Intelligent identification equipment for date clock of die casting

By designing intelligent date clock identification equipment for die-casting, and automatically identify date clock information using visual collection components and processing components, the problem of inefficient manual identification is solved and efficient and accurate date clock information is achieved.

CN223078712UActive Publication Date: 2025-07-08DALIAN YAMING AUTOMOTIVE PARTS
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Patent Information

Application Number
CN202422164568.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-04
Publication Date
2025-07-08
Estimated Expiration
2034-09-04

AI Technical Summary

Technical Problem

In the prior art, the identification of die cast date clocks mainly relies on manual visual recognition and manual input, resulting in inefficient and prone to information entry errors.

Method used

A die-cast date clock intelligent identification equipment is designed, including visual acquisition components, processing components and information transmission components. Date clock images are captured through the camera, image processing is used for image processing and information output from the information transmission component, and precise shooting is combined with adjustment components and LED lights, adapted to different models of laser coders.

Benefits of technology

It realizes automatic identification of date and clock information, avoids the cumbersome process of manual identification, improves recognition efficiency, reduces information entry errors, adapts to a variety of coding machine models, and improves processing efficiency.

✦ Generated by Eureka AI based on patent content.

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  • Figure CN223078712U_ABST
    Figure CN223078712U_ABST
Patent Text Reader

Abstract

The utility model discloses intelligent die casting date clock identification equipment, which comprises a vertical rod arranged on the side, close to a printing arm, of a laser coding machine, a cross rod arranged at the top of the vertical rod, a camera arranged on the cross rod, and a processing assembly and an information transmission assembly arranged in an electric cabinet. An image of a die casting date clock is shot by the camera, the image is processed by the processing assembly to obtain production information represented by the date clock, and then the production information is transmitted outwards by the information transmission assembly, so that the problems that the process of manual identification and manual input is too tedious, the efficiency is low, and input information is not changed in time or mistaken are solved; in addition, the camera is installed on the side edge of the laser coding machine through the adjusting assembly, the position of the camera is adjusted through the vertical rod and the transverse rod, the camera can shoot the die casting below the printing arm, the equipment is made to be matched with laser coding machines of other models, shooting is conducted through the printing gap, and the speed of collecting date clock information is increased.
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Description

Technical Field

[0001] The utility model relates to the technical field of date clocks for die-castings, and particularly to an intelligent identification device for date clocks of die-castings. Background Art

[0002] A die-casting is a part produced by die casting. The production time (year, month, day, shift) of the die-casting part is usually marked on the die-casting, which is also called a date stamp or date clock in the industry. The date clock is tracked and identified throughout the subsequent processes such as cleaning, machining, sealing inspection, and cleaning, and is also tracked and identified after assembling the vehicle. Currently, the production system is mainly filled in manually and visually for each die-casting that needs to be identified. The production line workers carefully identify the date clock of each workpiece and then record the information seen on paper and in the computer.

[0003] However, since the date clock occupies a small area, the process of manual identification and manual input is too cumbersome, with low efficiency, and there are problems such as untimely change of input information or input information errors. Content of the Utility Model

[0004] In view of the above defects or deficiencies in the prior art, it is desirable to provide an intelligent identification device for date clocks of die-castings.

[0005] An intelligent identification device for date clocks of die-castings provided by the utility model is installed on a laser marking machine. The top of the laser marking machine has a printing arm, and the extending direction of the printing arm is the first direction. The printing arm is used to print a date clock on the die-casting, and it includes:

[0006] An adjusting component, including a vertical rod provided on the side of the laser marking machine close to the printing arm. The extending direction of the vertical rod is the second direction, and the second direction is perpendicular to the first direction. The top of the vertical rod is provided with a cross bar parallel to the printing arm, and the cross bar can move along the extending direction of the vertical rod;

[0007] A visual acquisition component, including a camera provided at the end of the cross bar away from the vertical rod. The camera is used to photograph the date clock on the die-casting, and the camera can move along the extending direction of the cross bar;

[0008] An electric control box is provided on the top of the vertical rod away from the printing arm side. Inside, there is a processing component and an information transmission component. The processing component is used to process the image photographed by the camera and output the processed information. The information transmission component is used to receive external signals and control the operation of the electrical appliances in the visual acquisition component.

[0009] According to the technical solution provided by the embodiment of the present application, a power supply component is also provided inside the electric control box for supplying power to the electrical appliances in the information transmission component, the processing component, and the visual acquisition component.

[0010] According to the technical solution provided by the embodiment of the present application, a metal guide rail is provided on the inner wall of the electric control box close to the vertical rod side, the extending direction of the metal guide rail is the second direction, the power supply assembly includes a socket arranged on the metal guide rail, a DC transformer connected to the metal guide rail is arranged on one side of the socket, and an air switch connected to the metal guide rail is arranged on the other side of the socket.

[0011] According to the technical solution provided by the embodiment of the present application, the power supply assembly further includes a power adapter arranged above the socket, the bottom end of the power adapter is connected to the inner wall of the electric control box, and the processing assembly includes an industrial computer arranged on the side of the power adapter away from the inner wall of the electric control box.

[0012] According to the technical solution provided by the embodiment of the present application, the information transmission assembly includes a control circuit board arranged between the power adapter and the industrial computer, and a relay arranged on the metal guide rail.

[0013] According to the technical solution provided by the embodiment of the present application, first support columns are arranged at the four corners of the side surface of the control circuit board close to the power adapter, the other ends of the first support columns are fixedly connected to the power adapter, two second support columns are arranged at the top of the side surface of the power adapter close to the control circuit board, the extending directions of the axes of the first support columns and the second support columns are all the third direction, and the length of the second support column is longer than that of the first support column, and the industrial computer is installed at the end of each second support column away from the power adapter.

[0014] According to the technical solution provided by the embodiment of the present application, the visual acquisition assembly further includes a first dust-proof cover arranged on the cross bar, a detachable sealing plate is arranged at the end of the first dust-proof cover away from the cross bar, a camera mounting frame is arranged through the top of the first dust-proof cover, the camera is mounted at the bottom end of the camera mounting frame, and a transparent plate is embedded and installed at the bottom end of the first dust-proof cover.

[0015] According to the technical solution provided by the embodiment of the present application, a second dust-proof cover is arranged at the bottom of the first dust-proof cover, a plurality of lamp mounting plates are arranged between the inner wall of the bottom of the second dust-proof cover and the outer wall of the bottom of the first dust-proof cover, and LED lamps are arranged at the bottom ends of the lamp mounting plates.

[0016] According to the technical solution provided by the embodiment of the present application, a third dust-proof cover is arranged at the bottom of the sealing plate, and a second connecting piece connected to the bottom end of the first dust-proof cover is arranged at the bottom end of the third dust-proof cover.

[0017] According to the technical solution provided by the embodiment of the present application, corner codes are provided between the first dust cover and the cross bar, between the cross bar and the vertical rod, between the vertical rod and the laser coding machine, and between the electric control box and the vertical rod, and they are detachably connected to the corner codes through the cooperation of bolts and nuts.

[0018] Compared with the prior art, the beneficial effects of the present utility model are as follows:

[0019] The present utility model is provided with a visual acquisition component, a processing component and an information transmission component. The camera takes pictures of the date clock of the die-casting part, the processing component processes the images, obtains the production information represented by the date clock, and then the information transmission component conveys it outwards, avoiding the problems that the process of manual recognition and manual input is too cumbersome, the efficiency is low, and there are problems such as untimely change of the input information or input information errors; in addition, the camera is installed on the side of the laser coding machine through the adjustment component, and the position of the camera is adjusted through the vertical rod and the cross bar, so that the camera can take pictures of the die-casting parts under the printing arm, making this equipment adaptable to other models of laser coding machines, and using the printing gap for taking pictures, avoiding the need to arrange a separate process to identify the date clock and occupying extra time, and improving the processing efficiency; further, LED lights are arranged around the camera, and RGB light sources are used for lighting to eliminate the influence of ambient light, and a first dust cover, a second dust cover and a third dust cover are provided to reduce the erosion of dust on the camera and the LED lights; finally, the power adapter, the control circuit board and the industrial control computer are hierarchically supported by the first support column and the second support column, forming a stacked arrangement, with a compact structure, which does not interfere with heat dissipation and at the same time shortens the thickness of the electric control box.

[0020] It should be understood that the content described in the utility model content part is not intended to limit the key or important features of the embodiments of the present utility model, nor is it used to limit the scope of the present utility model. Other features of the present utility model will become easy to understand through the following description. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] By reading the detailed description of the non-restrictive embodiments with reference to the following drawings, other features, objects and advantages of the present utility model will become more obvious:

[0022] Figure 1 It is a schematic structural diagram of an intelligent identification device for the date clock of die-casting parts provided by the embodiment of the present application;

[0023] Figure 2 It is a schematic structural diagram of an adjustment component in an intelligent identification device for the date clock of die-casting parts provided by the embodiment of the present application;

[0024] Figure 3 It is a schematic structural diagram of a second support column in an intelligent identification device for the date clock of die-casting parts provided by the embodiment of the present application;

[0025] Figure 4 The structural schematic diagram of the metal guide rail in an intelligent identification device for die-cast date clocks provided by an embodiment of the present application;

[0026] Figure 5 The structural schematic diagram of the camera in an intelligent identification device for die-cast date clocks provided by an embodiment of the present application;

[0027] Figure 6 The structural block diagram of an intelligent identification device for die-cast date clocks provided by an embodiment of the present application.

[0028] Reference numerals in the figure:

[0029] 1. Laser coding machine; 11. Printing arm;

[0030] 2. Adjusting assembly; 21. Vertical rod; 22. Horizontal rod; 23. Installation groove; 24. Angle code; 241. Connecting plate;

[0031] 31. Electric control box; 32. Metal guide rail; 33. Relay; 34. DC transformer; 35. Socket; 36. Air switch; 37. Power adapter; 38. First support column; 39. Second support column; 310. Support side plate; 311. Mounting part; 312. Side plate; 313. Installation groove; 314. Industrial control computer; 315. Control circuit board;

[0032] 41. First dust-proof cover; 42. Sealing plate; 43. Second dust-proof cover; 44. Third dust-proof cover; 45. Lamp installation plate; 46. Extension plate; 47. LED lamp; 48. Camera installation frame; 49. Camera; 410. Transparent plate; 411. First connecting piece; 412. Second connecting piece;

[0033] 51. Power supply component; 52. Information transmission component; 53. Processing component; 54. Visual acquisition component. Detailed implementation manners

[0034] The following further elaborates on the present utility model in conjunction with the accompanying drawings and embodiments. It can be understood that the specific embodiments described herein are only used to explain the relevant utility model, rather than limiting the utility model. Additionally, it should be noted that for the sake of description, only the parts related to the utility model are shown in the drawings.

[0035] It should be noted that, without conflict, the embodiments in the present utility model and the features in the embodiments can be combined with each other. The following will detail the present utility model with reference to the accompanying drawings and embodiments.

[0036] Please refer to Figures 1 to 6, an embodiment of the present utility model provides an intelligent identification device for die-cast date clocks, which is installed on a laser marking machine 1. The top of the laser marking machine 1 has a printing arm 11, and the extending direction of the printing arm 11 is the first direction. The first direction is Figure 1 the front-back direction in

[0037] The printing arm 11 is used to print two-dimensional codes on die-cast parts, one code for each part, which is convenient for subsequent scanning and querying. It includes: Figure 1 an adjusting component 2, including a vertical rod 21 provided on the side of the laser marking machine 1 close to the printing arm 11. The extending direction of the vertical rod 21 is the second direction, and the second direction is perpendicular to the first direction. The top of the vertical rod 21 is provided with a cross bar 22 parallel to the printing arm 11, and the cross bar 22 can move along the extending direction of the vertical rod 21. Among them, the second direction is

[0038] the up-down direction in

[0039] a visual acquisition component 54, including a camera 49 provided at the end of the cross bar 22 away from the vertical rod 21. The camera 49 is used to photograph the date clock on the die-cast part, and the camera 49 can move along the extending direction of the cross bar 22. By moving the camera 49 along the cross bar 22 and the cross bar 22 along the vertical rod 21, the multi-directional movement of the camera 49 is finally realized, which is convenient for the camera 49 to better photograph the die-cast parts on the laser marking machine 1, so that this device can be applied to various types of equipment for printing two-dimensional codes or the like. Optionally, a third rod in the left-right direction is installed at the top of the vertical rod 21, and the cross bar 22 is installed on the third rod, which increases the adjustable direction. By moving the camera 49 along the cross bar 22, the cross bar 22 moves along the third rod, and the third rod moves along the vertical rod 21, more multi-directional adjustment is realized. When the printing arm 11 is located in the middle of the laser marking machine 1, the camera 49 can be adjusted to be close to the printing arm 11 to better photograph the die-cast parts;

[0040] The utility model is provided with a visual acquisition component 54, a processing component 53 and an information transmission component 52. The camera 49 takes images of the date clock of the die-casting part, the processing component 53 processes the images to obtain the production information represented by the date clock, and then the information transmission component 52 conveys it outwards, avoiding the problems that the process of manual recognition and manual input is too cumbersome, inefficient, and there are problems such as untimely change of input information or input information errors. In addition, the camera 49 is installed on the side of the laser marking machine 1 through the adjusting component 2, and the position of the camera 49 is adjusted through the vertical rod 21 and the cross rod 22, so that the camera 49 can photograph the die-casting part under the printing arm 11, making this equipment adaptable to other models of laser marking machines 1, and using the printing gap of the date clock for photographing to improve the speed of collecting the information of the date clock.

[0041] In some embodiments, a power supply component 51 is further arranged inside the electric control box 31 for supplying power to the electrical appliances in the information transmission component 52, the processing component 53 and the visual acquisition component 54. As Figure 1 and Figure 6 shown, it ensures the normal operation of the electrical appliances in the information transmission component 52, the processing component 53 and the visual acquisition component 54.

[0042] In some embodiments, a metal guide rail 32 is arranged on the inner wall of the electric control box 31 near the vertical rod 21 side, the extending direction of the metal guide rail 32 is the second direction, the power supply component 51 includes a socket 35 arranged on the metal guide rail 32, a DC transformer 34 connected to the metal guide rail 32 is arranged on one side of the socket 35, and an air switch 36 connected to the metal guide rail 32 is arranged on the other side of the socket 35;

[0043] As Figure 3 and Figure 4 shown, the socket 35 is connected to the mains output terminal through an electric wire to provide 220V alternating current, and the alternating current can be converted into 24V direct current through the DC transformer 34 to supply electric energy to some electrical appliances inside the electric control box 31. In addition, the air switch 36 is arranged on the electric output terminal of the socket 35. Once a serious overload or short-circuit fault occurs, the air switch 36 disconnects to protect the circuit.

[0044] In some embodiments, the power supply component 51 further includes a power adapter 37 arranged above the socket 35, the bottom end of the power adapter 37 is connected to the inner wall of the electric control box 31, and the processing component 53 includes an industrial control computer 314 arranged on the side of the power adapter 37 away from the inner wall of the electric control box 31;

[0045] As Figure 3 and Figure 4As shown, the electrical input end of the power adapter 37 is electrically connected to the electrical output end of the socket 35, and the electrical output end of the power adapter 37 is electrically connected to the electrical input end of the industrial control computer 314. The power adapter 37 converts the 220V AC power into electrical energy suitable for the industrial control computer 314 to ensure the normal operation of the industrial control computer 314. In addition, the industrial control computer 314 analyzes and processes the images captured by the camera 49 and outputs the information contained in the date clock.

[0046] In some embodiments, the information transmission component 52 includes a control circuit board 315 disposed between the power adapter 37 and the industrial control computer 314, and a relay 33 disposed on the metal rail 32;

[0047] Such as Figure 3 、 Figure 4 And Figure 6 , the control circuit board 315 is used for the transfer and transmission of information. Among them, the control circuit board 315 has a single-chip microcomputer (MCU) that runs the relevant programs for information transmission; the relay 33 is electrically connected to an external button. When the external button is triggered, the relay 33 attracts and pulls up the contact on the control circuit board 315, that is, the reserved pin on the control circuit board 315 receives the pull-up signal of the relay 33 and is sent to the industrial control computer 314 and the camera 49 through COM (Component Object Model) communication to control the camera 49 to capture images, and the industrial control computer 314 processes the images to extract the date clock information in the images; and the control circuit board 315 is connected to an external network to transmit the processed information to the external network for storage. In addition, the electrical input end of the control circuit board 315 and the electrical input end of the camera 49 are both electrically connected to the electrical output end of the DC transformer 34 to ensure the power-on operation of the camera 49 and the control circuit board 315. And a voltage conversion module is provided on the control circuit board 315 to convert 24V DC into 5V for the power supply of both the control circuit board 315 and the LED lamp 47. Optionally, the external button is the start button of the laser marking machine 1, that is, when the external button is turned on, the laser marking machine 1 starts to print the two-dimensional code, and the control circuit board 315 also starts to run, realizing the date clock recognition during the printing gap, avoiding the extra time occupied by arranging a separate process to identify the date clock and improving the processing efficiency.

[0048] In some embodiments, first support columns 38 are provided at the four corners of the side surface of the control circuit board 315 close to the power adapter 37, and the other ends of the first support columns 38 are fixedly connected to the power adapter 37. Two second support columns 39 are provided at the top of the side surface of the power adapter 37 close to the control circuit board 315. The axial extension directions of the first support columns 38 and the second support columns 39 are all the third direction, and the length of the second support column 39 is longer than that of the first support column 38. The industrial control computer 314 is installed at the end of each second support column 39 away from the power adapter 37;

[0049] As Figure 3 and Figure 4 shown, by staggering the first support column 38 and the second support column 39, the "stacked arhats" type of installation is realized, avoiding the interference of each component, ensuring that each component is more compact, reducing the space occupied by the electric control box 31, so that when the electric control box 31 is applied to different printing devices, it will not occupy too much extra space, and avoiding the situation that the entire equipment cannot be installed due to an overly large electric control box 31; Optionally, the middle parts of the first support column 38 and the second support column 39 have through internal threaded holes, and the control circuit board 315 is connected to the first support column 38 through a screw passing through, and the industrial control computer 314 is connected to the second support column 39 through a screw passing through to realize the installation; Further optionally, in order to ensure the stable installation of the industrial control computer 314, a support side plate 310 is provided at the top of the second support column 39. The support side plate 310 is an L-shaped folding plate, which has a vertical plate parallel to the power adapter 37 and a horizontal plate connected to the surface of the power adapter 37. An installation member 311 with screw holes is provided between the two vertical plates. The installation member 311 has a side plate 312 connected to the two vertical plates and an installation groove 313 with an opening facing away from the power adapter 37. The inner side wall of the installation groove 313 fits with the outer side wall of the industrial control computer 314 and is connected through screw holes, further improving the stability of the installation of the industrial control computer 314.

[0050] In some embodiments, the vision acquisition component 54 further includes a first dust cover 41 provided on the cross bar 22. A detachable sealing plate 42 is provided at the end of the first dust cover 41 away from the cross bar 22. A camera mounting frame 48 is provided through the top of the first dust cover 41. The camera 49 is mounted at the bottom end of the camera mounting frame 48. A transparent plate 410 is embedded at the bottom end of the first dust cover 41;

[0051] As Figure 5 shown, a wire passing hole is provided at the top end of the camera mounting frame 48 for the wire connecting the camera 49 to pass through. The camera 49 can shoot the date clock of the die-casting part downward through the transparent plate 410. At the same time, the combination of the first dust cover 41 and the sealing plate 42 can prevent external dust from affecting the camera 49. By removing the sealing plate 42, the camera 49 inside the first dust cover 41 can be overhauled and maintained. Optionally, a first connecting member 411 with an internal threaded hole is provided on the inner wall of the first dust cover 41, and a screw passes through the sealing plate 42 and is threadedly connected to the first connecting member 411 to realize the detachable connection of the sealing plate 42.

[0052] In some embodiments, a second dust cover 43 is provided at the bottom of the first dust cover 41. A plurality of lamp mounting plates 45 are provided between the inner wall of the bottom of the second dust cover 43 and the outer wall of the bottom of the first dust cover 41. An LED lamp 47 is provided at the bottom end of each lamp mounting plate 45;

[0053] As Figure 1 and Figure 5As shown, by virtue of the RGB light source characteristics of the LED lamp 47, real-time image adjustment is performed to eliminate the influence of ambient light. This light source can run a program through the control circuit board 315. Among them, there is a single-chip microcomputer (MCU) on the control circuit board 315, and it runs the program; this program can also receive instructions from the industrial control computer 314 to control the switch, color, and intensity of the LED lamp 47. In addition, after processing the brightness of the captured image, the industrial control computer 314 can send a lighting instruction with specified brightness information. This instruction is transmitted to the control circuit board 315, and finally, the control circuit board 315 runs the program to control the change in the brightness of the LED lamp 47, thereby achieving the purpose of automatic brightness adjustment to enable the camera 49 to achieve the best shooting effect. Optionally, both ends of the lamp mounting plate 45 have upwardly extending extension plates 46, and the two extension plates 46 are respectively connected to the first dust cover 41 and the second dust cover 43 to ensure the stability of the lamp mounting plate 45 and the second dust cover 43 after installation.

[0054] In some embodiments, a third dust cover 44 is provided at the bottom of the sealing plate 42, and a second connecting member 412 for connecting to the bottom end of the first dust cover 41 is provided at the bottom end of the third dust cover 44;

[0055] As Figure 1 and Figure 5 shown, by forming an integral body with the second dust cover 43 through the third dust cover 44, not only the overall aesthetics is improved, but also dust is prevented from falling onto the LED lamp 47 from the side, and the stability of the installation of the third dust cover 44 is improved through the second connecting member 412.

[0056] In some embodiments, corner codes 24 are provided between the first dust cover 41 and the cross bar 22, between the cross bar 22 and the vertical rod 21, between the vertical rod 21 and the laser coding machine 1, and between the electric control box 31 and the vertical rod 21, and they are all detachably connected to the corner codes 24 through bolt-nut cooperation;

[0057] As Figure 1 and Figure 2 shown, the corner code 24 is a European standard industrial aluminum profile connecting fitting, which is an existing standard part, including two connecting plates 241 perpendicular to each other. The connecting plates 241 are connected to each main body. For example, between the first dust cover 41 and the cross bar 22, one connecting plate 241 is connected to the first dust cover 41, and the other connecting plate 241 is connected to the cross bar 22, thereby completing the installation of the first dust cover 41 and the cross bar 22. Further optionally, both the vertical rod 21 and the cross bar 22 are made of common European standard industrial aluminum profiles on the market. The European standard industrial aluminum profiles all have installation grooves 23. By inserting nuts into the installation grooves 23 and then using bolts to pass through the connecting plates 241 and connect to the corresponding nuts, detachable connection is achieved, and the European standard industrial aluminum profiles are very common, facilitating procurement and installation in each factory.

[0058] Usage process: First, adjust the cross bar 22 and the vertical rod 21 so that the camera 49 faces the die-casting part below the printing arm 11, enabling the camera 49 to capture the date clock on the die-casting part. Then, start the external button, and the laser coding machine 1 starts printing the QR code. The relay 33 attracts and closes the contact on the control circuit board 315. The control circuit board 315 sends the triggered information to the LED lamp 47 and the industrial control computer 314, adjusts the color, on / off state, and intensity of the LED lamp 47. The industrial control computer 314 controls the camera 49 to capture an image and transmits the captured image to the industrial control computer 314. The industrial control computer 314 processes the image to extract the date clock information in the image and transmits the obtained information to the external network, completing the entire recognition and recording process.

[0059] In the description of this specification, terms such as "connection", "installation", "fixation", etc. should all be understood in a broad sense. For example, "connection" can be a fixed connection, a detachable connection, or an integral connection; it can be directly connected or indirectly connected through an intermediate medium. For those of ordinary skill in the art, the specific meanings of the above terms in this application can be understood according to specific circumstances.

[0060] In the description of this specification, the descriptions of terms such as "one embodiment", "some embodiments", etc. mean that the specific features, structures, materials, or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of this application. In this specification, the schematic expressions of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials, or characteristics described can be combined in a suitable manner in any one or more embodiments or examples.

[0061] The above is only the preferred embodiment of this application and is not used to limit this application. For those skilled in the art, this application can have various changes and modifications. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of this application shall be included in the protection scope of this application.

Claims

1. An intelligent identification device for the date clock of die-castings, which is installed on a laser coding machine (1). The top of the laser coding machine (1) is provided with a printing arm (11), and the extending direction of the printing arm (11) is the first direction. The printing arm (11) is used for printing the date clock on die-castings. It is characterized in that, Comprising: A regulating component (2), including a vertical rod (21) disposed on the side of the laser coding machine (1) close to the printing arm (11). The extending direction of the vertical rod (21) is the second direction, and the second direction is perpendicular to the first direction. A cross bar (22) parallel to the printing arm (11) is provided at the top of the vertical rod (21), and the cross bar (22) can move along the extending direction of the vertical rod (21); A visual acquisition component (54), including a camera (49) disposed at the end of the cross bar (22) far from the vertical rod (21). The camera (49) is used to photograph the date clock on the die-casting part, and the camera (49) can move along the extending direction of the cross bar (22); An electric control box (31) is disposed on the side of the top of the vertical rod (21) far from the printing arm (11). A processing component (53) and an information transmission component (52) are provided inside. The processing component (53) is used to process the image photographed by the camera (49) and output the processed information. The information transmission component (52) is used to receive external signals and control the operation of the electrical appliances in the visual acquisition component (54).

2. The intelligent identification equipment for die-cast date clocks according to claim 1, characterized in that A power supply component (51) is further provided inside the electric control box (31) for supplying power to the electrical appliances in the information transmission component (52), the processing component (53), and the visual acquisition component (54).

3. The intelligent identification equipment for die-cast date clocks according to claim 2, wherein A metal guide rail (32) is provided on the inner wall of the electric control box (31) close to the vertical rod (21) side. The extending direction of the metal guide rail (32) is the second direction. The power supply component (51) includes a socket (35) disposed on the metal guide rail (32). A DC transformer (34) connected to the metal guide rail (32) is provided on one side of the socket (35), and an air switch (36) connected to the metal guide rail (32) is provided on the other side of the socket (35).

4. The intelligent identification equipment for die-cast date clocks according to claim 3, characterized in that, The power supply component (51) further includes a power adapter (37) disposed above the socket (35). The bottom end of the power adapter (37) is connected to the inner wall of the electric control box (31). The processing component (53) includes an industrial computer (314) disposed on the side of the power adapter (37) far from the inner wall of the electric control box (31).

5. The intelligent identification equipment for die-cast date clocks according to claim 4, characterized in that, The information transmission component (52) includes a control circuit board (315) disposed between the power adapter (37) and the industrial computer (314), and a relay (33) disposed on the metal guide rail (32).

6. The intelligent identification equipment for die-cast date clocks according to claim 5, characterized in that, At the four corners of the side surface of the control circuit board (315) close to the power adapter (37), first support columns (38) are provided. The other ends of the first support columns (38) are fixedly connected to the power adapter (37). At the top of the side surface of the power adapter (37) close to the control circuit board (315), two second support columns (39) are provided. The axial extension directions of the first support columns (38) and the second support columns (39) are all the third direction, and the length of the second support columns (39) is longer than that of the first support columns (38). The industrial personal computer (314) is installed at the ends of the second support columns (39) away from the power adapter (37).

7. The intelligent recognition equipment for die-cast date clocks according to claim 2, characterized in that The visual acquisition component (54) further includes a first dust cover (41) provided on the cross bar (22). A detachable sealing plate (42) is provided at the end of the first dust cover (41) away from the cross bar (22). A camera mounting frame (48) penetrates through the top of the first dust cover (41). The camera (49) is installed at the bottom end of the camera mounting frame (48). A transparent plate (410) is embedded at the bottom end of the first dust cover (41).

8. The intelligent identification equipment for die-cast date clocks according to claim 7, characterized in that, A second dust cover (43) is provided at the bottom of the first dust cover (41). A plurality of lamp mounting plates (45) are provided between the inner wall of the bottom of the second dust cover (43) and the outer wall of the bottom of the first dust cover (41). An LED lamp (47) is provided at the bottom end of each lamp mounting plate (45).

9. The intelligent identification equipment for die-cast date clocks according to claim 8, characterized in that, A third dust cover (44) is provided at the bottom of the sealing plate (42). A second connecting member (412) connected to the bottom end of the first dust cover (41) is provided at the bottom end of the third dust cover (44).

10. The intelligent identification equipment for die-cast date clocks according to claim 7, characterized in that Corner codes (24) are provided between the first dust cover (41) and the cross bar (22), between the cross bar (22) and the vertical rod (21), between the vertical rod (21) and the laser coding machine (1), and between the electric control box (31) and the vertical rod (21), and they are detachably connected to the corner codes (24) by bolt-nut cooperation.