A processing and cutting device for ship deck production
By designing a cutting device with forward and reverse belt transmission and sliding seat structure, automatic switching of arc and linear cutting of ship deck is realized, solving the problem of inaccurate cutting accuracy in the prior art and improving cutting efficiency and accuracy.
Patent Information
- Application Number
- CN202510446671.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-10
- Publication Date
- 2025-07-08
- Estimated Expiration
- 2045-04-10
AI Technical Summary
Existing ship deck cutting devices are difficult to efficiently and accurately cut arcs or oblique edges, and relying on manual operations can easily lead to inaccurate accuracy.
A processing and cutting device including a conveyor rack and plasma cutting assembly is designed. Through a forward and reverse belt transmission and sliding seat structure, the plasma cutting member is quickly switched between the arc groove and the linear groove, and combined with the arc shape and linear groove on the template, automatic switching of arc shape and linear cutting is realized.
Improves the efficiency and accuracy of deck cutting, reduces the dependence on operator skills, and ensures cutting accuracy and efficiency.
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Figure CN119952212B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of deck production, and particularly to a processing and cutting device for ship deck production. Background Art
[0002] The ship deck is an important component of the hull. It is a planar structure above the inner bottom plate in the ship structure, used to cover the internal space of the ship and horizontally divide it into layers. When cutting and processing the deck, a plasma cutting assembly is generally used for cutting. And some deck ends need to be cut into arc or bevel shapes to fit the ship structure. The existing cutting devices can generally only perform straight-line cutting. When cutting arcs or other shapes, workers need to hold the cutting machine for cutting. This method has high requirements for the ability of workers and is prone to problems of inaccurate precision. Therefore, the present invention has developed a processing and cutting device for ship deck production to solve the above problems. Summary of the Invention
[0003] The purpose of the present invention is to provide a processing and cutting device for ship deck production to solve the above technical problems.
[0004] To achieve the above purpose, the technical solution provided by the present invention is as follows:
[0005] A processing and cutting device for ship deck production, including a conveying frame. A box body with an opening at the bottom is installed on the top of the conveying frame. A plasma cutting assembly is installed at the bottom of the box body. A template is arranged inside the box body. The template is provided with an arc-shaped groove running through it, and one end of the arc-shaped groove is connected to a straight groove;
[0006] The plasma cutting assembly includes a driving box with an opening at the bottom. On the opposite inner side walls of the driving box cavity, first belt driving members that can rotate forward and backward are symmetrically installed, and the ends of the first belt driving members are located below the straight groove. A sliding seat is installed between the two first belt driving members. An installation groove runs through the inner cavity of the sliding seat. A fixing rod is arranged between the inner walls of the installation groove. An L-shaped installation frame is slidably connected to the outer wall of the fixing rod. The L-shaped installation frame passes through the bottom of the sliding seat and is installed with a plasma cutting piece. The initial position of the plasma cutting piece before cutting is located at the middle position of the end of the first belt driving member. A positioning rod is arranged at the top of the L-shaped installation frame passing through the sliding seat. When the sliding seat slides along the upper part of the first belt driving member, the positioning rod is inserted into the arc-shaped groove.
[0007] Preferably, on the opposite inner side walls of the driving box cavity, first sliding grooves are symmetrically opened along the outer edge of the first belt driving member. First installation blocks are symmetrically installed on the two first belt driving members. On the opposite upper side walls of the sliding seat, first limiting shafts are symmetrically fixed. The first limiting shafts pass through the first installation blocks and are slidably connected to the first sliding grooves.
[0008] Preferably, on opposite sides of the lower end of the sliding seat, limiting seats are symmetrically installed. The limiting seats are provided with limiting grooves penetrating in the height direction, and a limiting rod is fixedly connected between opposite ends of the inner wall of the driving box, and the limiting rod passes through the limiting groove.
[0009] Preferably, the inside of the fixed rod is of a hollow structure. Slide rods are symmetrically and slidably connected to opposite ends of the fixed rod, and one end of each of the two slide rods away from each other is inserted into the limiting groove and provided with an inclined first inclined surface. On one end of each of the two slide rods close to each other, a pressing block is provided. On the top of one side of the two pressing blocks close to each other, an inclined second inclined surface is provided. A clamping block is slidably connected through the top of the middle position of the fixed rod. One end of the clamping block is inserted into the inner cavity of the fixed rod and provided with a third inclined surface that cooperates with the second inclined surface. When the limiting rod abuts against the top of the limiting groove, the limiting rod pushes the slide rod to slide and pushes one end of the clamping block out of the top of the fixed rod. The L-shaped mounting bracket is provided with a through hole that cooperates with the fixed rod, and a clamping groove that cooperates with the clamping block is provided at the top of the through hole. A spring is sleeved on the outer wall of the slide rod, and the two ends of the spring are respectively connected to the pressing block and the end of the inner cavity of the fixed rod.
[0010] Preferably, a conveying mechanism is arranged inside the box body. A plurality of templates are equidistantly installed on the conveying mechanism. An arc groove and a straight groove are provided on each template, and the shapes of the arc grooves on each template are all different.
[0011] Preferably, each straight groove is located at the middle position of the template.
[0012] Preferably, the conveying mechanism includes second belt transmission members installed on opposite side walls of the inner cavity of the box body, and the two second belt transmission members are connected by a connecting shaft. Second mounting blocks are equidistantly and symmetrically installed on the two second belt transmission members. Each template is respectively installed between two oppositely arranged second mounting blocks. A driving motor is installed on the side wall of the box body, and the output shaft of the driving motor is connected to the connecting shaft.
[0013] Preferably, second sliding grooves are symmetrically provided on opposite side walls of the inner cavity of the box body along the outer edge of the second belt transmission member. Second limiting shafts are symmetrically and fixedly connected to both ends of the template, and the second limiting shafts pass through the second mounting blocks and are slidably connected to the second sliding grooves.
[0014] Preferably, the second limiting shaft includes a sleeve. A sliding rod is slidably connected to one end of the sleeve away from the template. A limiting hole is provided on the outer wall of the sleeve. Elastic limiting columns that cooperate with the limiting hole are provided on the outer wall of the sliding rod. The second mounting block is a structure that can be separated up and down.
[0015] Preferably, cylinder positioning members for positioning the deck are symmetrically arranged on opposite sides of the conveying frame.
[0016] Compared with the prior art, the beneficial effects of the present invention are as follows:
[0017] When the cutting device of the present invention cuts and processes the deck, the plasma cutting member can slide upward or downward from the middle position of the first belt transmission member through the forward and reverse rotation of the first belt transmission member. When the plasma cutting member slides upward, the positioning rod can be gradually inserted into the arc-shaped groove and the straight groove, so that the plasma cutting member can move along the arc-shaped groove during sliding, realizing arc cutting. When the plasma cutting member slides downward, the plasma cutting member always maintains straight sliding, thereby realizing straight cutting. In this way, the cutting device of the present invention can quickly switch between arc cutting and straight cutting, improving the cutting efficiency and cutting accuracy. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following will briefly introduce the drawings required for the description of the embodiments. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.
[0019] Figure 1 is a schematic structural diagram of the cutting device of the present invention;
[0020] Figure 2 is a front sectional structural diagram of the cutting device of the present invention;
[0021] Figure 3 is a schematic structural diagram of the plasma cutting assembly in the cutting device of the present invention;
[0022] Figure 4 is a front sectional structural diagram of the plasma cutting assembly in the cutting device of the present invention;
[0023] Figure 5 is Figure 4 an enlarged structural diagram of part A in;
[0024] Figure 6 is a schematic structural diagram of the transmission mechanism and the template in the cutting device of the present invention;
[0025] Figure 7 is Figure 6 an enlarged structural diagram of part B in;
[0026] Figure 8 is a sectional structural diagram of the drive box in the cutting device of the present invention.
[0027] In the drawings, the list of components represented by each reference numeral is as follows:
[0028] 1. Transfer rack; 2. Box body; 21. Second chute; 3. Plasma cutting assembly; 31. Driving box; 311. First chute; 312. Limiting rod; 32. First belt transmission member; 321. First mounting block; 33. Sliding seat; 331. First limiting shaft; 332. Limiting seat; 333. Limiting groove; 34. Mounting groove; 35. Fixed rod; 351. Slide bar; 352. Extrusion block; 353. Clamping block; 354. Spring; 36. L-shaped mounting frame; 361. Through hole; 362. Card slot; 37. Plasma cutting member; 38. Positioning rod; 4. Template; 41. Second limiting shaft; 411. Sleeve; 412. Slide bar; 413. Elastic limiting column; 5. Arc groove; 51. Straight groove; 6. Conveying mechanism; 61. Second belt transmission member; 62. Second mounting block; 63. Driving motor; 7. Cylinder positioning member. Detailed implementation mode
[0029] 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. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without making creative efforts belong to the protection scope of the present invention.
[0030] As Figure 1-8 shown: An embodiment of the present invention is as follows:
[0031] A processing and cutting device for ship deck production includes a transfer rack 1. A box body 2 with an opening at the bottom is installed on the top of the transfer rack 1. A plasma cutting assembly 3 is installed at the bottom of the box body 2. A template 4 is arranged in the box body 2. The template 4 is provided with an arc groove 5 through it, and one end of the arc groove 5 is connected with a straight groove 51;
[0032] The plasma cutting assembly 3 includes a driving box 31 with an opening at the bottom. On the opposite inner side walls of the inner cavity of the driving box 31, first belt transmission members 32 that can rotate forward and backward are symmetrically installed, and the ends of the first belt transmission members 32 are located below the straight groove 51. A sliding seat 33 is installed between the two first belt transmission members 32. An installation groove 34 is penetrated through the inner cavity of the sliding seat 33. A fixed rod 35 is arranged between the inner walls of the installation groove 34. An L-shaped mounting frame 36 is slidably connected to the outer wall of the fixed rod 35. The L-shaped mounting frame 36 passes through the bottom of the sliding seat 33 and is installed with a plasma cutting member 37. The initial position of the plasma cutting member 37 before cutting is located at the middle position of the end of the first belt transmission member 32. The top of the L-shaped mounting frame 36 passes through the sliding seat 33 and is provided with a positioning rod 38. When the sliding seat 33 slides along the upper part of the first belt transmission member 32, the positioning rod 38 is inserted into the arc groove 5.
[0033] In this embodiment, when an arc needs to be cut, the first belt transmission member 32 rotates forward to drive the two first belts to rotate forward, that is, to slide from a lower position to a higher position, so that the positioning rod 38 rises and gradually inserts into the arc groove 5 of the template 4, so that it can slide along the arc groove 5 during cutting to achieve arc cutting; when a straight line needs to be cut, the first belt transmission member 32 rotates in the reverse direction, so that the plasma cutting member 37 slides along the lower part of the first belt transmission member 32, that is, the positioning rod 38 does not insert into the arc groove 5, so that the plasma cutting member 37 can slide in a straight line to achieve straight line cutting.
[0034] In this embodiment, in order to prevent the first belt transmission member from deforming due to the gravity of the sliding seat, first sliding grooves 311 are symmetrically formed on opposite inner side walls of the inner cavity of the drive box 31 along the outer edge of the first belt transmission member 32. First mounting blocks 321 are symmetrically mounted on the two first belt transmission members 32. First limiting shafts 331 are symmetrically and fixedly connected to opposite inner side walls of the upper end of the sliding seat 33, and the first limiting shafts 331 pass through the first mounting blocks 321 and are slidably connected to the first sliding grooves 311. The mutual cooperation of the first limiting shafts and the first sliding grooves can support the sliding seat, so that the gravity of the sliding seat will not be transmitted to the first belt transmission member.
[0035] In this embodiment, in order to ensure that the sliding seat will not be angularly offset during the sliding process and can only move vertically downward, limiting seats 332 are symmetrically mounted on opposite sides of the lower end of the sliding seat 33. Limiting grooves 333 are formed through the limiting seats 332 in the height direction. A limiting rod 312 is fixedly connected between opposite ends of the inner wall of the drive box 31, and the limiting rod 312 passes through the limiting grooves 333. The cooperation of the limiting rod and the limiting grooves can limit the angle of the sliding seat to ensure that the sliding seat always moves vertically downward.
[0036] In this embodiment, to ensure the stability of the plasma cutting part during straight-line cutting, the inside of the fixing rod 35 is a hollow structure. The opposite ends of the fixing rod 35 are symmetrically and slidably connected with sliding rods 351. The ends of the two sliding rods 351 away from each other are inserted into the limiting grooves 333 and are provided with inclined first inclined surfaces. The ends of the two sliding rods 351 close to each other are both provided with extrusion blocks 352. The tops of the sides of the two extrusion blocks 352 close to each other are both provided with inclined second inclined surfaces. A clamping block 353 is slidably connected through the top at the middle position of the fixing rod 35. One end of the clamping block 353 is inserted into the inner cavity of the fixing rod 35 and is provided with a third inclined surface that cooperates with the second inclined surface. When the limiting rod 312 abuts against the top of the limiting groove 333, the limiting rod 312 pushes the sliding rod 351 to slide and pushes one end of the clamping block 353 out of the top of the fixing rod 35. The L-shaped mounting frame 36 is provided with a through hole 361 that cooperates with the fixing rod 35. A clamping groove 362 that cooperates with the clamping block 353 is opened at the top of the through hole 361. A spring 354 is sleeved on the outer wall of the sliding rod 351, and the two ends of the spring 354 are respectively connected with the extrusion block 352 and the end of the inner cavity of the fixing rod 35. When the sliding seat slides to the lower part of the second belt transmission part, the limiting rod and the sliding rod can generate relative sliding, that is, the sliding rod descends and contacts the top of the limiting rod, so as to squeeze the sliding rod through the limiting rod. The sliding rod pushes the extrusion block to slide, and the extrusion block pushes the clamping block to rise through the cooperation of the second inclined surface and the third inclined surface, so that the clamping block is inserted into the clamping groove of the L-shaped mounting frame, so as to ensure that the L-shaped mounting frame can maintain a fixed position and will not shake during straight-line cutting.
[0037] In this embodiment, to enable the cutting device to cut the end of the deck into different shapes, a conveying mechanism 6 is arranged in the box body 2. A number of templates 4 are equidistantly installed on the conveying mechanism 6. Each template 4 is provided with an arc groove 5 and a straight groove 51. The shapes of the arc grooves 5 on each template 4 are all different. The conveying mechanism 6 includes second belt transmission parts 61 installed on the opposite side walls of the inner cavity of the box body 2, and the two second belt transmission parts 61 are connected by a connecting shaft. Second mounting blocks 62 are equidistantly and symmetrically installed on the two second belt transmission parts 61. Each template 4 is respectively installed between two opposite second mounting blocks 62. A driving motor 63 is installed on the side wall of the box body 2, and the output shaft of the driving motor 63 is connected with the connecting shaft. When cutting different shapes, the driving motor can drive the second belt transmission part to drive, so as to drive the template to slide and switch, and transmit the shape of the adapted arc groove above the plasma cutting part, so as to cut decks of different shapes.
[0038] In this embodiment, each linear groove 51 is located at the middle position of the template 4, and the linear grooves on each template are arranged at the same position of the template, so that after cutting is completed, when the plasma cutting part returns to its position, it can return to the position of the linear groove, that is, the middle position of the template, so that it can be accurately docked to the arc groove of the template every time.
[0039] In this embodiment, in order to prevent the second belt transmission member from deforming due to the weight of the template, second sliding grooves 21 are symmetrically formed on the opposite inner side walls of the inner cavity of the box body 2 along the outer edge of the second belt transmission member 61. Second limiting shafts 41 are symmetrically and fixedly connected to both ends of the template 4, and the second limiting shafts 41 pass through the second mounting blocks 62 and are slidably connected to the second sliding grooves 21. During the sliding process, the mutual cooperation of the second limiting shafts and the second sliding grooves can play an auxiliary supporting role for the template and prevent the second belt transmission member from bearing the weight.
[0040] In this embodiment, in order to facilitate the disassembly, assembly and replacement of the template, the second limiting shaft 41 includes a sleeve 411. A sliding rod 412 is slidably connected to one end of the sleeve 411 away from the template 4. A limiting hole is formed in the outer wall of the sleeve 411, and an elastic limiting post 413 that cooperates with the limiting hole is arranged on the outer wall of the sliding rod 412. The second mounting block 62 is a structure that can be separated up and down. When the template needs to be disassembled and assembled, the first mounting block can be separated, and then the elastic limiting post is squeezed and the sliding rod is pushed to make the sliding rod disengage from the first sliding groove, so that the template can be removed and replaced.
[0041] In this embodiment, cylinder positioning members 7 for positioning the deck are symmetrically arranged on the opposite sides of the conveying frame 1. The cylinder positioning members can clamp and position the deck to ensure the cutting accuracy.
[0042] The specific working process of this embodiment is as follows:
[0043] When the end of the deck needs to be cut into an arc shape, first convey the deck to the cutting position through the conveying frame 1, and then clamp and position the deck through the cylinder positioning members 7;
[0044] Then start the driving motor 63. The driving motor 63 drives the second belt transmission member 61 to rotate, and conveys the matching template 4 above the opening of the box body 2. The driving motor 63 is a servo motor and can accurately control the rotation angle. During the transmission process of the template 4, the mutual cooperation of the second limiting shafts 41 and the second sliding grooves 21 at both ends of the template 4 can ensure the strength of the structure of the second belt transmission member 61 and prevent deformation.
[0045] After the switching is completed, the motors of the two first belt transmission members 32 are synchronously started in the forward direction. The motors drive the first belt transmission members 32 to rotate, thereby driving the sliding seat 33 to slide forward (and the initial position of the sliding seat 33 is located at the middle position of the end of the first belt transmission member 32). The sliding seat 33 slides upward from the middle position of the first belt transmission member 32, so that the height of the positioning rod 38 gradually rises (the positioning rod 38 and the sliding seat 33 always remain vertically downward under the cooperation of the limiting rod 312 and the limiting groove 333). The positioning rod 38 gradually inserts into the straight groove 51 of the arc groove 5. Then, the first belt transmission member 32 continues to drive, so that the sliding seat 33 continues to slide forward, thereby making the positioning rod 38 slide along the arc groove 5, so that the L-shaped mounting bracket 36 and the plasma cutting member 37 slide synchronously along the arc groove 5, so that the plasma cutting member 37 can cut out a shape matching the arc groove 5.
[0046] After the cutting is completed, turn off the plasma cutting member 37, and then reverse-start the motor of the first belt transmission member 32, so that the sliding seat 33 returns to the straight groove 51 position along the original path and the positioning rod 38 gradually disengages from the straight groove 51, so that the plasma cutting member 37 returns to the middle position (initial position) of the sliding seat 33, and then take away the cut deck.
[0047] When a straight line needs to be cut on the deck, reverse-start the motor of the first belt transmission member 32. The motor drives the sliding seat 33 to slide in the reverse direction and is transmitted downward from the middle position of the first belt transmission member 32, so that the positioning rod 38 will not insert into the arc groove 5, so that during cutting, the plasma cutting member 37 cuts along a straight line, thus realizing straight line cutting.
[0048] When cutting a straight line, since the sliding seat 33 slides downward first, relative sliding is generated between the limiting rod 312 and the sliding rod 351, so that the limiting rod 312 gradually contacts the sliding rod 351 and pushes the sliding rod 351 to slide, thereby pushing the clamping block 353 to rise through the pressing block 352 at the end of the sliding rod 351, so that the clamping block 353 inserts into the clamping groove 362 of the L-shaped mounting bracket 36, so as to ensure that the L-shaped mounting bracket 36 can remain stable and will not shift during cutting, ensuring the accuracy of straight line cutting; while when cutting an arc, since the sliding rod 351 is separated from the limiting rod 312, and the sliding rod 351 returns to its original position under the restoring force of the spring 354, the clamping block 353 is separated from the clamping groove 362 under the action of gravity, so that the L-shaped mounting bracket 36 can slide freely along the fixed rod 35.
[0049] In this embodiment, the box body 2 is connected to the conveyor frame 1 through a telescopic column, and a hydraulic cylinder is arranged between the box body 2 and the conveyor frame 1 for height adjustment to adapt to decks of different thicknesses.
[0050] In the present invention, unless otherwise clearly specified or limited, terms such as "installation", "setting", "connection", "fixation", "swivel connection" and the like shall be understood in a broad sense. For example, it may be a fixed connection, a detachable connection, or integrated; it may be a mechanical connection or an electrical connection; it may be directly connected or indirectly connected through an intermediate medium, and it may be the communication inside two elements or the interaction relationship between two elements. Unless otherwise clearly limited, for those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific circumstances.
[0051] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that these embodiments can be modified without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A processing and cutting device for ship deck production, characterized in that: It includes a conveyor rack (1), on the top of which a box body (2) with an opening at the bottom is installed. A plasma cutting assembly (3) is installed at the bottom of the box body (2). A template (4) is arranged in the box body (2). The template (4) is provided with an arc-shaped groove (5) running through it, and one end of the arc-shaped groove (5) is connected to a straight groove (51). The plasma cutting assembly (3) includes a drive box (31) with an opening at the bottom. On the opposite inner side walls of the inner cavity of the drive box (31), a first belt transmission member (32) capable of forward and reverse rotation is symmetrically installed, and the end of the first belt transmission member (32) is located below the straight groove (51). A sliding seat (33) is installed between the two first belt transmission members (32). An installation groove (34) runs through the inner cavity of the sliding seat (33). A fixed rod (35) is arranged between the inner walls of the installation groove (34). An L-shaped mounting frame (36) is slidably connected to the outer wall of the fixed rod (35). The L-shaped mounting frame (36) passes through the bottom of the sliding seat (33) and is installed with a plasma cutting member (37). The initial position of the plasma cutting member (37) before cutting is located at the middle position of the end of the first belt transmission member (32). The top of the L-shaped mounting frame (36) passes through the sliding seat (33) and is provided with a positioning rod (38). When the sliding seat (33) slides along the upper part of the first belt transmission member (32), the positioning rod (38) is inserted into the arc-shaped groove (5). On the opposite sides of the lower end of the sliding seat (33), a limit seat (332) is symmetrically installed. A limit groove (333) runs through the limit seat (332) in the height direction. A limit rod (312) is fixedly connected between the opposite ends of the inner wall of the drive box (31), and the limit rod (312) passes through the limit groove (333). The inside of the fixed rod (35) is a hollow structure. On the opposite ends of the fixed rod (35), a sliding rod (351) is symmetrically slidably connected. The ends of the two sliding rods (351) away from each other are inserted into the limit groove (333) and are provided with an inclined first inclined surface. On the ends of the two sliding rods (351) close to each other, an extrusion block (352) is provided. On the top of the sides of the two extrusion blocks (352) close to each other, an inclined second inclined surface is provided. A clamping block (353) is slidably connected through the top of the middle position of the fixed rod (35). One end of the clamping block (353) is inserted into the inner cavity of the fixed rod (35) and is provided with a third inclined surface that cooperates with the second inclined surface. When the limit rod (312) abuts against the top of the limit groove (333), the limit rod (312) pushes the sliding rod (351) to slide and pushes one end of the clamping block (353) out of the top of the fixed rod (35). The L-shaped mounting frame (36) is provided with a through hole (361) that cooperates with the fixed rod (35). A clamping groove (362) that cooperates with the clamping block (353) is opened at the top of the through hole (361). A spring (354) is sleeved on the outer wall of the sliding rod (351), and the two ends of the spring (354) are respectively connected to the extrusion block (352) and the end of the inner cavity of the fixed rod (35).
2. The processing and cutting device for ship deck production according to claim 1, characterized in that: On opposite inner side walls of the driving box (31) cavity, first sliding grooves (311) are symmetrically formed along the outer edge of the first belt transmission member (32). On the two first belt transmission members (32), first mounting blocks (321) are symmetrically installed. On opposite upper side walls of the sliding seat (33), first limiting shafts (331) are symmetrically and fixedly connected. The first limiting shafts (331) pass through the first mounting blocks (321) and are slidably connected to the first sliding grooves (311).
3. A processing and cutting device for ship deck production according to claim 1, characterized in that: A conveying mechanism (6) is arranged inside the box body (2). A plurality of templates (4) are equidistantly installed on the conveying mechanism (6). An arc groove (5) and a straight groove (51) are formed on each template (4), and the shapes of the arc grooves (5) on each template (4) are all different.
4. A processing and cutting device for ship deck production according to claim 3, characterized in that: Each straight groove (51) is located at the middle position of the template (4).
5. A processing and cutting device for ship deck production according to claim 3, characterized in that: The conveying mechanism (6) includes second belt transmission members (61) installed on opposite inner side walls of the box body (2) cavity. The two second belt transmission members (61) are connected by a connecting shaft. Second mounting blocks (62) are symmetrically and equidistantly installed on the two second belt transmission members (61). Each template (4) is respectively installed between two oppositely arranged second mounting blocks (62). A driving motor (63) is installed on the side wall of the box body (2), and the output shaft of the driving motor (63) is connected to the connecting shaft.
6. A processing and cutting device for ship deck production according to claim 5, characterized in that: On opposite inner side walls of the box body (2) cavity, second sliding grooves (21) are symmetrically formed along the outer edge of the second belt transmission member (61). Second limiting shafts (41) are symmetrically and fixedly connected to both ends of the template (4). The second limiting shafts (41) pass through the second mounting blocks (62) and are slidably connected to the second sliding grooves (21).
7. A processing and cutting device for ship deck production according to claim 6, characterized in that: The second limiting shaft (41) includes a sleeve (411). A sliding rod (412) is slidably connected to one end of the sleeve (411) away from the template (4). A limiting hole is formed on the outer wall of the sleeve (411). An elastic limiting post (413) that cooperates with the limiting hole is arranged on the outer wall of the sliding rod (412). The second mounting block (62) is a structure that can be separated up and down.
8. A processing and cutting device for ship deck production according to claim 1, characterized in that: Cylinder positioning members (7) for positioning the deck are symmetrically arranged on opposite sides of the conveying rack (1).
Citation Information
Patent Citations
Plasma profiling cutting device
CN216028693U