Intelligent cutting equipment for machining precision parts of marine equipment
By designing intelligent cutting equipment, using the sliding adjustment structure of the main frame assembly and the driving assembly, combined with the clamping and cutting of the fastening assembly and cutting assembly, high-precision cutting and cutting of precision parts of marine equipment are achieved, and the problems of material consumption and part damage are solved, and the precision and safety of parts are improved.
Patent Information
- Application Number
- CN202510177524.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-18
- Publication Date
- 2025-05-06
AI Technical Summary
During the cutting process of precision parts in marine equipment, there are problems such as increased material consumption, manual operation is required, and parts are easily damaged during the discharge process, resulting in a decrease in precision.
An intelligent cutting device is designed, using the sliding adjustment structure of the main frame assembly, the driving component and the fastening component are used to cooperate with the cutting component for stable cutting, and the workpiece material is cut and conveyed through the cutting component and the bidirectional component, and the conveying component provides protection and buffering.
High precision cutting of precision parts of marine equipment is achieved, material consumption is reduced, damage caused by manual operation is avoided, the precision of parts is improved, and the safety of parts is ensured through protective measures of conveying components.
Smart Images

Figure CN119927326A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of cutting equipment, and in particular to an intelligent cutting equipment for processing precision parts of marine equipment. Background Art
[0002] Marine equipment refers to various types of equipment used in marine resource development, marine engineering construction, marine scientific research and marine environmental protection. For example, some ocean buoys can monitor marine environmental parameters such as currents and waves in real time, and transmit data back to land data centers through satellite communications and other means. There are also deep-sea mining equipment for mining mineral resources on the seabed, such as ore collectors, transportation pipelines, lifting devices and other components. In marine equipment, more precise workpieces are used. Similarly, the precision parts used in the equipment are inevitably damaged and need to be replaced regularly, which increases the demand for parts.
[0003] When processing smart parts, more precise cutting accuracy is required. When cutting the existing parts, some parts need to be left over, which increases the consumption of raw materials. When unloading the cut parts, manual operation is required. At the same time, the unloading parts collide with each other, which will also cause damage to the outer wall of the parts, resulting in abnormal reduction of the precision of the parts. Summary of the invention
[0004] The disclosed embodiment relates to an intelligent cutting device for processing precision parts of marine equipment. First, the main frame components can slide and adjust with each other to facilitate position adjustment for cutting of workpiece materials. The driving component of the main frame component slides through the fastening component to clamp the workpiece material for stable cutting. After the cutting component cuts the workpiece material, the retreating cutting component will drive the unloading component to swing, allowing the unloading component to unload the workpiece material through the part of the two-way component. The workpiece material will fall to the position of the conveying component at this time, allowing the conveying component to assist the workpiece material in protecting.
[0005] According to a first aspect of the present disclosure, there is provided an intelligent cutting device for processing precision parts of marine equipment, specifically comprising: a main frame assembly; a driving assembly is installed at a middle position on the main frame assembly, a fastening assembly is installed on the driving assembly, a main frame of the main frame assembly is arranged as a frame structure, the main frame is slidably installed on a guide rail, a vertical shielding frame is fixed at a rear position of the main frame, a vertical roller is rotatably installed at a front end position of the shielding frame, a workpiece material is carried on the main frame assembly, an outer end of the workpiece material is in contact with the fastening assembly, a feeding assembly is installed on the main frame assembly, a bidirectional assembly is installed on the feeding assembly, a cutting assembly is installed at a rear position of the main frame assembly, the cutting assembly is connected to the feeding assembly, and a conveying assembly is installed at a front end position of the main frame assembly.
[0006] In at least some embodiments, the driving rod of the driving assembly is rotatably installed in the middle position of the main frame assembly, a transmission head is installed at the front end position of the driving rod, the transmission head adopts a worm gear structure, a sliding block is screwed on the driving rod, and the sliding block is simultaneously slidably installed on the main frame assembly.
[0007] In at least some embodiments, the fastening frame of the fastening assembly is plugged into the driving assembly, a top pressure plate is slidably mounted on the fastening frame, a vertical bar is provided on the contact surface between the top pressure plate and the workpiece material, a vertical adjusting rod is rotatably mounted in the middle of the fastening frame, and the adjusting rod is screwed to the top pressure plate at the same time.
[0008] In at least some embodiments, the swing frame of the unloading assembly is hingedly mounted on the main frame assembly, and an expansion rod is provided at the outer end of the hinge position of the swing frame. A transmission rod is connected to the expansion rod, and the transmission rod is connected to an external connecting rod in a horizontal state. The end of the external connecting rod is interconnected with the cutting assembly, and the connecting part between the external connecting rod and the cutting assembly adopts a one-way structure.
[0009] In at least some embodiments, the transmission roller of the bidirectional component is rotatably mounted on the unloading component, a groove structure is provided on the wall of the transmission roller, a small roller is rotatably mounted on the groove structure of the transmission roller, and the rotation direction of the small roller is perpendicular to that of the transmission roller.
[0010] In at least some embodiments, a saw blade is mounted on the cutting frame of the cutting assembly, an outer clamping plate is hingedly mounted on the outer end of the saw blade of the cutting frame, a protective cover is mounted on the outer end of the outer clamping plate of the cutting frame, an expansion cover is sleeved and mounted at the bottom of the protective cover, an external cover is additionally mounted on the outer end of the expansion cover, the outer end of the external cover is connected to a pipeline, and a filter is additionally mounted on the portion where the external cover and the pipeline are connected.
[0011] In at least some embodiments, the expansion frame of the conveying assembly is installed at the front end position of the main frame assembly, and a sliding plate is slidably installed on the expansion frame. A connecting rod is connected to the upper end position of the sliding plate. The connecting rods are arranged in four groups. The connecting rods are connected to the conveying frame at the same time. The connecting rods and the four groups of connecting rods are deformed from a flat four-shaped structure, and two groups of leaf springs are installed between the conveying frame and the sliding plate.
[0012] The present invention provides an intelligent cutting device for processing precision parts of marine equipment, which has the following beneficial effects:
[0013] The structure of the main frame assembly in the present invention firstly realizes the position adjustment of the cutting assembly when cutting the workpiece material, which makes the adjustment more convenient and reduces the overall material consumption. After the driving assembly at the main frame assembly slides, the fastening assembly fixes the workpiece material, so that the cutting assembly can cut the workpiece material more stably. At this time, when the cutting assembly retreats, the outer connecting rod of the unloading assembly will be connected with the cutting assembly, so that the cutting assembly drives the unloading assembly vertically to lift and discharge the workpiece material. At this time, the two-way assembly of the unloading assembly is provided with a two-way transmission structure, so that the workpiece material can be transmitted and transported horizontally, and at the same time, the two-way assembly can realize the vertical sliding effect of the workpiece material after being vertically moved, and the workpiece material will fall into the position of the conveying assembly. The conveying assembly as a whole can not only convey, but also realize the buffering of the workpiece material when receiving the workpiece material, so as to avoid the damage of the workpiece material caused by collision.
[0014] In addition, when the workpiece material is being conveyed, in order to ensure the stability of the workpiece material, a vertical shielding frame is directly installed on the rear side of the main frame, and the vertical roller is rotatably installed on the shielding frame, so that the roller and the two-way component can jointly realize the vertical direction of the workpiece material, and the main frame is slidably installed on the guide rail, so that the main frame can slide on the guide rail, and the position of any main frame relative to each other can be adjusted, so as to realize the cutting effect at the corresponding specified workpiece material position, and better realize the saving effect of the workpiece material.
[0015] In addition, the transmission head is used for transmission through the motor, and the worm gear structure of the transmission head has a more stable transmission effect, thereby realizing the transmission of the sliding block by the driving rod. The sliding block is arranged to be screwed with the driving rod and slide with the main frame assembly, so that the sliding block can have a better sliding control effect through the driving rod, and the fastening frame is directly arranged to be installed in a plug-in manner, so that the fastening assembly as a whole can be replaced and installed as needed, so that it can be used for workpiece materials of different batches, and vertical bars are arranged on the contact surface between the top pressure plate and the workpiece material, so that the top pressure plate can be more stable when clamping the workpiece material, and the adjusting rod is rotatably installed on the fastening frame, and at the same time, the adjusting rod is used to control the top pressure plate, so that the top pressure plate can be raised and lowered by the adjusting rod, so that it can be used for better clamping of the workpiece material.
[0016] In addition, after the cutting assembly of the device cuts the workpiece, the cutting assembly will be pushed back toward the rear side. At this time, the cutting assembly will pull the transmission rod through the external connecting rod, allowing the transmission rod to lift the expansion rod, and the expansion rod is connected to the swing frame to realize the effect of the swing frame being erected to carry the workpiece to fall. When the cutting assembly retreats to the extreme position, the external connecting rod will separate from the one-way structure of the cutting assembly. At this time, the unloading assembly as a whole and the swing frame will fall and swing to reset. When the cutting assembly moves forward to cut the workpiece, the contact between the cutting assembly and the external connecting rod will not affect the unloading assembly. Only when the cutting assembly retreats again, the cutting assembly will pull the unloading assembly through the one-way structure of the external connecting rod.
[0017] In addition, under normal conditions, the workpiece material will be conveyed through the two-way component of the unloading component to achieve the lateral conveying of the workpiece material. After the two-way component is erected following the unloading component, in order to allow the workpiece material to fall better on the two-way component, a groove is directly set on the transmission roller, and multiple groups of small rollers are rotatably installed on the groove, so that the small rollers can assist in better sliding of the workpiece material and achieve better unloading of the workpiece material.
[0018] In addition, an external clamping plate is hingedly installed on the outer end surface of the saw blade installed on the cutting frame, so that after the saw blade is installed, the external clamping plate can assist in stabilizing the saw blade and ensure that the saw blade runs more stably. The protective cover installed at the outer end of the saw blade has the function of shielding the saw blade to increase safety. When the saw blade is in use, debris will be generated during cutting. In order to avoid the splashing of debris, an extension cover is directly installed at the lower end of the protective cover close to the saw blade, and an external cover is set on the outer end of the extension cover to allow the external pipe of the external cover to collect some debris and then discharge it. At the same time, a filter is installed at the external cover to allow the filter to block and filter larger debris.
[0019] In addition, first, the sliding plate on the expansion frame is slidably installed so that the sliding plate can be adjusted in position by sliding on the connecting rod, and the sliding plate is arranged to be connected to the conveying frame through four groups of connecting rods, so that the conveying frame and the four groups of connecting rods form a parallelogram structure. After the conveying frame receives the workpiece material, the four groups of connecting rods are horizontally lowered, and the leaf spring forms a certain buffer, which plays a protective role in receiving the workpiece material. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] In order to more clearly illustrate the technical solution of the embodiment of the present invention, the drawings of the embodiment are briefly introduced below.
[0021] The drawings described below are only related to some embodiments of the present invention, but are not intended to limit the present invention.
[0022] In the attached picture:
[0023] Figure 1The overall structure diagram of the present application is shown;
[0024] Figure 2 A schematic diagram showing the main frame assembly structure of the present application is shown;
[0025] Figure 3 A schematic diagram showing the structure of the blanking assembly of the present application is shown;
[0026] Figure 4 A schematic diagram showing the structure of the drive assembly of the present application is shown;
[0027] Figure 5 A schematic diagram showing the structure of the conveying assembly of the present application is shown;
[0028] Figure 6 A schematic diagram showing the structure of the cutting assembly of the present application is shown;
[0029] Figure 7 A schematic diagram showing the cross-sectional structure of the expansion cover of the present application is shown;
[0030] Figure 8 A schematic diagram showing the structure of the fastening assembly of the present application is shown;
[0031] Reference numerals list
[0032] 1. Main frame assembly; 101. Main frame; 102. Guide rail; 103. Shielding frame;
[0033] 2. Driving assembly; 201. Driving rod; 202. Transmission head; 203. Sliding block;
[0034] 3. Fastening assembly; 301. Fastening frame; 302. Top pressure plate; 303. Adjustment rod;
[0035] 4. blanking assembly; 401. swing frame; 402. expansion rod; 403. outer connecting rod; 404. transmission rod;
[0036] 5. Bidirectional assembly; 501. Transmission roller; 502. Small roller;
[0037] 6. Cutting assembly; 601. Cutting frame; 602. External card plate; 603. Protective cover; 604. Extension cover; 605. External cover; 606. Filter;
[0038] 7. Conveying assembly; 701. Extension frame; 702. Sliding plate; 703. Conveying frame; 704. Connecting rod; 705. Leaf spring;
[0039] 8. Workpiece material. DETAILED DESCRIPTION
[0040] In order to make the purpose, technical solution and advantages of the embodiment of the present invention clearer, the technical solution of the embodiment of the present invention will be clearly and completely described below in conjunction with the accompanying drawings of the embodiment of the present invention. Obviously, the described embodiment is a part of the embodiment of the present invention, not all of the embodiments. Based on the described embodiment of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0041] Example 1: Please refer to Figures 1 to 8 :
[0042] The present invention proposes an intelligent cutting device for processing precision parts of marine equipment, comprising: a main frame assembly 1; a driving assembly 2 is installed in the middle position of the main frame assembly 1, a fastening assembly 3 is installed on the driving assembly 2, a main frame 101 of the main frame assembly 1 is set as a frame structure, the main frame 101 is slidably installed on a guide rail 102, a vertical shielding frame 103 is fixed at the rear side of the main frame 101, and a vertical roller is rotatably installed at the front end of the shielding frame 103. When the workpiece material 8 is conveyed, in order to ensure the stability of the workpiece material 8, the vertical shielding frame 103 is directly installed on the rear side of the main frame 101, and the vertical roller is rotatably installed on the shielding frame 103, so as to realize the roller and the two-way Component 5 together realizes the vertical direction of the workpiece material 8, allowing the main frame 101 to be slidably installed on the guide rail 102, so that the main frame 101 can slide on the guide rail 102, and adjust the position of any main frame 101 relative to each other, so as to realize the cutting effect at the corresponding designated position of the workpiece material 8, and better realize the saving effect of the workpiece material 8. The main frame component 1 carries the workpiece material 8, and the outer end of the workpiece material 8 is in contact with the fastening component 3. The main frame component 1 is installed with a feeding component 4, and the feeding component 4 is installed with a two-way component 5. The cutting component 6 is installed at the rear side of the main frame component 1, and the cutting component 6 is connected to the feeding component 4. The conveying component 7 is installed at the front end of the main frame component 1.
[0043] In the present disclosure, Figure 1 Figure 2 As shown, the driving rod 201 of the driving assembly 2 is rotatably installed in the middle position of the main frame assembly 1, and a transmission head 202 is installed at the front end position of the driving rod 201. The transmission head 202 adopts a worm gear structure, and a sliding block 203 is screwed on the driving rod 201. The sliding block 203 is also slidably installed on the main frame assembly 1. The transmission head 202 is used to transmit the power through the motor. The worm gear structure of the transmission head 202 has a more stable transmission effect, thereby realizing the transmission of the sliding block 203 by the driving rod 201. The sliding block 203 is configured to be screwed with the driving rod 201 and slide with the main frame assembly 1, so that the sliding block 203 can achieve a better sliding control effect through the driving rod 201.
[0044] In the present disclosure, Figure 4 Figure 8 The fixing means 302 is used to fix the fixing portion 302 on the fixing portion 303. The fixing portion 302 is used to fix the fixing portion 302 on the fixing portion 303.
[0045] In the present disclosure, Figure 2 Figure 3 As shown, the swing frame 401 of the unloading component 4 is hingedly installed on the main frame component 1, and an expansion rod 402 is arranged at the outer end of the hinge position of the swing frame 401, and a transmission rod 404 is connected to the expansion rod 402, and the transmission rod 404 is connected to the horizontal outer connecting rod 403. After the cutting component 6 of the device cuts the workpiece material 8, the cutting component 6 will be pushed back toward the rear side. At this time, the cutting component 6 will pull the transmission rod 404 through the outer connecting rod 403, so that the transmission rod 404 will lift the expansion rod 402, and the expansion rod 402 is connected to the swing frame 401, so that the swing frame 401 can be erected to carry the workpiece material 8 to fall. The end of the outer connecting rod 403 is connected to the cutting component 6, and the connecting part of the outer connecting rod 403 and the cutting component 6 adopts a one-way structure. When the cutting component 6 retreats to the extreme position, the outer connecting rod 403 and the one-way structure of the cutting component 6 will be separated. At this time, the unloading component 4 as a whole and the swing frame 401 will fall and swing to reset. When the cutting component 6 moves forward to cut the workpiece 8, the contact between the cutting component 6 and the outer connecting rod 403 will not affect the unloading component 4. Only when the cutting component 6 retreats again, the cutting component 6 will pull the unloading component 4 through the one-way structure of the outer connecting rod 403.
[0046] In the present disclosure, Figure 1 Figure 3As shown, the driving roller 501 of the two-way component 5 is rotatably installed on the unloading component 4, and a groove structure is provided on the wall of the driving roller 501. A small roller 502 is rotatably installed on the groove structure of the driving roller 501, and the rotation direction of the small roller 502 is perpendicular to that of the driving roller 501. Under normal conditions, the workpiece material 8 will be conveyed through the two-way component 5 of the unloading component 4, so as to realize the lateral conveying effect of the workpiece material 8. After the two-way component 5 is erected following the unloading component 4, in order to make the workpiece material 8 fall better on the two-way component 5, a groove is directly provided on the driving roller 501, and multiple groups of small rollers 502 are rotatably installed on the groove, so that the small rollers 502 can assist in better realizing the sliding of the workpiece material 8 and realize the better unloading effect of the workpiece material 8.
[0047] In the present disclosure, Figure 6 Figure 7 As shown, a saw blade is installed on the cutting frame 601 of the cutting assembly 6, and an outer clamping plate 602 is hingedly installed on the outer end of the saw blade of the cutting frame 601, and a protective cover 603 is installed on the outer end of the outer clamping plate 602 of the cutting frame 601. The outer end surface of the saw blade installed on the cutting frame 601 is hingedly installed with the outer clamping plate 602, so that after the saw blade is installed, the outer clamping plate 602 can help stabilize the saw blade and ensure that the saw blade runs more stably. The protective cover 603 installed at the outer end of the saw blade has the function of shielding the saw blade to increase safety. An expansion cover 604 is sleeved and installed at the bottom of the protective cover 603. An external cover 605 is installed at the outer end of the extension cover 604, and the outer end of the external cover 605 is connected to the pipeline. A filter 606 is installed at the part where the external cover 605 and the pipeline are connected. When the saw blade is in use, debris will be generated during cutting. In order to avoid the splashing of debris, the extension cover 604 is directly installed at the lower end of the protective cover 603 close to the saw blade, and an external cover 605 is set at the outer end of the extension cover 604, so that the external pipeline of the external cover 605 can collect some debris and discharge it. At the same time, a filter 606 is installed at the external cover 605, which can allow the filter 606 to block and filter larger debris.
[0048] In the present disclosure, Figure 1 Figure 5As shown, the expansion frame 701 of the conveying assembly 7 is installed at the front end position of the main frame assembly 1, and a sliding plate 702 is slidably installed on the expansion frame 701. A connecting rod 704 is connected to the upper end position of the sliding plate 702. The connecting rod 704 is set to four groups. The connecting rod 704 is connected to the conveying frame 703 at the same time. The connecting rod 704 and the four groups of connecting rods 704 are deformed from the flat four structures. Two groups of leaf springs 705 are installed between the conveying frame 703 and the sliding plate 702. First, the expansion frame 701 The sliding plate 702 is slidably installed so that the sliding position of the sliding plate 702 can be adjusted on the connecting rod 704, and the sliding plate 702 is arranged to be connected to the conveying frame 703 through four groups of connecting rods 704, so that the conveying frame 703 and the four groups of connecting rods 704 form a parallelogram structure. Therefore, after the conveying frame 703 receives the workpiece material 8, the four groups of connecting rods 704 are horizontally lowered, and the leaf spring 705 forms a certain buffer, which plays a role in protecting the receiving of the workpiece material 8.
[0049] The working principle of this embodiment is as follows: first, the guide rails 102 are adjusted to each other before use to adapt to the spacing of the workpiece material 8 that needs to be cut. At this time, the vertical roller of the shielding frame 103 and the two-way component 5 will transport the workpiece material 8. After the workpiece material 8 reaches the specified position, the driving component 2 installed at the main frame component 1 will run to transmit the fastening component 3 to achieve the fastening component 3 against the outer end position of the workpiece material 8. At this time, the workpiece material 8 is fixed in a stable state by the fastening component 3. At the same time, it is necessary to observe the external cover 605 of the cutting component 6 to confirm the stability of the external pipeline, and it is also necessary to remove the filter 606 of the external cover 605 for cleaning. At this time, the cutting component 6 runs toward the front end to achieve cutting of the workpiece material 8. The cutting component 6 running toward the front end and the unloading component 4 are in a sliding state;
[0050] After the cutting of the workpiece material 8 is completed, the driving component 2 will drive the fastening component 3 to loosen the workpiece material 8. At this time, the cutting component 6 will also retreat, and at the same time, the cutting component 6 will drive the outer connecting rod 403 to be pulled to the rear side. The unloading component 4 will swing and lift up under the drive of the connecting rod, and the two-way component 5 is provided with a vertical transmission structure to allow the workpiece material 8 to slide down from the two-way component 5, and the workpiece material 8 will fall to the position of the conveying component 7. The leaf spring 705 of the conveying component 7 forms a buffer to receive the workpiece material 8, complete the stable reception and protection of the workpiece material 8, and allow the conveying component 7 to transport it for further processing.
[0051] In this article, there are a few points to note:
[0052] 1. The drawings of the embodiments of the present disclosure only involve structures related to the embodiments of the present disclosure, and other structures may refer to general designs.
[0053] 2. In the absence of conflict, the embodiments of the present disclosure and the features therein may be combined with each other to obtain new embodiments.
[0054] The above are only specific embodiments of the present disclosure, but the protection scope of the present disclosure is not limited thereto. Any technician familiar with the technical field can easily think of changes or substitutions within the technical scope disclosed in the present disclosure, which should be included in the protection scope of the present disclosure. Therefore, the protection scope of the present disclosure should be based on the protection scope of the claims.
Claims
1. An intelligent cutting device for processing precision parts of marine equipment, comprising: A main frame assembly (1); a driving assembly (2) is installed at the middle position of the main frame assembly (1), characterized in that a fastening assembly (3) is installed on the driving assembly (2); a main frame (101) of the main frame assembly (1) is set as a frame structure, the main frame (101) is slidably installed on the guide rail (102), a vertical shielding frame (103) is fixed at the rear position of the main frame (101), a vertical roller is rotatably installed at the front end position of the shielding frame (103), a workpiece material (8) is carried on the main frame assembly (1), and the outer end of the workpiece material (8) is in contact with the fastening assembly (3), a blanking assembly (4) is installed on the main frame assembly (1), and a two-way assembly (5) is installed on the blanking assembly (4), a cutting assembly (6) is installed at the rear position of the main frame assembly (1), and the cutting assembly (6) is connected to the blanking assembly (4), and a conveying assembly (7) is installed at the front end position of the main frame assembly (1).
2. The intelligent cutting equipment for processing precision parts of marine equipment according to claim 1 is characterized in that: The driving rod (201) of the driving assembly (2) is rotatably mounted in the middle position of the main frame assembly (1); a transmission head (202) is mounted at the front end of the driving rod (201); the transmission head (202) adopts a worm gear structure; a sliding block (203) is screwed onto the driving rod (201); and the sliding block (203) is slidably mounted on the main frame assembly (1) at the same time.
3. The intelligent cutting equipment for processing precision parts of marine equipment according to claim 1 is characterized in that: The fastening frame (301) of the fastening assembly (3) is plugged and installed on the driving assembly (2), and a top pressure plate (302) is slidably installed on the fastening frame (301). A vertical bar is provided on the contact surface between the top pressure plate (302) and the workpiece material (8). A vertical adjustment rod (303) is rotatably installed in the middle of the fastening frame (301), and the adjustment rod (303) is screwed to the top pressure plate (302) at the same time.
4. The intelligent cutting equipment for processing precision parts of marine equipment according to claim 1 is characterized in that: The swing frame (401) of the blanking assembly (4) is hingedly mounted on the main frame assembly (1); an expansion rod (402) is provided at the outer end of the hinge position of the swing frame (401); a transmission rod (404) is connected to the expansion rod (402); and the transmission rod (404) is connected to an external connecting rod (403) in a horizontal state.
5. The intelligent cutting equipment for processing precision parts of marine equipment according to claim 4 is characterized in that: The end of the outer connecting rod (403) is connected to the cutting assembly (6), and the connection portion between the outer connecting rod (403) and the cutting assembly (6) adopts a one-way structure.
6. The intelligent cutting equipment for processing precision parts of marine equipment according to claim 1 is characterized in that: The driving roller (501) of the bidirectional component (5) is rotatably mounted on the blanking component (4); a groove structure is provided on the wall of the driving roller (501); a small roller (502) is rotatably mounted on the groove structure of the driving roller (501); and the rotation direction of the small roller (502) is perpendicular to that of the driving roller (501).
7. The intelligent cutting equipment for processing precision parts of marine equipment according to claim 1 is characterized in that: A saw blade is installed on the cutting frame (601) of the cutting assembly (6), an outer clamping plate (602) is hingedly installed on the outer end of the saw blade of the cutting frame (601), and a protective cover (603) is installed on the outer end of the outer clamping plate (602) of the cutting frame (601).
8. The intelligent cutting device for processing precision parts of marine equipment according to claim 7 is characterized in that: An expansion cover (604) is sleeved and installed at the bottom of the protective cover (603), and an external cover (605) is installed at the outer end of the expansion cover (604). The outer end of the external cover (605) is connected to the pipeline, and a filter (606) is installed at the part where the external cover (605) and the pipeline are connected.
9. The intelligent cutting equipment for processing precision parts of marine equipment according to claim 1 is characterized in that: The expansion frame (701) of the conveying assembly (7) is installed at the front end position of the main frame assembly (1), and a sliding plate (702) is slidably installed on the expansion frame (701). A connecting rod (704) is connected to the upper end position of the sliding plate (702). The connecting rods (704) are arranged in four groups. The connecting rods (704) are connected to the conveying frame (703) at the same time. The connecting rods (704) and the four groups of connecting rods (704) form a flat four-deformation structure. Two groups of leaf springs (705) are installed between the conveying frame (703) and the sliding plate (702).