I-shaped steel machining and cutting equipment
By introducing components such as push plates, clamping plates, adjusting screws, and scale lines into the I-beam processing and cutting equipment, and combining them with servo motors and electric telescopic rods, the problem of the difficulty in conveniently adjusting the cutting length of existing equipment has been solved, realizing fast and convenient cutting operations and improving the efficiency of equipment use.
Patent Information
- Application Number
- CN202423203489.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-25
- Publication Date
- 2026-01-13
- Estimated Expiration
- 2034-12-25
AI Technical Summary
Existing I-beam processing and cutting equipment makes it difficult to conveniently adjust the cutting length of steel according to usage requirements. It also requires a lot of time to adjust the cutting position of the steel during cutting, making operation inconvenient.
A cutting device was designed, comprising a processing table, a push plate, a clamping plate, an adjusting screw, scale lines, and a cutting saw. Through the combined use of the push plate and the clamping plate, a servo motor and an electric telescopic rod are used to flexibly fix the I-beam and adjust the cutting length. The cutting position is quickly determined by the scale lines and the indicator plate.
It enables rapid adjustment of steel cutting length according to actual needs, simplifies operation steps, increases cutting speed, and enhances the practical value of the equipment.
Smart Images

Figure CN223789639U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of I-beam processing technology, and in particular to an I-beam processing and cutting device. Background Technology
[0002] I-beams are a common type of steel profile, widely used in many fields such as construction, machinery manufacturing, and bridge construction. They can be used to bear the loads generated by buildings and can also effectively resist structural deformation, enhancing the overall stability of buildings. When processing I-beams, cutting equipment is often needed to cut the steel to the specified length.
[0003] Most current I-beam processing and cutting equipment has a relatively simple structure, often directly fixing the steel to the equipment for cutting operations. It is difficult to conveniently adjust the cutting length of the steel according to the usage requirements, and a lot of time is required to adjust the cutting position of the steel during cutting, making the operation inconvenient.
[0004] Therefore, in view of the difficulty in adjusting the cutting length of steel in existing I-beam processing and cutting equipment, an I-beam processing and cutting equipment can be designed. By pushing the steel to adjust the cutting length, the cutting length of steel can be quickly adjusted according to actual use needs, simplifying the cutting operation steps, speeding up the cutting operation, and thus effectively enhancing the practical value of the equipment. Utility Model Content
[0005] To overcome the problem that most I-beam processing and cutting equipment often cannot easily adjust the cutting length of the steel according to the usage requirements, and requires a lot of time to adjust the cutting position of the steel during cutting, making the operation inconvenient.
[0006] The technical solution of this utility model is as follows: an I-beam processing and cutting device, comprising a processing table, an I-beam body, a cutting saw, a cutting groove, a push plate, a first clamping plate, a pressure plate, a first fixing component, an adjusting screw, an indicator plate, scale lines, an adjusting component, a second clamping plate, a second fixing component, and a cutting component; the upper surface of the processing table is provided with the I-beam body, a push plate is provided on one side of the processing table, a first clamping plate is provided on one side of the push plate, two sets of the first clamping plates are symmetrically arranged on both sides of one end of the I-beam body, a pressure plate is provided on one side of the push plate, and the pressure plate is provided on one side of the I-beam body. On the upper surface of the end, a first fixing component is provided on one side of the push plate, an adjusting screw is provided on the inner side of the processing table, the push plate and the adjusting screw are threadedly connected to each other, an adjusting component is provided on the outer side of the adjusting screw, an indicator plate is provided on one side of the push plate, a scale line is provided on the upper surface of the processing table, the scale line is provided on one side of the indicator plate, a second clamping plate is provided on both sides of the other end of the I-beam body, a second fixing component is provided on one side of the second clamping plate, a cutting saw is provided above the processing table, a knife groove is opened on one side of the processing table, the knife groove is opened directly below the cutting saw, and a cutting component is provided on one side of the cutting saw.
[0007] Preferably, the process involves placing the I-beam body to be cut on a processing table, using a push plate to abut one end of the I-beam body, adjusting the distance between the two sets of first clamping plates using a first fixing component, clamping and fixing one end of the I-beam body using the first clamping plates, adjusting the height of the pressure plate to press and fix the other end of the I-beam body, rotating the adjusting screw using an adjusting component, rotating the adjusting screw to move the push plate, moving the push plate to push the I-beam body to move, observing the position of the scale line on the indicator plate, and observing the cutting length of the I-beam body through the scale line, adjusting the distance between the second clamping plates using a second fixing component, clamping and fixing the other end of the I-beam body using the second clamping plates, and finally, using a cutting component to drive the cutting saw to rotate, cutting the I-beam body along the cutting groove. This allows for quick adjustment of the steel cutting length according to actual usage needs, simplifies the cutting operation steps, speeds up the cutting operation, and enhances the practical value of the equipment.
[0008] Preferably, the first fixing component includes a first bidirectional lead screw and a first servo motor; the first bidirectional lead screw is provided on the inner side of the push plate, and the first servo motor is provided on the outer side of the push plate, with the output end of the first servo motor connected to the first bidirectional lead screw.
[0009] Preferably, the first fixing component further includes a first connecting rod and a first electric telescopic rod; the first connecting rod is provided on the outer side of the first bidirectional lead screw, two sets of the first connecting rod are symmetrically arranged, the first clamping plate is provided at one end of the first connecting rod, the first electric telescopic rod is provided on the top of the push plate, and the pressure plate is provided at one end of the first electric telescopic rod.
[0010] Preferably, the adjustment assembly includes a second servo motor and a guide rail; the second servo motor is provided on the outer side of the processing table, and the output end of the second servo motor is connected to the adjustment screw; the guide rail is provided on the inner side of the processing table, and two sets of guide rails are provided, which are symmetrically arranged on both sides of the adjustment screw; the push plate is slidably connected to the guide rail.
[0011] Preferably, the second fixing component includes a second bidirectional lead screw, a third servo motor, and a second connecting rod; the second bidirectional lead screw is provided on the inner side of the processing table, the third servo motor is provided on the outer side of the processing table, the output end of the third servo motor is connected to the second bidirectional lead screw, the second connecting rod is provided on the outer side of the second bidirectional lead screw, two sets of the second connecting rod are symmetrically arranged, and the second clamping plate is provided at one end of the second connecting rod.
[0012] Preferably, the cutting assembly includes a fixed frame, a second electric telescopic rod, a housing, and a drive motor; the fixed frame is provided on the upper surface of the processing table, the fixed frame is located above the blade groove, the second electric telescopic rod is provided on the top of the fixed frame, one end of the second electric telescopic rod is provided with a housing, the cutting saw is located inside the housing, the cutting saw and the housing are rotatably connected to each other, and the drive motor is provided on the outer side of the housing, the output end of the drive motor is connected to the cutting saw.
[0013] Preferably, the cutting assembly also includes a groove and a slider; a groove is provided on one side of the fixing frame, and two sets of grooves are symmetrically provided; a slider is provided on the outer side of the housing, and two sets of sliders are symmetrically provided; the slider is located on the inner side of the groove.
[0014] The beneficial effects of this utility model are:
[0015] During the cutting operation, the I-beam body to be cut is placed on a processing table. One end of the I-beam body is abutted by a push plate, and the first clamping plate holds and fixes one end of the I-beam body. Then, the height of the pressure plate is adjusted to press and fix the other end of the I-beam body. Rotating the adjusting screw drives the push plate to move, and moving the push plate pushes the I-beam body to move. The position of the scale line on the indicator plate is observed, and the cutting length of the I-beam body is observed through the scale line. The other end of the I-beam body is held and fixed by a second clamping plate. Finally, the cutting saw cuts the I-beam body along the cutting groove. This solves the problem that most I-beam processing and cutting equipment often cannot easily adjust the cutting length of the steel according to the usage requirements, and requires a lot of time to adjust the cutting position of the steel during cutting, which is inconvenient to operate. This enhances the practical value of the equipment. Attached Figure Description
[0016] Figure 1 The diagram shown is a three-dimensional structural schematic of an I-beam processing and cutting equipment according to this utility model.
[0017] Figure 2 The diagram shown is a three-dimensional structural schematic of the first fixing component of an I-beam processing and cutting equipment according to this utility model.
[0018] Figure 3 The diagram shown is a three-dimensional structural schematic of the second fixing component of an I-beam processing and cutting device according to this utility model.
[0019] Figure 4 The diagram shown is a three-dimensional structural schematic of the cutting component of an I-beam processing and cutting equipment according to this utility model.
[0020] Explanation of reference numerals in the attached drawings: 1. Processing table; 2. I-beam body; 3. Push plate; 301. First clamping plate; 302. Pressure plate; 303. First bidirectional lead screw; 304. First servo motor; 305. First connecting rod; 306. First electric telescopic rod; 4. Adjusting lead screw; 401. Indicator plate; 402. Scale line; 403. Second servo motor; 404. Guide rail; 5. Second clamping plate; 501. Second bidirectional lead screw; 502. Third servo motor; 503. Second connecting rod; 6. Cutting saw; 601. Knife groove; 602. Fixing frame; 603. Second electric telescopic rod; 604. Outer shell; 605. Drive motor; 606. Slide groove; 607. Slider. Detailed Implementation
[0021] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0022] Please see Figures 1-4 This utility model provides an embodiment: an I-beam processing and cutting device, including a processing table 1, an I-beam body 2, a cutting saw 6, a saw groove 601, a push plate 3, a first clamping plate 301, a pressure plate 302, a first fixing component, an adjusting screw 4, an indicator plate 401, a scale line 402, an adjusting component, a second clamping plate 5, a second fixing component, and a cutting component; the upper surface of the processing table 1 is provided with the I-beam body 2, a push plate 3 is provided on one side of the processing table 1, a first clamping plate 301 is provided on one side of the push plate 3, two sets of first clamping plates 301 are symmetrically arranged, the first clamping plates 301 are symmetrically arranged on both sides of one end of the I-beam body 2, a pressure plate 302 is provided on one side of the push plate 3, and the pressure plate 302 is provided on the I-beam body 2. On the upper surface of one end of the I-beam body 2, a first fixing component is provided on one side of the push plate 3. An adjusting screw 4 is provided on the inner side of the processing table 1. The push plate 3 and the adjusting screw 4 are threaded together. An adjusting component is provided on the outer side of the adjusting screw 4. An indicator plate 401 is provided on one side of the push plate 3. A scale line 402 is provided on the upper surface of the processing table 1. The scale line 402 is located on one side of the indicator plate 401. A second clamping plate 5 is provided on both sides of the other end of the I-beam body 2. A second fixing component is provided on one side of the second clamping plate 5. A cutting saw 6 is provided above the processing table 1. A knife groove 601 is opened on one side of the processing table 1. The knife groove 601 is opened directly below the cutting saw 6. A cutting component is provided on one side of the cutting saw 6.
[0023] Please see Figure 2In this embodiment, the first fixing component includes a first bidirectional lead screw 303, a first servo motor 304, a first connecting rod 305, and a first electric telescopic rod 306. The first bidirectional lead screw 303 is disposed on the inner side of the push plate 3, and the first servo motor 304 is disposed on the outer side of the push plate 3. The output end of the first servo motor 304 is connected to the first bidirectional lead screw 303. The first connecting rod 305 is disposed on the outer side of the first bidirectional lead screw 303. Two sets of the first connecting rod 305 are symmetrically arranged. A first clamping plate 301 is disposed on one side of the first connecting rod 305. At the end, the top of the push plate 3 is provided with a first electric telescopic rod 306, and the pressure plate 302 is provided at one end of the first electric telescopic rod 306. The first servo motor 304 drives the first bidirectional lead screw 303 to rotate. Rotating the first bidirectional lead screw 303 adjusts the distance between the two sets of first connecting rods 305. The first connecting rod 305 is used to connect and fix the first clamping plate 301, so as to flexibly adjust the clamping distance of the first clamping plate 301 according to the actual size of the I-beam body 2. The first electric telescopic rod 306 is extended and retracted to adjust the height of the pressure plate 302, thereby flexibly fixing one end of the I-beam body 2.
[0024] Please see Figure 3 In this embodiment, the adjustment assembly includes a second servo motor 403 and a guide rail 404. The second servo motor 403 is located on the outer side of the processing table 1, and its output end is connected to the adjusting lead screw 4. The guide rail 404 is located on the inner side of the processing table 1. Two sets of guide rails 404 are symmetrically arranged on both sides of the adjusting lead screw 4. The push plate 3 is slidably connected to the guide rail 404. The second servo motor 403 drives the adjusting lead screw 4 to rotate, which in turn moves the push plate 3, causing it to slide synchronously along the guide rail 404. The guide rail 404 ensures stable displacement of the push plate 3. The second fixing assembly includes a second bidirectional lead screw 501 and a third servo motor 404. The machining table 1 has a second bidirectional lead screw 501 on its inner side and a third servo motor 502 on its outer side. The output end of the third servo motor 502 is connected to the second bidirectional lead screw 501. The second bidirectional lead screw 501 has a second connecting rod 503 on its outer side. Two sets of the second connecting rods 503 are symmetrically arranged. The second clamping plate 5 is located at one end of the second connecting rod 503. The second bidirectional lead screw 501 is rotated by the third servo motor 502. Rotating the second bidirectional lead screw 501 adjusts the distance between the two sets of second connecting rods 503. The second clamping plate 5 is connected and fixed by the second connecting rod 503, thereby flexibly clamping and fixing the other end of the I-beam body 2.
[0025] Please see Figure 4In this embodiment, the cutting assembly includes a fixed frame 602, a second electric telescopic rod 603, a housing 604, a drive motor 605, a slide 606, and a slider 607. The fixed frame 602 is disposed on the upper surface of the processing table 1, above the knife groove 601. The second electric telescopic rod 603 is disposed on the top of the fixed frame 602, and a housing 604 is disposed at one end of the second electric telescopic rod 603. A cutting saw 6 is disposed inside the housing 604, and the cutting saw 6 and the housing 604 are rotatably connected. A drive motor 605 is disposed on the outer side of the housing 604, and the output end of the drive motor 605 is connected to the cutting saw 607. The cutting saw blades 6 are interconnected. A sliding groove 606 is provided on one side of the fixing frame 602. Two sets of sliding grooves 606 are symmetrically provided. A slider 607 is provided on the outer side of the outer shell 604. Two sets of sliders 607 are symmetrically provided. The sliders 607 are located on the inner side of the sliding groove 606. The position of the second electric telescopic rod 603 is fixed by the fixing frame 602. The cutting saw blades 6 are rotatably connected by the outer shell 604. The height of the cutting saw blades 6 is adjusted by extending and retracting the second electric telescopic rod 603, so that the sliders 607 slide synchronously along the sliding groove 606 to ensure the stable lifting and lowering of the cutting saw blades 6. The cutting saw blades 6 are driven by the drive motor 605 to operate, thereby stably carrying out the cutting operation.
[0026] Before the cutting operation, the main body 2 of the I-beam is placed on the upper surface of the processing table 1, so that one end of the main body 2 of the I-beam abuts against the push plate 3. The first servo motor 304 drives the first bidirectional lead screw 303 to rotate. Rotating the first bidirectional lead screw 303 causes the first clamping plate 301 at one end of the first connecting rod 305 to clamp the main body 2 of the I-beam. Then, the first electric telescopic rod 306 is extended to press the pressure plate 302 to press the main body 2 of the I-beam.
[0027] When adjusting the cutting position, the second servo motor 403 drives the adjusting screw 4 to rotate. Rotating the adjusting screw 4 drives the push plate 3 to slide along the guide rail 404, so that the push plate 3 pushes the I-beam body 2 to move and moves the indicator plate 401 to the corresponding position of the scale line 402.
[0028] Subsequently, the second bidirectional lead screw 501 is rotated by the third servo motor 502, and the rotation of the second bidirectional lead screw 501 causes the second clamping plate 5 at one end of the second connecting rod 503 to clamp and fix the other end of the I-beam body 2.
[0029] During the cutting operation, the cutting saw 6 inside the housing 604 is driven by the drive motor 605, the second electric telescopic rod 603 is extended to lower the height of the cutting saw 6, and the slider 607 is driven to slide down the slide groove 606 in the fixed frame 602. The cutting saw 6 is used to cut the I-beam body 2 along the blade groove 601.
[0030] Through the above steps, the processing table 1 is used to place the I-beam body 2 to be cut. The push plate 3 abuts against one end of the I-beam body 2. The distance between the two sets of first clamping plates 301 is adjusted by the first fixing component. The first clamping plates 301 clamp and fix one end of the I-beam body 2. Then, the height of the pressure plate 302 is adjusted to press and fix one end of the I-beam body 2. The adjusting component drives the adjusting screw 4 to rotate. Rotating the adjusting screw 4 drives the push plate 3 to move. Moving the push plate 3 pushes the I-beam body 2 to move. The position of the scale line 402 indicated by the indicator plate 401 is observed. The cutting length of the I-beam body 2 is observed through the scale line 402. The distance between the second clamping plates 5 is adjusted by the second fixing component. The other end of the I-beam body 2 is clamped and fixed by the second clamping plate 5. Finally, the cutting component drives the cutting saw 6 to rotate. The cutting saw 6 cuts the I-beam body 2 along the blade groove 601. Thus, the cutting length of the steel can be quickly adjusted according to the actual use needs, simplifying the cutting operation steps and speeding up the cutting operation.
[0031] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of the present invention.
Claims
1. A processing and cutting device for I-beams, comprising a processing table (1), an I-beam body (2), a cutting saw (6), and a cutting groove (601), characterized in that: It also includes a push plate (3), a first clamping plate (301), a pressure plate (302), a first fixing component, an adjusting screw (4), an indicator plate (401), a scale line (402), an adjusting component, a second clamping plate (5), a second fixing component, and a cutting component; the upper surface of the processing table (1) is provided with an I-beam body (2), a push plate (3) is provided on one side of the processing table (1), a first clamping plate (301) is provided on one side of the push plate (3), two sets of the first clamping plates (301) are symmetrically arranged, the first clamping plates (301) are symmetrically arranged on both sides of one end of the I-beam body (2), a pressure plate (302) is provided on one side of the push plate (3), the pressure plate (302) is provided on the upper surface of one end of the I-beam body (2), and a first fixing component is provided on one side of the push plate (3). The assembly includes an adjusting screw (4) on the inner side of the processing table (1), a push plate (3) and the adjusting screw (4) being threaded together, an adjusting component on the outer side of the adjusting screw (4), an indicator plate (401) on one side of the push plate (3), a scale line (402) on the upper surface of the processing table (1), the scale line (402) being located on one side of the indicator plate (401), a second clamping plate (5) on both sides of the other end of the I-beam body (2), a second fixing component on one side of the second clamping plate (5), a cutting saw (6) on the top of the processing table (1), a knife groove (601) on one side of the processing table (1), the knife groove (601) being located directly below the cutting saw (6), and a cutting component on one side of the cutting saw (6).
2. The I-beam processing and cutting equipment according to claim 1, characterized in that: The first fixed component includes a first bidirectional lead screw (303) and a first servo motor (304); the first bidirectional lead screw (303) is provided on the inner side of the push plate (3), and the first servo motor (304) is provided on the outer side of the push plate (3), and the output end of the first servo motor (304) is connected to the first bidirectional lead screw (303).
3. The I-beam processing and cutting equipment according to claim 2, characterized in that: The first fixing component also includes a first connecting rod (305) and a first electric telescopic rod (306); the first connecting rod (305) is provided on the outside of the first bidirectional lead screw (303), and two sets of the first connecting rod (305) are symmetrically arranged. The first clamping plate (301) is provided at one end of the first connecting rod (305), the first electric telescopic rod (306) is provided on the top of the push plate (3), and the pressure plate (302) is provided at one end of the first electric telescopic rod (306).
4. The I-beam processing and cutting equipment according to claim 2, characterized in that: The adjustment assembly includes a second servo motor (403) and a guide rail (404); the second servo motor (403) is provided on the outside of the processing table (1), and the output end of the second servo motor (403) is connected to the adjustment screw (4). The guide rail (404) is provided on the inside of the processing table (1). There are two sets of guide rails (404), which are symmetrically arranged on both sides of the adjustment screw (4). The push plate (3) is slidably connected to the guide rail (404).
5. The I-beam processing and cutting equipment according to claim 2, characterized in that: The second fixing component includes a second bidirectional lead screw (501), a third servo motor (502), and a second connecting rod (503); the second bidirectional lead screw (501) is provided on the inner side of the processing table (1), the third servo motor (502) is provided on the outer side of the processing table (1), the output end of the third servo motor (502) is connected to the second bidirectional lead screw (501), the second connecting rod (503) is provided on the outer side of the second bidirectional lead screw (501), two sets of the second connecting rod (503) are symmetrically arranged, and the second clamping plate (5) is provided at one end of the second connecting rod (503).
6. The I-beam processing and cutting equipment according to claim 5, characterized in that: The cutting assembly includes a fixed frame (602), a second electric telescopic rod (603), a housing (604), and a drive motor (605). The fixed frame (602) is provided on the upper surface of the processing table (1). The fixed frame (602) is located above the knife groove (601). The second electric telescopic rod (603) is provided on the top of the fixed frame (602). The housing (604) is provided at one end of the second electric telescopic rod (603). The cutting saw (6) is located inside the housing (604). The cutting saw (6) and the housing (604) are rotatably connected to each other. The drive motor (605) is provided on the outer side of the housing (604). The output end of the drive motor (605) is connected to the cutting saw (6).
7. The I-beam processing and cutting equipment according to claim 6, characterized in that: The cutting assembly also includes a groove (606) and a slider (607); a groove (606) is provided on one side of the fixing frame (602), and two sets of grooves (606) are symmetrically provided; a slider (607) is provided on the outer side of the outer shell (604), and two sets of sliders (607) are symmetrically provided; the slider (607) is located on the inner side of the groove (606).