An integrated forming machine for processing an electric vehicle rear flat fork pipe and a processing method thereof
By using an integrated molding machine and its processing method, lightweight integrated molding of the electric vehicle rear flat fork tube is achieved by utilizing components such as a flipping and rotating connecting rod. This solves the toughness problem caused by welding and assembling tubes in existing technologies, and improves production efficiency and safety.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- ANHUI LUOSHI ELECTRIC VEHICLE CO LTD
- Filing Date
- 2023-06-14
- Publication Date
- 2026-05-12
AI Technical Summary
The existing electric vehicle rear swingarm tubing suffers from reduced toughness during processing due to the welding and assembly of different tubing components.
By employing an integrated molding machine and its processing method, lightweight integrated molding of pipe fittings is achieved through components such as a flipping and rotating connecting rod, a second electrically controlled rotating shaft, a reserved moving groove, a sliding connecting block, a mold connecting rod, and a third electrically controlled rotating shaft, thus avoiding welding assembly.
It improves the toughness of the rear flat fork fittings for electric vehicles, reduces raw material waste, and enhances production efficiency and safety.
Smart Images

Figure CN116689744B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of rear swingarm tube technology, specifically to an integrated molding machine and processing method for electric vehicle rear swingarm tubes. Background Technology
[0002] The rear swingarm is a major component of an electric vehicle. It is located at the bottom of the vehicle and is horizontally placed in an H-shape. Its front end is connected to the lower middle part of the frame via a through-axle, and its rear end is connected to the rear part of the frame via a shock absorber.
[0003] For example, announcement number 201810365567.7 (Production Method of Flat Fork Components) includes: a punching step: one end of the side tube is placed on a first press and pressed firmly, and the other end of the side tube is punched to form a semi-circular opening using a punching device; a necking step: one end of the side tube is placed on a second press and pressed firmly, and the semi-circular opening of the side tube is necked using a necking device; and a welding step: the side tube is welded to the flat fork cross tube to form the flat fork component. This production method reduces the development and manufacturing costs of cutting molds, improves production safety and efficiency, and the motorcycle flat fork components produced by this method have increased strength, a smoother and more even appearance, and improved aesthetics.
[0004] However, existing electric vehicle rear swingarm tubes are all assembled by welding different types of tubes during processing, which greatly reduces the toughness of the rear swingarm tubes. To address this, we provide an integrated molding machine and processing method for electric vehicle rear swingarm tubes. Summary of the Invention
[0005] The purpose of this invention is to provide an integrated molding machine and processing method for electric vehicle rear swingarm tubes, in order to solve the problem mentioned in the background art that the existing electric vehicle rear swingarm tubes are all welded and assembled from different types of tubes during processing, which greatly reduces the toughness of the rear swingarm tubes.
[0006] To achieve the above objectives, the present invention provides the following technical solution: an integrated molding machine for processing rear flat fork tubes of electric vehicles, comprising an integrated molding machine body, a feeding mechanism provided on the rear end face of the integrated molding machine body and fixedly connected to the integrated molding machine body, an operating mechanism provided on the front end face of the integrated molding machine body and electrically fixedly connected to the integrated molding machine body, a flip protection plate provided above the feeding mechanism, the flip protection plate being rotatably connected to the feeding mechanism via a first electrically controlled rotating shaft, a maintenance shielding plate provided below the rear end face of the integrated molding machine body, the maintenance shielding plate being threadedly connected to the integrated molding machine body via hexagonal bolts, and four hexagonal bolts being provided, and a reserved heat dissipation slot being provided inside the maintenance shielding plate, and a plurality of the reserved heat dissipation slots being integrally formed with the maintenance shielding plate;
[0007] Also includes:
[0008] An operating cavity is installed at the center of the main body of the one-piece molding machine. A mold-making mechanism is located inside the operating cavity. Both ends of the mold-making mechanism are rotatably connected to the main body of the one-piece molding machine via rotating shafts. Two rotating shafts are provided, with their ends penetrating and extending into the main body of the one-piece molding machine and the mold-making mechanism, respectively. The upper surface of the mold-making mechanism is connected to the main body of the one-piece molding machine via a conveying connection pipe. Two manufacturing cavities are provided inside both ends of the mold-making mechanism. Two flip-rotating connecting rods are provided on the front and rear sides of the upper surface of the main body of the one-piece molding machine. Both flip-rotating connecting rods are rotatably connected to the main body of the one-piece molding machine via second electrically controlled rotating shafts. Two second electrically controlled rotating shafts are also provided.
[0009] Preferably, the upper end faces of the two rotating connecting rods are provided with reserved moving grooves, and there are two reserved moving grooves. Both reserved moving grooves are integrally formed with the rotating connecting rods. The upper end faces of the two rotating connecting rods are provided with sliding connecting blocks, and there are two sliding connecting blocks. Both sliding connecting blocks are slidably connected to the rotating connecting rods.
[0010] Preferably, each of the two rotating connecting rods has a sliding groove on both sides of its inner wall, and there are four sliding grooves. The four sliding grooves are integrally formed with the rotating connecting rod. The two rotating connecting rods have a pulley mechanism inside, and there are two pulley mechanisms. The two pulley mechanisms are fixedly connected to the sliding connecting block through a connecting rod body, and there are two connecting rod bodies. The two connecting rod bodies are fixedly connected to the pulley mechanism. One end of each of the two sliding connecting blocks has a mold connecting rod, and there are two mold connecting rods. The two mold connecting rods are rotatably connected to the sliding connecting block through a third electrically controlled rotating shaft, and there are two third electrically controlled rotating shafts.
[0011] Preferably, a first reserved slot is provided on one side of the upper surface of the operating mechanism, a display screen is provided inside the first reserved slot, an operation button is provided on one side of the display screen, and a plurality of operation buttons are provided, a drawer is provided on the front surface of the operating mechanism, and the drawer is slidably connected to the operating mechanism, and a gripping block is provided on the front surface of the drawer.
[0012] Preferably, a recycling end is provided at the lower part of the operating cavity, and one end of the recycling end extends through and into the interior of the integral molding machine body. A second inner cavity is provided at one end of the integral molding machine body. A recycling pump is provided at the lower part of the second inner cavity. One end of the recycling end is installed on the recycling pump. A recycling pipe is provided above the recycling pump, and one end of the recycling pipe extends through and into the interior of the feeding mechanism.
[0013] Preferably, the front end face of the feeding mechanism is provided with a second reserved slot, the second reserved slot is provided with an observation window, and the observation window is embedded and fixedly connected to the feeding mechanism. Both sides of the outer wall of the feeding mechanism are provided with servo motors, and there are two servo motors. One end of each of the two servo motors passes through and extends into the interior of the feeding mechanism.
[0014] Preferably, the feeding mechanism has an inner cavity, a splash guard is provided at the top of the inner cavity and is fixedly connected to one side of the inner wall of the feeding mechanism, and a conveying pump is provided at the bottom of the inner cavity. One end of the conveying pump is provided with an input port and is fixedly connected to the conveying pump.
[0015] Preferably, the inner wall of the feeding mechanism is provided with power output ends on both sides, and there are two power output ends. Each of the two power output ends is an extension of one end of a servo motor. One end of each of the two power output ends is provided with a central rotating rod, and there are two central rotating rods. Each of the two central rotating rods is fixedly connected to one end of the power output end. A ring of stirring blades is provided around the outer wall of each of the two central rotating rods, and there are three stirring blades. Each of the three stirring blades is fixedly connected to the ring of the outer wall of the central rotating rod.
[0016] Preferably, a component placement cavity is provided below the front end face of the unibody molding machine body, and two component placement cavities are provided. A partition is provided between the two component placement cavities, and one end of the partition is fixedly connected to the unibody molding machine body. A buckle block is provided on the front end face of the partition, and a protective isolation net is provided outside the buckle block. One end of the protective isolation net extends through and into the interior of the unibody molding machine body. A first inner cavity is provided inside the front end face of the unibody molding machine body, and a fourth electrically controlled rotating shaft is provided inside the first inner cavity. A storage cover is provided around the outer wall of the fourth electrically controlled rotating shaft, and the storage cover is rotatably connected to the fourth electrically controlled rotating shaft. One end of the protective isolation net is fixedly installed on the outer wall of the storage cover.
[0017] Preferably, a processing method for an integrated molding machine for processing rear flat fork tubes of electric vehicles includes the following steps:
[0018] Step 1: By rotating the first electrically controlled rotating shaft, the flip protection plate is opened, allowing the material for making the rear flat fork pipe fitting to enter the feeding mechanism. When the material is conveyed into the interior, the splash guard is set to prevent splashing. After the material enters, the servo motor is turned on to continuously rotate the central rotating rod, so that the stirring blades stir the material inside, so that the activity of the material is not weakened.
[0019] Step 2: The internal material is then transported into the manufacturing cavity of the mold-making mechanism through the conveying connection pipe by the set conveying pump. During manufacturing, the mold-making mechanism is placed at an upward angle by rotating the shaft to prevent the material from flowing out.
[0020] Step 3: Next, flip and unfold the rotating connecting rod through the second electrically controlled rotating shaft. Then, adjust the distance between the mold connecting rod and the mold making mechanism by sliding the connecting block, and adjust the setting of the third electrically controlled rotating shaft to adjust the tilt angle of the mold connecting rod so that the mold connecting rod can be inserted into the mold making mechanism to perform integrated molding of the pipe.
[0021] Step 4: While inserting into the mold-making mechanism, excess material will be discharged. The set recycling end will recycle the material through the recycling pump and transport it back into the feeding mechanism to prevent waste of raw materials.
[0022] Compared with the prior art, the beneficial effects of the present invention are:
[0023] 1. This invention, through the setting of a flip-rotating connecting rod, a second electrically controlled rotating shaft, a reserved moving groove, a sliding connecting block, a mold connecting rod, a third electrically controlled rotating shaft, and a mold-making mechanism, allows the material to be conveyed into the mold-making mechanism through the conveying connecting pipe. The flip-rotating connecting rod is flipped, and the sliding connecting block and the mold connecting rod are adjusted, so that the mold connecting rod can be inserted into the mold-making mechanism more accurately. This allows the pipe to form a lightweight, integrated shell, avoiding the problem of the toughness of the rear flat fork pipe that is currently produced by welding and assembling different types of pipes during the processing of electric vehicle rear flat fork pipes.
[0024] 2. The recycling end set at the bottom of the operating cavity and the recycling pump and recycling pipe set inside the second inner cavity will discharge excess material when the mold connecting rod is inserted into the mold making mechanism. The recycling end will then recycle the material through the recycling pump and transport it back to the feeding mechanism, thus eliminating waste of raw materials. Attached Figure Description
[0025] Figure 1 This is a schematic diagram of the overall structure of the present invention;
[0026] Figure 2 This is a schematic diagram of the internal structure of the feeding mechanism of the present invention;
[0027] Figure 3 This is a schematic diagram of the internal structure of the front end face of the integral molding machine body of the present invention;
[0028] Figure 4 This is a schematic diagram of the middle position structure of the one-piece molding machine body of the present invention;
[0029] Figure 5 This is a schematic diagram of the internal structure and unfolded structure of the one-piece molding machine body of the present invention;
[0030] Figure 6 This is a schematic diagram of the internal structure at point A of the present invention;
[0031] In the diagram: 1. One-piece molding machine body; 2. Inspection shield; 3. Hexagonal bolts for installation; 4. Pre-reserved heat dissipation slot; 5. Component placement cavity; 6. Partition; 7. Clip block; 8. Protective isolation mesh cover; 9. Operating mechanism; 10. First reserved slot; 11. Display screen; 12. Operation buttons; 13. Drawer; 14. Grip block; 15. Feeding mechanism; 16. Tilting protection plate; 17. First electrically controlled rotating shaft; 18. Second reserved slot; 19. Observation window; 20. Servo motor; 21. Tilting rotating connecting rod; 22. Second electrically controlled rotating shaft; 23. Reserved moving slot; 24. Sliding connecting block. 25. Mold connecting rod; 26. Third electrically controlled rotating shaft; 27. Inner cavity; 28. Splash guard; 29. Conveying pump; 30. Input port; 31. Power output end; 32. Central rotating rod; 33. Stirring blade; 34. First inner cavity; 35. Fourth electrically controlled rotating shaft; 36. Storage cover; 37. Operating cavity; 38. Mold making mechanism; 39. Rotating shaft; 40. Conveying connecting pipe; 41. Making cavity; 42. Recycling end; 43. Second inner cavity; 44. Recycling pump; 45. Recycling pipe; 46. Sliding groove; 47. Pulley mechanism; 48. Connecting rod. Detailed Implementation
[0032] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.
[0033] Please see Figure 1-5 An embodiment of the present invention provides an integrated molding machine for processing rear flat fork tubes of electric vehicles, comprising an integrated molding machine body 1, a feeding mechanism 15 is provided on the rear end face of the integrated molding machine body 1 and the feeding mechanism 15 is fixedly connected to the integrated molding machine body 1, an operating mechanism 9 is provided on the front end face of the integrated molding machine body 1 and the operating mechanism 9 is electrically fixedly connected to the integrated molding machine body 1, a flip protection plate 16 is provided above the feeding mechanism 15 and the flip protection plate 16 is rotatably connected to the feeding mechanism 15 through a first electrically controlled rotating shaft 17, a maintenance shielding plate 2 is provided below the rear end face of the integrated molding machine body 1, the maintenance shielding plate 2 is threadedly connected to the integrated molding machine body 1 through mounting hexagonal bolts 3 and four mounting hexagonal bolts 3 are provided, the maintenance shielding plate 2 has a reserved heat dissipation slot 4 inside and several reserved heat dissipation slots 4 are provided, and several reserved heat dissipation slots 4 are integrally formed with the maintenance shielding plate 2;
[0034] Also includes:
[0035] An operating cavity 37 is installed at the center of the main body 1 of the one-piece molding machine. A mold-making mechanism 38 is provided inside the operating cavity 37. Both ends of the mold-making mechanism 38 are rotatably connected to the main body 1 of the one-piece molding machine via rotating shafts 39. There are two rotating shafts 39. The two ends of the two rotating shafts 39 pass through and extend into the main body 1 of the one-piece molding machine and the mold-making mechanism 38, respectively. The upper end of the mold-making mechanism 38 is connected to the main body 1 of the one-piece molding machine via a conveying connection pipe 40. Both ends of the mold-making mechanism 38 are provided with a manufacturing cavity 41. There are two manufacturing cavities 41. The front and rear sides of the upper end of the main body 1 of the one-piece molding machine are provided with two flip-rotating connecting rods 21. Both flip-rotating connecting rods 21 are rotatably connected to the main body 1 of the one-piece molding machine via second electrically controlled rotating shafts 22. There are two second electrically controlled rotating shafts 22.
[0036] Please see Figure 1 and Figure 5 The upper end face of the two rotating connecting rods 21 is provided with a reserved moving groove 23, and there are two reserved moving grooves 23. Both reserved moving grooves 23 are integrally formed with the rotating connecting rods 21. The upper end face of the two rotating connecting rods 21 is provided with a sliding connecting block 24, and there are two sliding connecting blocks 24. Both sliding connecting blocks 24 are slidably connected to the rotating connecting rods 21.
[0037] Please see Figure 6 Both sides of the inner wall of the two rotating flip-rotating connecting rods 21 are provided with sliding grooves 46, and there are four sliding grooves 46. The four sliding grooves 46 are integrally formed with the rotating flip-rotating connecting rods 21. The interior of the two rotating flip-rotating connecting rods 21 is provided with pulley mechanisms 47, and there are two pulley mechanisms 47. The two pulley mechanisms 47 are fixedly connected to the sliding connecting block 24 through connecting rod bodies 48, and there are two connecting rod bodies 48. The two connecting rod bodies 48 are fixedly connected to the pulley mechanisms 47. One end of the two sliding connecting blocks 24 is provided with mold connecting rods 25, and there are two mold connecting rods 25. The two mold connecting rods 25 are rotatably connected to the sliding connecting block 24 through third electrically controlled rotating shaft bodies 26, and there are two third electrically controlled rotating shaft bodies 26.
[0038] Please see Figure 1 The operating mechanism 9 has a first reserved slot 10 on one side of its upper surface. The first reserved slot 10 has a display screen 11 inside. The display screen 11 has an operation button 12 on one side, and there are several operation buttons 12. The operating mechanism 9 has a drawer 13 on its front surface, and the drawer 13 is slidably connected to the operating mechanism 9. The drawer 13 has a grip block 14 on its front surface.
[0039] Please see Figure 5A recycling end 42 is provided at the lower part of the operating cavity 37, and one end of the recycling end 42 extends through and into the interior of the one-piece molding machine body 1. A second inner cavity 43 is provided at one end of the one-piece molding machine body 1. A recycling pump 44 is provided at the lower part of the second inner cavity 43. One end of the recycling end 42 is installed on the recycling pump 44. A recycling pipe 45 is provided above the recycling pump 44, and one end of the recycling pipe 45 extends through and into the interior of the feeding mechanism 15.
[0040] Please see Figure 1 The front end face of the feeding mechanism 15 is provided with a second reserved groove 18. The second reserved groove 18 is provided with an observation window 19, and the observation window 19 is embedded and fixedly connected to the feeding mechanism 15. Both sides of the outer wall of the feeding mechanism 15 are provided with servo motors 20, and there are two servo motors 20. One end of each of the two servo motors 20 passes through and extends into the interior of the feeding mechanism 15.
[0041] Please see Figure 2 The feeding mechanism 15 has an inner cavity 27 inside. A splash guard 28 is provided at the top inside the inner cavity 27 and is fixedly connected to one side of the inner wall of the feeding mechanism 15. A conveying pump 29 is provided at the bottom inside the inner cavity 27. An input port 30 is provided at one end of the conveying pump 29 and is fixedly connected to the conveying pump 29.
[0042] Please see Figure 2 The inner wall of the feeding mechanism 15 is provided with two power output ends 31 on both sides. Both power output ends 31 are extensions of one end of the servo motor 20. A central rotating rod 32 is provided at one end of the two power output ends 31. There are two central rotating rods 32. Both central rotating rods 32 are fixedly connected to one end of the power output ends 31. A stirring blade 33 is provided around the outer wall of the two central rotating rods 32. There are three stirring blades 33. All three stirring blades 33 are fixedly connected to the outer wall of the central rotating rod 32.
[0043] Please see Figure 3A component placement cavity 5 is provided below the front end face of the one-piece molding machine body 1. There are two component placement cavities 5, and a partition 6 is provided between the two component placement cavities 5. One end of the partition 6 is fixedly connected to the one-piece molding machine body 1. A buckle block 7 is provided on the front end face of the partition 6. A protective isolation net cover 8 is provided on the outside of the buckle block 7. One end of the protective isolation net cover 8 penetrates and extends into the interior of the one-piece molding machine body 1. A first inner cavity 34 is provided inside the front end face of the one-piece molding machine body 1. A fourth electrically controlled rotating shaft 35 is provided inside the first inner cavity 34. A storage cover 36 is provided around the outer wall of the fourth electrically controlled rotating shaft 35. The storage cover 36 is rotatably connected to the fourth electrically controlled rotating shaft 35. One end of the protective isolation net cover 8 is fixedly installed on the outer wall of the storage cover 36.
[0044] Please refer to the processing method of an integrated molding machine for processing rear flat fork tubes of electric vehicles, which includes the following steps:
[0045] Step 1: By rotating the first electrically controlled rotating shaft 17, the flip protection plate 16 is opened, allowing the material for making the rear flat fork pipe fitting to enter the feeding mechanism 15. When the material is conveyed into the interior, the splash guard 28 is set to prevent splashing. After the material enters, the servo motor 20 is turned on to continuously rotate the central rotating rod 32, so that the stirring blade 33 stirs the material inside, so that the activity of the material is not weakened.
[0046] Step 2: The material inside is then transported into the manufacturing cavity 41 inside the mold making mechanism 38 through the conveying connection pipe 40 by the set conveying pump 29. During manufacturing, the mold making mechanism 38 is placed at an upward angle by rotating the shaft 39 to prevent the material from flowing out.
[0047] Step 3: Next, flip and rotate the connecting rod 21 and unfold it through the second electrically controlled rotating shaft 22. Then, adjust the distance between the mold connecting rod 25 and the mold making mechanism 38 through the sliding connecting block 24, and adjust the setting of the third electrically controlled rotating shaft 26 to adjust the tilt angle of the mold connecting rod 25 so that the mold connecting rod 25 can be inserted into the mold making mechanism 38 to perform integrated lightweight molding of the pipe fitting.
[0048] Step 4: While inserting into the mold making mechanism 38, excess material will be discharged. The set recycling end 42 will recycle the material through the recycling pump 44 and transport it back to the feeding mechanism 15 to prevent waste of raw materials.
[0049] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above, and that the invention can be implemented in other specific forms without departing from its spirit or essential characteristics. Therefore, the embodiments should be considered in all respects as exemplary and non-limiting, and the scope of the invention is defined by the appended claims rather than the foregoing description. Thus, all variations falling within the meaning and scope of equivalents of the claims are intended to be included within the present invention. No reference numerals in the claims should be construed as limiting the scope of the claims.
Claims
1. An integrated molding machine for processing rear flat fork tubes of electric vehicles, comprising an integrated molding machine body (1), wherein the integrated molding... A feeding mechanism (15) is provided on the rear end face of the machine body (1), and the feeding mechanism (15) is fixedly connected to the integral molding machine body (1). An operating mechanism (9) is provided on the front end face of the integral molding machine body (1), and the operating mechanism (9) is electrically fixedly connected to the integral molding machine body (1). A flip protection plate (16) is provided above the feeding mechanism (15), and the flip protection plate (16) is connected to the feeding mechanism (15) through a first electrically controlled rotating shaft (17). Rotary connection, a maintenance shield (2) is provided below the rear end face of the integral molding machine body (1). The maintenance shield (2) is threadedly connected to the integral molding machine body (1) by mounting hexagonal bolts (3), and four hexagonal bolts (3) are provided. The interior of the maintenance shield (2) is provided with reserved heat dissipation slots (4), and several reserved heat dissipation slots (4) are provided. Several reserved heat dissipation slots (4) are integrally formed with the maintenance shield (2). Its features are: Also includes: An operating cavity (37) is installed at the center of the integral molding machine body (1). A mold-making mechanism (38) is provided inside the operating cavity (37). Both ends of the mold-making mechanism (38) are rotatably connected to the integral molding machine body (1) via rotating shafts (39). There are two rotating shafts (39). The two ends of the two rotating shafts (39) respectively penetrate and extend into the integral molding machine body (1) and the mold-making mechanism (38). The upper end face of the mold-making mechanism (38) is connected by... The conveying connection pipe (40) is connected to the main body (1) of the integral molding machine. The mold making mechanism (38) has two manufacturing cavities (41) at both ends. The front and rear sides of the upper surface of the integral molding machine main body (1) are provided with two flipping and rotating connecting rods (21). The two flipping and rotating connecting rods (21) are rotatably connected to the main body (1) of the integral molding machine through the second electrically controlled rotating shaft (22). There are two rotating connecting rods (21); the upper end faces of the two rotating connecting rods (21) are provided with reserved moving grooves (23), and there are two reserved moving grooves (23). The two reserved moving grooves (23) are integrally formed with the rotating connecting rods (21). The upper end faces of the two rotating connecting rods (21) are provided with sliding connecting blocks (24), and there are two sliding connecting blocks (24). The two sliding connecting blocks (24) are slidably connected to the rotating connecting rods (21). The inner wall is provided with sliding grooves (46) on both sides, and there are four sliding grooves (46). The four sliding grooves (46) are integrally formed with the flip-rotating connecting rods (21). The two flip-rotating connecting rods (21) are provided with pulley mechanisms (47) inside, and there are two pulley mechanisms (47). The two pulley mechanisms (47) are fixedly connected to the sliding connecting block (24) through connecting rod bodies (48), and there are two connecting rod bodies (48). The two connecting rod bodies (48) are fixedly connected to the pulley mechanisms (47). One end of the two sliding connecting blocks (24) is provided with mold connecting rods (25), and there are two mold connecting rods (25). The two mold connecting rods (25) are rotatably connected to the sliding connecting block (24) through a third electrically controlled rotating shaft (26), and there are two third electrically controlled rotating shafts (26).
2. The integrated molding machine for processing electric vehicle rear flat fork tubes according to claim 1, characterized in that: The operating mechanism (9) has a first reserved slot (10) on one side of its upper surface. The first reserved slot (10) has a display screen (11) inside it. The display screen (11) has an operation button (12) on one side, and there are several operation buttons (12). The operating mechanism (9) has a drawer (13) on its front end face, and the drawer (13) is slidably connected to the operating mechanism (9). The drawer (13) has a gripping block (14) on its front end face.
3. The integrated molding machine for processing electric vehicle rear flat fork tubes according to claim 2, characterized in that: A retrieval end (42) is provided at the lower part of the operating cavity (37), and one end of the retrieval end (42) extends through and into the whole. Inside the molding machine body (1), a second inner cavity (43) is provided at one end of the integral molding machine body (1). A recycling pump (44) is provided at the bottom of the second inner cavity (43). One end of the recycling end (42) is installed on the recycling pump (44). A recycling pipe (45) is provided above the recycling pump (44), and one end of the recycling pipe (45) passes through and extends into the inside of the feeding mechanism (15).
4. The integrated molding machine for processing electric vehicle rear flat fork tubes according to claim 3, characterized in that: The front end face of the feeding mechanism (15) is provided with a second reserved slot (18), and the second reserved slot (18) is provided with an observation window (19). The observation window (19) is embedded and fixedly connected to the feeding mechanism (15). Both sides of the outer wall of the feeding mechanism (15) are provided with servo motors (20), and there are two servo motors (20). One end of each of the two servo motors (20) passes through and extends into the inside of the feeding mechanism (15).
5. The integrated molding machine for processing electric vehicle rear flat fork tubes according to claim 4, characterized in that: The feeding mechanism (15) has an inner cavity (27) inside. A splash guard (28) is provided above the inner cavity (27), and the splash guard (28) is fixedly connected to one side of the inner wall of the feeding mechanism (15). A conveying pump (29) is provided below the inner cavity (27), and an input port (30) is provided at one end of the conveying pump (29), and the input port (30) is fixedly connected to the conveying pump (29).
6. The one-piece molding machine for processing electric vehicle rear flat fork tubes according to claim 5, characterized in that: The inner wall of the feeding mechanism (15) is provided with two power output ends (31) on both sides. The two power output ends (31) are extensions of one end of the servo motor (20). A central rotating rod (32) is provided at one end of the two power output ends (31). There are two central rotating rods (32). The two central rotating rods (32) are fixedly connected to one end of the power output end (31). A stirring blade (33) is provided around the outer wall of the two central rotating rods (32). There are three stirring blades (33). The three stirring blades (33) are fixedly connected to the outer wall of the central rotating rod (32).
7. The one-piece molding machine for processing electric vehicle rear flat fork tubes according to claim 6, characterized in that: The main body (1) of the integrated molding machine has a component placement cavity (5) located below its front end. There are two component placement cavities (5), and a partition (6) is provided between the two cavities. One end of the partition (6) is fixedly connected to the main body (1) of the integrated molding machine. A latching block (7) is provided on the front end of the partition (6). A protective isolation mesh cover (8) is provided outside the latching block (7), and one end of the protective isolation mesh cover (8) extends through and into the main body (1). Inside the main body (1) of the molding machine, a first inner cavity (34) is provided inside the front end face of the main body (1). A fourth electrically controlled rotating shaft (35) is provided inside the first inner cavity (34). A storage cover (36) is provided around the outer wall of the fourth electrically controlled rotating shaft (35). The storage cover (36) is rotatably connected to the fourth electrically controlled rotating shaft (35). One end of the protective isolation net cover (8) is fixedly installed on the outer wall of the storage cover (36).
8. A processing method for an integrated molding machine for processing rear flat fork tubes of electric vehicles, based on the integrated molding machine device for processing rear flat fork tubes of electric vehicles as described in any one of claims 1-7, characterized in that, Includes the following steps: Step 1: By rotating the first electrically controlled rotating shaft (17), the flip protection plate (16) is opened, so that the material for making the rear flat fork pipe can enter the feeding mechanism (15). When the material is conveyed into the interior, the splash guard (28) is set to prevent splashing. After the material enters, the servo motor (20) is turned on to continuously rotate the central rotating rod (32), so that the stirring blade (33) stirs the material inside, so that the activity of the material is not weakened. Step 2: The material inside is then transported into the manufacturing cavity (41) inside the mold making mechanism (38) through the conveying connection pipe 40 by the set conveying pump (29). During the manufacturing process, the mold making mechanism (38) is placed at an upward angle by rotating the shaft (39) to prevent the material from flowing out. Step 3: Then, flip and unfold the rotating connecting rod (21) through the second electrically controlled rotating shaft (22), and then slide it out. The moving connecting block (24) adjusts the distance between the mold connecting rod (25) and the mold making mechanism (38), and the setting of the third electrically controlled rotating shaft (26), and adjusts the tilt angle of the mold connecting rod (25) so that the mold connecting rod (25) can be inserted into the mold making mechanism (38) to perform integrated molding of the pipe fitting; Step 4: While inserting into the mold making mechanism (38), excess material will be discharged. The set recycling end (42) will recycle the material through the recycling pump (44) and transport it back to the feeding mechanism (15) to prevent waste of raw materials.