CN221564760U - Aviation conduit automatic feeding machine - Google Patents
Aviation conduit automatic feeding machine Download PDFInfo
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- CN221564760U CN221564760U CN202420310648.8U CN202420310648U CN221564760U CN 221564760 U CN221564760 U CN 221564760U CN 202420310648 U CN202420310648 U CN 202420310648U CN 221564760 U CN221564760 U CN 221564760U
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Abstract
The application discloses an automatic feeding machine for aviation catheters, which relates to the technical field of automatic pipe fitting feeding equipment and comprises a machine body assembly, a power assembly, a measuring assembly, an air source assembly and an oiling assembly; the machine body assembly comprises a machine body part and an electric box; the electric box is fixed on one side of the machine body part; the power assembly is arranged on the upper side surface of the machine body part; the measuring assembly is arranged on one side of the power assembly; the oil coating component is arranged on one side of the machine body part far away from the electric box; the machine body assembly further comprises an arrangement feeding driving mechanism and a material supporting mechanism; the efficiency of the catheter production process can be greatly improved, and meanwhile, the high precision of the product is considered; the product quality stability is greatly improved; the flexible processing production capacity is obtained, and support is provided for realizing full-automatic production of products in a complete process; the operating environment and the operation safety are improved.
Description
Technical Field
The utility model relates to the technical field of automatic pipe fitting feeding equipment, in particular to an automatic aviation conduit feeding machine.
Background
The feeding machine is equipment for storing, measuring and identifying the diameter and the length of a pipe fitting, scanning bar codes, engraving bar codes, oiling an automatic inner hole and accurately positioning the pipe fitting in an aviation metal pipe automatic production line.
The traditional aviation conduit processing mode is manual operation, and in the conduit processing process, the product specification is more, the diameter size and the length are different, the bar code is required to be manually scanned and oiled, the operation is complex, and the full-automatic production is difficult to realize.
Therefore, a catheter automatic feeding machine is needed, and the automatic feeding is automatically completed: the method comprises the steps of material storage, diameter and length measurement, bar code scanning, bar code carving, automatic inner hole oiling, positioning and the like, and support is provided for the realization of an aviation conduit full-automatic production line.
Disclosure of utility model
The embodiment of the application solves the problems that in the prior art, the processing mode is manual operation, and in the processing process of the guide pipe, the specifications of products are more, the diameters are different in size and length, bar codes need to be manually scanned and oiled, the operation is complicated, and the full-automatic production is difficult to realize; automatic completion is realized: the method comprises the steps of storing, measuring the diameter and the length, scanning bar codes, engraving bar codes, automatically oiling and positioning inner holes, and the like, so that the efficiency of the catheter production process is greatly improved, and the operation environment and the operation safety are improved.
The embodiment of the application provides an automatic feeding machine for aviation catheters, which comprises a machine body assembly, a power assembly, a measuring assembly, an air source assembly and an oiling assembly;
the machine body assembly comprises a machine body part and an electric box;
the electric box is fixed on one side of the machine body part;
the power assembly is arranged on the upper side surface of the machine body part;
The measuring assembly is arranged on one side of the power assembly;
The oil coating component is arranged on one side of the machine body part far away from the electric box;
The machine body assembly further comprises an arrangement feeding driving mechanism and a material supporting mechanism;
the arrangement feeding drive is fixed on the upper side surface of the machine body part, and the material supporting mechanism is fixed on one side of the arrangement feeding drive.
As an improvement, the machine body assembly further comprises an operation button, a touch screen, a code scanning and marking device, a detection device and an electric sliding table II;
the operation buttons and the touch screen are fixed on the upper side surface of the electric box;
The second electric sliding table is fixed on one side of the arrangement feeding drive and is positioned above the power assembly;
The detection device is connected to the second electric sliding table in a sliding manner;
The code scanning and engraving device is fixed on one side of the detection device;
The power assembly comprises a sliding table, a second cylinder, a clamping device, a first bracket, a second bracket, a first cylinder, a first motor, a roller, a first inclined plate and a second inclined plate;
The sliding table is fixed on the upper side surface of the machine body part and is positioned on one side of the material supporting mechanism;
The first support is fixed on the upper side surface of the machine body part, is positioned at one end of the sliding table in the length direction, and is connected to the sliding table in a sliding manner;
The cylinder II, the motor I, the roller, the inclined plate I and the inclined plate II are respectively two and are respectively in one-to-one correspondence with the bracket I and the bracket II;
The first motor is fixed on one side of the first bracket and one side of the second bracket, which are far away from each other, the roller is rotationally connected on one side of the first bracket and one side of the second bracket, which are close to each other, and the output end of the first motor is fixed on the rotating shaft of the roller;
The second cylinder is fixed on one side of the first bracket and one side of the second bracket, which are close to each other, the output end of the second cylinder faces upwards, and the output end of the second cylinder is positioned on one side of the roller, which is far away from the first bracket or the second bracket;
The first inclined plate and the second inclined plate are fixed on one side of the first bracket and one side of the second bracket, which are close to each other, the first inclined plate is fixed on one side of the rollers, which are close to the arrangement feeding drive, and the second inclined plate is fixed on one side of the rollers, which is far away from the arrangement feeding drive;
The first cylinder is fixed on one side of the first bracket, which is close to the second bracket, the first cylinder is positioned above the roller, the output end of the first cylinder faces downwards, and the output end of the first cylinder is provided with a roller;
The clamping device is fixed on one side of the second bracket, which is close to the first bracket, and the clamping device is fixed on one side of the second cylinder, which is far away from the arrangement feeding drive.
As an improvement, the length direction of the sliding table is parallel to the length direction of the electric sliding table, and one end of the sliding table is provided with a working motor;
The axis of the roller is parallel to the length direction of the sliding table;
The roller axis of the output end of the cylinder is parallel to the axis of the roller.
As an improvement, the measuring assembly comprises a mounting plate, a supporting plate, an electric sliding table I, an adjusting plate, a fixed block I, a groove I, a measuring ruler, a fixed block II and a groove II;
the mounting plate is fixed on the upper side surface of the machine body part and is positioned on one side of the first bracket;
The first support plates and the first electric sliding tables are respectively in one-to-one correspondence, the two support plates are symmetrically fixed on the upper side surface of the mounting plate, and the first electric sliding tables are fixed on one side, close to each other, of the two support plates;
The length direction of the first electric sliding table is perpendicular to the ground;
the two sides of the adjusting plate are respectively and slidably connected to the first electric sliding table;
The first fixing blocks are fixed on the lower surface of the adjusting plate, the first grooves are formed in the lower surface of the fixing blocks, and the first grooves are arc-shaped grooves;
a space is reserved between the first fixing blocks;
The measuring ruler is fixed on a first fixed block far away from the power assembly, and the measuring ruler is positioned on one side of the first fixed block far away from the power assembly;
the second fixing block is fixed on the upper surface of the mounting plate, the second fixing block is positioned between the two support plates, the second fixing block is positioned below the first fixing block, and the upper surface of the second fixing block is provided with a second groove;
After the first fixed block descends through the electric sliding table, the second fixed block is positioned in a gap between the first fixed blocks;
and rubber layers are arranged in the first groove and the second groove.
As an improvement, the axis of the first groove is parallel to the axis of the processing guide pipe, and the axes of the first grooves on the lower surfaces of the two fixed blocks are on the same straight line;
the axis of the first groove is parallel to the length direction of the sliding table;
The length direction of the second groove is parallel to the axis of the first groove.
As an improvement, the zero scale of the measuring ruler is flush with the highest end of the first inner rubber layer of the groove.
As an improvement, the second groove is V-shaped;
The rubber layer in the first groove is of an air bag structure.
One or more technical solutions provided in the embodiments of the present application at least have the following technical effects or advantages:
Firstly, the efficiency of the catheter production process is greatly improved, and meanwhile, the high precision of the product is considered; the product quality stability is greatly improved; the flexible processing production capacity is obtained, and support is provided for realizing full-automatic production of products in a complete process; the operation environment and the operation safety are improved;
Secondly, the number and the positions of the first fixing block and the second fixing block are adjusted, so that the measuring ruler can be adapted to various types of catheters, the positions of the measuring ruler are adjusted, the diameter of the catheters can be obtained after the first fixing block is pressed, and the measuring efficiency is improved;
And thirdly, the guide pipe and the groove II are provided with two contact surfaces, the guide pipe cannot shake in the groove II for a long time, the guide pipe can be quickly and stably positioned, the guide pipe can be assisted in positioning by the rubber layer of the air bag structure, the joint surface of the guide pipe and the rubber layer of the air bag structure is increased, and the guide pipe is limited and stable.
Drawings
FIG. 1 is a perspective view of an automatic feeder for aviation conduits according to the present utility model;
FIG. 2 is an enlarged view of the structure of the aircraft duct automatic feeder of FIG. 1 at A according to the present utility model;
FIG. 3 is a second perspective view of an automatic feeder for aviation conduits according to the present utility model;
FIG. 4 is an enlarged view of the structure of the aircraft duct automatic feeder of FIG. 3 at B in accordance with the present utility model;
FIG. 5 is a front view of a measurement assembly of an automatic feeder for aviation conduits according to the present utility model;
FIG. 6 is a left side cross-sectional view of a metering assembly of an automatic feeder for aviation conduits according to the present utility model;
FIG. 7 is a front view of a V-shaped groove of an automatic feeder for aviation conduits;
FIG. 8 is a view showing the structure of a rubber layer clamping duct with an air bag structure in a groove of an automatic feeding machine for aviation duct.
In the figure: 100. a body assembly; 110. a body portion; 120. an electric box; 130. operating a button and a touch screen; 140. arranging feeding drives; 150. a material supporting mechanism; 160. a code scanning and engraving device; 170. a detection device; 180. an electric sliding table II;
200. A power assembly; 210. a sliding table; 220. a second cylinder; 230. a clamping device; 240. a first bracket; 250. a second bracket; 260. a first cylinder; 270. a first motor; 271. a roller; 280. a sloping plate I; 290. a second sloping plate;
300. A measurement assembly; 310. a mounting plate; 320. a support plate; 330. an electric sliding table I; 340. an adjusting plate; 350. a first fixed block; 351. a groove I; 360. a measuring ruler; 370. a second fixed block; 371. a second groove;
400. An air source assembly;
500. And (5) oiling the component.
Detailed Description
In order that the utility model may be readily understood, a more complete description of the utility model will be rendered by reference to the appended drawings; the preferred embodiments of the present utility model are illustrated in the drawings, but the present utility model can be embodied in many different forms and is not limited to the embodiments described herein; rather, these embodiments are provided so that this disclosure will be thorough and complete.
It should be noted that the terms "vertical", "horizontal", "upper", "lower", "left", "right", and the like are used herein for illustrative purposes only and do not represent the only embodiment.
Unless defined otherwise, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this utility model belongs; the terminology used herein in the description of the utility model is for the purpose of describing particular embodiments only and is not intended to be limiting of the utility model; the term "and/or" as used herein includes any and all combinations of one or more of the associated listed items.
After parameters are set through the operation buttons and the touch screen 130, the machine body starts to run, the arrangement feeding drive 140 rotates to drive the V-shaped groove to transport the pipe to move, the pipe falls to the position of the material supporting mechanism 150, the electric sliding table II 180 drives the detection device 170 to move, the length of the pipe is predicted, and the sliding table 210 drives the bracket II 250 to move to a proper distance through a working motor at one end; then the material supporting mechanism 150 pushes two ends of the pipe onto the roller 271 between the inclined plate I280 and the inclined plate II 290 respectively, one end presses the pipe through the roller under the cylinder I260, then the motor I270 drives the roller 271 to roll together with the pipe, the code scanning and engraving device 160 finishes code scanning and engraving, then the limit of the cylinder I260 on the pipe is canceled, the cylinder II 220 jacks the pipe to the position of the clamping device 230 for clamping, and then the measuring assembly 300 measures the diameter of the pipe; finally, oiling is performed by the oiling assembly 500.
Example 1
1-4, The automatic feeding machine for aviation conduits comprises a machine body assembly 100, a power assembly 200, a measuring assembly 300, an air source assembly 400 and an oiling assembly 500;
The body assembly 100 includes a body portion 110 and an electrical box 120;
The electric box 120 is fixed at one side of the body part 110;
the power assembly 200 is disposed at the upper side of the body portion 110;
The measuring assembly 300 is disposed at one side of the power assembly 200;
the air source assembly 400 is fixed on one side of the body portion 110, and the oiling assembly 500 is arranged on one side of the body portion 110 away from the electric box 120;
the machine body assembly 100 further comprises an arrangement feeding drive 140 and a material supporting mechanism 150;
The arranging and feeding drive 140 is fixed on the upper side surface of the machine body part 110, and the material supporting mechanism 150 is fixed on one side of the arranging and feeding drive 140;
the machine body assembly 100 further comprises an operation button, a touch screen 130, a code scanning and marking device 160, a detection device 170 and a second electric sliding table 180;
the operation buttons and the touch screen 130 are fixed on the upper side surface of the electric box 120;
The second electric sliding table 180 is fixed at one side of the arrangement feeding drive 140, and the second electric sliding table 180 is positioned above the power assembly 200;
the detection device 170 is slidably connected to the second electric sliding table 180,
The code scanning and encoding device 160 is fixed at one side of the detection device 170;
The power assembly 200 comprises a sliding table 210, a second cylinder 220, a clamping device 230, a first bracket 240, a second bracket 250, a first cylinder 260, a first motor 270, a roller 271, a first inclined plate 280 and a second inclined plate 290;
The sliding table 210 is fixed on the upper side surface of the machine body part 110, the sliding table 210 is positioned on one side of the material supporting mechanism 150, the length direction of the sliding table 210 is parallel to the length direction of the second electric sliding table 180, and one end of the sliding table 210 is provided with a working motor;
The first bracket 240 is fixed on the upper side surface of the body 110, and the first bracket 240 is located at one end of the sliding table 210 in the length direction, and the second bracket 250 is slidably connected to the sliding table 210;
The second cylinder 220, the first motor 270, the roller 271, the first inclined plate 280 and the second inclined plate 290 are respectively two and are respectively in one-to-one correspondence with the first bracket 240 and the second bracket 250;
the first motor 270 is fixed on one side of the first bracket 240 and the second bracket 250, which are far away from each other, the roller 271 is rotatably connected on one side of the first bracket 240 and the second bracket 250, which are close to each other, and the output end of the first motor 270 is fixed on the rotating shaft of the roller 271;
the axis of the roller 271 is parallel to the length direction of the sliding table 210;
The second cylinder 220 is fixed on one side of the first bracket 240 and the second bracket 250, which are close to each other, the output end of the second cylinder 220 faces upwards, and the output end of the second cylinder 220 is positioned on one side of the roller 271, which is far away from the first bracket 240 or the second bracket 250;
The first inclined plate 280 and the second inclined plate 290 are fixed on one side of the first bracket 240 and the second bracket 250, which are close to each other, the first inclined plate 280 is fixed on one side of the roller 271, which is close to the arrangement feeding drive 140, and the second inclined plate 290 is fixed on one side of the roller 271, which is far from the arrangement feeding drive 140;
The first cylinder 260 is fixed on one side of the first bracket 240, which is close to the second bracket 250, the first cylinder 260 is positioned above the roller 271, the output end of the first cylinder 260 faces downwards, and the output end of the first cylinder 260 is provided with a roller;
The roller axis of the output end of the first cylinder 260 is parallel to the axis of the roller 271;
the clamping device 230 is fixed on one side of the second bracket 250, which is close to the first bracket 240, and the clamping device 230 is fixed on one side of the second cylinder 220, which is far away from the arranging and feeding drive 140;
The arranging feeding driving unit 140, the material supporting unit 150 and the oiling unit 500 are in the prior art, and will not be described herein.
After parameters are set through the operation buttons and the touch screen 130, the machine body starts to run, the arrangement feeding drive 140 rotates to drive the V-shaped groove to transport the pipe to move, the pipe falls to the position of the material supporting mechanism 150, the electric sliding table II 180 drives the detection device 170 to move, the length of the pipe is predicted, and the sliding table 210 drives the bracket II 250 to move to a proper distance through a working motor at one end; then the material supporting mechanism 150 pushes two ends of the pipe onto the roller 271 between the inclined plate I280 and the inclined plate II 290 respectively, one end presses the pipe through the roller under the cylinder I260, then the motor I270 drives the roller 271 to roll together with the pipe, the code scanning and engraving device 160 finishes code scanning and engraving, then the limit of the cylinder I260 on the pipe is canceled, the cylinder II 220 jacks the pipe to the position of the clamping device 230 for clamping, and then the measuring assembly 300 measures the diameter of the pipe; finally, oiling is performed by the oiling assembly 500.
The efficiency of the catheter production process is greatly improved, and meanwhile, the high precision of the product is considered; the product quality stability is greatly improved; the flexible processing production capacity is obtained, and support is provided for realizing full-automatic production of products in a complete process; the operating environment and the operation safety are improved.
Example two
In the above embodiment, when the diameter of the pipe is measured, the measuring assembly 300 is fixed by the upper clamping block and the lower clamping block, and then the pipe is measured by the measuring plate after fixing, for example, the adjustable plastic pipe diameter measuring device provided by the grant publication number CN216205899U, when the diameter of the plastic pipe is measured, the upper clamping block is pulled upwards first, the distance between the upper clamping block and the lower clamping block can be increased, then the plastic pipe is placed above the lower clamping block, then the upper clamping block falls down and contacts with the surface of the plastic pipe, then the screw adjusting rod is rotated clockwise by the adjusting handle, the screw adjusting rod can be moved downwards, and the top of the upper clamping block can be extruded, so that the plastic pipe is pressed downwards by the upper clamping block, the plastic pipe is clamped more firmly, then the electric push rod is started to stretch by the control panel, the supporting block and the measuring plate can be driven to move upwards, the measuring plate can be driven to rise to a proper measuring position, and finally the diameter of the plastic pipe is measured by the measuring plate.
It has great drawbacks: when the device is used, the upper clamping block and the lower clamping block are positioned on the same plane, the upper clamping block is positioned in the groove of the lower clamping block after descending, a gap is reserved between the upper clamping block and the lower clamping block, if a conduit to be detected is smaller than the gap reserved between the upper clamping block and the lower clamping block, the upper clamping block cannot be attached to the conduit to be detected in the pressing process, so that deviation occurs in detection, and meanwhile, the measuring process through the measuring plate is complicated, so that the measuring efficiency is low; the embodiment of the application performs certain optimization on the basis of the measuring device, as shown in fig. 5-6:
The measuring assembly 300 comprises a mounting plate 310, a support plate 320, an electric sliding table I330, an adjusting plate 340, a fixed block I350, a groove I351, a measuring ruler 360, a fixed block II 370 and a groove II 371;
The mounting plate 310 is fixed on the upper side surface of the body part 110, and the mounting plate 310 is positioned on one side of the first bracket 240;
The two support plates 320 and the first electric sliding table 330 are respectively in one-to-one correspondence, the two support plates 320 are symmetrically fixed on the upper side surface of the mounting plate 310, and the first electric sliding table 330 is fixed on one side of the two support plates 320 close to each other;
The length direction of the first electric sliding table 330 is perpendicular to the ground;
Two sides of the adjusting plate 340 are respectively and slidably connected to the first two electric sliding tables 330;
The number of the first fixing blocks 350 is two, the first fixing blocks 350 are fixed on the lower surface of the adjusting plate 340, the lower surface of the first fixing blocks 350 is provided with a first groove 351, the first groove 351 is an arc-shaped groove, the axis of the first groove 351 is parallel to the axis of the processing conduit, and the axes of the first grooves 351 on the lower surfaces of the two fixing blocks 350 are on the same straight line;
the axis of the first groove 351 is parallel to the length direction of the sliding table 210;
A space is reserved between the two first fixing blocks 350;
The measuring scale 360 is fixed on the first fixed block 350 far away from the power assembly 200, and the measuring scale 360 is positioned on one side of the first fixed block 350 far away from the power assembly 200;
The second fixing block 370 is fixed on the upper surface of the mounting plate 310, the second fixing block 370 is located between the two support plates 320, the second fixing block 370 is located below the first fixing block 350, a second groove 371 is formed in the upper surface of the second fixing block 370, and the length direction of the second groove 371 is parallel to the axis of the first groove 351;
after the first fixing block 350 descends through the first electric sliding table 330, the second fixing block 370 is positioned in a gap between the first fixing blocks 350;
Rubber layers are arranged in the first groove 351 and the second groove 371;
the zero scale of the measuring ruler 360 is flush with the highest end of the rubber layer in the groove one 351.
The catheter to be measured is placed in the groove II 371 of the fixing block II 370, the limit of the clamping device 230 on the catheter is canceled, the catheter can be clung to the lowest end of the groove II 371, when the catheter is clung to the lowest end of the groove II 371, the clamping device 230 clamps and fixes again, the electric sliding table I330 drives the fixing block I350 to drop down, the groove I351 of the fixing block I350 is pressed on the catheter, the catheter is fixed, and after the catheter is pressed, the diameter of the catheter can be obtained by observing the numerical value of the measuring ruler 360.
Compared with the prior art, when in use, the number and the positions of the first fixing block 350 and the second fixing block 370 can be adjusted to adapt to various types of catheters, the catheters are fixed, the position of the measuring ruler 360 is adjusted, the diameter of the catheter can be obtained after the first fixing block 350 is pressed, and the measuring efficiency is improved.
Example III
In the second embodiment, the clamping device 230 is temporarily canceled to enable the catheter to be placed at the lowest end in the second groove 371, and the catheter may shake left and right in the second groove 371 during the placement process, so that the catheter is required to be pressed and fixed by the first fixing block 350 until the catheter does not shake any more during the pressing process by the first fixing block 350, so that the measurement efficiency is reduced, and therefore, the second embodiment is improved as shown in fig. 7-8:
the second groove 371 is V-shaped;
the rubber layer in the first groove 351 is of an air bag structure.
When the catheter is placed in the groove II 371, the catheter is quickly stabilized through the shape of the groove II 371, the catheter after stabilization is fixed through the pressing of the fixing block I350 and the groove I351, the rubber layer of the air bag structure in the groove I351 is extruded to expand towards the two sides of the catheter in the pressing process, the position of the catheter can be stabilized through the rubber layer after expansion, the highest end of the catheter is extruded to the rubber layer, the highest end of the catheter is tightly attached to the highest end of the groove I351, and the diameter is measured through the measuring scale 360.
The guide pipe and the groove II 371 have two contact surfaces, the guide pipe cannot shake in the groove II 371 for a long time, the guide pipe can be fast and stable, meanwhile, the rubber layer of the air bag structure can assist in positioning the guide pipe, the guide pipe extrudes the rubber layer of the air bag structure, the joint surface of the guide pipe and the rubber layer of the air bag structure is increased, and limiting and stabilizing are carried out.
The above description is only of the preferred embodiments of the present utility model and is not intended to limit the present utility model, but various modifications and variations can be made to the present utility model by those skilled in the art. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present utility model should be included in the protection scope of the present utility model.
Claims (7)
1. An automatic feeding machine for aviation catheters comprises a machine body assembly (100), a power assembly (200), a measuring assembly (300), an air source assembly (400) and an oiling assembly (500);
the body assembly (100) comprises a body portion (110) and an electrical box (120);
the electric box (120) is fixed on one side of the machine body part (110);
The power assembly (200) is arranged on the upper side surface of the machine body part (110);
the measuring assembly (300) is arranged on one side of the power assembly (200);
the air source assembly (400) is fixed on one side of the machine body part (110), and the oiling assembly (500) is arranged on one side of the machine body part (110) away from the electric box (120);
the machine body assembly (100) is characterized by further comprising an arrangement feeding drive (140) and a material supporting mechanism (150);
The arrangement feeding drive (140) is fixed on the upper side surface of the machine body part (110), and the material supporting mechanism (150) is fixed on one side of the arrangement feeding drive (140).
2. The automatic aviation conduit feeding machine according to claim 1, wherein the machine body assembly (100) further comprises an operation button, a touch screen (130), a code scanning and marking device (160), a detection device (170) and a second electric sliding table (180);
the operation buttons and the touch screen (130) are fixed on the upper side surface of the electric box (120);
The second electric sliding table (180) is fixed on one side of the arrangement feeding drive (140), and the second electric sliding table (180) is positioned above the power assembly (200);
the detection device (170) is connected to the second electric sliding table (180) in a sliding manner;
The code scanning and encoding device (160) is fixed on one side of the detection device (170);
The power assembly (200) comprises a sliding table (210), a second cylinder (220), a clamping device (230), a first bracket (240), a second bracket (250), a first cylinder (260), a first motor (270), a roller (271), a first inclined plate (280) and a second inclined plate (290);
The sliding table (210) is fixed on the upper side surface of the machine body part (110), and the sliding table (210) is positioned on one side of the material supporting mechanism (150);
The first bracket (240) is fixed on the upper side surface of the machine body part (110), the first bracket (240) is positioned at one end of the sliding table (210) in the length direction, and the second bracket (250) is connected to the sliding table (210) in a sliding manner;
The two cylinders (220), the first motor (270), the roller (271), the first inclined plate (280) and the second inclined plate (290) are respectively two and are respectively in one-to-one correspondence with the first bracket (240) and the second bracket (250);
the first motor (270) is fixed on one side of the first bracket (240) and one side of the second bracket (250) which are far away from each other, the roller (271) is rotatably connected on one side of the first bracket (240) and one side of the second bracket (250) which are close to each other, and the output end of the first motor (270) is fixed on the rotating shaft of the roller (271);
The second cylinder (220) is fixed on one side of the first bracket (240) and one side of the second bracket (250) which are close to each other, the output end of the second cylinder (220) faces upwards, and the output end of the second cylinder (220) is positioned on one side of the roller (271) which is far away from the first bracket (240) or the second bracket (250);
The first inclined plate (280) and the second inclined plate (290) are fixed on one side of the first bracket (240) and one side of the second bracket (250) which are close to each other, the first inclined plate (280) is fixed on one side of the roller (271) which is close to the arrangement feeding drive (140), and the second inclined plate (290) is fixed on one side of the roller (271) which is far away from the arrangement feeding drive (140);
The first cylinder (260) is fixed on one side of the first bracket (240) close to the second bracket (250), the first cylinder (260) is positioned above the roller (271), the output end of the first cylinder (260) faces downwards, and the output end of the first cylinder (260) is provided with a roller;
The clamping device (230) is fixed on one side of the second bracket (250) close to the first bracket (240), and the clamping device (230) is fixed on one side of the second cylinder (220) far away from the arrangement feeding drive (140).
3. The automatic aviation conduit feeding machine according to claim 2, wherein the length direction of the sliding table (210) is parallel to the length direction of the electric sliding table two (180), and one end of the sliding table (210) is provided with a working motor;
The axis of the roller (271) is parallel to the length direction of the sliding table (210);
The roller axis of the output end of the first cylinder (260) is parallel to the axis of the roller (271).
4. The automatic aviation catheter feeding machine according to claim 2, wherein the measuring assembly (300) comprises a mounting plate (310), a supporting plate (320), an electric sliding table I (330), an adjusting plate (340), a fixed block I (350), a groove I (351), a measuring ruler (360), a fixed block II (370) and a groove II (371);
The mounting plate (310) is fixed on the upper side surface of the machine body part (110), and the mounting plate (310) is positioned on one side of the first bracket (240);
The two support plates (320) and the first electric sliding table (330) are respectively in one-to-one correspondence, the two support plates (320) are symmetrically fixed on the upper side surface of the mounting plate (310), and the first electric sliding table (330) is fixed on one side, close to each other, of the two support plates (320);
The length direction of the first electric sliding table (330) is perpendicular to the ground;
two sides of the adjusting plate (340) are respectively and slidably connected to the first two electric sliding tables (330);
The number of the first fixing blocks (350) is two, the first fixing blocks (350) are fixed on the lower surface of the adjusting plate (340), the lower surface of the first fixing blocks (350) is provided with a first groove (351), and the first groove (351) is an arc-shaped groove;
a space is reserved between the two first fixing blocks (350);
The measuring ruler (360) is fixed on a first fixed block (350) far away from the power assembly (200), and the measuring ruler (360) is positioned on one side of the first fixed block (350) far away from the power assembly (200);
The second fixing block (370) is fixed on the upper surface of the mounting plate (310), the second fixing block (370) is positioned between the two support plates (320), the second fixing block (370) is positioned below the first fixing block (350), and the upper surface of the second fixing block (370) is provided with a second groove (371);
After the first fixed block (350) descends through the first electric sliding table (330), the second fixed block (370) is positioned in a gap between the two first fixed blocks (350);
rubber layers are arranged in the first groove (351) and the second groove (371).
5. An automatic feeding machine for aviation conduits according to claim 4, wherein the axis of the first groove (351) is parallel to the axis of the processing conduit, and the axes of the first grooves (351) on the lower surfaces of the two first fixed blocks (350) are on the same straight line;
The axis of the first groove (351) is parallel to the length direction of the sliding table (210);
the length direction of the groove two (371) is parallel to the axis of the groove one (351).
6. An automatic feeding machine for aviation conduits according to claim 4, characterized in that the zero graduation of said measuring ruler (360) is flush with the highest end of the inner rubber layer of groove one (351).
7. An automatic aviation conduit feeding machine according to claim 4, wherein said second groove (371) is V-shaped;
the rubber layer in the first groove (351) is of an air bag structure.
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN202420310648.8U CN221564760U (en) | 2024-02-20 | 2024-02-20 | Aviation conduit automatic feeding machine |
Applications Claiming Priority (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN202420310648.8U CN221564760U (en) | 2024-02-20 | 2024-02-20 | Aviation conduit automatic feeding machine |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| CN221564760U true CN221564760U (en) | 2024-08-20 |
Family
ID=92299055
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| CN202420310648.8U Active CN221564760U (en) | 2024-02-20 | 2024-02-20 | Aviation conduit automatic feeding machine |
Country Status (1)
| Country | Link |
|---|---|
| CN (1) | CN221564760U (en) |
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- 2024-02-20 CN CN202420310648.8U patent/CN221564760U/en active Active
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