An ultrasonic vibration intelligent assisted manufacturing system
Through the ultrasonic vibration intelligent assisted manufacturing system, the temporary storage tube is combined with the ultrasonic vibration component to solve the dispersion difficulty caused by metal powder agglomeration, achieve rapid and uniform powder dispersion and tight powder spreading, and simplify the metal powder pressing and molding process.
Patent Information
- Application Number
- CN202411924606.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-25
- Publication Date
- 2025-09-23
- Estimated Expiration
- 2044-12-25
AI Technical Summary
In the prior art, metal powder easily agglomerates during the pressing process, resulting in increased gaps in the mold cavity. This requires a long time to disperse and replenish the powder, increasing the complexity and time cost of powder distribution.
An ultrasonic vibration intelligent assisted manufacturing system is used, including a base, ultrasonic vibration components, a mobile frame, a lifting platform, a feed pipe and a filling frame. Through the combination of a temporary storage tube and an ultrasonic vibration component, the pre-dispersion and uniform spreading of metal powder are achieved, and the shaking component and the linkage component are used to improve the dispersion effect.
It achieves rapid and uniform dispersion of metal powder, shortens dispersion time, improves the filling efficiency of powder in the mold, reduces the phenomenon of false height, and simplifies the powder distribution process.
Smart Images

Figure CN119634728B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of powder metallurgy, and in particular to an ultrasonic vibration intelligent auxiliary manufacturing system. Background Art
[0002] Ultrasonic vibration intelligent assisted manufacturing system refers to the introduction of ultrasonic vibration in the manufacturing process, which uses the discontinuity, impact, ultrasonic softening and other characteristics of ultrasonic vibration to achieve precise and efficient processing of materials.
[0003] Metal powder pressing technology is an advanced forming technology that uses metal powder as raw material to prepare metal materials, composite materials and various products through filling, pressing and other processes. This technology has been widely used in many fields such as engineering machinery, automobile manufacturing, new energy, aerospace and medical care.
[0004] However, powder raw materials may be compressed, affected by temperature changes or humidity during storage, transportation or processing, resulting in powder agglomeration. Therefore, in the metal powder pressing and molding process, an ultrasonic vibration device is usually used to vibrate the mold to promote the complete filling and stratification of the metal powder. However, since the metal powder is already in an agglomerated state when it is discharged, it is difficult to completely disperse it in a short time by relying solely on the vibration inside the mold, resulting in a long time to achieve the ideal dispersion effect. In addition, the agglomerated metal powder is also likely to cause an increase in the gaps in the mold cavity, thereby causing an inflated phenomenon when the powder is distributed. Therefore, after the initial vibration and powder distribution, the powder surface in the mold cavity seems to be filled, but in fact, due to the existence of the powder gaps, the actual amount of powder filled is insufficient. At this time, a secondary powder distribution is often required to supplement the sufficient amount of powder, further increasing the complexity and time cost of the powder distribution. Based on this, the present invention purposely provides an ultrasonic vibration intelligent assisted manufacturing system that can thoroughly disperse the agglomerated powder before entering the mold cavity. Summary of the Invention
[0005] The purpose of the present invention is to provide an ultrasonic vibration intelligent assisted manufacturing system to address the shortcomings of the existing technology and solve the technical problems in the existing technology.
[0006] The purpose of the present invention can be achieved through the following technical solutions:
[0007] An ultrasonic vibration intelligent assisted manufacturing system, comprising:
[0008] A base, on which a first ultrasonic vibration component is provided, and a bracket is fixedly installed on the base, a movable frame is slidably installed in the bracket, and the movable frame is driven to move by a first driving component, a lifting platform is slidably installed on the base, and the lifting platform is used to place the mold, and the lifting platform is driven to rise and fall by a driving source, a first linkage component is provided on the base, and a second ultrasonic vibration component is provided in the base, and when the lifting platform lifts the mold to the highest horizontal position, the mold is fitted with the second ultrasonic vibration component;
[0009] Feed pipes: Both feed pipes are fixedly installed on the top of the base, and the two feed pipes are symmetrically arranged;
[0010] Filling frames, both of which are slidably mounted on the base and driven by the second driving assembly to move toward each other, and the filling frames are located below the conveying pipe;
[0011] The temporary storage barrel is rotatably mounted on the mobile frame and is driven to rotate by the first linkage assembly. The outer cylindrical surface of the temporary storage barrel is in contact with the first ultrasonic vibration assembly, and it is located between the feed pipe and the stuffing frame. The first drive assembly drives the mobile frame to reciprocate between the two stuffing frames. When the mobile frame moves from one stuffing frame to another, the first linkage assembly drives the temporary storage barrel to rotate, and when the temporary storage barrel is located above a stuffing frame, the feed pipe outlet faces the temporary storage barrel feed port.
[0012] As a further solution of the present invention: the first linkage assembly includes a first gear and a first rack plate, the first gear is coaxially fixedly installed on the outer circular surface of the temporary storage cylinder, the first rack plate is fixedly installed on the base, and the first rack plate is engaged with the first gear.
[0013] As a further solution of the present invention: a round rod is slidably installed on the movable rack, one end of the round rod extends into the interior of the temporary storage tube, and a cross bar is fixedly installed on the end. A shaking assembly is provided on the movable rack, and the shaking assembly is connected to the round rod. When the movable rack moves from one filling frame to another, the shaking assembly drives the round rod to move up and down.
[0014] As a further solution of the present invention: the shaking assembly includes a connecting block, a spring, a rotating rod and a second linkage assembly, the connecting block is coaxially fixedly connected to the round rod, and a plurality of first ratchets are fixedly installed on the top of the connecting block, the bottom of the connecting block is connected to the movable frame through a spring, the rotating rod is rotatably installed on the top of the movable frame, and a plurality of second ratchets are fixedly installed on the bottom of the connecting block, the rotating rod is driven to rotate by the second linkage assembly, and the second ratchets and the first ratchets are engaged with each other.
[0015] As a further solution of the present invention: the second linkage assembly includes a second gear and a second rack plate, the second gear is coaxially fixedly mounted on the outer circumferential surface of the rotating rod, the second rack plate is fixedly mounted on the base, and the second rack plate is engaged with the second gear.
[0016] As a further solution of the present invention: a limiting rod is fixedly installed on the bottom end of the connecting block, an extending block is fixedly installed on the movable frame, and the extending block is slidably connected to the limiting rod.
[0017] As a further solution of the present invention: the bottom ends of the temporary storage tube and the filling frame are both funnel-shaped.
[0018] As a further solution of the present invention: there are multiple cross bars, and the multiple cross bars are staggered and arranged on the round bar.
[0019] Beneficial effects of the present invention:
[0020] 1. In the present invention, the pre-stored metal powder is conveyed into the temporary storage tube, and the temporary storage tube is attached to the first ultrasonic vibration component. The vibration of the first ultrasonic vibration component disperses the agglomerated metal powder, thereby avoiding the subsequent filling into the mold. It takes a longer time to disperse and flatten the metal powder. The temporary storage tube reciprocates and discharges the material between the two filling frames. During the movement, the temporary storage tube can rotate, allowing the vibration of the first ultrasonic vibration component to be transmitted to the metal powder from different positions on the outer wall of the temporary storage tube, thereby improving the vibration effect. Subsequently, the dispersed metal powder is spread through the two filling frames moving toward each other, which can also improve the uniformity of the powder spreading and directly shorten the time for subsequent vibration of the metal powder in the mold.
[0021] 2. In the present invention, the shaking assembly drives the round rod to move up and down, and the cross bar installed on the round rod moves up and down in the temporary storage tube, thereby changing the layout of the metal powder in the temporary storage tube. Specifically, when the cross bar rises, a vacancy will be output below it. At this time, the metal powder raw material originally close to the inner wall of the temporary storage tube will fill the vacancy. Subsequently, the metal powder lifted by the cross bar has the opportunity to move toward the inner wall of the temporary storage tube. Combined with the lifting of the round rod itself, it has a dispersion effect on the metal powder. This can further improve the dispersion effect of the metal powder in the temporary storage tube, thereby ensuring that the powder can be spread more tightly on the mold;
[0022] 3. In the present invention, by staggering the plurality of cross bars on the round rod, more metal powder can be moved in a single lifting movement of the round rod, thereby improving the vibration effect of the first ultrasonic vibration component on the metal powder in the temporary storage tube. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] The present invention will be further described below with reference to the accompanying drawings.
[0024] Figure 1 It is a schematic diagram of the overall structure of the present invention;
[0025] Figure 2 It is a schematic diagram of the structure of the mobile frame in the present invention;
[0026] Figure 3 This is a schematic diagram of the cross-sectional structure of the temporary storage tube in the present invention;
[0027] Figure 4 This is a diagram showing the coordination of the first ratchet and the second ratchet in the present invention;
[0028] Figure 5 Schematic diagram of the support structure of the present invention;
[0029] Figure 6 It is a schematic diagram of the packing frame structure in the present invention;
[0030] Figure 7 It is a schematic diagram of the descending structure of the lifting platform in the present invention.
[0031] In the figure: 1. base; 2. first ultrasonic vibration component; 3. bracket; 4. mobile frame; 5. temporary storage tube; 6. first gear; 7. first rack plate; 8. feed pipe; 9. stuffing box; 10. mold; 11. lifting platform; 12. round rod; 13. connecting block; 14. first ratchet; 15. spring; 16. rotating rod; 17. second ratchet; 18. second gear; 19. second rack plate; 20. limit rod; 21. extension block; 22. threaded rod; 23. bidirectional screw rod; 24. cross bar. DETAILED DESCRIPTION
[0032] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making any creative efforts shall fall within the scope of protection of the present invention.
[0033] See also Figure 1-Figure 7 As shown, the present invention is an ultrasonic vibration intelligent assisted manufacturing system, comprising:
[0034] An ultrasonic vibration intelligent assisted manufacturing system, comprising:
[0035] A base 1 is provided with a first ultrasonic vibration component 2, and a bracket 3 is fixedly installed on the base 1. A movable frame 4 is slidably installed in the bracket 3, and the movable frame 4 is driven to move by a first driving component. A lifting platform 11 is slidably installed on the base 1, and the lifting platform 11 is used to place a mold 10. The lifting platform 11 is driven to rise and fall by a driving source. A first linkage component is provided on the base 1, and a second ultrasonic vibration component is provided in the base 1. When the lifting platform 11 lifts the mold 10 to the highest horizontal position, the mold 10 is fitted with the second ultrasonic vibration component.
[0036] The two conveying pipes 8 are fixedly installed on the top of the base 1, and the two conveying pipes 8 are symmetrically arranged;
[0037] Stuffing frames 9, both of which are slidably mounted on the base 1, and are driven by a second driving assembly to move toward each other, and the stuffing frames 9 are located below the conveying pipe 8;
[0038] The temporary storage tube 5 is rotatably mounted on the mobile frame 4 and is driven to rotate by the first linkage assembly. The outer cylindrical surface of the temporary storage tube 5 is in contact with the first ultrasonic vibration assembly 2, and it is located between the feed pipe 8 and the stuffing frame 9. The first driving assembly drives the mobile frame 4 to move back and forth between the two stuffing frames 9. When the mobile frame 4 moves from one stuffing frame 9 to another stuffing frame 9, the first linkage assembly drives the temporary storage tube 5 to rotate, and when the temporary storage tube 5 is located above a stuffing frame 9, the discharge port of the feed pipe 8 faces the feed port of the temporary storage tube 5.
[0039] In one case of this embodiment, the first ultrasonic vibration component 2 and the second ultrasonic vibration component both include an ultrasonic generator, an ultrasonic transducer, a horn, a tool head, etc. The discharge ports of the temporary storage tube 5 and the filling frame 9 are both openable and closable. The first driving component includes a threaded rod 22 and a servo motor. The threaded rod 22 is rotatably installed in the bracket 3, and the threaded rod 22 is threadedly connected to the movable frame 4. The output end of the servo motor is coaxially fixedly connected to the threaded rod 22. The second driving component includes a bidirectional screw rod 23 and a servo motor. The bidirectional screw rod 23 is rotatably installed on the base 1, and the two filling frames 9 are respectively threadedly connected to the two ends of the bidirectional screw rod 23. The output end of the servo motor is coaxially fixedly connected to the bidirectional screw rod 23. The driving source can be selected from reciprocating cylinders, electric hydraulic rods and other components, and other mechanisms that can realize lifting and lowering movements can also be selected. This embodiment does not make specific restrictions here.
[0040] The working principle of the present invention is as follows: First, the first driving assembly drives the moving frame 4 to move, so that the temporary storage barrel 5 is located above a filling frame 9. Subsequently, the pre-stored metal powder is transported into the temporary storage barrel 5 via the feeding pipe 8. Since the temporary storage barrel 5 is tightly fitted with the first ultrasonic vibration assembly 2, when the first ultrasonic vibration assembly 2 vibrates, it drives the temporary storage barrel 5 to resonate. This resonance effect causes the metal powder inside the temporary storage barrel 5 to vibrate and gradually become dispersed, thereby completing the initial decomposition of the raw materials.
[0041] Next, the first driving component is started again to move the movable frame 4 toward another filling frame 9. During the movement, the first linkage component drives the temporary storage barrel 5 to rotate, and the metal powder filled in the temporary storage barrel 5 can be regarded as several groups equally divided on the circumference. As the temporary storage barrel 5 rotates, its position in contact with the first ultrasonic vibration component 2 is constantly changing, thereby ensuring that the vibration generated by the first ultrasonic vibration component 2 can act evenly on each group of metal powder in the temporary storage barrel 5, thereby achieving uniform dispersion of the raw materials, thereby preventing the agglomerated metal powder from directly entering the mold 10 and forming large gaps. When the temporary storage barrel 5 moves to the top of another filling frame 9, the metal powder that has been loosened by vibration in the temporary storage barrel 5 is first discharged into the filling frame 9 below, and then the feeding pipe 8 is used again to fill the temporary storage barrel 5 with new metal powder. After that, the above process is repeated: the temporary storage barrel 5 is moved back and forth between the two filling frames 9, and the discharge and loading operations are performed until both filling frames 9 are filled with sufficient metal powder.
[0042] Finally, the two filling frames 9 are driven to move toward each other through the action of the second driving component. The two filling frames 9 move from both sides of the mold 10 to the middle, and during the movement, the metal powder inside each is discharged into the mold 10. During the discharge process, the second ultrasonic vibration component vibrates the mold 10 to assist the powder distribution process. This vibration ensures that the metal powder can be evenly and tightly distributed in the mold 10, completing the entire powder distribution process.
[0043] like Figures 1-6 As shown, as a preferred embodiment of the present invention, the first linkage assembly includes a first gear 6 and a first rack plate 7, the first gear 6 is coaxially fixedly mounted on the outer circumferential surface of the temporary storage tube 5, the first rack plate 7 is fixedly mounted on the base 1, and the first rack plate 7 is engaged with the first gear 6.
[0044] In actual application of this embodiment, since the first rack plate 7 and the first gear 6 are engaged, and the position of the first rack plate 7 is fixed, when the movable frame 4 is driven to reciprocate under the drive of the first driving assembly, the first gear 6 will rotate on the first rack plate 7, thereby driving the temporary storage tube 5 to rotate through the first gear 6, thereby ensuring that the temporary storage tube 5 moves from one filling frame 9 to another filling frame 9, and can drive the temporary storage tube 5 to rotate during the movement, ensuring that the first ultrasonic vibration assembly 2 fully and evenly vibrates the metal powder filled in the temporary storage tube 5.
[0045] like Figure 1-Figure 4 As shown, as a preferred embodiment of the present invention, a round rod 12 is slidably installed on the mobile frame 4, one end of the round rod 12 extends into the interior of the temporary storage tube 5, and a cross bar 24 is fixedly installed on the end, and a shaking component is provided on the mobile frame 4, and the shaking component is connected to the round rod 12. When the mobile frame 4 moves from one filling frame 9 to another filling frame 9, the shaking component drives the round rod 12 to perform lifting and lowering movements.
[0046] In actual application of this embodiment, since the vibration generated by the first ultrasonic vibration component 2 is transmitted to the center through the outer wall of the temporary storage tube 5, the metal powder close to the inner wall of the temporary storage tube 5 is subjected to the strongest vibration effect. The round rod 12 is provided. When the movable frame 4 moves from one filling frame 9 to another filling frame 9, the shaking component drives the round rod 12 to move up and down, and the cross bar 24 installed on the round rod 12 moves up and down in the temporary storage tube 5, thereby changing the layout of the metal powder in the temporary storage tube 5. Specifically, when the cross bar 24 rises, a gap will be output below it. At this time, the metal powder raw material originally close to the inner wall of the temporary storage tube 5 will fill the gap. Subsequently, the metal powder lifted by the cross bar 24 has the opportunity to move toward the inner wall of the temporary storage tube 5. Combined with the lifting of the round rod 12 itself, the metal powder has a dispersion effect. This can further improve the dispersion effect of the metal powder in the temporary storage tube 5, thereby ensuring that the mold 10 can be more compact when the powder is spread.
[0047] like Figure 1-Figure 5 As shown, as a preferred embodiment of the present invention, the shaking assembly includes a connecting block 13, a spring 15, a rotating rod 16 and a second linkage assembly, the connecting block 13 is coaxially fixedly connected to the round rod 12, and a plurality of first ratchets 14 are fixedly installed on the top thereof, the bottom of the connecting block 13 is connected to the moving frame 4 through a spring 15, the rotating rod 16 is rotatably installed on the top of the moving frame 4, and a plurality of second ratchets 17 are fixedly installed on the bottom thereof, the rotating rod 16 is driven to rotate by the second linkage assembly, and the second ratchets 17 and the first ratchets 14 are engaged with each other.
[0048] In practical application, if Figure 4Taking the example shown, the preload force of the spring 15 causes the first ratchet 14 on the connecting block 13 to abut against the second ratchet 17 on the rotating rod 16, and the second ratchet 17 and the first ratchet 14 engage with each other. When the two are fully engaged, the horizontal height of the connecting block 13 is the highest. When the rotating rod 16 rotates, the second ratchet 17 squeezes the first ratchet 14, thereby lowering the horizontal height of the connecting block 13. Therefore, when the second linkage assembly drives the rotating rod 16 to rotate, the horizontal height of the connecting block 13 will change, thereby driving the round rod 12 and the cross bar 24 to perform reciprocating lifting and lowering motions, thereby achieving the purpose of rearranging the metal powder in the temporary storage tube 5.
[0049] like Figures 1-6 As shown, as a preferred embodiment of the present invention, the second linkage assembly includes a second gear 18 and a second rack plate 19, the second gear 18 is coaxially fixedly mounted on the outer circumferential surface of the rotating rod 16, the second rack plate 19 is fixedly mounted on the base 1, and the second rack plate 19 is engaged with the second gear 18.
[0050] In actual application of this embodiment, since the second gear 18 and the second rack plate 19 are engaged, and the position of the second rack plate 19 is fixed, when the movable frame 4 is driven to move back and forth by the first driving assembly, the second gear 18 will rotate on the second rack plate 19, thereby driving the first gear 6 to rotate through the second gear 18, thereby ensuring that the temporary storage tube 5 moves from one filling frame 9 to another filling frame 9. During the movement, the round rod 12 will continuously rise and fall, assisting the first ultrasonic vibration assembly 2 to vibrate the metal powder filled in the temporary storage tube 5.
[0051] like Figures 1-6 As shown, as a preferred embodiment of the present invention, a limiting rod 20 is fixedly installed at the bottom end of the connecting block 13, and an extending block 21 is fixedly installed on the movable frame 4, and the extending block 21 is slidably connected to the limiting rod 20.
[0052] In actual application of this embodiment, when the connecting block 13 is raised or lowered, the limit rod 20 will slide up and down in the extension block 21, and the sliding of the limit rod 20 in the extension block 21 and the sliding of the round rod 12 on the movable frame 4 jointly restrict the round rod 12 from rotating, so that the round rod 12 can only be raised or lowered, avoiding the problem that when the second ratchet 17 and the rotating rod 16 are in meshing state, the rotation of the second ratchet 17 drives the rotating rod 16 to rotate.
[0053] like Figure 3 As shown in FIG. 1 , as a preferred embodiment of the present invention, the bottom ends of the temporary storage tube 5 and the filling frame 9 are both funnel-shaped.
[0054] In actual application of this embodiment, since the metal powder in the temporary storage tube 5 and the filling frame 9 is mainly discharged under the action of gravity, it is more convenient to discharge the metal powder by making the bottom ends of the temporary storage tube 5 and the filling frame 9 into a funnel shape.
[0055] like Figure 3 As shown, as a preferred embodiment of the present invention, there are multiple cross bars 24 , and the multiple cross bars 24 are staggered and arranged on the round rod 12 .
[0056] In actual application of this embodiment, multiple cross bars 24 are staggeredly arranged on the round rod 12, which can drive more metal powder to move in a single lifting movement of the round rod 12, thereby improving the vibration effect of the first ultrasonic vibration component 2 on the metal powder in the temporary storage tube 5.
[0057] The above is a detailed description of an embodiment of the present invention. However, the content described is only a preferred embodiment of the present invention and should not be considered to limit the scope of the present invention. All equivalent changes and improvements made within the scope of the present invention should still fall within the scope of the patent coverage of the present invention.
Claims
1. An ultrasonic vibration intelligent assisted manufacturing system, characterized in that: include: A base (1) is provided with a first ultrasonic vibration component (2), and a bracket (3) is fixedly installed on the base (1), a movable frame (4) is slidably installed in the bracket (3), and the movable frame (4) is driven to move by a first driving component, a lifting platform (11) is slidably installed on the base (1), and the lifting platform (11) is used to place the mold (10), and the lifting platform (11) is driven to move by a driving source, and a first linkage component is provided on the base (1), and a second ultrasonic vibration component is provided in the base (1), and when the lifting platform (11) lifts the mold (10) to the highest horizontal position, the mold (10) is fitted with the second ultrasonic vibration component; Feed pipes (8), both feed pipes (8) are fixedly mounted on the top of the base (1), and the two feed pipes (8) are symmetrically arranged; A packing frame (9), wherein the two packing frames (9) are both slidably mounted on the base (1), and the two packing frames (9) are driven by a second driving assembly to move toward each other, and the packing frames (9) are located below the feed pipe (8); A temporary storage barrel (5) is rotatably mounted on a movable frame (4) and is driven to rotate by a first linkage assembly. The outer cylindrical surface of the temporary storage barrel (5) is in contact with the first ultrasonic vibration assembly (2), and the temporary storage barrel (5) is located between the feed pipe (8) and the stuffing frame (9). The first driving assembly drives the movable frame (4) to move back and forth between the two stuffing frames (9). When the movable frame (4) moves from one stuffing frame (9) to another stuffing frame (9), the first linkage assembly drives the temporary storage barrel (5) to rotate, and when the temporary storage barrel (5) is located above a stuffing frame (9), the discharge port of the feed pipe (8) faces the feed port of the temporary storage barrel (5); A round rod (12) is slidably mounted on the movable frame (4), one end of the round rod (12) extends into the interior of the temporary storage tube (5), and a cross bar (24) is fixedly mounted on the end. A shaking assembly is provided on the movable frame (4), and the shaking assembly is connected to the round rod (12). When the movable frame (4) moves from one stuffing box (9) to another stuffing box (9), the shaking assembly drives the round rod (12) to move up and down. The shaking assembly comprises a connecting block (13), a spring (15), a rotating rod (16) and a second linkage assembly. The connecting block (13) is coaxially fixedly connected to the round rod (12), and a plurality of first ratchets (14) are fixedly mounted on the top of the connecting block (13). The bottom of the connecting block (13) is connected to the moving frame (4) through the spring (15). The rotating rod (16) is rotatably mounted on the top of the moving frame (4), and a plurality of second ratchets (17) are fixedly mounted on the bottom of the connecting block (13). The rotating rod (16) is driven to rotate by the second linkage assembly, and the second ratchets (17) and the first ratchets (14) are engaged with each other.
2. The ultrasonic vibration intelligent assisted manufacturing system according to claim 1, characterized in that: The first linkage assembly comprises a first gear (6) and a first rack plate (7), wherein the first gear (6) is coaxially fixedly mounted on the outer circumferential surface of the temporary storage cylinder (5), and the first rack plate (7) is fixedly mounted on the base (1), and the first rack plate (7) is meshed with the first gear (6).
3. The ultrasonic vibration intelligent assisted manufacturing system according to claim 1, characterized in that: The second linkage assembly includes a second gear (18) and a second rack plate (19), wherein the second gear (18) is coaxially fixedly mounted on the outer circumferential surface of the rotating rod (16), and the second rack plate (19) is fixedly mounted on the base (1), and the second rack plate (19) is meshed with the second gear (18).
4. The ultrasonic vibration intelligent assisted manufacturing system according to claim 1, characterized in that: A limiting rod (20) is fixedly mounted on the bottom end of the connecting block (13), and an extension block (21) is fixedly mounted on the movable frame (4). The extension block (21) is slidably connected to the limiting rod (20).
5. The ultrasonic vibration intelligent assisted manufacturing system according to claim 1, characterized in that: The bottom ends of the temporary storage cylinder (5) and the filling frame (9) are both funnel-shaped.
6. The ultrasonic vibration intelligent assisted manufacturing system according to claim 1, characterized in that: There are multiple cross bars (24), and the multiple cross bars (24) are staggered and arranged on the round bar (12).
Citation Information
Patent Citations
Realize intermetallic compound high performance pressure former that shakes
CN205519645U