Scrap recovery device for precious metal jewelry processing
By designing a debris recycling device for precious metal jewelry processing, the problem of difficulty in collecting dust during precious metal processing is solved, the separation and collection of dust and debris is realized, and the recovery rate and processing accuracy of precious metals are improved.
Patent Information
- Application Number
- CN202421502349.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-27
- Publication Date
- 2025-07-01
- Estimated Expiration
- 2034-06-27
AI Technical Summary
During the process of precious metal processing, the debris and precious metal dust generated are difficult to collect effectively, resulting in dust waste and processing accuracy.
A debris recovery device for processing precious metal jewelry is designed, including a processing seat, a first recovery tank and a second recovery tank, and dust is sucked from the first recovery tank into the second recovery tank through a vacuum cleaner assembly to realize separation and collection of dust and debris.
Effectively separate and collect precious metal dust generated during processing, reduce dust waste, improve precious metal recovery rate, improve processing accuracy and cleanliness of the working environment.
Smart Images

Figure CN223044193U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of precious metal processing, and particularly to a debris recycling device for precious metal jewelry processing. Background Art
[0002] In the process of processing precious metals (such as gold, silver, platinum, etc.), it is first necessary to cut the sheet material to cut out a specific shape to meet subsequent processing techniques or processing formations.
[0003] However, during the metal cutting process, a large amount of debris and precious metal dust are generated. Part of the precious metal dust adheres to the debris, and the other part causes the precious metal dust to be suspended in the air as the processing head rotates, making it difficult to collect the precious metal dust and resulting in waste of the precious metal dust.
[0004] Secondly, the precious metal dust suspended in the air adheres to the surface of the sheet material to be cut, affecting the processing accuracy. Utility Model Content
[0005] In view of this, it is necessary to provide a debris recycling device for precious metal jewelry processing to solve the above problems.
[0006] An embodiment of this application provides a debris recycling device for precious metal jewelry processing, including:
[0007] A processing seat is provided with a processing position. A first recycling tank and a second recycling tank are formed inside the processing seat, and the first recycling tank communicates with the processing position;
[0008] The first recycling tank has a first side surface, and a first dust suction hole is opened on the first side surface. The first recycling tank communicates with the second recycling tank through the first dust suction hole;
[0009] A dust suction assembly is connected to one end of the first dust suction hole to suck the dust generated during the processing into the second recycling tank to separate the precious metal dust from the debris.
[0010] In at least one embodiment of this application, the first recycling tank has a second side surface, and a second dust suction hole is opened on the second side surface. The second recycling tank communicates with the second dust suction hole, and the second dust suction hole communicates with the first recycling tank.
[0011] In at least one embodiment of this application, the first side surface and the second side surface are oppositely arranged, the first side surface is inclined to the bottom surface of the first recycling tank, and the second side surface is inclined to the bottom surface of the first recycling tank.
[0012] In at least one embodiment of the present application, the angle between the axis of the first dust suction hole and the plane where the processing position is located is denoted as α, and it satisfies the relational expression: 45° ≤ α ≤ 70°.
[0013] In at least one embodiment of the present application, the angle between the axis of the second dust suction hole and the plane where the processing position is located is denoted as α, and it satisfies the relational expression: 45° ≤ α ≤ 70°.
[0014] In at least one embodiment of the present application, a convex portion is formed protruding at the middle position of the bottom wall of the first recovery tank. The two first side surfaces are located on both sides of the convex portion. The two second side surfaces are respectively arranged opposite to the two first side surfaces, and the two first side surfaces are located between the two second side surfaces.
[0015] In at least one embodiment of the present application, the dust suction assembly includes:
[0016] A connecting pipe, one end of which is received in the second recovery tank and the other end extends to the outside;
[0017] An air extraction member, one end of which is communicated with the connecting pipe.
[0018] In at least one embodiment of the present application, the dust suction assembly further includes:
[0019] A filter screen, which is arranged in the connecting pipe.
[0020] In at least one embodiment of the present application, the dust suction assembly further includes:
[0021] A connecting member, one end of which is communicated with the connecting pipe and the other end is communicated to the outside. The air extraction member is received in the connecting member.
[0022] In at least one embodiment of the present application, the connecting member is provided with an air inlet pipe. Two air outlet holes are opened on one side of the connecting member away from the air inlet pipe. There are two air extraction members, and the two air extraction members are respectively aligned with the two air outlet holes.
[0023] Implementing the debris recovery device for precious metal jewelry processing in this embodiment will at least have the following beneficial effects:
[0024] For the debris recovery device for precious metal jewelry processing provided above, when precious metals are cut at the processing position on the processing seat, the generated debris and dust will be sucked into the first recovery tank.
[0025] The first dust suction holes on the first side surface suck the dust from the first recovery tank into the second recovery tank through the suction force generated by the dust suction assembly, ensuring that the precious metal dust will not adhere to the debris or float in the air.
[0026] It can effectively separate and collect the precious metal dust generated during the processing, reduce the waste of precious metal dust, and improve the recovery rate of precious metals.
[0027] Avoid dust from suspending in the air or adhering to the surface of the sheet material to be processed, thereby reducing the impact on processing accuracy and improving processing quality.
[0028] Through effective dust collection, the amount of dust in the processing environment is reduced, the cleanliness of the working environment is improved, and the health of operators is protected.
[0029] The automated dust collection and separation process reduces manual intervention and improves the overall processing efficiency. Description of the Drawings
[0030] Figure 1 It is a three-dimensional view of the debris recovery device for precious metal jewelry processing;
[0031] Figure 2 It is an exploded view of the debris recovery device for precious metal jewelry processing;
[0032] Figure 3 It is a cross-sectional view of the debris recovery device for precious metal jewelry processing;
[0033] Figure 4 For Figure 2 The exploded view of the dust suction component in
[0034] Description of the Main Component Symbols
[0035] 100. Debris recovery device for precious metal jewelry processing;
[0036] 110. Processing seat; 110a. Processing position; 110b. First recovery tank; 110c. Second recovery tank; 110d. First side; 110e. First dust suction hole; 110f. Second side; 110g. Second dust suction hole; 111. Convex part;
[0037] 120. Dust suction component; 121. Connecting pipe; 122. Air extraction part; 123. Filter screen; 124. Connecting part; 1241. Intake pipe; 124a. Air outlet hole. Detailed Implementation Modes
[0038] Next, the embodiments of the present application will be described in conjunction with the accompanying drawings in the embodiments of the present application. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments.
[0039] It should be noted that when a component is considered to be "connected" to another component, it can be directly connected to the other component or there may be an intermediate component present at the same time. When a component is considered to be "provided on" another component, it can be directly provided on the other component or there may be an intermediate component present at the same time. The terms "top", "bottom", "upper", "lower", "left", "right", "front", "rear", and similar expressions used herein are for illustrative purposes only.
[0040] The following will describe in detail some embodiments of the present application with reference to the accompanying drawings. Without conflict, the following embodiments and the features in the embodiments can be combined with each other.
[0041] An embodiment of the present application provides a debris recovery device 100 for processing precious metal jewelry, including:
[0042] A processing seat 110 is provided with a processing position 110a, and a first recovery tank 110b and a second recovery tank 110c are formed inside the processing seat 110, and the first recovery tank 110b communicates with the processing position 110a;
[0043] The first recovery tank 110b has a first side surface 110d, and a first dust suction hole 110e is opened on the first side surface 110d, and the first recovery tank 110b communicates with the second recovery tank 110c through the first dust suction hole 110e;
[0044] A dust suction component 120 is connected to one end of the first dust suction hole 110e to suck the dust generated during the processing into the second recovery tank 110c to separate the precious metal dust from the debris.
[0045] Please refer to Figures 1 to 4 , in this embodiment, when the precious metal is cut at the processing position 110a on the processing seat 110, the generated debris and dust will be sucked into the first recovery tank 110b.
[0046] The first dust suction hole 110e on the first side surface 110d sucks the dust from the first recovery tank 110b into the second recovery tank 110c through the suction force generated by the dust suction component 120, ensuring that the precious metal dust does not adhere to the debris or suspend in the air.
[0047] It can effectively separate and collect the precious metal dust generated during the processing, reduce the waste of precious metal dust, and improve the recovery rate of precious metals.
[0048] Avoid the dust from suspending in the air or adhering to the surface of the sheet to be processed, thereby reducing the influence on the processing accuracy and improving the processing quality.
[0049] Through effective dust collection, the amount of dust in the processing environment is reduced, the cleanliness of the working environment is improved, and the health of the operators is protected.
[0050] The automated dust collection and separation process reduces manual intervention and improves the overall processing efficiency.
[0051] The first recovery tank 110b is located below the processing position 110a of the processing seat 110 and is a recessed groove.
[0052] The first dust suction hole 110e is a through hole.
[0053] In at least one embodiment of the present application, the first recovery tank 110b has a second side surface 110f, a second dust suction hole 110g is provided on the second side surface 110f, the second recovery tank 110c is communicated with the second dust suction hole 110g, and the second dust suction hole 110g is communicated with the first recovery tank 110b.
[0054] Please refer to Figures 1 to 4 , in this embodiment, during the processing of precious metals, the generated dust and debris first enter the first recovery tank 110b.
[0055] The first recovery tank 110b initially collects these dust and debris.
[0056] The dust in the first recovery tank 110b passes through the second dust suction hole 110g on the second side surface 110f and is sucked into the second recovery tank 110c under the action of the dust suction assembly 120.
[0057] The second recovery tank 110c receives the dust sucked from the first recovery tank 110b, further separates and collects it, and realizes the further separation of dust and debris.
[0058] Debris is collected in the first recovery tank 110b, and metal dust is collected in the second recovery tank 110c.
[0059] By providing the second side surface 110f and the second dust suction hole 110g in the first recovery tank 110b, the dust collection effect is further improved, the suspension of dust in the air is reduced, and dust waste is reduced.
[0060] After the dust undergoes multiple separation processes in the first and second recovery tanks 110c, more efficient separation of dust and debris is achieved, ensuring the efficient recovery of precious metal dust.
[0061] Through effective dust collection and separation, the amount of dust in the processing environment is reduced, the cleanliness of the working environment is improved, and the health of the operators is protected.
[0062] Effective dust collection and separation reduce the possibility of dust adhering to the surface of the sheet to be processed, thus ensuring machining accuracy and improving product quality.
[0063] In at least one embodiment of the present application, the first side surface 110d and the second side surface 110f are arranged opposite to each other, the first side surface 110d is inclined to the bottom surface of the first recovery tank 110b, and the second side surface 110f is inclined to the bottom surface of the first recovery tank 110b.
[0064] Please refer to Figures 1 to 4 , in this embodiment, during the processing of precious metals, the generated dust and debris first enter the first recovery tank 110b.
[0065] The first side surface 110d and the second side surface 110f in the first recovery tank 110b are arranged opposite to each other and are both inclined, so that the dust can flow smoothly in the direction of the first dust suction hole 110e or the second dust suction hole 110g.
[0066] The inclined first side surface 110d and the second side surface 110f effectively guide the dust to flow towards the first dust suction hole 110e or the second dust suction hole 110g, improving the collection efficiency.
[0067] Through the action of the dust suction assembly 120, the dust is sucked into the second recovery tank 110c.
[0068] The inclined first side surface 110d can guide the dust to flow in the air flow direction of the first dust suction hole 110e or the second dust suction hole 110g, avoiding the accumulation of dust in the first recovery tank 110b and keeping the first recovery tank 110b unobstructed.
[0069] In at least one embodiment of the present application, the included angle between the axis of the first dust suction hole 110e and the plane where the processing position 110a is located is denoted as α, and satisfies the relational expression: 45° ≤ α ≤ 70°.
[0070] In at least one embodiment of the present application, the included angle between the axis of the second dust suction hole 110g and the plane where the processing position 110a is located is denoted as α, and satisfies the relational expression: 45° ≤ α ≤ 70°.
[0071] Please refer to Figures 1 to 4 , in this embodiment, the included angle α between the axis of the first dust suction hole 110e and the plane where the processing position 110a is located satisfies the relational expression 45° ≤ α ≤ 70°, ensuring that the first dust suction hole 110e can effectively align with the processing position 110a, so that the metal dust generated during the processing can be directly sucked into the first dust suction hole 110e.
[0072] The angle α between the axis of the second dust suction hole 110g and the plane where the processing position 110a is located also satisfies the relational expression 45° ≤ α ≤ 70°, ensuring that the second dust suction hole 110g can effectively align with the processing position 110a, thereby further ensuring that metal dust can be better sucked into the second recovery tank 110c.
[0073] During the processing of precious metals, the generated metal dust will directly fall or suspend around the processing position 110a.
[0074] Since the angle between the axis of the first dust suction hole 110e and the plane of the processing position 110a is designed to be 45° to 70°, the first dust suction hole 110e can effectively align with the processing position 110a, quickly adsorb the metal dust generated during processing, and reduce dust diffusion.
[0075] The metal dust adsorbed by the first dust suction hole 110e is sucked into the second recovery tank 110c through the action of the dust suction assembly 120.
[0076] The angle design of the second dust suction hole 110g also ensures that it can align with the processing position 110a, further adsorb and collect the metal dust generated during processing, and optimize the dust flow path.
[0077] Ensure that all metal dust can be quickly and efficiently sucked into the second recovery tank 110c after being generated at the processing position 110a, and enter the second recovery tank 110c for collection.
[0078] Since the dust can be quickly sucked into the debris recovery device 100 for processing precious metal jewelry, the suspension and diffusion of dust in the air are reduced, the waste of metal dust is reduced, and the recovery rate of precious metals is improved.
[0079] In at least one embodiment of the present application, a convex portion 111 is formed protruding from the middle position of the bottom wall of the first recovery tank 110b. The two first side surfaces 110d are located on both sides of the convex portion 111. The two second side surfaces 110f are respectively arranged opposite to the two first side surfaces 110d, and the two first side surfaces 110d are located between the two second side surfaces 110f.
[0080] Please refer to Figures 1 to 4 , in this embodiment, during the processing, the generated dust and debris first enter the first recovery tank 110b.
[0081] The convex portion 111 guides the dust and debris to both sides of the first side surface 110d. The first side surface 110d and the second side surface 110f are arranged opposite to each other, forming an effective flow path to guide the dust into the first dust suction hole 110e and the second dust suction hole 110g.
[0082] Under the action of the dust suction assembly 120, dust enters the second recovery tank 110c through the first dust suction hole 110e and the second dust suction hole 110g, so as to suck the dust into the second recovery tank 110c, and the debris is contained in the first recovery tank 110b.
[0083] The amount of dust in the processing environment is reduced, the cleanliness of the working environment is improved, and the health of the operators is protected.
[0084] The adhesion of dust to the surface of the workpiece to be processed is reduced, thereby ensuring the processing accuracy and improving the product quality.
[0085] The second dust suction hole 110g is a through hole.
[0086] In at least one embodiment of the present application, the dust suction assembly 120 includes:
[0087] A connecting pipe 121, one end of which is contained in the second recovery tank 110c and the other end extends to the outside;
[0088] An air extraction member 122, one end of which is communicated with the connecting pipe 121.
[0089] In at least one embodiment of the present application, the dust suction assembly 120 further includes:
[0090] A filter screen 123, which is arranged in the connecting pipe 121.
[0091] Please refer to Figures 1 to 4 , in this embodiment, one end of the connecting pipe 121 is contained in the second recovery tank 110c and the other end extends to the outside.
[0092] The connecting pipe 121 connects the second recovery tank 110c with the outside, forming a flow channel for dust and air, and ensuring that the dust is sucked from the first recovery tank 110b into the second recovery tank 110c.
[0093] One end of the air extraction member 122 is communicated with the connecting pipe 121.
[0094] The air extraction member 122 generates negative pressure through the connecting pipe 121, thereby attracting the dust in the second recovery tank 110c into the connecting pipe 121, and ensuring that the dust is effectively sucked into the second recovery tank 110c.
[0095] The filter screen 123 is used to filter the dust in the connecting pipe 121, prevent the dust from entering the air extraction member 122 and the external environment, and ensure the efficiency of the collection system and the cleanliness of the environment.
[0096] The connecting pipe 121 and the air extraction member 122 form an effective negative pressure system, ensuring that the dust is quickly sucked from the second recovery tank 110c, and improving the dust collection efficiency.
[0097] The connecting pipe 121 is a hollow pipe.
[0098] The air extraction member 122 is a fan.
[0099] In at least one embodiment of the present application, the dust collection assembly 120 further includes:
[0100] A connecting member 124, one end of which is connected to the connecting pipe 121, and the other end is connected to the outside. The air extraction member 122 is received in the connecting member 124.
[0101] In at least one embodiment of the present application, the connecting member 124 is provided with an air inlet pipe 1241. On the side of the connecting member 124 away from the air inlet pipe 1241, two air outlet holes 124a are opened. There are two air extraction members 122, and the two air extraction members 122 are respectively aligned with the two air outlet holes 124a.
[0102] 124a
[0103] Please refer to Figures 1 to 4 , in this embodiment, the dust generated during the processing enters the second recovery tank 110c through the first and second dust suction holes 110g.
[0104] The dust and air are sucked into the air inlet pipe 1241 in the connecting member 124 through the connecting pipe 121.
[0105] The air inlet pipe 1241 in the connecting member 124 guides the air and dust into the connecting member 124.
[0106] The two air extraction members 122 provide suction to suck in the air and dust, and filter them through the filtration system to ensure that the dust is effectively collected.
[0107] The clean air after filtration is discharged through the air outlet holes 124a to ensure the cleanliness of the discharged air and protect the working environment and the health of the operators.
[0108] The filter screen 123 filtration system ensures that the dust is effectively collected, reduces the maintenance requirements of the air extraction member 122, and reduces the maintenance cost of the equipment.
[0109] The filter screen 123 is a mesh structure.
[0110] The above are only the embodiments of the present application. It should be noted here that for those of ordinary skill in the art, without departing from the inventive concept of the present application, improvements can still be made, but these all fall within the protection scope of the present application.
Claims
1. A debris recovery device for precious metal jewelry processing, characterized in that: include: A processing seat, provided with a processing position, wherein a first recovery groove and a second recovery groove are formed inside the processing seat, and the first recovery groove is connected to the processing position; The first recovery groove has a first side surface, the first side surface is provided with a first dust suction hole, and the first recovery groove is connected with the second recovery groove through the first dust suction hole; A dust suction component has one end connected to the first dust suction hole so as to suck the dust generated during the processing into the second recovery tank so as to separate the precious metal dust from the debris.
2. The chip recovery device for precious metal jewelry processing according to claim 1 is characterized in that: The first recovery groove has a second side surface, the second side surface is provided with a second dust suction hole, the second recovery groove is connected with the second dust suction hole, and the second dust suction hole is connected with the first recovery groove.
3. The chip recovery device for precious metal jewelry processing according to claim 2, characterized in that: The first side surface is arranged opposite to the second side surface, the first side surface is arranged obliquely to the bottom surface of the first recovery groove, and the second side surface is arranged obliquely to the bottom surface of the first recovery groove.
4. The chip recovery device for precious metal jewelry processing according to claim 1, characterized in that: The angle between the axis of the first dust suction hole and the plane where the processing position is located is recorded as α, which satisfies the relationship: 45°≤α≤70°.
5. The chip recovery device for precious metal jewelry processing according to claim 2, characterized in that: The angle between the axis of the second dust suction hole and the plane where the processing position is located is recorded as α, which satisfies the relationship: 45°≤α≤70°.
6. The chip recovery device for precious metal jewelry processing according to claim 2, characterized in that: A convex portion is protruded from the middle position of the bottom wall of the first recovery tank, two first side surfaces are located on both sides of the convex portion, two second side surfaces are respectively arranged opposite to the two first side surfaces, and the two first side surfaces are located between the two second side surfaces.
7. The chip recovery device for precious metal jewelry processing according to claim 1, characterized in that: The dust collection component comprises: A connecting pipe, one end of which is received in the second recovery tank and the other end of which extends to the outside; An air extraction member has one end connected to the connecting pipe.
8. The chip recovery device for precious metal jewelry processing according to claim 7, characterized in that: The dust collection assembly also includes: A filter screen is arranged in the connecting pipe.
9. The chip recovery device for precious metal jewelry processing according to claim 7, characterized in that: The dust collection assembly also includes: A connecting piece has one end connected to the connecting pipe and the other end connected to the outside, and the air extraction piece is accommodated in the connecting piece.
10. The chip recovery device for precious metal jewelry processing according to claim 9, characterized in that: The connecting piece is provided with an air inlet pipe, and two air outlet holes are provided on a side of the connecting piece away from the air inlet pipe. There are two air suction pieces, and the two air suction pieces are respectively aligned with the two air outlet holes.