Mute vibration anode forming die

By setting noise-reducing covering components and sound-absorbing cotton layers in the vibration molding mold, the noise problem in the vibration molding process is solved, achieving the effect of reducing noise pollution and protecting workers' health.

CN224197385UActive Publication Date: 2026-05-05陕西三义高科石墨新材料有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
陕西三义高科石墨新材料有限公司
Filing Date
2025-03-25
Publication Date
2026-05-05

AI Technical Summary

Technical Problem

The existing vibration molding process is noisy, which affects the health of workers in the processing workshop.

Method used

A silent vibration anodizing mold is designed. A noise reduction covering component, including an upper shell, a lower shell, an upper sound-absorbing cotton layer, and a lower sound-absorbing cotton layer, is set up to cover the mold body. The sound-absorbing cotton layer is used to isolate and eliminate noise, and the shell is filled with a shock-absorbing particle layer to further reduce noise.

Benefits of technology

It effectively reduces noise pollution in the workshop production environment, reduces the harm of noise to the human body, and maintains the efficiency of anodizing.

✦ Generated by Eureka AI based on patent content.

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Abstract

A mute vibration anode forming mold is provided with a mold body and a noise reduction coating assembly, and the mold body is coated with the noise reduction coating assembly. When the mute vibration anode forming mold is used, the mold body is coated with the noise reduction coating assembly, and when vibration forming is conducted on an anode carbon product, noise generated by the mold body can be isolated, noise pollution to the workshop production environment is reduced, and harm of the noise to the human body is reduced.
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Description

Technical Field

[0001] This utility model relates to the field of anode processing mold technology, and in particular to a silent vibration anode forming mold. Background Technology

[0002] Graphite anodes are an important carbon product in the current metallurgical industry. With the development of the industry, the demand for graphite anodes is gradually increasing. Existing anode production workshops generally use vibration forming anode processing method, and the vibration forming machine is generally a mechanical (heavy hammer) vibration forming machine. For example, patent number: 202322930195.7, a hydraulic pressure device for positioning the top of the heavy hammer of an aluminum carbon anode forming machine, has the advantages of simple processing and convenient maintenance, and can adapt to fast-paced processing. However, this machine is generally designed for hydraulic forming methods and cannot solve the disadvantage of high noise in the vibration forming process commonly used in the market, which seriously affects the health of workers in the processing workshop.

[0003] Therefore, it is essential to provide a silent vibration anodizing mold to overcome the shortcomings of existing technologies. Summary of the Invention

[0004] The purpose of this invention is to overcome the shortcomings of the prior art and provide a silent vibration anode forming mold. This silent vibration anode forming mold can reduce the noise generated by the mold body during the processing, reduce noise pollution to the workshop production environment while maintaining the anode processing efficiency, and reduce the harm of noise to the human body.

[0005] The above-mentioned objective of this utility model is achieved through the following technical means. A silent vibration anodizing mold is provided, comprising a mold body and a noise-reducing covering component, the noise-reducing covering component covering the mold body. The noise-reducing covering component comprises an upper shell, a lower shell, an upper sound-absorbing cotton layer, and a lower sound-absorbing cotton layer. The bottom end face of the upper shell matches the top end face of the lower shell. The upper sound-absorbing cotton layer is disposed on the upper shell, and the lower sound-absorbing cotton layer is disposed on the lower shell. The upper shell and lower shell are respectively matched with the mold body.

[0006] Specifically, the aforementioned mold body is provided with a counterweight assembly and a working mold assembly. The top of the counterweight assembly matches the top of the working mold assembly. The counterweight assembly covers the upper shell, and the working mold assembly covers the lower shell.

[0007] Specifically, the aforementioned working mold assembly includes a forming mold, a biaxial vibration table, damping springs, and a vibrator. The counterweight assembly matches the top of the forming mold, the forming mold is fixedly connected to the biaxial vibration table, the vibrator is assembled at the bottom of the biaxial vibration table, the damping springs are assembled on both sides of the vibrator, and the lower housing covers the forming mold, the biaxial vibration table, the damping springs, and the vibrator.

[0008] Preferably, the upper and lower housings are provided with multiple cavities. Preferably, the bottom end face of the upper housing is provided with a boss for matching the lower housing, and the top end face of the lower housing is provided with a recess for matching the boss.

[0009] Preferably, at least one cavity of the upper shell is filled with a layer of shock-absorbing particles, and at least one cavity of the lower shell is filled with a layer of shock-absorbing particles.

[0010] Preferably, the upper sound-absorbing cotton layer is disposed on at least one of the inner wall surface, outer wall surface, or internal cavity of the upper shell, and the lower sound-absorbing cotton layer is disposed on at least one of the inner wall surface, outer wall surface, or internal cavity of the lower shell.

[0011] Preferably, the above-mentioned fixture is further provided, with both ends of the fixture being fixedly connected to the outer wall of the lower housing and the outer wall of the dual-axis vibration table, respectively. The fixture is configured as a spring or a dual-axis movable shaft.

[0012] This utility model discloses a silent vibration anodizing mold, which includes a mold body and a noise-reducing covering component, with the noise-reducing covering component covering the mold body. During use, the noise-reducing covering component isolates the noise generated by the mold body during the vibration forming of anodized carbon products, reducing noise pollution to the workshop production environment and minimizing the harm of noise to the human body. Attached Figure Description

[0013] The present invention will be further described with reference to the accompanying drawings, but the contents of the drawings do not constitute any limitation on the present invention.

[0014] Figure 1 is a structural schematic diagram of a silent vibration anodizing mold of this utility model.

[0015] Figure 2 is a schematic diagram of the structure of the mold body of a silent vibration anodizing mold of this utility model.

[0016] Figure 3 is a schematic diagram of the noise reduction coating component structure of Embodiment 1 of the present invention, which is a silent vibration anodizing mold.

[0017] Figure 4 is a schematic diagram of the noise reduction coating component structure of Embodiment 2 of the present invention, which is a silent vibration anodizing mold.

[0018] Figure 5 is a schematic diagram of the noise reduction coating component structure of Embodiment 3 of the present invention, which is a silent vibration anodizing mold.

[0019] Figure 6 is a structural schematic diagram of Embodiment 4 of the present invention, which is a silent vibration anodizing mold.

[0020] Figures 1 to 6 include:

[0021] Mold body 100, counterweight assembly 101, working mold assembly 102, forming mold 1021, dual-axis vibration table 1022, damping spring 1023, vibrator 1024;

[0022] Noise reduction and covering component 200, upper shell 201, boss 2011; lower shell 202, recess 2021;

[0023] Upper sound-absorbing cotton layer 203, lower sound-absorbing cotton layer 204, cavity 205, shock-absorbing particle layer 206;

[0024] Fixture 300. Detailed Implementation

[0025] The present invention will be further described in conjunction with the following embodiments.

[0026] Example 1.

[0027] A silent vibration anodizing mold, as shown in Figure 1, includes a mold body 100 and a noise reduction covering component 200, which covers the mold body 100. The noise reduction covering component 200 comprises an upper shell 201, a lower shell 202, an upper sound-absorbing cotton layer 203, and a lower sound-absorbing cotton layer 204. The bottom end face of the upper shell 201 matches the top end face of the lower shell. The upper sound-absorbing cotton layer 203 is disposed on the upper shell 201, and the lower sound-absorbing cotton layer 204 is disposed on the lower shell. The upper shell 201 and the lower shell 202 are respectively matched with the mold body 100. The upper shell 201 and the lower shell 202 are matched to form an internal space for shielding the mold body 100. When the mold body 100 is vibrating, the noise is isolated by the internal space formed by the upper shell 201 and the lower shell 202. At the same time, the noise is eliminated by the upper sound-absorbing cotton layer 203 and the lower sound-absorbing cotton layer 204.

[0028] Specifically, as shown in Figure 2, the mold body 100 is provided with a counterweight assembly 101 and a working mold assembly 102. The top of the counterweight assembly 101 matches the top of the working mold assembly 102. The counterweight assembly 101 is covered by the upper shell 201, and the working mold assembly 102 is covered by the lower shell 202.

[0029] Specifically, the aforementioned working mold assembly 102 includes a forming mold 1021, a biaxial vibration table 1022, a damping spring 1023, and a vibrator 1024. The counterweight assembly 101 is matched to the top of the forming mold 1021. The forming mold 1021 is fixedly connected to the biaxial vibration table 1022. The vibrator 1024 is assembled at the bottom of the biaxial vibration table 1022. The damping spring 1023 is assembled on both sides of the vibrator 1024. The lower housing 202 covers the forming mold 1021, the biaxial vibration table 1022, the damping spring, and the vibrator 1024. The mold body 100 referred to in this utility model refers to a biaxial vibration forming machine. The specific structure of the biaxial vibration forming machine is common knowledge to those skilled in the art, and its specific working principle will not be elaborated further.

[0030] When the weight assembly 101 falls, the bottom of the upper housing 201 matches the top of the lower housing 202 to form a complete internal space for shielding the weight assembly 101, forming mold 1021, dual-axis vibration table 1022, damping spring 1023 and vibrator 1024 of the mold body 100.

[0031] Specifically, as shown in Figure 3, the bottom end face of the upper housing 201 is provided with a boss 2011 for matching with the lower housing 202, and the top end face of the lower housing 202 is provided with a recess 2021 for matching with the boss 2011. The boss 2011 and the recess 2021 achieve a perfect match between the upper housing 201 and the lower housing 202, resulting in better noise isolation.

[0032] The aforementioned upper sound-absorbing cotton layer 203 is disposed on at least one of the inner or outer wall surfaces of the upper housing 201, and the lower sound-absorbing cotton layer 204 is disposed on at least one of the inner or outer wall surfaces of the lower housing 202.

[0033] In this embodiment, the upper sound-absorbing cotton layer 203 is disposed on the inner wall surface of the upper housing 201, and the lower sound-absorbing cotton layer 204 is disposed on the inner wall surface of the lower housing 202.

[0034] The silent vibration anodizing mold of this embodiment includes a mold body and a noise-reducing covering assembly, which covers the mold body. During use, the bottom of the upper housing and the top of the lower housing of the counterweight assembly match to form a complete internal space for shielding the counterweight assembly, forming mold, biaxial vibration table, damping springs, and vibrator of the mold body. When the vibrator of the mold body is vibrating, the internal space formed by the upper and lower housings isolates the noise, while the upper and lower sound-absorbing cotton layers further eliminate noise.

[0035] When in use, the silent vibration anodizing mold covers the mold body with a noise reduction coating component, and eliminates noise through upper and lower sound-absorbing cotton layers. When vibrating to form anodized carbon products, it can isolate the noise generated by the mold body, reduce noise pollution to the workshop production environment, and reduce the harm of noise to the human body.

[0036] Example 2.

[0037] A silent vibration anode forming mold, with other structures the same as in Embodiment 1, differs in that, as shown in Figure 4, the upper shell 201 and lower shell 202 of this silent vibration anode forming mold are each provided with multiple layers of cavities 205. In this example, the upper shell 201 and lower shell 202 are each provided with two layers of cavities 205, and the horizontal width of each cavity 205 is 10mm-20mm. In actual operation and processing, the horizontal widths of each cavity 205 can be set to be equal or unequal.

[0038] At least one cavity 205 of the upper shell 201 is filled with a damping particle layer 206, and at least one cavity 205 of the lower shell 202 is filled with a damping particle layer 206. In this embodiment, one cavity 205 of the upper shell 201 and one cavity 205 of the lower shell 202 are filled with a damping particle layer 206. By providing a damping particle layer 206, the principle of resonance can be better utilized to effectively cancel noise. At the same time, the interior of the damping particle layer 206 can be filled with granular materials of different materials, such as rubber particles, quartz particles, petroleum coke particles, and graphite porous carbon material particles, which are mixed and filled to form the damping particle layer 206, so as to better utilize the vibration frequency of different materials to eliminate noise.

[0039] The addition of multiple cavities and a layer of damping particles allows for better noise reduction.

[0040] Example 3.

[0041] A silent vibration anode forming mold, with other structures the same as in Embodiment 1 or 2, except that, as shown in Figure 5, the upper sound-absorbing cotton layer 203 is also disposed in the internal cavity 205; the lower sound-absorbing cotton layer 204 is also disposed in the internal cavity 205 of the lower shell 202.

[0042] By placing the upper sound-absorbing cotton layer in the internal cavity and the lower sound-absorbing cotton layer in the internal cavity of the lower shell, the noise generated by vibration can be better eliminated.

[0043] Example 4.

[0044] A silent vibration anodizing mold, with other structures the same as in Examples 1-3, except that, as... Figure 6 As shown, a fixture 300 is also provided. Both ends of the fixture 300 are fixedly connected to the outer wall surface of the lower housing 202 and the outer wall surface of the dual-axis vibration table 1022, respectively. The fixture 300 is configured as a spring or a dual-axis movable shaft. In this embodiment, the fixture 300 is configured as a spring.

[0045] The inclusion of a retainer helps prevent the biaxial vibration table from detaching from the lower housing during vibration.

[0046] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this utility model and are not intended to limit the scope of protection of this utility model. Although this utility model has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solutions of this utility model without departing from the essence and scope of the technical solutions of this utility model.

Claims

1. A silent vibration anodizing mold, characterized in that: The mold body is provided with a noise reduction and covering component, wherein the noise reduction and covering component covers the mold body; The noise reduction covering component is provided with an upper shell, a lower shell, an upper sound-absorbing cotton layer, and a lower sound-absorbing cotton layer. The bottom end face of the upper shell matches the top end face of the lower shell. The upper sound-absorbing cotton layer is disposed on the upper shell, and the lower sound-absorbing cotton layer is disposed on the lower shell. The upper shell and the lower shell are respectively matched with the mold body.

2. The silent vibration anodizing mold according to claim 1, characterized in that: The mold body is provided with a counterweight assembly and a working mold assembly. The top of the counterweight assembly matches the top of the working mold assembly. The counterweight assembly is covered by the upper shell, and the working mold assembly is covered by the lower shell.

3. The silent vibration anodizing mold according to claim 2, characterized in that: The working mold assembly includes a forming mold, a biaxial vibration table, damping springs, and a vibrator. The counterweight assembly matches the top of the forming mold. The forming mold is fixedly connected to the biaxial vibration table. The vibrator is assembled at the bottom of the biaxial vibration table. The damping springs are assembled on both sides of the vibrator. The lower housing covers the forming mold, the biaxial vibration table, the damping springs, and the vibrator.

4. The silent vibration anodizing mold according to claim 3, characterized in that: The upper shell and the lower shell are provided with multiple cavities.

5. The silent vibration anodizing mold according to claim 4, characterized in that: The bottom end face of the upper housing is provided with a boss for matching the lower housing, and the top end face of the lower housing is provided with a recess for matching the boss.

6. The silent vibration anodizing mold according to claim 5, characterized in that: At least one cavity of the upper shell is filled with a layer of shock-absorbing particles, and at least one cavity of the lower shell is filled with a layer of shock-absorbing particles.

7. The silent vibration anodizing mold according to claim 6, characterized in that: The upper sound-absorbing cotton layer is disposed on at least one of the inner wall surface, outer wall surface, or internal cavity of the upper shell, and the lower sound-absorbing cotton layer is disposed on at least one of the inner wall surface, outer wall surface, or internal cavity of the lower shell.

8. The silent vibration anodizing mold according to claim 7, characterized in that: A fixture is also provided, with its two ends fixedly connected to the outer wall of the lower housing and the outer wall of the biaxial vibration table, respectively.

9. The silent vibration anodizing mold according to claim 8, characterized in that: The retainer is configured as a spring or a dual-axis movable shaft.

Citation Information

Patent Citations

  • Heavy hammer top positioning hydraulic pressurizing device of aluminum carbon anode forming machine

    CN221090045U