Fusing pattern-punching die-casting equipment

By designing a blow-breaking die-casting equipment, the continuous processing of the blow-breaking, blow-breaking and die-casting processes of steel ropes in one device is achieved, which solves the inefficiency problems caused by multiple equipment in the prior art and improves processing efficiency.

CN223056606UActive Publication Date: 2025-07-04CHONGQING XIANGRUIJIE AUTOMATION EQUIP CO LTD
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Patent Information

Application Number
CN202422037873.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-22
Publication Date
2025-07-04
Estimated Expiration
2034-08-22

AI Technical Summary

Technical Problem

The existing wire rope die-casting processing requires multiple equipment, resulting in inefficient processing.

Method used

A blow-breaking die-casting equipment is designed, including a blow-breaking component, a blow-breaking component and a die-casting component arranged on the base in a first direction, and the continuous processing of the steel rope is realized by conveying the component, including blow-breaking, blow-breaking and die-casting processes.

Benefits of technology

Multiple process flows of steel ropes are achieved in one equipment, improving processing efficiency and reducing the risk of steel rope falling off and dragging.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model particularly relates to fusing, patterning and die-casting equipment, and belongs to the technical field of patterning equipment. The fusing, patterning and die-casting equipment comprises a first base, a fusing assembly, a patterning assembly, a die-casting assembly and a conveying assembly. The fusing assembly, the patterning assembly and the die-casting assembly are arranged on the first base in the first direction. The conveying assembly comprises a bearing face moving in the first direction, and the bearing face is used for containing workpieces. The fusing assembly, the patterning assembly and the die-casting assembly are all arranged on the first base in the first direction, so that the steel rope can be sequentially subjected to fusing, patterning and die-casting operation, multiple technological processes are completed through one device, and the machining efficiency is improved.
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Description

Technical Field

[0001] The utility model belongs to the technical field of flower - making equipment, and particularly relates to a fusing and flower - making die - casting equipment. Background Art

[0002] The fusing and flower - making die - casting process for steel wire ropes refers to extruding the end of a steel wire rope to increase the volume of the end, and then die - casting a head at the end of the steel wire rope. After flower - making, the connection strength between the steel wire rope and the head can be increased.

[0003] In the existing processing technology, when performing fusing and flower - making die - casting processing, multiple devices are required. This also causes the steel wire rope to be transferred among multiple workstations during processing, reducing the processing efficiency. Summary of the Utility Model

[0004] The purpose of the utility model is to provide a fusing and flower - making die - casting equipment, and the chassis structure has good portability.

[0005] To achieve the above - mentioned utility model purpose, the technical solution adopted by the utility model is: The embodiment of the present application provides a fusing and flower - making die - casting equipment, which includes a first base, a fusing component, a flower - making component, a die - casting component, and a conveying component. The fusing component, the flower - making component, and the die - casting component are arranged in sequence along a first direction on the first base. The conveying component includes a bearing surface that moves along the first direction, and the bearing surface is used for placing workpieces.

[0006] In some embodiments, the conveying component includes a bearing conveyor belt.

[0007] In some embodiments, the fusing component includes a first slide rail and two electrode components. The first slide rail is arranged on the first base. The two electrode components are arranged along the extension direction of the first slide rail, and the two electrode components are arranged oppositely. The electrode component includes a second base and two groups of electrode parts. In the two electrode components, at least one second base is slidably connected to the first slide rail. The two groups of electrode parts are arranged oppositely along a second direction on the second base, and the two groups of electrode parts are movably arranged along the second direction on the second base.

[0008] In some embodiments, the electrode part includes an electrode seat and a plurality of electrode heads. The electrode seat is movably arranged along the second direction on the second base, and the plurality of electrode heads are arranged on the electrode seat. The electrode heads of the two groups of electrode parts are arranged oppositely one by one.

[0009] In some embodiments, the flower - stamping assembly includes a third base, a flower - stamping die head, and a flower - stamping head. The third base is disposed on the first base. The flower - stamping die head includes an upper die head and a lower die head. The lower die head is disposed on the third base, and the upper die head is movably disposed on the third base along a second direction. The upper die head and the lower die head are oppositely disposed along the second direction, and the upper die head and the lower die head cooperate to clamp a workpiece. The flower - stamping head is movably disposed on the third base along a third direction. The flower - stamping die head and the flower - stamping head are oppositely disposed along the third direction, and the flower - stamping head is used to apply pressure to the end of the workpiece.

[0010] In some embodiments, the lower die head is provided with a positioning groove, the upper die head is provided with a mating portion, the positioning groove is provided with a positioning block, and the positioning block and the mating portion cooperate to clamp the workpiece.

[0011] In some embodiments, the die - casting assembly includes a fifth base, a lower die - casting mold, and an upper die - casting mold. The fifth base is disposed on the first base. The lower die - casting mold is disposed on the fifth base. The upper die - casting mold is oppositely disposed with respect to the lower die - casting mold, and the upper die - casting mold is movably disposed on the fifth base. The lower die - casting mold and the upper die - casting mold are respectively provided with cavities, and the lower die - casting mold and the upper die - casting mold are respectively provided with injection notches. The two injection notches are closed to form an injection channel.

[0012] In some embodiments, the die - casting assembly further includes a melting component. The melting component includes a crucible, a shot chamber, a piston, and a shot channel. The crucible is movably disposed on the fifth base. The shot chamber is at least partially received in the crucible. An inlet is provided on the side wall of the shot chamber. The piston is movably and sealingly disposed in the shot chamber. Along the moving direction of the piston, the inlet includes a second side and a third side. The piston is configured to be able to move to the second side and the third side. The shot channel is in communication with the shot chamber.

[0013] In some embodiments, a deburring assembly is further included. The deburring assembly is disposed on the first base and is used to remove the scraps at the corners of the workpiece after die - casting.

[0014] In some embodiments, a feeding assembly is further included. The feeding assembly includes a frame, a winding roller, a first pulley, a second pulley, and a sliding portion. The winding roller is rotatably connected to the frame. The first pulley is rotatably connected to the frame. The second pulley is rotatably connected to the sliding portion. The sliding portion is movably disposed on the frame so that the distance between the first pulley and the second pulley can be adjusted.

[0015] The utility model has the following beneficial effects:

[0016] Since the fusing assembly, the flower - stamping assembly, and the die - casting assembly are all arranged along the first direction on the first base, the steel rope can sequentially perform fusing, flower - stamping, and die - casting operations, and one device completes multiple process flows, improving the processing efficiency. Description of the Drawings

[0017] Figure 1Schematic diagram of the structure of the fuse embossing die-casting equipment of the present utility model;

[0018] Figure 2 Schematic diagram of the structure of the fuse component of the present utility model;

[0019] Figure 3 For Figure 2 Enlarged view of part A of;

[0020] Figure 4 Schematic diagram of the cooperation between the electrode head and the electrode seat of the present utility model;

[0021] Figure 5 Schematic diagram of the structure of the traction component of the present utility model;

[0022] Figure 6 Schematic diagram of the structure of the embossing component of the present utility model;

[0023] Figure 7 For Figure 6 Enlarged view of part B of;

[0024] Figure 8 Schematic diagram of the structure of the die-casting component of the present utility model;

[0025] Figure 9 Schematic diagram of the cooperation between the crucible and the injection chamber of the present utility model;

[0026] Figure 10 Schematic diagram of the structure of the feeding component (showing the deburring component) of the present utility model;

[0027] Figure 11 For Figure 10 Enlarged view of part C of;

[0028] Figure 12 Schematic diagram of the structure of the feeding component of the present utility model;

[0029] Figure 13 Schematic diagram of the structure of the detection component of the present utility model;

[0030] Figure 14 For Figure 13 Enlarged view of part D of.

[0031] Reference numerals: 1 - first base, 2 - fusing component, 21 - first slide rail, 22 - second base, 23 - electrode base, 24 - electrode head, 25 - protruding part, 26 - first avoidance groove, 3 - texturing component, 31 - third base, 32 - lower die head, 33 - upper die head, 34 - lead screw, 35 - second slide rail, 36 - positioning block, 4 - detection component, 41 - fourth base, 42 - first detection part, 43 - second detection part, 44 - lower detection fixture, 45 - upper detection fixture, 46 - limiting part, 47 - second avoidance groove, 5 - die-casting component, 51 - fifth base, 52 - upper die-casting mold, 53 - lower die-casting mold, 54 - injection channel, 55 - crucible, 56 - injection cavity, 57 - piston, 58 - inlet, 6 - deburring component, 61 - sixth base, 62 - trimming die, 63 - recessed part, 64 - ejector pin part, 7 - feeding component, 71 - slideway, 72 - conveying conveyor belt, 73 - baffle, 8 - traction component, 81 - sliding seat, 82 - third slide rail, 83 - first clamping part, 84 - rack, 85 - helical gear, 9 - conveying component, 10 - moving component, 11 - material feeding component, 111 - frame body, 112 - first pulley, 113 - sliding part, 114 - second pulley, 115 - winding roller, 116 - supporting roller. Detailed implementation manners

[0032] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. If not specifically specified, the technical means used in the embodiments are conventional means well known to those skilled in the art.

[0033] In the description of the present invention, it should be understood that the orientation or positional relationship indicated by the terms "longitudinal", "transverse", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc. is based on the orientation or positional relationship shown in the accompanying drawings, and is only for the convenience of describing the present invention, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of the present invention.

[0034] See Figure 1 、 Figure 2 、 Figure 3 and Figure 4 , the embodiment of the present application provides a fusing, texturing and die-casting device, including a first base 1, a fusing component 2, a texturing component 3, a die-casting component 5 and a conveying component 9. The fusing component 2, the texturing component 3 and the die-casting component 5 are arranged along a first direction on the first base 1. The conveying component 9 includes a bearing surface that moves along the first direction, and the bearing surface is used to place workpieces.

[0035] The fusing, knurling and die-casting equipment according to the embodiments of the present application can be used for fusing, knurling and die-casting processing of steel ropes.

[0036] The first direction can be the direction shown by the X-axis in the figure, and the first direction can be parallel to the horizontal direction.

[0037] The bearing surface of the conveying component 9 is used for placing the steel rope, reducing the risk of the steel rope falling off or being dragged due to the excessive length of the steel rope and the steel rope being suspended.

[0038] Since the fusing component 2, the knurling component 3 and the die-casting component 5 are all arranged along the first direction on the first base 1, the steel rope can be successively subjected to fusing, knurling and die-casting operations, and a single device can complete multiple technological processes, improving the processing efficiency.

[0039] In some embodiments, the conveying component 9 includes a bearing conveyor belt.

[0040] The bearing conveyor belt can be a belt conveyor. The belt surface of the bearing conveyor belt is used for supporting the steel rope, reducing the risk of the steel rope falling off or being dragged due to the excessive length of the steel rope and the steel rope being suspended.

[0041] In some embodiments, the fusing component 2 includes a first slide rail 21 and two electrode assemblies. The first slide rail 21 is arranged on the first base 1. Along the extending direction of the first slide rail 21, the two electrode assemblies are arranged oppositely. The electrode assembly includes a second base 22 and two groups of electrode components. Among the two electrode assemblies, at least one second base 22 of the electrode assembly is slidably connected to the first slide rail 21. The two groups of electrode components are arranged oppositely along the second direction on the second base 22, and the two groups of electrode components are movably arranged along the second direction on the second base 22.

[0042] The second direction can be the direction shown by the Z-axis in the figure, and the second direction can be the vertical direction.

[0043] The two electrode components are movably arranged on the second base 22, so that the two electrode components can be closed and separated.

[0044] Connect the electrode components of the two electrode assemblies to a power supply. When the electrode components contact the steel rope, the steel rope can be fused.

[0045] At least one second base 22 of the two electrode assemblies is slidably connected to the first slide rail 21, so that the distance between the two electrode assemblies can be adjusted. When the steel rope is fused, separate the two electrode assemblies, so that a conical tip can be generated at the fused part of the steel rope, facilitating the insertion of the end of the steel rope into the hole during the subsequent processing.

[0046] In some embodiments, the electrode component includes an electrode base 23 and a plurality of electrode heads 24. The electrode base 23 is movably disposed on the second base 22 along the second direction, and the plurality of electrode heads 24 are disposed on the electrode base 23. The electrode heads 24 of the two sets of electrode components are arranged in a one-to-one correspondence.

[0047] The electrode base 23 can be slidably connected to the second base 22 through a guide rod.

[0048] The electrode head 24 is used to contact the steel rope so that the steel rope can be heated. The specific principle of the electrode head 24 fusing the steel rope is well known to those skilled in the art and will not be elaborated here.

[0049] The plurality of electrode heads 24 are disposed on the electrode base 23 so that the plurality of electrode heads 24 can be powered through one electrode base 23, that is, the plurality of electrode heads 24 can be electrically connected to the electrode base 23.

[0050] Each motor base is provided with a plurality of electrode heads 24 so that two electrode assemblies can fuse multiple steel ropes simultaneously.

[0051] In some embodiments, the electrode head 24 includes a first side facing the workpiece. The first side is provided with a protrusion 25, and the protrusion 25 is provided with a receiving groove. Between two opposite electrode heads 24, the two protrusions 25 are arranged in a staggered manner along the extension direction of the first slide rail 21. Between two opposite electrode heads 24, one of them is provided with a first avoidance groove 26 so that when the two electrode heads 24 are closed, the two protrusions 25 are arranged along the extension direction of the first slide rail 21.

[0052] The receiving groove can be in a V-shaped structure, and the receiving groove facilitates positioning the steel rope at the position of the electrode head 24.

[0053] The two protrusions 25 are arranged in a staggered manner so that when the two opposite electrode heads 24 are closed, they can clamp the steel rope.

[0054] The first avoidance groove 26 is used to avoid the protrusion 25 so that the two opposite electrode heads 24 can abut against each other.

[0055] In some embodiments, it further includes a traction assembly 8. The traction assembly 8 includes a sliding seat 81 and a third slide rail 82. The extension direction of the third slide rail 82 is parallel to the extension direction of the first slide rail 21. The sliding seat 81 is slidably connected to the third slide rail 82, and the sliding seat 81 is provided with a first clamping portion 83.

[0056] The first clamping portion 83 is used to clamp the steel rope. The first clamping portion 83 can select a suitable structure among existing structures, and its principle and working process are well known to those skilled in the art and will not be elaborated here.

[0057] Under the action of the third slide rail 82, the sliding seat 81 can move relative to the first base 1, so that the first clamping portion 83 can traction the steel rope to move. After one end of the steel rope passes between two opposite electrode heads 24, the steel rope is clamped by the first clamping portion 83 and traction the steel rope to move, which is convenient for the length fixing operation of the steel rope.

[0058] In some embodiments, the first base 1 is further provided with a rack 84. The extending direction of the rack 84 is parallel to the extending direction of the third slide rail 82. A gear is rotatably arranged on the sliding seat 81, and the gear meshes with the rack 84.

[0059] The gear meshes with the rack 84, so that when the gear rotates, the sliding seat 81 can move along the third slide rail 82, achieving the purpose of driving the sliding seat 81 to move.

[0060] In some embodiments, the gear is a helical gear 85 and the rack 84 is a helical rack 84, so that the meshing performance of the gear and the rack 84 is good. Moreover, when meshing, the contact ratio is large, increasing the service life of the gear and the rack 84.

[0061] In some embodiments, the flanging assembly 3 includes a third base 31, a flanging die head and a flanging head. The third base 31 is arranged on the first base 1. The flanging die head includes an upper die head 33 and a lower die head 32. The lower die head 32 is arranged on the third base 31. The upper die head 33 is movably arranged on the third base 31 along the second direction. The upper die head 33 and the lower die head 32 are oppositely arranged along the second direction, and the upper die head 33 and the lower die head 32 cooperate to clamp the workpiece. The flanging head is movably arranged on the third base 31 along the third direction. The flanging die head and the flanging head are oppositely arranged along the third direction, and the flanging head is used to press the end of the workpiece.

[0062] The third direction may be the direction shown by the Y axis in the figure. The first direction, the second direction and the third direction may be perpendicular to each other in pairs.

[0063] The upper die head 33 and the lower die head 32 clamp the steel rope, so that the steel rope can be fixed on the third base 31.

[0064] When the steel rope is fixed, the flanging head moves towards the end of the steel rope and presses the end of the steel rope, so that the end can be formed to complete the flanging operation.

[0065] In some embodiments, the lower die head 32 is provided with a positioning groove, the upper die head 33 is provided with a mating portion, and the positioning groove is provided with a positioning block 36. The positioning block 36 and the mating portion cooperate to clamp the workpiece.

[0066] The positioning groove is used to place the steel rope. The positioning block 36 is placed in the positioning groove, and the steel rope is positioned by the positioning block 36, improving the positioning accuracy. Moreover, the processing difficulty of the positioning groove is reduced.

[0067] The positioning block 36 can be provided with a V-shaped groove. When the mating part and the positioning block 36 are closed, the steel rope can be clamped.

[0068] In some embodiments, the first base 1 is further provided with a second slide rail 35. The third base 31 is slidably connected to the second slide rail 35. A lead screw 34 is rotatably provided on the first base 1, and the lead screw 34 is threadedly connected to the third base 31.

[0069] By rotating the lead screw 34, the third base 31 can be driven to move relative to the first base 1, facilitating the adjustment of the position of the embossing assembly 3 for maintenance operations on the embossing assembly 3.

[0070] In some embodiments, the die-casting assembly 5 includes a fifth base 51, a die-casting lower mold 53, and a die-casting upper mold 52. The fifth base 51 is provided on the first base 1. The die-casting lower mold 53 is provided on the fifth base 51. The die-casting upper mold 52 is disposed opposite to the die-casting lower mold 53. The die-casting upper mold is movably provided on the fifth base 51. The die-casting lower mold 53 and the die-casting upper mold 52 are respectively provided with cavities. The die-casting lower mold 53 and the die-casting upper mold 52 are respectively provided with injection notches, and the two injection notches are closed to form an injection channel.

[0071] The cavities of the die-casting lower mold 53 and the die-casting upper mold 52 are closed to form a closed chamber. The end portion of the steel rope after embossing is received in the closed chamber, and then the melted die-casting material is input into the closed chamber so that the die-casting material can be combined with the end portion of the steel rope.

[0072] The cavity can be provided with a notch channel for accommodating the steel rope, so that when the two cavities are closed, the steel rope can be partially disposed outside the closed chamber.

[0073] The injection channel is used to inject the melted die-casting material into the closed chamber.

[0074] In some embodiments, the die-casting assembly 5 further includes a melting member, which includes a crucible 55, a shot chamber 56, a piston 57, and a shot channel 54. The crucible 55 is movably provided on the fifth base 51. The shot chamber 56 is at least partially received in the crucible 55. An inlet 58 is provided on the side wall surface of the shot chamber 56. The piston 57 is movably and sealingly provided in the shot chamber 56. Along the moving direction of the piston 57, the inlet 58 includes a second side and a third side. The piston 57 is configured to be able to move to the second side and the third side. The shot channel 54 is in communication with the shot chamber 56.

[0075] A heating member can be provided in the crucible 55. The die-casting material is placed in the crucible 55 so that the die-casting material can be melted.

[0076] The shot chamber 56 is provided with an inlet 58 so that the die-casting material in the crucible 55 can enter the shot chamber 56.

[0077] When the crucible 55 moves, the injection passage 54 can be docked and communicated with the pouring passage, or can be separated from the pouring passage.

[0078] The piston 57 can be respectively arranged on the second side and the third side of the inlet 58, so that the die-casting material can be pumped into the injection passage 54 through the piston 57. For example, the injection passage 54 can be arranged on the second side of the inlet 58. When the piston 57 moves to the third side, the die-casting material can enter the injection cavity 56 from the inlet 58. Then when the piston 57 moves from the third side to the second side, the die-casting material can be pressed into the injection passage 54.

[0079] In some embodiments, the feeding assembly 7 includes a slideway 71 and a conveying conveyor belt 72. The slideway 71 is inclined. The slideway 71 includes an input end and an output end. The vertical height of the input end is higher than that of the output end. The slideway 71 is used to guide the material to the crucible 55, and the conveying conveyor belt 72 is used to convey the material to the input end.

[0080] The conveying conveyor belt 72 can be a belt conveyor, and its structure and working principle are well-known to those skilled in the art and will not be elaborated here. By arranging the conveying conveyor belt 72 obliquely, the material can be conveyed to the input end.

[0081] The vertical height of the input end of the slideway 71 is higher than that of the output end, so that the material can slide from the input end to the output end. The output end is arranged at the opening of the crucible 55, so that the material can enter the crucible 55.

[0082] In some embodiments, the conveying conveyor belt 72 includes a low end and a high end. A baffle 73 is arranged at the low end. The baffle 73 and the bearing surface of the conveying conveyor belt 72 form a V-shaped structure.

[0083] The V-shaped structure formed by the baffle and the bearing surface reduces the risk of the material falling out of the conveying conveyor belt 72.

[0084] In some embodiments, a feeding component 11 is further included. The feeding component 11 includes a frame 111, a winding roller 115, a first pulley 112, a second pulley 114 and a sliding part 113. The winding roller 115 is rotatably connected to the frame 111, the first pulley 112 is rotatably connected to the frame 111, the second pulley 114 is rotatably connected to the sliding part 113, and the sliding part 113 is movably arranged on the frame 111 so that the distance between the first pulley 112 and the second pulley 114 can be adjusted.

[0085] The winding roller 115 winds the steel rope raw material thereon.

[0086] The circumferential walls of the first pulley 112 and the second pulley 114 may be provided with grooves, and the steel rope may be wound around the first pulley 112 and the second pulley 114 in sequence, and the steel rope can be guided by the first pulley 112 and the second pulley 114.

[0087] Since the sliding part 113 is slidably connected to the frame 111, the distance between the first pulley 112 and the second pulley 114 can be adjusted, so that the first pulley 112 and the second pulley 114 can play a buffering role. Since the winding roller 115 may not be able to unwind the steel rope in time, when the distance between the first pulley 112 and the second pulley 114 becomes smaller, the steel rope buffered by the first pulley 112 and the second pulley 114 can meet the processing and feeding speed requirements.

[0088] In some embodiments, the frame 111 is provided with two support rollers 116 at intervals, the support rollers 116 are rotatably connected to the frame 111, and the winding roller 115 is arranged between the two support rollers 116.

[0089] The winding roller 115 is supported by two support rollers 116, so that the winding roller 115 can be rotatably connected to the frame 111, and it is convenient for the disassembly and assembly of the winding roller 115.

[0090] In some embodiments, the frame 111 is further provided with a guide wheel.

[0091] The guide wheel facilitates guiding the steel rope to the fusing assembly 2.

[0092] In some embodiments, it further includes a detection assembly 4, and the detection assembly 4 is arranged on the first base 1 for detecting workpieces.

[0093] The fusing assembly 2, the flower-forming assembly 3, the detection assembly 4 and the die-casting assembly 5 can be arranged in sequence along the first direction on the first base 1.

[0094] In some embodiments, the detection assembly 4 includes a fourth base 41, a first detection part 42 and a second detection part 43. The first detection part 42 is movably arranged on the fourth base 41 along the second direction, and the second detection part 43 is movably arranged on the fourth base 41 along the third direction, and the second direction is perpendicular to the third direction.

[0095] Fix the steel rope after flower-forming on the fourth base 41, and then detect the steel rope by the first detection part 42 and the second detection part 43 to judge whether the end size of the steel rope after flower-forming meets the requirements.

[0096] The first detection part 42 and the second detection part 43 can be detection cameras, and the detection principle of the detection cameras is well known to those skilled in the art and will not be elaborated here.

[0097] The first detection unit 42 can detect the steel rope along the radial direction of the steel rope, and the second detection unit 43 can detect the steel rope along the axial direction of the steel rope.

[0098] In some embodiments, a moving assembly 10 may further be included. The moving assembly 10 includes a moving slide rail and a clamping arm. The clamping arm moves through the moving slide rail, so that the clamping arm can move in space, enabling the steel rope to be moved to each processing assembly for processing. The clamping arm is used to clamp the steel rope. The specific structure of the clamping arm can be selected from existing products, and its structure and working principle are well-known to those skilled in the art, and will not be elaborated here.

[0099] In some embodiments, the detection assembly 4 further includes a detection lower fixture 44 and a detection upper fixture 45. The detection lower fixture 44 is disposed on the fourth base 41. The detection upper fixture 45 is disposed opposite to the detection lower fixture 44. The detection upper fixture 45 is movably disposed on the fourth base 41. The detection upper fixture 45 and the detection lower fixture 44 cooperate to clamp the workpiece. The detection lower fixture 44 is provided with a second avoidance groove 47, and the detection upper fixture 45 is provided with an abutting portion. The second avoidance groove 47 and the abutting portion are disposed opposite to each other.

[0100] The second avoidance groove 47 serves to avoid the abutting portion, so that the abutting portion can tightly abut against the steel rope to fix the steel rope to the fourth base 41.

[0101] In some embodiments, the detection lower fixture 44 is provided with two limiting portions 46 at intervals. The second avoidance groove 47 is disposed between the two limiting portions 46. The limiting portion 46 is provided with a notch.

[0102] The limiting portion 46 is used to position the abutting portion. At the same time, the notch of the limiting portion 46 can be used to place the steel rope, so that the steel rope can be fixed to the detection lower fixture.

[0103] In some embodiments, a deburring assembly 6 is further included. The deburring assembly 6 is disposed on the first base 1 and is used to remove the corner materials after die-casting of the workpiece.

[0104] The fusing assembly 2, the embossing assembly 3, the detection assembly 4, the die-casting assembly 5, and the deburring assembly 6 can be arranged in a first direction on the first base 1.

[0105] In some embodiments, the deburring assembly 6 includes a sixth base 61, a trimming die 62, and a thimble portion 64. The trimming die 62 is disposed on the sixth base 61. The trimming die 62 includes a first surface for placing the tool, and the first surface is provided with a recess 63. The thimble portion 64 is disposed opposite to the recess 63. The thimble portion 64 is movably disposed on the sixth base 61.

[0106] When the steel rope after die-casting is placed on the first surface, due to the effect of the scrap, the end part of the steel rope after die-casting cannot enter the recess 63. When the ejector pin part 64 moves towards the recess 63, a force can be applied to the end part of the steel rope after die-casting, so that the end part of the steel rope after die-casting can be separated from the scrap.

[0107] The above embodiments only describe the preferred mode of the present invention, and do not limit the scope of the present invention. Without departing from the design spirit of the present invention, various deformations, variations, modifications, and substitutions made by those of ordinary skill in the art to the technical solutions of the present invention shall fall within the protection scope determined by the claims of the present invention.

Claims

1. A fusing and texturing die-casting device, characterized in that, Comprising: The first base (1); The fusing component (2); The marking component (3); The die-casting component (5), the fusing component (2), the marking component (3) and the die-casting component (5) are arranged along the first direction on the first base (1); The conveying component (9), including a bearing surface moving along the first direction, and the bearing surface is used for placing workpieces.

2. The fusing and embossing die-casting equipment according to claim 1, characterized in that, The conveying component (9) includes a bearing conveyor belt.

3. The fusing and texturing die-casting equipment according to claim 1, characterized in that, The fusing component (2) includes: The first slide rail (21), arranged on the first base (1); Two electrode components, along the extending direction of the first slide rail (21), the two electrode components are arranged oppositely, the electrode component includes a second base (22) and two groups of electrode parts, in the two electrode components, at least one of the second bases (22) is slidably connected to the first slide rail (21), and the two groups of electrode parts are arranged oppositely along the second direction on the second base (22), and the two groups of electrode parts are movably arranged along the second direction on the second base (22).

4. The fusing and texturing die-casting equipment according to claim 3, wherein, The electrode part includes: The electrode seat (23), movably arranged along the second direction on the second base (22); A plurality of electrode heads (24), arranged on the electrode seat (23), and the electrode heads (24) of the two groups of electrode parts are arranged oppositely one by one.

5. The fusing and texturing die-casting equipment according to claim 1, characterized in that The marking component (3) includes: The third base (31), arranged on the first base (1); The marking die head, including an upper die head (33) and a lower die head (32), the lower die head (32) is arranged on the third base (31), the upper die head (33) is movably arranged along the second direction on the third base (31), the upper die head (33) and the lower die head (32) are arranged oppositely along the second direction, and the upper die head (33) and the lower die head (32) cooperate to clamp the workpiece; The marking head, movably arranged along the third direction on the third base (31), the marking die head and the marking head are arranged oppositely along the third direction, and the marking head is used for pressing on the end of the workpiece.

6. The fusing and embossing die-casting device according to claim 5, characterized in that, The lower die head (32) is provided with a positioning groove, the upper die head (33) is provided with a matching part, and the positioning groove is provided with a positioning block (36), and the positioning block (36) and the matching part cooperate to clamp the workpiece.

7. The fuse embossing die-casting equipment according to claim 1, characterized in that, The die-casting component (5) includes: The fifth base (51), arranged on the first base (1); The die-casting lower die (53), arranged on the fifth base (51); The die-casting upper die (52), arranged oppositely to the die-casting lower die (53), the die-casting upper die is movably arranged on the fifth base (51), the die-casting lower die (53) and the die-casting upper die (52) are respectively provided with cavities, and the die-casting lower die (53) and the die-casting upper die (52) are respectively provided with injection notches, and the two injection notches are closed to form an injection channel.

8. The fusing and texturing die-casting device according to claim 7, wherein The die-casting component (5) further includes a melting component, and the melting component includes: The crucible (55), movably arranged on the fifth base (51); The injection cavity (56) is at least partially received in the crucible (55), and an inlet (58) is provided on a side wall surface of the injection cavity (56). A piston (57) is movably and sealingly disposed in the injection cavity (56). Along the moving direction of the piston (57), the inlet (58) includes a second side and a third side, and the piston (57) is configured to be movable to the second side and the third side. An injection channel (54) communicates with the injection cavity (56).

9. The fusing and embossing die-casting equipment according to claim 1, characterized in that, It further includes a deburring assembly (6). The deburring assembly (6) is disposed on the first base (1) and is used to remove the burrs of the workpiece after die casting.

10. The fusing and texturing die-casting equipment according to claim 1, wherein, It further includes a feeding assembly (11). The feeding assembly (11) includes: A frame body (111); A winding roller (115) rotatably connected to the frame body (111); A first pulley (112) rotatably connected to the frame body (111); A second pulley (114); A sliding part (113). The second pulley (114) is rotatably connected to the sliding part (113), and the sliding part (113) is movably disposed on the frame body (111) so that the distance between the first pulley (112) and the second pulley (114) can be adjusted.