Injection mold equipment for unmanned aerial vehicle paddle machining
By designing grouting components, control mechanisms and dredging mechanisms in injection mold equipment, the problem of difficult control of raw material flow rate and flow rate during grouting process is solved, and the full stirring and blockage of raw materials are achieved, and the quality of molded parts and the service life of the equipment is improved.
Patent Information
- Application Number
- CN202510333880.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-20
- Publication Date
- 2025-05-30
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing injection molds cannot effectively control the flow rate and flow rate of materials during the grouting process, resulting in waste or insufficient raw materials, poor quality of molded parts, and easy to cause pipeline blockage, deformation and collision problems.
An injection mold equipment for drone blade processing is designed, including grouting components, control mechanism and dredging mechanism. The grouting components are transported and stirred raw materials through feeding pipes and control mechanisms. The control mechanism includes a screw shaft, a stirring blade and a speed control slide. The dredging mechanism prevents and deals with blockages through rotating shafts and U-shaped rods.
By effectively controlling the flow rate and flow rate of raw materials, the waste of raw materials and the quality of molded parts are reduced, the service life of the equipment is extended, and the efficiency of the injection molding process and the quality of molded parts are improved.
Smart Images

Figure CN120056373A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of injection molds, and particularly to an injection mold device for processing drone blades. Background Art
[0002] An injection mold is a tool for producing plastic products; it is also a tool for endowing plastic products with a complete structure and precise dimensions. Injection molding is a processing method used when mass-producing some parts with complex shapes. Specifically, it means injecting the heat-melted plastic into the mold cavity under high pressure by an injection molding machine, and after cooling and solidifying, a formed product is obtained. Injection molds are classified into two types according to the molding characteristics: thermosetting plastic molds and thermoplastic plastic molds; they are classified into transfer molds, blow molds, casting molds, thermoforming molds, hot pressing molds (compression molds) and injection molds according to the molding process. Among them, the hot pressing mold can be further divided into three types: flash type, semi-flash type and non-flash type according to the overflow method, and the injection mold can be divided into two types: cold runner mold and hot runner mold according to the gating system; it can be divided into two types: mobile type and fixed type according to the loading and unloading method.
[0003] The existing injection molds cannot limit the flow rate and velocity of the material during grouting, resulting in waste of raw materials after grouting, or poor quality of the formed parts due to insufficient raw materials; at the same time, the pipeline is easily blocked during grouting, and the formed parts are easily deformed during the demolding process. When the formed parts are collected after successful demolding, the formed parts are easily collided, affecting the quality of injection molding. Summary of the Invention
[0004] In view of the deficiencies of the prior art, the technical solution adopted by the present invention to solve its technical problems is: an injection mold device for processing drone blades according to the present invention includes a mold one, a grouting component is fixedly connected to the back of the mold one, a demolding component is fixedly connected to the bottom of the grouting component, and a mold two is fixedly connected to one side of the demolding component close to the grouting component; The grouting component includes a feeding pipe, a control mechanism is rotatably connected to the inner cavity of the feeding pipe, a dredging mechanism is fixedly connected to one end of the feeding pipe close to the mold one, a connecting piece is fixedly connected to one end of the dredging mechanism away from the control mechanism, moving rods are uniformly arranged in the inner cavity of the connecting piece, and the outer surface of the moving rod is slidably connected to the inner cavity of the connecting piece. A grouting outer shell is fixedly connected to the outer surface of the connecting piece, a feeding pipe is fixedly connected to one side of the inner cavity of the grouting outer shell away from the connecting piece, and brackets one are symmetrically arranged on the outer surface of the feeding pipe, and one end of the bracket one away from the inner wall of the grouting outer shell is fixedly connected to the outer surface of the feeding pipe.
[0005] Preferably, the bottom of the first bracket is fixedly connected to the bottom of the inner cavity of the grouting housing, and the end of the feed pipe away from the inner wall of the grouting housing is fixedly connected to the outer surface of the feeding pipe. By setting the grouting component, the original raw materials are transported between the molds. During the transportation process, to avoid the insufficient reaction of the transported raw materials, the raw materials are fully stirred by the control mechanism. At the same time, by using the anti-blocking mechanism in cooperation with the control mechanism, the input raw material capacity is controlled to cooperate with the anti-blocking mechanism, which can prevent blockage and dredge the blocked condition accordingly, improving the service life of the device.
[0006] Preferably, the control mechanism includes a spiral shaft. One end of the spiral shaft away from the feed pipe is fixedly connected to a central rotating shaft. The outer surface of the central rotating shaft is evenly provided with stirring blades, and the outer surface of the central rotating shaft is fixedly connected to the outer surface of the stirring blades. A telescopic scraping plate is slidably connected to the inner cavity of the stirring blade. A speed control slider is arranged on the outer surface of the stirring blade, and the outer surface of the speed control slider is slidably connected to the outer surface of the stirring blade. A speed limiting hole is opened in the inner cavity of the speed control slider. One end of the stirring blade away from the spiral shaft is rotatably connected to a speed control baffle. One end of the speed control baffle away from the spiral shaft is fixedly connected to a pointed nozzle. Rotating rings are symmetrically arranged on the inner wall of the speed limiting hole, and the inner wall of the speed limiting hole is rotatably connected to the rotating rings. A partition is fixedly connected to the outer surface of the rotating ring. One end of the partition close to the pointed nozzle is rotatably connected to a dredging rod. By setting the control mechanism, since the materials entering the mold are composed of multiple raw materials, the raw materials passing through the spiral shaft do not react sufficiently. The stirring blades promote the reaction between multiple raw materials, improving the quality of the final product and reducing the defective rate during the injection molding process. At the same time, the telescopic scraping plate scrapes the raw materials adhered to the inner wall to avoid excessive adhesion to the inner wall and affecting secondary use; the speed control slider slides along the surface of the stirring blade, and the relative position folding area between the speed control slider and the speed control baffle is used to reflect the flow rate of the raw materials. At the same time, the partition controls the flow rate of the speed limiting hole, and cooperates with the dredging rod to prevent the raw materials in the speed limiting hole from causing blockage.
[0007] Preferably, the dredging mechanism includes a dredging spring. One end of the dredging spring away from the central rotating shaft is fixedly connected with a connecting rod. The center of the end of the connecting rod away from the dredging spring is rotatably connected with a rotating shaft. The outer surface of the rotating shaft is fixedly connected with an anti-blocking member. The inner cavity of the anti-blocking member is evenly provided with U-shaped rods, and the outer surface of the U-shaped rod is slidably connected with the inner cavity of the anti-blocking member. One end of the U-shaped rod away from the anti-blocking member is fixedly connected with a side scraping plate. One side of the side scraping plate away from the U-shaped rod is rotatably connected with a rotating scraping plate. By setting the dredging mechanism, in order to avoid the hole in the formed part being too large, the nozzle of the general grouting component is designed from large to small, and at the same time, it may cause blockage at the feed port. The rotating shaft rotates to drive the anti-blocking member to rotate, thereby driving the U-shaped rod to rotate, dredging the blocked raw materials. At the same time, the side scraping plate processes the raw materials on the inner wall, and the rotating scraping plate rotates around the side scraping plate. The rotating scraping plate can process the inner wall of the conical table, improving the application range of the device.
[0008] Preferably, the inner cavity of the feeding pipe is rotatably connected with one end of the spiral shaft away from the stirring blades. One end of the feeding pipe away from the feeding tube is fixedly connected with one end of the speed control baffle away from the nozzle. One end of the central rotating shaft away from the spiral shaft is fixedly connected with the dredging spring. The number of the U-shaped rods is four.
[0009] Preferably, the demoulding component includes a collecting mechanism. Two supports are symmetrically arranged on the top of the collecting mechanism, and the top of the collecting mechanism is slidably connected with the bottom of the supports. One end of the support away from the collecting mechanism is fixedly connected with a cooling shell. An expansion and contraction conveying pipe is fixedly connected to the inner cavity of the cooling shell. One end of the expansion and contraction conveying pipe away from the inner wall of the cooling shell is fixedly connected with a spraying mechanism.
[0010] Preferably, the collecting mechanism includes a transition soft pad. Conveying rotating shafts are symmetrically arranged on the outer surface of the transition soft pad, and the outer surface of the transition soft pad is fixedly connected with one end of the conveying rotating shafts close to the transition soft pad. The outer surface of the conveying rotating shafts is rotatably connected with a transition frame. A storage box is slidably connected to the outer surface of the transition frame. A conveyor belt is fixedly connected to the bottom of the inner cavity of the storage box. The outer surface of the conveying rotating shafts is rotatably connected with a rotating frame. By setting the collecting mechanism, after the formed part is successfully demoulded, it falls into the storage box under the action of gravity. Due to the relatively large height and the irregular placement after falling, the formed part will be impacted, affecting the quality of the formed part. The transition soft pad is used to block the falling process of the falling formed part, reducing the impact force on the formed part. At the same time, the transition soft pad can adjust the inclination angle under the action of the conveying rotating shafts, which is beneficial to the placement of the collected formed parts and improves the collection efficiency.
[0011] Preferably, the spraying mechanism includes a storage pipe. The outer surface of the storage pipe is symmetrically provided with inclined frames, and the outer surface of the storage pipe is fixedly connected to the side of the inclined frame close to the storage pipe. A rotating ring is rotatably connected to the inner cavity of the inclined frame. A spraying ring is fixedly connected to the outer surface of the rotating ring. The outer surface of the storage pipe is evenly provided with cleaning springs, and the outer surface of the storage pipe is fixedly connected to the end of the cleaning spring close to the storage pipe. The end of the cleaning spring away from the storage pipe is fixedly connected to an L-shaped scraping plate. One end of the storage pipe close to the telescopic conveyor pipe is fixedly connected to a second baffle plate. One end of the storage pipe away from the second baffle plate is fixedly connected to a first baffle plate. The inner cavity of the first baffle plate is evenly provided with cooling spray nozzles, and the outer surface of the cooling spray nozzles is fixedly connected to the inner wall of the first baffle plate. One end of the cooling spray nozzle close to the storage pipe is fixedly connected to a cooling pipe. By setting the spraying mechanism, in order to improve the demolding efficiency of the device, a demolding agent is sprayed on the inner wall of the mold before grouting to improve the demolding efficiency and prevent the formed part from adhering to the inner wall of the mold. The demolding agent is stored in the storage pipe. Before grouting, the spraying mechanism moves forward, and the L-shaped scraping plate is used to handle the dust and debris adhering to the inner wall of the mold. The cooling spray nozzles evenly arranged on the outer surface of the first baffle plate spray the demolding agent into the mold evenly. When the second baffle plate is clamped with the inner wall of the second mold, the rotating ring on the inclined frame rotates to adjust the spraying angle of the spraying ring, and injects the demolding agent into the inner wall that has not been sprayed by the cooling spray nozzles, so that the demolding agent on the inner wall of the mold is sprayed evenly and the demolding efficiency is improved.
[0012] Preferably, the number of the L-shaped scraping plates is four. One end of the cooling pipe away from the cooling spray nozzle is fixedly connected to the storage pipe. One end of the second baffle plate away from the storage pipe is fixedly connected to one end of the telescopic conveyor pipe close to the second baffle plate. The outer surface of the cooling shell is fixedly connected to one end of the second mold away from the first mold. The bottom of the second support is slidably connected to the top of the storage box. The bottom of the grouting outer shell is fixedly connected to the top of the storage box.
[0013] The beneficial effects of the present invention are as follows: 1. By setting the grouting component, the original raw materials are transported between the molds. During the transportation process, in order to prevent the transported raw materials from not reacting sufficiently, the raw materials are fully stirred by the control mechanism. At the same time, by using the anti-blocking mechanism and the control mechanism in cooperation, the input raw material capacity is controlled to cooperate with the anti-blocking mechanism, which can prevent blockage and dredge the blocked condition accordingly, and improve the service life of the device.
[0014] 2. The present invention is provided with a control mechanism. Since the materials entering the mold are composed of multiple raw materials, the reaction of the materials passing through the spiral shaft is not sufficient. The stirring blades are used to promote the reaction between multiple raw materials, improve the quality of the final product, and reduce the defective rate during the injection molding process. At the same time, the telescopic scraping plate scrapes the raw materials adhered to the inner wall to avoid excessive adhesion to the inner wall and affecting secondary use. The speed control slider slides along the surface of the stirring blade, and the relative position folding area between the speed control slider and the speed control baffle is used to reflect the flow rate of the raw materials. At the same time, the partition controls the flow rate of the speed limiting holes, and the dredging rod is used to prevent the raw materials in the speed limiting holes from being blocked.
[0015] 3. The present invention is provided with a dredging mechanism. To avoid the large holes in the formed parts, the nozzle of the usual grouting component is designed to be gradually smaller from large to small, and at the same time, it may cause blockage at the feed inlet. Rotating the rotating shaft drives the anti-blocking rotation and then drives the U-shaped rod to rotate to dredge the blocked raw materials. At the same time, the side scraping plate processes the raw materials on the inner wall, and the rotating scraping plate rotates around the side scraping plate. The rotating scraping plate can process the inner wall of the conical platform, improving the application range of the device.
[0016] 4. The present invention is provided with a spraying mechanism. To improve the demoulding efficiency of the device, a demoulding agent is sprayed on the inner wall of the mold before grouting to improve the demoulding efficiency and avoid the formed parts from adhering to the inner wall of the mold. The demoulding agent is stored in the storage pipe. Before grouting, the spraying mechanism moves forward, and the L-shaped scraping plate is used to process the dust and debris adhered to the inner wall of the mold. The cooling nozzles uniformly arranged on the outer surface of the first baffle spray the demoulding agent into the mold uniformly. Until the second baffle is clamped with the inner wall of the second mold, the rotating ring on the inclined frame rotates to adjust the spraying angle of the spraying ring, and injects the demoulding agent into the inner wall that has not been sprayed by the cooling nozzles, making the spraying of the demoulding agent on the inner wall of the mold uniform and improving the demoulding efficiency.
[0017] 5. The present invention is provided with a collection mechanism. After the formed parts are successfully demoulded, they fall into the storage box under the action of gravity. Due to the relatively large height and the irregular placement after falling, the formed parts will be impacted, affecting the quality of the formed parts. The falling formed parts are blocked during the falling process by the transition soft pads to reduce the impact force on the formed parts. At the same time, the transition soft pads can adjust the inclination angle under the action of the conveying rotating shaft, which is beneficial to the placement of the collected formed parts and improves the collection efficiency. Brief Description of the Drawings
[0018] Figure 1 is the structural schematic diagram of the present invention; Figure 2 is the structural schematic diagram of the paddle injection mold of the present invention; Figure 3 is the structural schematic diagram of the grouting component of the present invention; Figure 4 is the structural schematic diagram of the control mechanism of the present invention; Figure 5 is the present inventionFigure 4 Schematic diagram of the structure at position A in Figure 6 Schematic diagram of the structure of the dredging mechanism of the present invention; Figure 7 Schematic diagram of the structure of the demolding component of the present invention; Figure 8 Schematic diagram of the structure of the collection mechanism of the present invention; Figure 9 Schematic diagram of the structure of the spraying mechanism of the present invention; In the figure: 1, Mold 1; 2, Mold 2; 3, Demolding component; 31, Collection mechanism; 3101, Storage box; 3102, Transition frame; 3103, Transition soft pad; 3104, Conveyor belt; 3105, Conveyor rotating shaft; 3106, Rotating frame; 32, Cooling shell; 33, Telescopic conveying pipe; 34, Spraying mechanism; 3401, Cooling pipeline; 3402, Baffle 1; 3403, Inclined frame; 3404, Rotating ring; 3405, Baffle 2; 3406, Storage pipe; 3407, Spraying ring; 3408, Cleaning spring; 3409, L-shaped scraper; 3410, Cooling spray head; 35, Support 2; 4, Grouting component; 41, Feed pipe; 42, Feeding pipe; 43, Grouting outer shell; 44, Control mechanism; 4401, Spiral shaft; 4402, Speed-limiting hole; 4403, Stirring blade; 4404, Nozzle; 4405, Speed-control baffle; 4406, Telescopic scraper; 4407, Speed-control slider; 4408, Central rotating shaft; 4409, Partition board; 4410, Rotating circle; 4411, Dredging rod; 45, Dredging mechanism; 4501, Rotating shaft; 4502, Anti-clogging; 4503, Rotating scraper; 4504, Side scraper; 4505, U-shaped rod; 4506, Connecting rod; 4507, Dredging spring; 46, Connector; 47, Moving rod; 48, Support 1. Detailed implementation manners
[0019] The present invention will be further described in detail below in conjunction with the accompanying drawings and specific implementation manners. The embodiments of the present invention are given for purposes of illustration and description, and are not exhaustive or limit the present invention to the disclosed form. Many modifications and variations are obvious to those of ordinary skill in the art. The embodiments are selected and described to better illustrate the principles and practical applications of the present invention, and to enable those of ordinary skill in the art to understand the present invention and design various embodiments with various modifications suitable for specific purposes.
[0020] Embodiment, use Figures 1-8 An injection mold device for processing drone blades according to an embodiment of the present invention will be described as follows.
[0021] As Figures 1-8As shown in the figure, an injection mold device for processing UAV blades according to the present invention includes a mold 1, a grouting component 4 is fixedly connected to the back of the mold 1, a demolding component 3 is fixedly connected to the bottom of the grouting component 4, and a mold 2 is fixedly connected to one side of the demolding component 3 close to the grouting component 4; The grouting component 4 includes a feeding pipe 42, a control mechanism 44 is rotatably connected to the inner cavity of the feeding pipe 42, a dredging mechanism 45 is fixedly connected to one end of the feeding pipe 42 close to the mold 1, a connecting member 46 is fixedly connected to one end of the dredging mechanism 45 away from the control mechanism 44, a moving rod 47 is evenly arranged in the inner cavity of the connecting member 46, and the outer surface of the moving rod 47 is slidably connected to the inner cavity of the connecting member 46. A grouting outer shell 43 is fixedly connected to the outer surface of the connecting member 46. An inlet pipe 41 is fixedly connected to one side of the inner cavity of the grouting outer shell 43 away from the connecting member 46. Support brackets 48 are symmetrically arranged on the outer surface of the feeding pipe 42, and one end of the support bracket 48 away from the inner wall of the grouting outer shell 43 is fixedly connected to the outer surface of the feeding pipe 42.
[0022] The bottom of the support bracket 48 is fixedly connected to the bottom of the inner cavity of the grouting outer shell 43. One end of the inlet pipe 41 away from the inner wall of the grouting outer shell 43 is fixedly connected to the outer surface of the feeding pipe 42. By setting the grouting component 4, the original raw materials are transported between the molds. In the process of transportation, in order to avoid insufficient reaction of the transported raw materials, the control mechanism 44 is used to fully stir the raw materials. At the same time, by using the dredging mechanism 45 in cooperation with the control mechanism 44, the input raw material capacity is controlled and coordinated with the dredging mechanism 45, which can prevent blockage and dredge the blocked condition accordingly, improving the service life of the device.
[0023] The control mechanism 44 includes a screw shaft 4401. One end of the screw shaft 4401 away from the feed pipe 41 is fixedly connected to a central rotating shaft 4408. Stirring blades 4403 are evenly arranged on the outer surface of the central rotating shaft 4408, and the outer surface of the central rotating shaft 4408 is fixedly connected to the outer surface of the stirring blades 4403. A telescopic scraper 4406 is slidably connected to the inner cavity of the stirring blades 4403. A speed control slider 4407 is arranged on the outer surface of the stirring blades 4403, and the outer surface of the speed control slider 4407 is slidably connected to the outer surface of the stirring blades 4403. A speed limiting hole 4402 is opened in the inner cavity of the speed control slider 4407. One end of the stirring blade 4403 away from the screw shaft 4401 is rotatably connected to a speed control baffle 4405. A nozzle 4404 is fixedly connected to one end of the speed control baffle 4405 away from the screw shaft 4401. Rotating rings 4410 are symmetrically arranged on the inner wall of the speed limiting hole 4402, and the inner wall of the speed limiting hole 4402 is rotatably connected to the rotating rings 4410. A partition plate 4409 is fixedly connected to the outer surface of the rotating rings 4410. A dredging rod 4411 is rotatably connected to one end of the partition plate 4409 close to the nozzle 4404. By setting the control mechanism 44, since the materials entering the mold are composed of multiple raw materials, the reaction of the materials passing through the screw shaft 4401 is not sufficient. The stirring blades 4403 promote the reaction between multiple raw materials, improve the quality of the final product, and reduce the defective rate during the injection molding process. At the same time, the telescopic scraper 4406 scrapes the raw materials adhered to the inner wall to avoid excessive adhesion to the inner wall and affecting secondary use; after the telescopic scraper 4406 retracts into the speed control slider 4407, the trapezoidal speed control slider 4407 slides along the surface of the stirring blades 4403. The speed control slider 4407 approaches the speed control baffle 4405, and the folded part generated between the speed limiting hole 4402 at the inclined surface of the speed control slider 4407 and the inner wall of the speed control baffle 4405 gradually increases. The raw materials passing through the speed limiting hole 4402 gradually decrease, and the flow rate of the raw materials decreases. Furthermore, the flow rate of the raw materials entering the nozzle 4404 is reflected by the folded part. At the same time, the two rotating rings 4410 rotate to drive the two partition plates 4409 to rotate. When the two partition plates 4409 are closed, the dredging rod 4411 forms a right angle with the center of the partition plate 4409. As the partition plate 4409 rotates, the included angle between the dredging rod 4411 and the center of the partition plate 4409 gradually increases. At the same time, the partition plate 4409 drives the dredging rod 4411 to move forward to dredge the speed limiting hole 4402. Thus, the opening and closing of the partition plate 4409 control the flow rate of the raw materials passing through the speed limiting hole 4402 on the plane of the speed control slider 4407, avoiding the blockage of the raw materials in the speed limiting hole 4402.
[0024] The dredging mechanism 45 includes a dredging spring 4507. One end of the dredging spring 4507 away from the central rotating shaft 4408 is fixedly connected with a connecting rod 4506. At the axis of the end of the connecting rod 4506 away from the dredging spring 4507, a rotating shaft 4501 is rotatably connected. On the outer surface of the rotating shaft 4501, an anti-clogging member 4502 is fixedly connected. Inside the anti-clogging member 4502, U-shaped rods 4505 are evenly arranged, and the outer surface of the U-shaped rod 4505 is slidably connected with the inner cavity of the anti-clogging member 4502. One end of the U-shaped rod 4505 away from the anti-clogging member 4502 is fixedly connected with a side scraping plate 4504. On one side of the side scraping plate 4504 away from the U-shaped rod 4505, a rotating scraping plate 4503 is rotatably connected. By setting the dredging mechanism 45, to avoid a large hole in the formed part, the nozzle of the usual grouting component 4 is designed to be gradually smaller from large to small, and at the same time, it may cause blockage at the feeding port. The motor inside the rotating shaft 4501 drives the rotating shaft 4501 to rotate. The rotation of the rotating shaft 4501 drives the anti-clogging member 4502 to rotate, and then drives the U-shaped rod 4505 to rotate to dredge the blocked raw materials. At the same time, the side scraping plate 4504 processes the raw materials on the inner wall, and the rotating scraping plate 4503 rotates around the side scraping plate 4504. The rotating scraping plate 4503 can process the inner wall of the conical table, improving the application range of the device.
[0025] The inner cavity of the feeding pipe 42 is rotatably connected with one end of the spiral shaft 4401 away from the stirring blade 4403. One end of the feeding pipe 42 away from the feeding pipe 41 is fixedly connected with one end of the speed control baffle 4405 away from the nozzle 4404. One end of the central rotating shaft 4408 away from the spiral shaft 4401 is fixedly connected with the dredging spring 4507. The number of the U-shaped rods 4505 is four.
[0026] The demolding component 3 includes a collecting mechanism 31. On the top of the collecting mechanism 31, two supports 35 are symmetrically arranged, and the top of the collecting mechanism 31 is slidably connected with the bottom of the supports 35. One end of the support 35 away from the collecting mechanism 31 is fixedly connected with a cooling shell 32. Inside the cooling shell 32, a telescopic conveying pipe 33 is fixedly connected. One end of the telescopic conveying pipe 33 away from the inner wall of the cooling shell 32 is fixedly connected with a spraying mechanism 34.
[0027] The collection mechanism 31 includes a transition soft pad 3103. Conveyor rotating shafts 3105 are symmetrically arranged on the outer surface of the transition soft pad 3103, and one end of the conveyor rotating shafts 3105 close to the transition soft pad 3103 is fixedly connected to the outer surface of the transition soft pad 3103. A transition frame 3102 is rotatably connected to the outer surface of the conveyor rotating shafts 3105. A storage box 3101 is slidably connected to the outer surface of the transition frame 3102. A conveyor belt 3104 is fixedly connected to the bottom of the inner cavity of the storage box 3101. A rotating frame 3106 is rotatably connected to the outer surface of the conveyor rotating shafts 3105. By providing the collection mechanism 31, after the molded part is successfully demolded, it falls into the storage box 3101 under the action of gravity. Since the height is relatively large and the molded parts are irregularly placed after falling, the molded parts will be collided, affecting the quality of the molded parts. The transition soft pad 3103 is used to block the falling process of the dropped molded parts, reducing the impact force on the molded parts. At the same time, the transition soft pad 3103 can adjust the inclination angle under the action of the conveyor rotating shafts 3105, which is beneficial to arranging the positions of the collected molded parts and improving the collection efficiency.
[0028] The spraying mechanism 34 includes a storage pipe 3406. Oblique brackets 3403 are symmetrically arranged on the outer surface of the storage pipe 3406, and the outer surface of the storage pipe 3406 is fixedly connected to the side of the oblique bracket 3403 close to the storage pipe 3406. A rotating ring 3404 is rotatably connected to the inner cavity of the oblique bracket 3403. A spraying ring 3407 is fixedly connected to the outer surface of the rotating ring 3404. Cleaning springs 3408 are evenly arranged on the outer surface of the storage pipe 3406, and the outer surface of the storage pipe 3406 is fixedly connected to one end of the cleaning spring 3408 close to the storage pipe 3406. One end of the cleaning spring 3408 away from the storage pipe 3406 is fixedly connected to an L-shaped scraping plate 3409. One end of the storage pipe 3406 close to the telescopic conveying pipe 33 is fixedly connected to a second baffle 3405. One end of the storage pipe 3406 away from the second baffle 3405 is fixedly connected to a first baffle 3402. Cooling nozzles 3410 are evenly arranged in the inner cavity of the first baffle 3402, and the outer surface of the cooling nozzle 3410 is fixedly connected to the inner wall of the first baffle 3402. One end of the cooling nozzle 3410 close to the storage pipe 3406 is fixedly connected to a cooling pipe 3401. By setting the spraying mechanism 34, in order to improve the demoulding efficiency of the device, a demoulding agent is sprayed on the inner wall of the mould before grouting to improve the demoulding efficiency and prevent the formed part from adhering to the inner wall of the mould. The demoulding agent is stored in the storage pipe 3406. Before grouting, the spraying mechanism 34 moves forward, and the L-shaped scraping plate 3409 is used to handle the dust and debris adhering to the inner wall of the mould. The cooling nozzles 3410 evenly arranged on the outer surface of the first baffle 3402 spray the demoulding agent evenly into the mould. After the second baffle 3405 moves a fixed distance, the second baffle 3405 is clamped with the inner wall of the second mould 2. A motor is built in the rotating ring 3404 on the oblique bracket 3403, and the rotating ring 3404 rotates to adjust the spraying angle of the spraying ring 3407 to inject the demoulding agent into the inner wall that has not been sprayed by the cooling nozzles 3410, so that the demoulding agent on the inner wall of the mould is sprayed evenly to improve the demoulding efficiency.
[0029] The number of the L-shaped scraping plates 3409 is four. One end of the cooling pipe 3401 away from the cooling nozzle 3410 is fixedly connected to the storage pipe 3406. One end of the second baffle 3405 away from the storage pipe 3406 is fixedly connected to one end of the telescopic conveying pipe 33 close to the second baffle 3405. The outer surface of the cooling shell 32 is fixedly connected to one end of the second mould 2 away from the first mould 1. The bottom of the second support 35 is slidably connected to the top of the storage box 3101. The bottom of the grouting outer shell 43 is fixedly connected to the top of the storage box 3101.
[0030] The specific working process is as follows: During operation, first use the spraying mechanism 34 in the demolding component 3 to clean the inner walls of the first mold 1 and the second mold 2 and spray a mold release agent; then add raw materials into the feed pipe 42 of the grouting component 4, and use the stirring blades 4403 of the control mechanism 44 to stir various raw materials, and control the capacity of the grouting raw materials flowing into the mold through the speed control slider 4407; then the dredging mechanism 45 works, and the raw materials flowing out of the control mechanism enter the nozzle 4404 to prevent blockage of the nozzle 4404; the formed parts after grouting and molding fall to the collection mechanism 31 under the action of gravity, and the collection mechanism 31 prevents the formed parts from being damaged.
[0031] Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art and related fields without creative efforts shall fall within the protection scope of the present invention. The structures, devices, and operation methods not specifically described and explained in the present invention, unless otherwise specified and limited, are implemented according to the conventional means in the art.
Claims
1. An injection mold device for processing drone blades, comprising a mold 1 (1), characterized in that: The back of the mold 1 (1) is fixedly connected to a grouting component (4), the bottom of the grouting component (4) is fixedly connected to a demoulding component (3), and the side of the demoulding component (3) close to the grouting component (4) is fixedly connected to the mold 2 (2); The grouting component (4) comprises a feeding pipe (42), the inner cavity of the feeding pipe (42) is rotatably connected to a control mechanism (44), one end of the feeding pipe (42) close to the mold one (1) is fixedly connected to a dredging mechanism (45), one end of the dredging mechanism (45) away from the control mechanism (44) is fixedly connected to a connecting piece (46), the inner cavity of the connecting piece (46) is evenly provided with moving rods (47), and the outer surface of the moving rods (47) is slidably connected to the inner cavity of the connecting piece (46), the outer surface of the connecting piece (46) is fixedly connected to a grouting shell (43), the inner cavity of the grouting shell (43) is fixedly connected to a feeding pipe (41) on one side thereof away from the connecting piece (46), and the outer surface of the feeding pipe (42) is symmetrically provided with a bracket one (48), and one end of the bracket one (48) away from the inner wall of the grouting shell (43) is fixedly connected to the outer surface of the feeding pipe (42).
2. The injection mold equipment for processing drone blades according to claim 1 is characterized by: The bottom of the bracket 1 (48) is fixedly connected to the bottom of the inner cavity of the grouting shell (43), and one end of the feed pipe (41) away from the inner wall of the grouting shell (43) is fixedly connected to the outer surface of the feed pipe (42).
3. The injection mold equipment for processing drone blades according to claim 1 is characterized by: The control mechanism (44) comprises a spiral shaft (4401), one end of the spiral shaft (4401) away from the feed pipe (41) is fixedly connected to a central rotating shaft (4408), the outer surface of the central rotating shaft (4408) is evenly provided with stirring blades (4403), and the outer surface of the central rotating shaft (4408) is fixedly connected to the outer surface of the stirring blade (4403), the inner cavity of the stirring blade (4403) is slidably connected to a telescopic scraper (4406), the outer surface of the stirring blade (4403) is provided with a speed control slider (4407), and the outer surface of the speed control slider (4407) is slidably connected to the outer surface of the stirring blade (4403), and the speed control slider (4407) is slidably connected to the outer surface of the stirring blade (4403). 07) is provided with a speed limiting hole (4402) in the inner cavity, the end of the stirring blade (4403) away from the spiral shaft (4401) is rotatably connected to a speed control baffle (4405), the end of the speed control baffle (4405) away from the spiral shaft (4401) is fixedly connected to a pointed nozzle (4404), the inner wall of the speed limiting hole (4402) is symmetrically provided with a rotating circle (4410), and the inner wall of the speed limiting hole (4402) is rotatably connected to the rotating circle (4410), the outer surface of the rotating circle (4410) is fixedly connected to a partition (4409), and the end of the partition (4409) close to the pointed nozzle (4404) is rotatably connected to a dredging rod (4411).
4. The injection mold equipment for processing drone blades according to claim 1 is characterized by: The dredging mechanism (45) comprises a dredging spring (4507), one end of the dredging spring (4507) away from the central shaft (4408) is fixedly connected to a connecting rod (4506), the end of the connecting rod (4506) away from the dredging spring (4507) is rotatably connected to a rotating shaft (4501) at the axis center, the outer surface of the rotating shaft (4501) is fixedly connected to an anti-blocking (4502), the inner cavity of the anti-blocking (4502) is evenly provided with U-shaped rods (4505), and the outer surface of the U-shaped rod (4505) is slidably connected to the inner cavity of the anti-blocking (4502), the end of the U-shaped rod (4505) away from the anti-blocking (4502) is fixedly connected to a side scraper (4504), and the side of the side scraper (4504) away from the U-shaped rod (4505) is rotatably connected to a rotating scraper (4503).
5. The injection mold equipment for processing drone blades according to claim 4 is characterized by: The inner cavity of the feeding tube (42) is rotatably connected to one end of the spiral shaft (4401) away from the stirring blade (4403); the end of the feeding tube (42) away from the feeding tube (41) is fixedly connected to one end of the speed control baffle (4405) away from the pointed nozzle (4404); the end of the central rotating shaft (4408) away from the spiral shaft (4401) is fixedly connected to the dredging spring (4507); and the number of the U-shaped rods (4505) is four.
6. The injection mold equipment for processing drone blades according to claim 1, characterized in that: The demoulding component (3) comprises a collecting mechanism (31), a second bracket (35) is symmetrically arranged on the top of the collecting mechanism (31), and the top of the collecting mechanism (31) is slidably connected to the bottom of the second bracket (35), an end of the second bracket (35) away from the collecting mechanism (31) is fixedly connected to a cooling shell (32), an inner cavity of the cooling shell (32) is fixedly connected to a telescopic conveying pipe (33), and an end of the telescopic conveying pipe (33) away from the inner wall of the cooling shell (32) is fixedly connected to a spraying mechanism (34).
7. The injection mold equipment for processing drone blades according to claim 6, characterized in that: The collecting mechanism (31) comprises a transition cushion (3103), the outer surface of the transition cushion (3103) is symmetrically provided with a conveying shaft (3105), and the outer surface of the transition cushion (3103) is fixedly connected to an end of the conveying shaft (3105) close to the transition cushion (3103), the outer surface of the conveying shaft (3105) is rotatably connected to a transition frame (3102), the outer surface of the transition frame (3102) is slidably connected to a storage box (3101), the bottom of the inner cavity of the storage box (3101) is fixedly connected to a conveyor belt (3104), and the outer surface of the conveying shaft (3105) is rotatably connected to a rotating frame (3106).
8. The injection mold equipment for processing drone blades according to claim 6, characterized in that: The spraying mechanism (34) comprises a storage tube (3406), the outer surface of which is symmetrically provided with an inclined frame (3403), and the outer surface of the storage tube (3406) is fixedly connected to a side of the inclined frame (3403) close to the storage tube (3406), the inner cavity of the inclined frame (3403) is rotatably connected to a rotating ring (3404), the outer surface of the rotating ring (3404) is fixedly connected to a spray ring (3407), the outer surface of the storage tube (3406) is evenly provided with cleaning springs (3408), and the outer surface of the storage tube (3406) is fixedly connected to an end of the cleaning spring (3408) close to the storage tube (3406), and the cleaning spring (3408) is arranged on the outer surface of the storage tube (3406). An end of the management spring (3408) away from the storage tube (3406) is fixedly connected to an L-shaped scraper (3409), an end of the storage tube (3406) close to the telescopic conveying tube (33) is fixedly connected to a second baffle plate (3405), an end of the storage tube (3406) away from the second baffle plate (3405) is fixedly connected to a first baffle plate (3402), the inner cavity of the first baffle plate (3402) is evenly provided with cooling nozzles (3410), and the outer surface of the cooling nozzle (3410) is fixedly connected to the inner wall of the first baffle plate (3402), and an end of the cooling nozzle (3410) close to the storage tube (3406) is fixedly connected to a cooling pipe (3401).
9. The injection mold equipment for processing drone blades according to claim 8, characterized in that: The number of the L-shaped scrapers (3409) is four, the end of the cooling pipe (3401) away from the cooling nozzle (3410) is fixedly connected to the storage tube (3406), the end of the baffle plate 2 (3405) away from the storage tube (3406) is fixedly connected to the end of the telescopic conveying pipe (33) close to the baffle plate 2 (3405), the outer surface of the cooling shell (32) is fixedly connected to the end of the mold 2 (2) away from the mold 1 (1), the bottom of the bracket 2 (35) is slidably connected to the top of the storage box (3101), and the bottom of the grouting shell (43) is fixedly connected to the top of the storage box (3101).