry the coordinate information of the component to be tested on the platform in the sent trigger command;

[0008] The measuring component is specifically used to measure the size of the component placed on the platform after receiving a trigger command, based on the type of the component to be measured on the platform and the coordinate information of the component to be measured on the platform.

[0009] In some embodiments, the measuring device further includes a base plate; the base plate is disposed on the upper surface of the stage and is used to place the component to be measured; the visual recognition component is specifically used to identify the type of the component to be measured placed on the base plate.

[0010] In some embodiments, the base plate is divided into multiple regions, each of which is used to place a type of component to be tested; the color of each region on the base plate is different from the color of the component to be tested corresponding to that region.

[0011] In some embodiments, the component measuring device further includes a shadowless lamp, which provides a light source when turned on to illuminate the component to be measured on the platform.

[0012] In some embodiments, the visual recognition component includes a camera; the shadowless lamp is fixed around the visual recognition component or arranged around the camera, and the shadowless lamp does not obstruct the camera used by the visual recognition component for recognition.

[0013] In some embodiments, the visual recognition component is fixedly mounted above the shelf.

[0014] In some embodiments, the visual recognition component is connected to a motorized device for controlling the movement of the visual recognition component above the platform.

[0015] In some embodiments, the visual recognition component includes a two-dimensional camera and a three-dimensional camera; the two-dimensional camera is used to recognize the shape information of the component to be tested placed on the platform; the three-dimensional camera is used to recognize the height information of the component to be tested placed on the platform.

[0016] In some embodiments, the measuring device further includes a component lifting fixture; the component lifting fixture is disposed at the bottom of the component to be measured and is used to fix the component to be measured.

[0017] The component measuring device provided in this embodiment includes a stage, a vision recognition component, and a measuring component. The stage is used to place the component to be measured. The vision recognition component is positioned above the stage and identifies the type of the component placed on the stage. Upon identifying the component, the vision recognition component sends a trigger command to the measuring component. Upon receiving the trigger command, the measuring component measures the dimensions of the component placed on the stage. Thus, the vision recognition component replaces manual identification, and the measuring component is triggered to measure the dimensions of the component based on the identified type. The measurement process is automated, reducing labor costs and improving the efficiency of dimension measurement. Furthermore, since the dimension measurement process can be automated, it can be performed during times when personnel cannot be present, such as at night, improving the utilization rate of the component measuring device and saving human resources. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the structure of a component measuring device provided in an embodiment of the present disclosure;

[0019] Figure 2 This is a schematic diagram of another component measuring device provided in an embodiment of this disclosure. Detailed Implementation

[0020] Exemplary embodiments will now be described in detail, examples of which are illustrated in the accompanying drawings. When the following description relates to the drawings, unless otherwise indicated, the same numerals in different drawings denote the same or similar elements. The embodiments described in the following exemplary embodiments do not represent all embodiments consistent with this disclosure. Rather, they are merely examples of apparatuses and methods consistent with some aspects of this disclosure as detailed in the appended claims.

[0021] In this disclosure, "at least one" means one or more, and "more than one" means two or more. "And / or" describes the relationship between related objects, indicating that three relationships can exist. For example, A and / or B can mean: A alone, A and B simultaneously, or B alone, where A and B can be singular or plural. The character " / " generally indicates that the preceding and following related objects are in an "or" relationship. "At least one of the following" or similar expressions refer to any combination of these items, including any combination of single or plural items. For example, at least one of a, b, or c alone can mean: a alone, b alone, c alone, a combination of a and b, a combination of a and c, a combination of b and c, or a, b, and c, where a, b, and c can be single or multiple. Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.

[0022] The terms “center,” “longitudinal,” “lateral,” “up,” “down,” “left,” “right,” “front,” “back,” etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are used only for the convenience of describing this disclosure and simplifying the description, and are not intended to indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limiting this disclosure.

[0023] The terms "connected" and "connected" should be interpreted broadly. For example, in circuit structures, "connected" or "connected" can refer not only to physical connections but also to electrical or signal connections. This could be a direct connection (physical connection) or an indirect connection via at least one intermediate component, as long as the circuit is connected. It could also refer to the internal connection between two components. Similarly, a signal connection can refer to a connection via a circuit or a medium, such as radio waves. Those skilled in the art will understand the specific meaning of these terms in this disclosure based on the specific circumstances.

[0024] In the process of measuring the dimensions of parts, users usually need to operate the measuring equipment, which consumes manpower and time. Without human intervention, the measuring equipment cannot complete the measurement work independently. Measurements cannot be performed when people are resting, such as at night, and the measuring equipment will be idle and not fully utilized.

[0025] The dimensional measuring device can be a contact space measuring instrument or an image measuring device. This disclosure does not limit the specific implementation of the dimensional measuring device. The following is a brief explanation using a contact space measuring instrument as an example.

[0026] The contact-type spatial measuring instrument has pneumatic brake switches and micro-motion devices on all three axes, enabling precision transmission on a single axis. It employs a high-performance data acquisition system. A contact-type spatial measuring instrument refers to an instrument capable of measuring geometric shapes, lengths, and circumferential divisions within a six-sided spatial area; it is also known as a coordinate measuring machine or coordinate measuring bed. A contact-type spatial measuring instrument can also be defined as "an instrument with a detector that can move in three directions on three mutually perpendicular guide rails. This detector transmits signals in a contact or non-contact manner. The displacement measurement system of the three axes (such as an optical scale) calculates the x, y, z points of the workpiece and various functional measurements using a data processor or computer." The measurement functions of a contact-type spatial measuring instrument should include dimensional accuracy, positioning accuracy, geometric accuracy, and contour accuracy.

[0027] Although contact space measuring instruments can automatically detect based on existing programs, they require personnel to accompany them for location and positioning. Furthermore, the armor needs to be constantly changed during the detection of different parts, which wastes personnel resources and leaves the equipment idle when personnel are off duty.

[0028] To address the aforementioned problems, this disclosure provides a component measurement device, comprising: a platform, a vision recognition component, and a measurement component. The platform is used to place the component to be measured. The vision recognition component is positioned above the platform and identifies the component placed on it. Upon identifying the type of the component, the vision recognition component sends a trigger command to the measurement component. Upon receiving the trigger command, the measurement component measures the dimensions of the component placed on the platform. Thus, the vision recognition component replaces manual identification of the component type, and the measurement component is triggered to measure the dimensions of the component on the platform based on the identified component type. The measurement process is automated, reducing labor costs and improving the efficiency of dimension measurement. Furthermore, since the dimension measurement process can be automated, it can be performed during times when personnel cannot be present, such as at night, thus improving the utilization rate of the component measurement device.

[0029] The technical solutions provided in this disclosure will be described in detail below with reference to specific embodiments.

[0030] Please see Figure 1 , Figure 1 This is a schematic diagram of the structure of a component measuring device provided in an embodiment of this disclosure, as shown below. Figure 1 As shown, the component measuring device provided in this embodiment includes: a stage 101, a vision recognition component 102, and a measuring component 103. The stage 101 is used to place the component to be measured. The vision recognition component 102 is disposed above the stage 101. The vision recognition component 102 is used to identify the type of the component to be measured placed on the stage 101, and after identifying the type of the component to be measured on the stage 101, it sends a trigger command to the measuring component 103. Upon receiving the trigger command, the measuring component 103 is used to measure the dimensions of the component to be measured placed on the stage 101 according to the type of the component to be measured on the stage 101.

[0031] It should be noted that, Figure 1 The structure of the stage 101, vision recognition component 102, and measurement component 103 shown is merely an example and does not constitute a limitation on the component measurement device disclosed herein. The stage 101 need only be able to hold the component. The vision recognition component 102 can be connected to a motor to automatically move above the stage 101 or be fixed above the stage. The measurement component 103 is connected to a motor to automatically move above the stage 101 or be fixed above the stage; exemplary, it can be the measuring head of a contact-type spatial measuring instrument mentioned in the above embodiments or the optical component of an image measuring device.

[0032] In practical applications, users can place one or more parts to be tested on the platform 101 after simple armoring. For example, multiple types and batches of parts to be tested can be placed at once to automate the measurement of multiple parts. Typically, a trigger button can start the part measurement device, or the vision recognition component 102 can automatically identify whether a part to be measured is placed on the platform 101. After identifying the presence of a part to be measured on the platform 101, the part measurement device is activated. The vision recognition component 102 is positioned above the platform 101. The vision recognition component 102 identifies the type of one or more parts to be measured placed on the platform 101. After identifying the type of one or more parts to be measured placed on the platform 101, it sends a trigger command to the measurement component 103. Since the dimensional measurement process differs for different types of parts, the measurement component 103 measures the dimensions of the parts to be measured placed on the platform 101 according to their type.

[0033] The vision recognition component 102 can send a trigger command to the measurement component 103 after recognizing the type of a component to be measured. Upon receiving the trigger command, the measurement component 103 measures the dimensions of the component placed on the platform 101 according to its type. Alternatively, the vision recognition component 102 can recognize the types of all components to be measured on the platform 101 at once and then send a trigger command to the measurement component 103. Upon receiving the trigger command, the measurement component 103 measures the dimensions of each component placed on the platform 101 sequentially.

[0034] The component measurement device provided in this embodiment includes a stage, a vision recognition component, and a measurement component. The stage is used to place the component to be measured. A vision recognition component is positioned above the stage to identify the type of the component placed on the stage. Upon identifying the component, the vision recognition component sends a trigger command to the measurement component. The measurement component, upon receiving the trigger command, measures the dimensions of the component placed on the stage. Thus, the vision recognition component replaces manual identification of the component type, and the measurement component is triggered to measure the dimensions of the component on the stage based on the identified component type. The measurement process can be automated for various current component types and future component types, reducing labor costs, shortening measurement time, and improving measurement efficiency. Furthermore, because the component measurement process can be automated, measurements can be performed at night or during times when personnel cannot be present, improving the utilization rate of the component measurement device.

[0035] In one possible design, the visual recognition component 102 is also used to identify the coordinate information of the component to be tested placed on the shelf 101, and to carry the coordinate information of the component to be tested on the shelf 101 in the sent trigger command.

[0036] The measuring component 103 is specifically used to measure the size of the part to be measured placed on the platform 101 after receiving the trigger command, based on the type of the part to be measured on the platform 101 and the coordinate information of the part to be measured on the platform 101.

[0037] The coordinate information of the component to be tested can be its X / Y / Z coordinates in space. For example, the coordinate system used for this coordinate information can be an X / Y / Z coordinate system established with a preset point on the platform 101 as the origin.

[0038] In practical applications, users can place one or more different types of parts to be tested on the platform 101. A vision recognition component 102 is installed above the platform 101. The vision recognition component 102 identifies the type and coordinate information of one or more different types of parts to be tested placed on the platform 101. After identifying the type and coordinate information of one or more different types of parts to be tested placed on the platform 101, it sends a trigger command to the measurement component 103. Since the dimensional measurement process of different types of parts is not the same, the measurement component 103 accurately locates the coordinate position of the parts to be tested based on the coordinate information of the parts to be tested on the platform 101, and performs dimensional measurement on the parts to be tested according to their type.

[0039] The component measurement device provided in this embodiment includes a platform 101, a vision recognition component 102, and a measurement component 103. The platform 101 is used to place the component to be measured. The vision recognition component 102 is positioned above the platform 101. The vision recognition component 102 identifies the type and coordinate information of the component placed on the platform 101, and after identifying the type and coordinate information of the component, it sends a trigger command to the measurement component 103. Upon receiving the trigger command, the measurement component 103 performs dimensional measurement on the component placed on the platform 101. Thus, the vision recognition component 102 replaces manual identification of the type of component to be measured, and triggers the measurement component 103 to perform dimensional measurement on the component on the platform 101 based on the identified type. The measurement process is completed automatically, reducing labor costs and improving the efficiency of dimensional measurement. Furthermore, since the dimensional measurement process can be completed automatically, dimensional measurements can be performed during times when personnel cannot be present, such as at night, improving the utilization rate of the component measurement device and saving human resources.

[0040] In one possible design, please refer to Figure 2 , Figure 2 This is a schematic diagram of another component measuring device provided in an embodiment of this disclosure. Figure 2 Is Figure 1 Based on the illustrated embodiment, the component measuring device provided in this embodiment further includes a base plate 104. The base plate 104 is disposed on the upper surface of the stage 101 and is used to place the component to be measured. The visual recognition component 102 is specifically used to identify the type of the component to be measured placed on the base plate 104.

[0041] In practical applications, users can place one or more parts to be tested on the base plate 104 of the platform 101. A vision recognition component 102 is installed above the base plate 104. The vision recognition component 102 identifies the type of the one or more parts to be tested placed on the base plate 104. After identifying the type of the one or more parts to be tested placed on the platform 101, it sends a trigger command to the measurement component 103. Since the dimensional measurement process is different for different types of parts, the measurement component 103 can obtain the corresponding measurement program according to the type of the parts to be tested on the platform 101, and perform dimensional measurement on the parts to be tested placed on the platform 101 according to the measurement program.

[0042] In this embodiment, since different types of parts have different sizes and shapes, a base plate 104 can be set on the platform 101. Different types of parts to be tested can be placed on the base plate 104, thereby achieving safe placement and measurement of the parts to be tested. In addition, the visual recognition component 102 can only recognize the parts to be tested within the range of the base plate 104, making the recognition efficiency of the visual recognition component 102 higher.

[0043] Furthermore, the base plate 104 is divided into multiple areas, each of which is used to place a type of component to be tested.

[0044] In practical applications, users can place one or more parts to be tested on different areas of the base plate 104 of the platform 101 according to their type. A vision recognition component 102 is installed above the base plate 104. The vision recognition component 102 identifies the type of the parts to be tested placed in each area of ​​the base plate 104. After identifying the type of one or more parts to be tested placed on the base plate 104, it sends a trigger command to the measurement component 103. The measurement component 103 then measures the dimensions of the parts to be tested placed on the platform 101 according to their type in different areas of the base plate 104.

[0045] Furthermore, in this embodiment, the color of each of the multiple areas on the base plate 104 is not limited. For example, they can all be set to white, or they can be set to multiple different colors.

[0046] Furthermore, the color of each of the multiple regions on the base plate 104 is different from the color of the component to be tested corresponding to that region.

[0047] For example, the color of the first area among multiple areas on the base plate 104 can be set to black. When the user places the component to be tested on the base plate 104, a component that is not black can be placed in the first area. For example, a component of white or yellow color can be placed.

[0048] In this embodiment, by setting different colors for multiple areas on the base plate 104, when placing the component to be tested, the component to be tested can be placed in an area with a different color or a large contrast with the color. When the visual recognition component recognizes the component to be tested, the recognition accuracy is higher, so as to ensure the validity of the data recognized by the visual recognition component.

[0049] In one possible design, the component measuring device also includes a shadowless lamp. The shadowless lamp, when turned on, provides a light source to illuminate the component to be measured on the stage 101.

[0050] Furthermore, when the visual recognition component 102 enters the working state, the shadowless lamp is turned on simultaneously.

[0051] In practical applications, considering that different types of parts may have different colors, the built-in light source of the visual recognition component cannot meet the light source requirements at different times of the day. Therefore, an external shadowless lamp light source is configured. Users can place one or more parts to be tested on the platform 101. A visual recognition component 102 is positioned above the platform 101. With the shadowless lamp turned on, the visual recognition component 102 identifies the type of the one or more parts to be tested placed on the platform 101. After identifying the type of the one or more parts to be tested placed on the platform 101, it sends a trigger command to the measurement component 103. The measurement component 103 then measures the dimensions of the parts to be tested placed on the platform 101 according to their type.

[0052] In this embodiment, the shadowless lamp can be positioned above the platform 101 of the component measuring equipment, providing a suitable light source when the lamp is turned on. This light source provides sufficient illumination for the visual recognition component 102, improving its accuracy in recognizing the component under test. Furthermore, during automatic dimensional measurement by the component measuring equipment, varying light levels throughout the day, especially at night when light is weak, can affect the recognition work of the visual recognition component 102. By using the shadowless lamp, the influence of ambient light on the accuracy of the visual recognition component 102 is avoided, improving its accuracy and allowing the component measuring equipment to be used at any time of day, even in low-light conditions.

[0053] Furthermore, the visual recognition component 102 includes a camera. An operating light is fixed around or surrounds the camera of the visual recognition component 102, and the operating light does not obstruct the camera of the visual recognition component 102.

[0054] In addition, the shadowless lamp can also be set up in other forms besides those mentioned above.

[0055] In this embodiment, the shadowless lamp can be connected to the visual recognition component 102 and disposed below the visual recognition component 102. For example, the shadowless lamp can be disposed on the lower surface of the visual recognition component 102. The shadowless lamp is fixed around the visual recognition component 102 or surrounds the camera, and can better assist the visual recognition component 102 in recognizing the component under test when the visual recognition component 102 is in working state.

[0056] In some embodiments, this disclosure does not limit the setting location and setting method of the visual recognition component 102. The following describes two exemplary setting locations and setting methods of the visual recognition component 102.

[0057] In one possible design, the visual recognition component 102 is fixedly mounted above the shelf 101.

[0058] For example, the visual recognition component 102 can be fixedly installed on the ceiling of the shelf 101 in the room, or fixed on a bracket next to the shelf 101.

[0059] In another possible design, the visual recognition component 102 is connected to a motor, which controls the movement of the visual recognition component 102 above the shelf 101.

[0060] For example, a motorized device refers to a device that can move within a certain space, such as an extendable arm.

[0061] In practical applications, users can place one or more parts to be tested on the platform 101. A motorized device moves the vision recognition component 102 above the platform 101. At a suitable position, the motorized device stops the vision recognition component 102, which then identifies the type of the one or more parts to be tested placed on the platform 101. After identifying the type of the one or more parts to be tested placed on the platform 101, it sends a trigger command to the measurement component 103. Since the dimensional measurement process differs for different types of parts, the measurement component 103 measures the dimensions of the parts to be tested placed on the platform 101 according to their type.

[0062] In one possible design, the visual recognition component 102 includes a two-dimensional camera and a three-dimensional camera.

[0063] The two-dimensional camera is used to identify the shape information of the component to be tested placed on the platform 101.

[0064] Among them, the 3D camera is used to identify the height information of the component to be tested placed on the platform 101.

[0065] In this embodiment, considering that different types of parts may have different shapes and heights, a camera combining two-dimensional and three-dimensional spatial capabilities can be configured on the visual recognition component 102. The user can place one or more parts to be measured on the platform 101. The visual recognition component 102, positioned above the platform 101, uses both two-dimensional and three-dimensional cameras to identify the type of the one or more parts to be measured placed on the platform 101. After identifying the type of the one or more parts to be measured placed on the platform 101, it sends a trigger command to the measurement component 103. Since the dimensional measurement process differs for different types of parts, the measurement component 103 measures the dimensions of the parts to be measured placed on the platform 101 according to their type.

[0066] In one possible design, the component measuring device also includes a component lifting fixture. The component lifting fixture is positioned at the bottom of the component to be measured and is used to fix the component to be measured.

[0067] Among them, the component elevation fixture can also be called the component equalization fixture. There can be one or more component elevation fixtures. For lower components to be measured, the component elevation fixture can be used for fixation. When measuring the dimensions of the component, sometimes the measuring probe of the measuring component needs to measure the bottom of the component. After using the component elevation fixture, the measuring probe of the measuring component can measure the bottom of the component. Thus, automatic measurement can be achieved for parts of different sizes and heights.

[0068] The component measurement device provided in this embodiment has a platform for placing the component to be measured. If a component requires a raised fixture, it is placed on the fixture. A vision recognition component is installed above the platform to identify the type of the component placed on the platform. After identifying the component, the vision recognition component sends a trigger command to the measurement component. Upon receiving the trigger command, the measurement component measures the dimensions of the component placed on the platform. Thus, the vision recognition component replaces manual identification of the component type, and triggers the measurement component to measure the dimensions of the component on the platform based on the identified component type. The measurement process can be automated for various types of components, as well as for different types of components of varying sizes and heights in the future, reducing labor costs, shortening measurement time, and improving efficiency. Furthermore, because the component measurement process can be automated, measurements can be performed at night or during times when personnel cannot be present, increasing the utilization rate of the component measurement device.

[0069] Other embodiments of this disclosure will readily occur to those skilled in the art upon consideration of the specification and practice of the disclosure herein. This application is intended to cover any variations, uses, or adaptations of this disclosure that follow the general principles of this disclosure and include common knowledge or customary techniques in the art not disclosed herein. The specification and examples are to be considered exemplary only, and the true scope and spirit of this disclosure are indicated by the following claims.

Claims

1. A component measuring device, characterized in that, include: A platform, a vision recognition component, and a measurement component; the platform is used to place the component to be measured; the vision recognition component is disposed above the platform; The visual recognition component is used to identify the type of the component to be tested placed on the platform, and after identifying the type of the component to be tested on the platform, sends a trigger command to the measurement component; the measurement component is used to measure the size of the component to be tested placed on the platform according to the type of the component to be tested after receiving the trigger command, wherein the measurement component is the measuring head of a contact space measuring instrument or the optical component of an image measuring device.

2. The part measurement apparatus of claim 1, wherein The visual recognition component is also used to identify the coordinate information of the component to be tested placed on the platform, and to carry the coordinate information of the component to be tested on the platform in the sent trigger command; The measuring component is specifically used to measure the size of the component placed on the platform after receiving a trigger command, based on the type of the component to be measured on the platform and the coordinate information of the component to be measured on the platform.

3. The part measurement apparatus of claim 1, wherein The measuring device also includes a base plate; the base plate is disposed on the upper surface of the platform and is used to place the component to be measured; the visual recognition component is specifically used to identify the type of the component to be measured placed on the base plate.

4. The part measurement apparatus of claim 3, wherein The base plate is divided into multiple regions, and each region is used to place a type of component to be tested; the color of each region on the base plate is different from the color of the component to be tested corresponding to that region.

5. The part measurement apparatus of claim 3, wherein The component measuring device also includes a shadowless lamp, which provides a light source when turned on to illuminate the component to be measured on the platform.

6. The part measurement apparatus of claim 5, wherein The visual recognition component includes a camera; the shadowless lamp is fixed around the visual recognition component or arranged around the camera, and the shadowless lamp does not obstruct the camera used by the visual recognition component for recognition.

7. The component measuring device according to any one of claims 1-6, characterized in that, The visual recognition component is fixedly installed above the shelf.

8. The part measurement apparatus of any of claims 1-6, wherein, The visual recognition component is connected to a motorized device, which controls the movement of the visual recognition component above the platform.

9. The part measurement apparatus according to any one of claims 1 to 6, characterized by The visual recognition component includes a two-dimensional camera and a three-dimensional camera; the two-dimensional camera is used to recognize the shape information of the component to be tested placed on the platform; The 3D camera is used to identify the height information of the component to be tested placed on the platform.

10. The part measurement apparatus of any of claims 1-6, wherein The component measuring device also includes a component lifting fixture; the component lifting fixture is set at the bottom of the component to be measured and is used to fix the component to be measured.