Metal material cutting device
By designing a pusher arm and clamping plate guide structure, automatic feeding and continuous cutting of metal materials are achieved, solving the problem of low efficiency of manual feeding in existing technologies and improving cutting efficiency and accuracy.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-31
- Publication Date
- 2026-03-24
AI Technical Summary
Existing metal material cutting equipment requires multiple manual feedings, resulting in low cutting efficiency and failing to meet the needs of large-scale production.
A metal material cutting device was designed, which uses a pusher arm and a first drive mechanism to achieve automatic feeding, and combines a clamping plate and a guide post to guide the material, ensuring cutting accuracy and adapting to materials of different sizes.
It enables automatic feeding and continuous multiple cutting of metal materials, reducing manual intervention, improving cutting efficiency and precision, and adapting to metal materials of different sizes.
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Figure CN224026589U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model belongs to cutting equipment technical field, concretely relates to a metal material cutting device. BACKGROUND
[0002] Metal materials, such as pure metal, alloy and the like, are widely used in various industrial fields, especially the use of steel and iron is most common, and cutting operation is an indispensable link in the processing of metal materials.
[0003] However, the existing metal material cutting device still has some problems and deficiencies in actual application, for example, in the processing of metal bar materials, pipe materials and the like, multiple cutting is needed, and the traditional cutting device often relies on manual feeding adjustment after single cutting of materials, which not only is cumbersome to operate, but also leads to low cutting efficiency, and cannot meet the needs of large-scale production, and therefore, the present application provides a metal material cutting device. UTILITARY MODEL
[0004] In view of the deficiencies of the prior art, the utility model aims at providing a metal material cutting device, which aims at solving the technical problems of low efficiency of metal material cutting relying on manual feeding under the prior art.
[0005] TECHNICAL SCHEME
[0006] In order to solve the above technical problems, the utility model provides a metal material cutting device, which comprises a machining table, a mounting arm is fixed on one side of the top of the machining table, and a cutting assembly is mounted on the mounting arm, one end of the machining table is provided with a push arm, a first driving mechanism for driving the push arm to move along the length direction of the machining table is arranged on the machining table, a push plate is arranged on the push arm, one side of the push plate facing the mounting arm is provided with a pair of clamping plates, and a pair of guide columns are arranged on the machining table close to the mounting arm.
[0007] Preferably, the first driving mechanism comprises a pair of first fixed plates fixed on the lower surface of the machining table and a one-way screw rod rotatably mounted between the pair of first fixed plates, the one-way screw rod is distributed along the length direction of the machining table, one of the first fixed plates is provided with a first motor for driving the one-way screw rod to rotate, one end of the push arm is horizontally located above the machining table, the other end of the push arm is bent downward and horizontally extends below the machining table and is threadedly connected with the one-way screw rod.
[0008] Preferably, a slide rod is fixedly connected between the pair of first fixed plates, the slide rod is distributed in parallel with the one-way screw rod, and the push arm is slidably connected with the slide rod.
[0009] Preferably, the push plate is arranged at one end of the push arm above the processing table, and a third driving mechanism for driving a pair of clamping plates to move towards or away from each other is arranged on the push plate.
[0010] Preferably, the second driving mechanism comprises a pair of second fixed plates fixed to the lower surface of the processing table and a first bidirectional screw rod rotatably arranged between the pair of second fixed plates, a second motor for driving the first bidirectional screw rod to rotate is arranged on the second fixed plate, the first bidirectional screw rod is distributed along the width direction of the processing table, a pair of first sliding blocks are symmetrically sleeved on the first bidirectional screw rod, the first sliding blocks are in sliding fit with the lower surface of the processing table, and an auxiliary groove aligned with the first bidirectional screw rod is formed in the processing table, and the bottom ends of the pair of guide columns are arranged on the pair of first sliding blocks through the auxiliary groove.
[0011] Preferably, the guide columns are vertically distributed, and the bottom ends of the guide columns are rotatably connected with the first sliding blocks.
[0012] Preferably, a sliding cavity is formed in the push plate, the third driving mechanism comprises a second bidirectional screw rod rotatably arranged in the sliding cavity and a pair of second sliding blocks slidingly arranged in the sliding cavity, the second bidirectional screw rod is distributed along the width direction of the processing table, the pair of second sliding blocks are symmetrically sleeved on the second bidirectional screw rod, a hexagonal sleeve coaxially connected with the second bidirectional screw rod is arranged at the end of the push plate, a guide groove is formed in the side of the push plate facing the clamping plates, and the pair of clamping plates are connected with the pair of second sliding blocks through the guide groove.
[0013] Preferably, the assembly arm is arranged at the side of one end of the processing table, the top end of the assembly arm is bent towards one side of the processing table and is vertically provided with a hydraulic push rod, the cutting assembly comprises a shell arranged at the telescopic end of the hydraulic push rod, a cutting blade rotatably arranged in the shell and a cutting motor arranged on the shell and used for driving the cutting blade to rotate, a vertical rod is movably arranged at the top end of the assembly arm, the bottom end of the vertical rod is fixedly connected with the shell, a dust collector is arranged at the bottom end of the assembly arm, and a cutting groove aligned with the cutting blade is formed in the processing table.
[0014] Beneficial effects
[0015] Compared with the prior art, the beneficial effects of the utility model lie in that:
[0016] The utility model discloses a push arm and the first driving mechanism are arranged, and metal pipes or bars are placed on the processing table along the length direction of the processing table, the cutting motor is started to drive the cutting blade to rotate at high speed, the hydraulic push rod pushes the shell to move downwards, and the material can be cut, wherein the first driving mechanism drives the push arm to push the push plate to move the material towards the cutting blade, the distance of pushing the material is controlled, automatic feeding and continuous multiple cutting can be realized, manual intervention is reduced, and the cutting efficiency is improved.
[0017] The utility model discloses through the setting of the clamping plate and the guide column, the tail end of material is put between a pair of clamping plates, and the tail end of material can be clamped by using third drive mechanism and driving a pair of clamping plates to close, and a pair of guide columns abut on the both sides of material respectively by using second drive mechanism and driving, and a pair of guide columns and a pair of clamping plates cooperate, can guide the push movement of material, prevent the deviation during the material push and influence cutting accuracy, and the structure design can adapt to the metal material of different sizes. BRIEF DESCRIPTION OF DRAWINGS
[0018] In order to more clearly illustrate the technical scheme in the embodiment of the present application or prior art, the following will briefly introduce the drawing needed to be used in the embodiment or prior art description, obviously, the drawing in the following description is only some embodiments of the present application, and for those skilled in the art, other drawings can also be obtained according to these drawings without creating labor.
[0019] Figure 1 It is the whole structure schematic diagram of the utility model;
[0020] Figure 2 It is the structure schematic diagram of first drive mechanism and push arm in the utility model;
[0021] Figure 3 It is the structure schematic diagram of second drive mechanism and guide column in the utility model;
[0022] Figure 4 It is the structure schematic diagram of assembly arm and cutting assembly in the utility model;
[0023] Figure 5 It is the structure schematic diagram of third drive mechanism in the utility model.
[0024] The mark in the drawing is: 1, processing table;2, assembly arm;3, cutting groove;4, auxiliary groove;5, guide column;6, push arm;7, push plate;8, clamping plate;9, first fixed plate;10, one-way screw;11, sliding rod;12, first motor;13, first sliding block;14, second fixed plate;15, first two-way screw;16, second motor;17, hydraulic push rod;18, shell cover;19, cutting blade;20, cutting motor;21, vertical rod;22, dust catcher;23, sliding cavity;24, second sliding block;25, second two-way screw;26, guide groove;27, hexagonal sleeve. DETAILED DESCRIPTION
[0025] Clearly, the described embodiments are merely a part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments of the present application, all the other embodiments obtained by those skilled in the art without creative labor fall within the scope of the present application.
[0026] The metal material cutting device provided by the embodiment has the advantages that the cutting device is provided with the assembly arm, the cutting assembly is arranged on the top of the assembly arm, the cutting assembly is driven by the cutting motor, the cutting piece is driven to rotate by the cutting motor, the cutting piece is driven to move down by the hydraulic push rod, and the cutting piece can cut the metal pipe or rod material on the machining table. Figures 1-5 The metal material cutting device provided by the embodiment has the advantages that the cutting device is provided with the assembly arm, the cutting assembly is arranged on the top of the assembly arm, the cutting assembly is driven by the cutting motor, the cutting piece is driven to rotate by the cutting motor, the cutting piece is driven to move down by the hydraulic push rod, and the cutting piece can cut the metal pipe or rod material on the machining table.
[0027] In a further embodiment, the assembly arm 2 is located at the side of one end of the machining table 1, and the one end of the machining table 1 is provided with a push arm 6, and the machining table 1 is provided with a first driving mechanism for driving the push arm 6 to move along the length direction of the machining table 1, and the push arm 6 is provided with a push plate 7, and the first driving mechanism comprises a pair of first fixed plates 9 fixed on the lower surface of the machining table 1 and a one-way screw rod 10 rotatably installed between the pair of first fixed plates 9, and the one-way screw rod 10 is distributed along the length direction of the machining table 1, and one of the first fixed plates 9 is provided with a first motor 12 for driving the one-way screw rod 10 to rotate, and one end of the push arm 6 is horizontally located above the machining table 1, and the push plate 7 is arranged at the end of the push arm 6 above the machining table 1, and the other end of the push arm 6 is bent downward and horizontally extends below the machining table 1 and is threadedly connected with the one-way screw rod 10, and a slide rod 11 is further fixedly connected between the pair of first fixed plates 9, and the slide rod 11 is distributed in parallel with the one-way screw rod 10, and the push arm 6 is slidably connected with the slide rod 11. With the above structure, the metal pipe or bar is placed on the machining table 1 along the length direction of the machining table 1, the first motor 12 is started to drive the one-way screw rod 10 to rotate, and under the guidance of the slide rod 11, the push arm 6 drives the push plate 7 to push the material to move towards the cutting blade 19, and by controlling the pushing distance of the material, automatic feeding and continuous multiple cutting can be realized, manual intervention is reduced, and the cutting efficiency is improved.
[0028] In a further embodiment, one side of the push plate 7 facing the assembly arm 2 is provided with a pair of clamping plates 8, and a pair of guide columns 5 are arranged on the machining table 1 near the assembly arm 2 to guide the pushing movement of the metal material.
[0029] In the embodiment, the push plate 7 is provided with a third driving mechanism for driving the pair of clamping plates 8 to approach or move away from each other, and the push plate 7 is internally provided with a sliding cavity 23, and the third driving mechanism comprises a second bidirectional screw rod 25 rotatably installed in the sliding cavity 23 and a pair of second sliding blocks 24 slidably embedded in the sliding cavity 23, and the second bidirectional screw rod 25 is distributed along the width direction of the machining table 1, and the pair of second sliding blocks 24 are symmetrically threadedly connected with the second bidirectional screw rod 25, and the push plate 7 is provided with a hexagonal sleeve 27 coaxially connected with the second bidirectional screw rod 25 at the end thereof, and one side of the push plate 7 facing the clamping plates 8 is provided with a guide groove 26, and the pair of clamping plates 8 pass through the guide groove 26 and are connected with the pair of second sliding blocks 24 respectively. Through the above structure, the tail end of the metal material is placed between the pair of clamping plates 8, and then the hexagonal sleeve 27 is twisted by using a wrench tool to drive the second bidirectional screw rod 25 to rotate, and the pair of second sliding blocks 24 drive the pair of clamping plates 8 to approach to clamp the tail end of the material.
[0030] In a further embodiment, the processing table 1 is provided with a second driving mechanism for driving the pair of guide columns 5 to move towards or away from each other, the second driving mechanism comprising a pair of second fixed plates 14 fixed to the lower surface of the processing table 1 and a first bidirectional screw rod 15 rotatably installed between the pair of second fixed plates 14, the second fixed plates 14 being provided with a second motor 16 for driving the first bidirectional screw rod 15 to rotate, the first bidirectional screw rod 15 being distributed along the width direction of the processing table 1, the first bidirectional screw rod 15 being provided with a pair of first sliding blocks 13 symmetrically sleeved thereon, the first sliding blocks 13 being in sliding fit with the lower surface of the processing table 1, the processing table 1 being provided with an auxiliary groove 4 aligned with the first bidirectional screw rod 15, the bottom ends of the pair of guide columns 5 penetrating through the auxiliary groove 4 and being respectively installed on the pair of first sliding blocks 13, and the second motor 16 being started to drive the first bidirectional screw rod 15 to rotate, so as to drive the pair of first sliding blocks 13 to abut against the two sides of the material respectively, thereby guiding the material of different sizes.
[0031] Further, in the present embodiment, the guide columns 5 are vertically distributed, and the bottom ends of the guide columns 5 are rotatably connected with the first sliding blocks 13, so that the guide columns 5 can roll along the side surface of the material during the pushing and moving of the material, thereby reducing the scratch damage to the material.
[0032] Working principle: in use, the metal pipe or bar is placed on the processing table 1 along the length direction of the processing table 1, the cutting motor 20 is started to drive the cutting blade 19 to rotate at high speed, the hydraulic push rod 17 is started to push the shell cover 18 to move downward, and the material can be cut. Among them, the tail end of the material is placed between the pair of clamping plates 8, then the hexagonal sleeve 27 is twisted using a wrench tool to drive the second bidirectional screw rod 25 to rotate, so as to drive the pair of second sliding blocks 24 to abut against the tail end of the material by driving the pair of clamping plates 8 to move towards each other, the second motor 16 is started to drive the first bidirectional screw rod 15 to rotate, so as to drive the pair of first sliding blocks 13 to abut against the two sides of the material respectively, at this time, the first motor 12 is started to drive the unidirectional screw rod 10 to rotate, under the guidance of the sliding rod 11, the push arm 6 drives the push plate 7 to push the material to move towards the cutting blade 19, and the pair of clamping plates 8 and the pair of guide columns 5 can guide the material, thereby realizing automatic feeding and continuous multiple cutting, reducing manual intervention, and improving the cutting efficiency.
[0033] All the technical features in the present embodiment can be freely combined according to actual needs.
[0034] Finally, it should be noted that: the above only for the preferred embodiments of the present application, and is not intended to limit the present application, although the foregoing embodiments of the present application has been described in detail, for the skilled in the art, it still can be modified, or for part of the technical features of the equivalent replacement, the spirit and principles of the present application, made any modification, equivalent replacement, improvement, etc., should be included within the scope of the present application.
Claims
1. A metal material cutting device, comprising a processing table (1), characterized in that: one side of the top of the processing table (1) is fixed with an assembly arm (2), and the assembly arm (2) is assembled with a cutting assembly; one end of the processing table (1) is provided with a push arm (6), and the processing table (1) is provided with a first driving mechanism for driving the push arm (6) to move along the length direction of the processing table (1); the first driving mechanism comprises a pair of first fixed plates (9) fixed on the lower surface of the processing table (1) and a one-way lead screw (10) rotatably installed between the pair of first fixed plates (9), the one-way lead screw (10) is distributed along the length direction of the processing table (1), one of the first fixed plates (9) is provided with a first motor (12) for driving the one-way lead screw (10) to rotate, one end of the push arm (6) is horizontally located above the processing table (1), and the other end of the push arm (6) is bent downward and horizontally extends below the processing table (1) and is threadedly connected with the one-way lead screw (10); the push arm (6) is provided with a push plate (7), one side of the push plate (7) facing the assembly arm (2) is provided with a pair of clamping plates (8), and the processing table (1) is provided with a pair of guide columns (5) near the position of the assembly arm (2); the push plate (7) is arranged at one end of the push arm (6) located above the processing table (1), the push plate (7) is provided with a third driving mechanism for driving the pair of clamping plates (8) to move close to or away from each other, and the processing table (1) is provided with a second driving mechanism for driving the pair of guide columns (5) to move close to or away from each other; the second driving mechanism comprises a pair of second fixed plates (14) fixed on the lower surface of the processing table (1) and a first bidirectional lead screw (15) rotatably installed between the pair of second fixed plates (14), the second fixed plate (14) is provided with a second motor (16) for driving the first bidirectional lead screw (15) to rotate, the first bidirectional lead screw (15) is distributed along the width direction of the processing table (1), a pair of first sliding blocks (13) are symmetrically threadedly connected with the first bidirectional lead screw (15), the first sliding block (13) is in sliding fit with the lower surface of the processing table (1), the processing table (1) is provided with an auxiliary groove (4) aligned with the first bidirectional lead screw (15), and the bottom ends of the pair of guide columns (5) pass through the auxiliary groove (4) and are respectively installed on the pair of first sliding blocks (13). A slide rod (11) is further fixedly connected between the pair of first fixed plates (9), the slide rod (11) is distributed in parallel with the one-way lead screw (10), and the push arm (6) is in sliding fit with the slide rod (11). The guide columns (5) are vertically distributed, and the bottom ends of the guide columns (5) are rotatably connected with the first sliding blocks (13). 2. The apparatus of claim 1, wherein: 3. The apparatus of claim 1 wherein: 4. The apparatus of claim 1 wherein: The push plate (7) is internally provided with a sliding cavity (23), the third driving mechanism comprises a second bidirectional screw rod (25) rotatably arranged in the sliding cavity (23) and a pair of second sliding blocks (24) slidably arranged in the sliding cavity (23), the second bidirectional screw rod (25) is distributed along the width direction of the machining table (1), the pair of second sliding blocks (24) are symmetrically and threadedly sleeved with the second bidirectional screw rod (25), the push plate (7) is provided with a hexagonal sleeve (27) coaxially connected with the second bidirectional screw rod (25) at the end portion, one side of the push plate (7) facing the clamping plate (8) is provided with a guide groove (26), and the pair of clamping plates (8) are connected with the pair of second sliding blocks (24) through the guide groove (26).
5. The apparatus of claim 1 wherein: The assembly arm (2) is located at the side of one end of the machining table (1), the top end of the assembly arm (2) is bent towards one side of the machining table (1) and is vertically provided with a hydraulic push rod (17), the cutting assembly comprises a shell (18) arranged at the telescopic end of the hydraulic push rod (17), a cutting blade (19) rotatably arranged in the shell (18) and a cutting motor (20) arranged on the shell (18) and used for driving the cutting blade (19) to rotate, a vertical rod (21) is vertically movably arranged at the top end of the assembly arm (2), the bottom end of the vertical rod (21) is fixedly connected with the shell (18), a dust collector (22) is arranged at the bottom end of the assembly arm (2), and a cutting groove (3) aligned with the cutting blade (19) is arranged on the machining table (1).