Laser cutting equipment for stainless steel ice block shell

By integrating fully automated equipment for feeding, positioning, clamping, and laser cutting, the problem of tool wear in the cutting of stainless steel ice cube shells has been solved, achieving efficient and precise automated cutting processing.

CN223811689UActive Publication Date: 2026-01-20YANGJIANG JIANHENG INTELLIGENT EQUIP CO LTD
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Patent Information

Application Number
CN202520292428.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-21
Publication Date
2026-01-20
Estimated Expiration
2035-02-21

AI Technical Summary

Technical Problem

In the existing technology, when using an instrument lathe to process the opening of a stainless steel ice block shell, the cutting tool is prone to wear, which affects dimensional accuracy and results in low efficiency.

Method used

The fully automated equipment, which integrates feeding, positioning, clamping, rotation and laser cutting functions, including a vibratory feeder, positioning groove, clamping mechanism and laser cutting device, realizes the automated cutting of stainless steel ice cube shells.

Benefits of technology

It improves production efficiency and machining accuracy, reduces manual intervention and operational difficulty, lowers the error rate, and avoids the impact of traditional tool wear.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223811689U_ABST
Patent Text Reader

Abstract

The utility model discloses laser cutting equipment for a stainless steel ice block shell. The laser cutting equipment comprises a conveying mechanism, a positioning mechanism, a clamping mechanism, a rotating mechanism and a laser cutting device, the conveying mechanism is used for conveying the stainless steel ice block shells to the positioning mechanism one by one; the positioning mechanism is matched with the material conveying mechanism and is used for positioning the stainless steel ice block shell; the clamping mechanism is matched with the positioning mechanism and is used for clamping the stainless steel ice block shell on the positioning mechanism; the rotating mechanism is connected with the clamping mechanism and used for driving the stainless steel ice block shells on the clamping mechanism to rotate. And the laser cutting device directly faces the stainless steel ice block shell on the clamping mechanism and is used for cutting the stainless steel ice block shell on the clamping mechanism. By integrating the functions of conveying, positioning, clamping, rotating and laser cutting, full-automatic cutting machining of the stainless steel ice block shell is achieved, the influence of abrasion of a machining tool of a traditional instrument machine tool is avoided, and the production efficiency and the machining precision are remarkably improved.
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Description

TECHNICAL FIELD

[0001] The utility model relates to the technical field of laser cutting equipment, especially relates to a laser cutting equipment for stainless steel ice block shell. BACKGROUND

[0002] Stainless steel ice block is a product for making reusable frozen ice block, usually made of food-grade stainless steel, filled with liquid after freezing, used to replace traditional ice block. In the process of producing stainless steel ice block, first, the stainless steel ice block shell with an open mouth is punched out, and then the opening of the stainless steel ice block shell is processed and cut to cut the edge formed by punching to make the opening flush, which facilitates subsequent processes and welding with another stainless steel ice block shell, thereby forming a complete stainless steel ice block. The existing processing method for the opening of the stainless steel ice block shell is to use an instrument lathe for processing. The cutting tool is easy to wear, affecting the size accuracy and efficiency. SUMMARY

[0003] The main purpose of the utility model is to provide a laser cutting equipment for stainless steel ice block shell, which aims to effectively solve the problems mentioned in the background art.

[0004] In order to achieve the above purpose, the technical scheme of the utility model has:

[0005] The utility model discloses a kind of laser cutting equipment for stainless steel ice block shell, comprising:

[0006] feed mechanism, positioning mechanism, clamping mechanism, rotating mechanism and laser cutting device;

[0007] The feed mechanism is used to transport stainless steel ice block shell to the positioning mechanism one by one;

[0008] The positioning mechanism cooperates with the feed mechanism and is used to position the stainless steel ice block shell;

[0009] Clamping mechanism cooperates with the positioning mechanism and is used to clamp the stainless steel ice block shell on the positioning mechanism;

[0010] Rotating mechanism is connected with the clamping mechanism and is used to rotate the stainless steel ice block shell on the clamping mechanism;

[0011] Laser cutting device is opposite to the stainless steel ice block shell on the clamping mechanism, and is used to cut and process the stainless steel ice block shell on the clamping mechanism.

[0012] Compared with the prior art, the utility model discloses through the integration of feeding, positioning, clamping, rotation and laser cutting function, realize the full automation cutting processing of stainless steel ice block shell, avoid the influence of the wear and tear of traditional instrument machine tool processing tool, improve production efficiency and processing accuracy significantly, reduce manual intervention, reduce the operation difficulty and error rate simultaneously.

[0013] In a preferred embodiment, the feeding mechanism comprises a vibrating disc and a feeding channel connected with the vibrating disc; the outlet end of the feeding channel is connected with the positioning mechanism.

[0014] In a preferred embodiment, a blocking component is arranged at the outlet of the feeding channel to control the feeding of the stainless steel ice block shell; the blocking component comprises a blocking cylinder and a blocking piece, the blocking cylinder drives the blocking piece to move to control the opening and closing of the outlet of the feeding channel.

[0015] In a preferred embodiment, the positioning mechanism has a positioning groove for receiving the stainless steel ice block shell fed by the feeding mechanism; one side of the positioning groove facing the feeding mechanism is open, and one side of the positioning groove facing the clamping mechanism is open.

[0016] In a preferred embodiment, a first moving device is connected to the positioning mechanism to drive the stainless steel ice block shell on the positioning mechanism to reciprocate towards the clamping mechanism.

[0017] In a preferred embodiment, a first position adjusting mechanism is connected to the positioning mechanism to adjust the position of the stainless steel ice block shell on the positioning mechanism.

[0018] In a preferred embodiment, the first position adjusting mechanism comprises a manual horizontal sliding table and a manual lifting sliding table connected with the manual horizontal sliding table; the manual lifting sliding table is connected with the positioning mechanism.

[0019] In a preferred embodiment, the rotating mechanism comprises a rotating platform and a driving member, the driving member drives the rotating platform to rotate, and the clamping mechanism is connected to the rotating platform.

[0020] In a preferred embodiment, a second position adjusting mechanism is connected to the laser cutting device to adjust the position of the laser cutting device relative to the stainless steel ice block shell on the clamping mechanism.

[0021] In a preferred embodiment, the second position adjusting mechanism is a three-axis moving module.

[0022] In order to better understand and implement, the following drawings in conjunction with the drawings detailed description of the utility model. BRIEF DESCRIPTION OF DRAWINGS

[0023] The accompanying drawings, which are included to provide a further understanding of the application and are incorporated in and constitute a part of this application, illustrate embodiments of the application and together with the description serve to explain the application. In the drawings:

[0024] Figure 1 is a structural diagram of a laser cutting device for stainless steel ice block shells;

[0025] Figure 2 is Figure 1 is an enlarged view of A in FIG. 4.

[0026] Legend of reference signs:

[0027] 11 vibration disc, 12 material conveying passage, 21 blocking air cylinder, 31 positioning groove, 32 first moving device, 4 first position adjusting mechanism, 41 manual horizontal sliding table, 42 manual lifting sliding table, 51 rotating platform, 52 driving member, 6 second position adjusting mechanism, 7 clamping mechanism, 81 anti-falling air cylinder, 82 anti-falling piece, 83 material blocking air cylinder, 84 laser cutting device, 9 stainless steel ice block shell. DETAILED DESCRIPTION

[0028] In order to better illustrate the present application, the present application will be further described in detail below with reference to the accompanying drawings.

[0029] If the terms "first", "second" and the like are used in this text to describe components, those skilled in the art should know that the use of "first", "second" is merely for the convenience of describing the present application and simplifying the description, and the above terms have no special meaning unless otherwise stated.

[0030] The terms used in the embodiments of the present application are merely for the purpose of describing specific embodiments and are not intended to limit the embodiments of the present application. The singular forms "a", "said" and "the" used in the embodiments of the present application and the appended claims are also intended to include the plural forms, unless the context clearly indicates otherwise. It should also be understood that the term "and / or" used herein means and includes any or all possible combinations of one or more associated listed items.

[0031] The following description refers to the accompanying drawings. Unless otherwise indicated, the same numbers in different drawings indicate the same or similar elements. The implementations described in the following example embodiments are not meant to represent all implementations consistent with the present application. Rather, they are merely examples of apparatuses and methods consistent with some aspects of the present application as detailed in the appended claims.

[0032] Referring to Figure 1 and Figure 2This utility model discloses a laser cutting device for stainless steel ice cube shells, comprising:

[0033] Material feeding mechanism, positioning mechanism, clamping mechanism 7, rotating mechanism and laser cutting device 84;

[0034] The feeding mechanism is used to convey stainless steel ice cube shells 9 one by one to the positioning mechanism;

[0035] The positioning mechanism, in cooperation with the conveying mechanism, is used to position the stainless steel ice cube shell 9.

[0036] The clamping mechanism 7 cooperates with the positioning mechanism to clamp the stainless steel ice cube shell 9 on the positioning mechanism;

[0037] A rotating mechanism, which is connected to the clamping mechanism 7, is used to drive the stainless steel ice cube shell 9 on the clamping mechanism 7 to rotate.

[0038] The laser cutting device 84 is positioned directly opposite the stainless steel ice cube shell 9 on the clamping mechanism 7 and is used to cut the stainless steel ice cube shell 9 on the clamping mechanism 7.

[0039] Compared with existing technologies, this utility model integrates feeding, positioning, clamping, rotation and laser cutting functions to achieve fully automated cutting of stainless steel ice block shells 9. It avoids the impact of wear on traditional instrument machine tool processing tools, significantly improves production efficiency and processing accuracy, and at the same time reduces manual intervention, operation difficulty and error rate.

[0040] In this embodiment, the material conveying mechanism includes a vibratory feeder 11 and a material conveying channel 12 connected to the vibratory feeder 11; the outlet end of the material conveying channel 12 is connected to the positioning mechanism. The design of the vibratory feeder 11 and the material conveying channel 12 ensures the orderly conveying of the stainless steel ice block shell 9, avoids material accumulation and jamming, and further improves the stability and reliability of the equipment.

[0041] In this embodiment, a blocking component is provided at the outlet end of the conveying channel 12. The blocking component includes a blocking cylinder 21 and a blocking plate. The blocking plate is located outside the outlet of the conveying channel 12. The blocking cylinder 21 is used to drive the blocking plate to move, thereby controlling the opening and closing of the outlet of the conveying channel 12. This allows for precise control of the conveying rhythm of the stainless steel ice cube shells 9, ensuring that each stainless steel ice cube shell 9 can accurately enter the positioning mechanism, thus avoiding confusion and errors in the material conveying process.

[0042] In this embodiment, the positioning mechanism has a positioning groove 31 for receiving the stainless steel ice cube shell 9 conveyed by the conveying mechanism. The positioning groove 31 is open on one side facing the conveying mechanism and on the other side facing the clamping mechanism 7. The double-sided open design of the positioning groove 31 allows the stainless steel ice cube shell 9 to smoothly enter from the conveying mechanism and be quickly gripped by the clamping mechanism 7, simplifying the material transfer process and improving the operating efficiency of the equipment.

[0043] Furthermore, the material conveying channel 12 is made of hollow steel pipe. The tail section of the material conveying channel 12 is vertically set. When the material conveying channel 12 is opened, the stainless steel ice block shell 9 automatically falls into the positioning groove 31 under the action of gravity.

[0044] Furthermore, the laser cutting equipment for stainless steel ice block shells also includes a material blocking component, which includes a material blocking cylinder 83 and a material blocking block. The material blocking block is positioned opposite the second stainless steel ice block shell 9 at the outlet of the material conveying channel 12 and can be inserted into the hollow steel pipe. The material blocking cylinder 83 is located outside the material conveying channel 12, and the material blocking block reciprocates under the drive of the material blocking cylinder 83.

[0045] By relying on the linkage of the blocking component and the material blocking component, the stainless steel ice block shells 9 can be conveyed one by one to the positioning groove 31. For ease of understanding, the stainless steel ice block shell 9 at the bottom of the conveying channel 12 that is in contact with the blocking plate is named the first stainless steel ice block shell 9, and the stainless steel ice block shell 9 above it is named the second stainless steel ice block shell 9.

[0046] The working process is as follows: During the process of conveying the first stainless steel ice cube shell 9 into the positioning groove 31, the material blocking cylinder 83 remains extended, so that the material blocking block keeps applying pressure to the second stainless steel ice cube shell 9 to prevent the second stainless steel ice cube shell 9 from falling down; after the first stainless steel ice cube shell 9 is conveyed into the positioning groove 31, the blocking cylinder 21 drives the blocking plate to close the opening of the conveying channel 12, and then the material blocking cylinder 83 drives the material blocking block to release the second stainless steel ice cube shell 9, and the second stainless steel ice cube shell 9 moves downward to the position of the first stainless steel ice cube shell 9 under the action of gravity.

[0047] In this embodiment, a first moving device 32 is connected to the positioning mechanism to drive the stainless steel ice cube shell 9 on the positioning mechanism to reciprocate towards the clamping mechanism 7. The first moving device 32 enables the stainless steel ice cube shell 9 on the positioning mechanism to reciprocate, facilitating the clamping mechanism 7 to accurately grasp the material, further improving the automation level and processing accuracy of the equipment.

[0048] Furthermore, the first moving device 32 can be a cylinder or a linear motion module.

[0049] In this embodiment, to prevent the stainless steel ice cube shell 9 from falling off the positioning groove 31, the positioning mechanism has an anti-fall cylinder 81 and an anti-fall plate 82. The anti-fall plate 82 is located near the side of the positioning groove 31 facing the clamping mechanism 7. The anti-fall cylinder 81 drives the anti-fall plate 82 to reciprocate, thereby opening or closing the side of the positioning groove 31 facing the clamping mechanism 7. When the stainless steel ice cube shell 9 is not placed in the positioning groove 31, the side of the positioning groove 31 facing the clamping mechanism 7 remains closed; the side of the positioning groove 31 facing the clamping mechanism 7 only opens when the clamping mechanism 7 needs to clamp the stainless steel ice cube shell 9 on the positioning groove 31.

[0050] In this embodiment, a first position adjustment mechanism 4 is connected to the positioning mechanism to adjust the position of the stainless steel ice cube shell 9 on the positioning mechanism, so that the position of the stainless steel ice cube shell 9 can be finely adjusted according to processing requirements, ensuring the accuracy and consistency of the cutting process and improving product quality.

[0051] Furthermore, the first position adjustment mechanism 4 includes a manual horizontal slide 41 and a manual lifting slide 42 connected to the manual horizontal slide 41; a positioning mechanism is connected to the manual lifting slide 42. The combined design of the manual horizontal slide 41 and the manual lifting slide 42 allows the operator to flexibly adjust the position of the positioning mechanism according to actual needs, enhancing the adaptability and ease of operation of the equipment.

[0052] In addition to the above-mentioned structural composition, the first position adjustment mechanism 4 can also adopt multiple linear modules, such as a two-axis movement module or a three-axis movement module.

[0053] In this embodiment, the clamping mechanism 7 can be a two-jaw cylinder or a four-jaw cylinder.

[0054] In this embodiment, the rotating mechanism includes a rotating platform 51 and a driving component 52. The driving component 52 drives the rotating platform 51 to rotate, and the clamping mechanism 7 is connected to the rotating platform 51. Through the cooperation of the rotating platform 51 and the driving component 52, the rotating mechanism enables the stainless steel ice cube shell 9 to rotate, allowing the laser cutting device 84 to cut from multiple angles, meeting complex processing requirements and improving processing flexibility.

[0055] Preferably, the driving component 52 can be a motor or a cylinder.

[0056] In this embodiment, a second position adjustment mechanism 6 is connected to the laser cutting device 84 to adjust the position of the laser cutting device 84 relative to the stainless steel ice cube shell 9 on the clamping mechanism 7. The second position adjustment mechanism 6 allows the position of the laser cutting device 84 to be adjusted according to the processing requirements of the stainless steel ice cube shell 9, ensuring cutting accuracy and processing effect, and further improving the intelligence level of the equipment.

[0057] Furthermore, the three-axis moving module, as the second position adjustment mechanism 6, enables the laser cutting device 84 to move precisely in three-dimensional space, significantly improving the processing capability and applicability of the equipment.

[0058] In this utility model, the laser cutting device 84 is a laser cutting head, which belongs to the prior art and will not be described in detail here.

[0059] This utility model is not limited to the above-described embodiments. If any modifications or variations to this utility model do not depart from the spirit and scope of this utility model, and if such modifications and variations fall within the scope of the claims and equivalent technologies of this utility model, then this utility model also intends to include such modifications and variations.

Claims

1. A laser cutting device for stainless steel ice cube shells, characterized in that, include: Material feeding mechanism, positioning mechanism, clamping mechanism, rotating mechanism, and laser cutting device; The feeding mechanism is used to convey stainless steel ice cube shells one by one to the positioning mechanism; The positioning mechanism, in conjunction with the conveying mechanism, is used to position the stainless steel ice cube shell. A clamping mechanism, which cooperates with the positioning mechanism, is used to clamp the stainless steel ice cube shell on the positioning mechanism; A rotating mechanism, which is connected to the clamping mechanism, is used to drive the stainless steel ice cube shell on the clamping mechanism to rotate. A laser cutting device is positioned directly over the stainless steel ice cube shell on the clamping mechanism to cut and process the stainless steel ice cube shell on the clamping mechanism.

2. The laser cutting equipment for stainless steel ice cube shells according to claim 1, characterized in that: The material conveying mechanism includes a vibratory feeder and a material conveying channel connected to the vibratory feeder; the outlet end of the material conveying channel is connected to the positioning mechanism.

3. The laser cutting equipment for stainless steel ice cube shells according to claim 2, characterized in that: A blocking component is provided at the outlet of the conveying channel to control the conveying of the stainless steel ice cube shell; The blocking component includes a blocking cylinder and a blocking plate. The blocking cylinder drives the blocking plate to move in order to control the opening and closing of the material conveying channel outlet.

4. The laser cutting equipment for stainless steel ice cube shells according to claim 1, characterized in that: The positioning mechanism has a positioning groove for receiving stainless steel ice cube shells conveyed by the feeding mechanism; the positioning groove is open on the side facing the feeding mechanism and on the side facing the clamping mechanism.

5. The laser cutting equipment for stainless steel ice cube shells according to claim 1, characterized in that: A first moving device is connected to the positioning mechanism to drive the stainless steel ice cube shell on the positioning mechanism to reciprocate towards the clamping mechanism.

6. The laser cutting equipment for stainless steel ice cube shells according to claim 1, characterized in that: A first position adjustment mechanism is connected to the positioning mechanism to adjust the position of the stainless steel ice cube shell on the positioning mechanism.

7. The laser cutting equipment for stainless steel ice cube shells according to claim 6, characterized in that: The first position adjustment mechanism includes a manual horizontal slide and a manual lifting slide connected to the manual horizontal slide; a positioning mechanism is connected to the manual lifting slide.

8. The laser cutting equipment for stainless steel ice cube shells according to claim 1, characterized in that: The rotating mechanism includes a rotating platform and a driving component. The driving component drives the rotating platform to rotate, and the clamping mechanism is connected to the rotating platform.

9. The laser cutting equipment for stainless steel ice cube shells according to claim 1, characterized in that: The laser cutting device is connected to a second position adjustment mechanism to adjust the position of the laser cutting device relative to the stainless steel ice block shell on the clamping mechanism.

10. The laser cutting equipment for stainless steel ice cube shells according to claim 9, characterized in that: The second position adjustment mechanism is a three-axis moving module.