Copper alloy mold machining device

By improving the structural design of the copper alloy mold processing device, uniform feeding and multi-process operation were achieved, solving the problems of uneven feeding and insufficient position limitation in the existing technology, and improving processing efficiency and applicability.

CN224043240UActive Publication Date: 2026-03-27JIANGXI ZHONGZHEN COMM TECH CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-31
Publication Date
2026-03-27

AI Technical Summary

Technical Problem

Existing copper alloy mold processing equipment suffers from uneven feeding, inability to effectively limit position and perform multi-process operations, resulting in reduced processing efficiency and limited applicability.

Method used

The design incorporates components such as a horizontal plate, a pusher plate, a Z-shaped plate, a connecting rod, and a swing plate, combined with an electric push rod, an electric cylinder, and a dual-head motor to achieve uniform feeding and multi-process operation.

Benefits of technology

It achieves uniform machining of copper alloy molds, improves machining efficiency and applicability, and enhances positional limitation capabilities.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224043240U_ABST
    Figure CN224043240U_ABST
Patent Text Reader

Abstract

The utility model discloses a copper alloy die processing device which comprises a base plate, the top of the base plate is connected with a processing box body through a bolt, the bottom of the processing box body is provided with an opening, the top of the base plate is connected with a table block through a bolt, and the front side and the rear side of the table block are respectively provided with a transverse plate. The top of the transverse plate is connected with a plurality of evenly-distributed material pushing plates through bolts, the positions, close to the left side and the right side, of the bottoms of the material pushing plates are connected with vertical plates through bolts correspondingly, and the sides, opposite to the table block, of the vertical plates are movably connected with Z-shaped plates through rotating shafts and bearings. According to the technical scheme, the transverse plate, the material pushing plate, the Z-shaped plate, the connecting rod, the swing plate and other components are matched with one another, so that effective and uniform feeding can be carried out, effective and uniform machining can be carried out, the machining efficiency is improved, effective position limiting and multi-procedure operation can be carried out, the application range is widened, and the use efficiency is improved.
Need to check novelty before this filing date? Find Prior Art

Description

TECHNICAL FIELD

[0001] The utility model relates to copper alloy mould technical field especially relates to a copper alloy mould processingequipment. BACKGROUND

[0002] The copper alloy mould is the industrial mould that copper base alloy (such as beryllium bronze, chromium zirconium vanadium copper, chromium zirconium magnesium copper etc.) is made of material, and it is mainly used in metal die casting, stamping forming process etc.. The heat conductivity of copper alloy is better than steel material, can quickly and evenly radiate heat, reduces the crack risk of mould due to local high temperature, and improves product surface quality. The copper alloy mould processing equipment in the prior art cannot effectively and uniformly feed when in use, so that it cannot effectively and uniformly process, reduces its processing efficiency, and cannot effectively limit position and carry out multi-process operation, reduces its application range and use efficiency, therefore we propose a copper alloy mould processing equipment. SUMMARY

[0003] The utility model discloses a copper alloy mould processing equipment, can effectively and uniformly feed, so that it can effectively and uniformly process, improves its processing efficiency, and can effectively limit position and carry out multi-process operation, improves its application range and use efficiency.

[0004] In order to achieve the above object, provide a kind of copper alloy mould processing equipment, including: base plate, the top of the base plate is connected with processing box by bolt, and the bottom of processing box is open, the top of the base plate is connected with table block by bolt, the front side and rear side of the table block are respectively provided with horizontal plate, and the top of horizontal plate is connected with several evenly distributed pusher plates by bolt, the bottom of pusher plate is close to the left and right sides respectively by bolt and is connected with vertical plate, and the side opposite to table block of vertical plate is movably connected with Z-shaped plate by pivot and bearing, the side opposite to table block of Z-shaped plate is close to left side and is movably connected with connecting rod by pivot and bearing, and the side opposite to table block of connecting rod is close to top and is movably connected on table block by pivot and bearing.

[0005] According to the copper alloy mould processing equipment, the front side and rear side of the table block are movably connected with two rotating wheels by pivot and bearing, and transmission belt is transmission connected between the two rotating wheels, the side away from the table block of rotating wheel is connected with swing plate, and the side away from the table block of swing plate is movably connected on the right side of Z-shaped plate by pivot and bearing close to bottom.

[0006] According to the copper alloy die machining device, the right side of the table block is provided with a mounting groove, and a double-head motor is connected in the mounting groove through bolts, and the push rod on the rotating wheel on the right side is connected to the output shaft of the double-head motor through the inner ring of the bearing.

[0007] According to the copper alloy die machining device, the machining box body is provided with a through-material groove on each side, and the two through-material grooves are symmetrically arranged on the left and right sides of the central axis of the machining box body.

[0008] According to the copper alloy die machining device, the inner cavity of the machining box body is provided with an electric push rod at the top of each of the left and right sides through bolts in the front-rear direction, and the bottom end of the electric push rod is provided with a positioning plate through bolts.

[0009] According to the copper alloy die machining device, the inner cavity of the machining box body is provided with an electric cylinder at the middle position of each of the left and right sides of the top through bolts, and the bottom end of the push rod of the electric cylinder is provided with a drilling machine through bolts.

[0010] According to the copper alloy die machining device, the inner cavity of the machining box body is provided with an electric cylinder at the middle position of each of the left and right sides of the top through bolts, and the bottom end of the push rod of the electric cylinder is provided with a drilling machine through bolts.

[0011] The above scheme has at least one of the following beneficial effects: the mutual cooperation between the horizontal plate, the material pushing plate, the Z-shaped plate, the connecting rod and the swing plate can effectively and uniformly feed the material, so that the material can be effectively and uniformly machined, the processing efficiency is improved, and the position can be effectively limited and multiple processes can be operated, so that the application range and use efficiency are improved.

[0012] The additional aspects and advantages of the present application will be partially given in the following description, partially will become obvious from the following description, or will be understood through the practice of the present application. BRIEF DESCRIPTION OF DRAWINGS

[0013] The present application will be further described below in combination with the drawings and examples.

[0014] Figure 1 It is a front view of the present application.

[0015] Figure 2 It is Figure 1 a cross-sectional structure schematic view.

[0016] Figure 3 It is Figure 2 an enlarged view of A in

[0017] Figure 4 It is Figure 1Partial side view of the middle block and mounting groove and other components.

[0018] Legend:

[0019] 1, base plate; 2, processing box body; 3, electric push rod; 4, feed slot; 5, block; 6, Z-shaped plate; 7, vertical plate; 8, swing plate; 9, horizontal plate; 10, transmission belt; 11, push plate; 12, connecting rod; 13, rotating wheel; 14, drilling machine; 15, mounting hole; 16, mounting flange; 17, positioning plate; 18, electric cylinder; 19, mounting groove; 20, double-head motor. DETAILED DESCRIPTION

[0020] This part will describe the specific embodiments of the utility model in detail, the preferred embodiments of the utility model are shown in the drawings, the role of the drawings is to supplement the description of the text part with graphics, so that people can intuitively and visually understand each technical feature and the overall technical scheme of the utility model, but it cannot be understood as the limitation of the protection scope of the utility model.

[0021] Reference Figures 1 to 4 , the utility model discloses a copper alloy die processing device, it includes base plate 1, and the top of base plate 1 is connected with processing box body 2 through bolt, and the bottom of processing box body 2 is open, and the both sides of processing box body 2 are provided with feed slot 4, and two feed slots 4 are symmetrically arranged with the center axis of processing box body 2 as the axis of symmetry, and the top of base plate 1 is connected with block 5 through bolt, and the front side and the back of block 5 are provided with horizontal plate 9, and the top of horizontal plate 9 is connected with several evenly distributed push plate 11 through bolt, and the bottom of push plate 11 is close to the both sides and is connected with vertical plate 7 through bolt, and the side, opposite to block 5, of vertical plate 7 is movably connected with Z-shaped plate 6 through pivot and bearing, and the side, opposite to block 5, of Z-shaped plate 6 is movably connected with connecting rod 12 through pivot and bearing, and the side, close to the top, of connecting rod 12 is movably connected on block 5 through pivot and bearing.

[0022] The front side and the back of block 5 are movably connected with two rotating wheels 13 through pivot and bearing, and transmission belt 10 is transmissionally connected between two rotating wheels 13, and the side, away from block 5, of rotating wheel 13 is connected with swing plate 8, and the side, away from block 5, of swing plate 8 is movably connected on the side, close to the right, of Z-shaped plate 6 through pivot and bearing, and the right side of block 5 is provided with mounting groove 19, and double-head motor 20 is connected in mounting groove 19 through bolt, and the end, opposite to block 5, of push rod on the right rotating wheel 13 is connected on the output shaft of double-head motor 20 through the inner ring of bearing. Through the structure, it can effectively and uniformly feed, so that it can effectively and uniformly process, and improve the processing efficiency.

[0023] The inner cavity top of the processing box 2 is connected with the electric push rod 3 through the bolt connection in the front and back direction near the left and right sides, and the bottom end of the electric push rod 3 is connected with the positioning plate 17 through the bolt connection, the middle position of the inner cavity top of the processing box 2 near the left and right sides is connected with the electric cylinder 18 through the bolt connection, and the push rod bottom end of the electric cylinder 18 is connected with the drilling machine 14 through the bolt connection, the middle position of the inner cavity top of the processing box 2 is connected with the mounting flange 16 through the bolt connection, and the mounting hole 15 is arranged on the mounting flange 16. Through the structure, the effective position limitation and multi-process operation can be realized, and the application range and use efficiency are improved.

[0024] Working principle: when the technical scheme is used, the mold is placed on the right side of the top of the table block 5 in sequence, the electric push rod 3 and the electric cylinder 18 extend downward, and drive the positioning plate 17 and the drilling machine 14 to move downward, the positioning plate 17 can be position limited, and the drilling machine 14 can realize drilling, and the slotting machine and other processing mechanisms can be installed on the mounting flange 16, so that the effective position limitation and multi-process operation can be realized, the application range and use efficiency are improved, the double-head motor 20 drives the rotating wheel 13 to rotate, the rotating wheel 13 drives the swing plate 8 to rotate, so that the Z-shaped plate 6 and the vertical plate 7 drive the horizontal plate 9 and the pushing plate 11 can realize uniform right pushing of the mold, so that the effective and uniform feeding can be realized, thereby the effective and uniform processing can be realized, and the processing efficiency is improved.

[0025] The above embodiment of the utility model is described in detail in combination with the drawings, but the utility model is not limited to the above embodiment, and various changes can be made within the knowledge range of ordinary skilled in the art without departing from the purpose of the utility model.

Claims

1. A copper alloy mold processing device, characterized in that, Include: The top of the substrate (1) is bolted with the processing box (2), and the bottom of the processing box (2) is provided with an opening, the top of the substrate (1) is bolted with the table block (5), the front side and the back side of the table block (5) are provided with the horizontal plate (9), and the top of the horizontal plate (9) is bolted with several uniform distribution of the pusher plate (11), the bottom of the pusher plate (11) is close to the left and right sides, respectively, bolted with the vertical plate (7), and the side, opposite to the table block (5), of the vertical plate (7) is movably connected with the Z-shaped plate (6) through the rotating shaft and the bearing, the side, opposite to the table block (5), of the Z-shaped plate (6) is movably connected with the connecting rod (12) through the rotating shaft and the bearing, and the connecting rod (12) is movably connected on the table block (5) through the rotating shaft and the bearing.

2. A copper alloy die machining device according to claim 1, characterized by The front side and the back side of the table block (5) are movably connected with two rotating wheels (13) through the rotating shaft and the bearing, the two rotating wheels (13) are transmission connected with the transmission belt (10), the side, away from the table block (5), of the rotating wheel (13) is connected with the swing plate (8), and the side, away from the table block (5), of the swing plate (8) is movably connected on the Z-shaped plate (6) through the rotating shaft and the bearing.

3. A copper alloy die machining device according to claim 2, wherein The right side of the table block (5) is provided with the mounting groove (19), and the double-head motor (20) is bolted in the mounting groove (19), and the push rod on the rotating wheel (13) on the right side is connected with the output shaft of the double-head motor (20) through the inner ring of the bearing.

4. A copper alloy die machining device according to claim 3, wherein The processing box (2) is provided with the feeding slot (4) on the two sides, and the two feeding slots (4) are symmetrically arranged on the center axis of the processing box (2).

5. A copper alloy die machining device according to claim 4, wherein The inner cavity of the processing box (2) is bolted with the electric push rod (3) through the screw on the top near the left and right sides in the front and back directions, and the bottom end of the electric push rod (3) is bolted with the positioning plate (17).

6. A copper alloy die machining device according to claim 5, wherein The middle position of the inner cavity of the processing box (2) is bolted with the electric cylinder (18) through the screw near the left and right sides on the top, and the push rod at the bottom of the electric cylinder (18) is bolted with the drilling machine (14).

7. A copper alloy die machining device according to claim 6, wherein The inner cavity of the processing box (2) is bolted with the mounting flange (16) through the screw on the top, and the mounting hole (15) is formed in the mounting flange (16).