Powder filling and demolding all-in-one machine for inductor
By designing an integrated inductor powder filling and demolding machine, and adopting a double-layer conveying assembly and multiple transfer mechanisms, the powder filling and demolding processes are integrated, solving the problems of large equipment footprint and difficult docking in inductor manufacturing, and achieving reasonable docking with the core filling and hot pressing processes.
Patent Information
- Application Number
- CN202511307707.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-15
- Publication Date
- 2025-10-17
- Estimated Expiration
- 2045-09-15
AI Technical Summary
In the current inductor manufacturing process, the powder filling and demolding processes are completed by separate equipment, resulting in a large floor space for the production line and difficulty in properly connecting it with the core filling and hot pressing processes.
An all-in-one inductor powder filling and demoulding machine is designed, which adopts a double-layer conveying component and multiple transfer mechanisms to achieve integrated coordination of powder filling and demoulding, and reasonably connects with the core filling and hot pressing processes.
It integrates powder filling and demolding, reduces equipment space occupation, simplifies the production line, and can be smoothly connected with the core filling and hot pressing processes.
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Figure CN120809465A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of inductor intelligent manufacturing, and particularly relates to an inductor powder filling and demolding integrated machine. BACKGROUND
[0002] The key to supporting the rapid development of artificial intelligence technology lies in the large-scale production application of AI servers with high-performance computing capabilities and large-capacity storage spaces. With the substantial growth in demand for AI servers, the demand for inductors, as key components in AI servers, has also increased substantially.
[0003] The manufacturing process of an inductor includes four processes of core filling, powder filling, hot pressing and demolding. Traditionally, the four processes are completed independently by four devices, and conveying mechanisms are configured between the devices to realize the transfer of the mold, resulting in a large occupied area of the entire production line. Currently, there are few devices that integrate powder filling and demolding processes, because powder filling and demolding are not adjacent processes, and such integrated devices also need to fully consider how to interface with the core filling and hot pressing processes. Therefore, how to design a powder filling and demolding integrated machine that occupies a small space and can be reasonably interfaced with the core filling and hot pressing processes has become a technical problem difficult to overcome in the field of inductor intelligent manufacturing. SUMMARY
[0004] In order to overcome the deficiencies of the prior art, the purpose of the present application is to provide an inductor powder filling and demolding integrated machine, which can realize the integration and coordination of powder filling and demolding, has the advantage of small occupied space, and can be reasonably interfaced with the core filling and hot pressing processes.
[0005] The purpose of the present application is achieved by the following technical solutions: An inductor powder filling and demolding integrated machine, comprising a double-layer conveying assembly, a powder filling mechanism, a demolding mechanism, a first transfer mechanism and a second transfer mechanism, the powder filling mechanism and the demolding mechanism being on the same side of the double-layer conveying assembly, the double-layer conveying assembly comprising an upper layer belt conveyor and a lower layer belt conveyor arranged side by side, the conveying directions of the upper layer belt conveyor and the lower layer belt conveyor being opposite, the first transfer mechanism being used to realize the back-and-forth movement of the mold between the upper layer belt conveyor and the powder filling mechanism, and the second transfer mechanism being used to realize the back-and-forth movement of the mold between the lower layer belt conveyor and the demolding mechanism.
[0006] Further, the first transfer mechanism comprises a first linear module, a first down pressure cylinder and a first push block, the first linear module being transversely perpendicular to the upper layer belt conveyor, the first down pressure cylinder being installed on the sliding block of the first linear module, and the first down pressure cylinder being connected with the first push block to realize the up-and-down movement of the first push block; The second transferring mechanism comprises a second linear module, a second pressing cylinder and a second pushing block. The second linear module is transversely perpendicular to the lower belt conveyor. The second pressing cylinder is installed on the slider of the second linear module, and the second pressing cylinder is connected with the second pushing block to realize the up-down movement of the second pushing block.
[0007] Further, the upper belt conveyor is provided with an upper opening on the side facing the powder filling mechanism, and the lower belt conveyor is provided with a lower opening on the side facing the demolding mechanism.
[0008] Further, the upper belt conveyor is provided with two upper stop blocks, each of which is connected with an upper cylinder to realize up-down movement. The upper opening is between the two upper stop blocks, and the front upper stop block is used to block the mold at a position corresponding to the upper opening. The lower belt conveyor is provided with two lower stop blocks, each of which is connected with a lower cylinder to realize up-down movement. The lower opening is between the two lower stop blocks, and the front lower stop block is used to block the mold at a position corresponding to the lower opening.
[0009] Further, the inductive powder filling and demolding integrated machine further comprises a visual detection mechanism between the upper belt conveyor and the powder filling mechanism and an upper slide. The upper slide is transversely perpendicular to the upper belt conveyor, and the visual detection mechanism is used for visual detection of the mold on the upper slide.
[0010] Further, the inductive powder filling and demolding integrated machine further comprises a lifting platform, a lifting cylinder and a third transferring mechanism. The lifting platform is between the upper slide and the upper belt conveyor. The lifting cylinder is connected with the lifting platform to enable the lifting platform to rise to the upper station or descend to the lower station. The upper slide is connected with the powder filling mechanism. When the lifting platform is at the upper station, the lifting platform realizes the connection between the upper slide and the upper belt conveyor. The third transferring mechanism is used to transfer the mold on the lifting platform to between the demolding mechanism and the lower belt conveyor when the lifting platform is at the lower station.
[0011] Further, the inductive powder filling and demolding integrated machine further comprises a lower slide parallel to the lower belt conveyor. The lower slide is between the third transferring mechanism and the lower belt conveyor. The demolding mechanism is provided with a first opening connected with the lower belt conveyor and a second opening connected with the lower slide. When the lifting platform is at the lower station, the lifting platform is connected with the lower slide.
[0012] Further, the demolding mechanism comprises a demolding needle assembly, a demolding station, a material collecting assembly, a horizontal moving mold group and a pre-demolding separation assembly, the pre-demolding separation assembly is used for separating the middle mold plate and the middle mold slider in cooperation with the second moving mechanism, the demolding needle assembly is above the demolding station, the material collecting assembly is below the demolding station, the material collecting assembly comprises an OK product collecting box and an NG product collecting box, and the OK product collecting box and the NG product collecting box are installed side by side on the slider of the horizontal moving mold group.
[0013] Further, the third moving mechanism comprises a third linear mold group, a rotating air cylinder, a rotating rod and a third push block, the third linear mold group is parallel to the lower belt conveyor, the rotating air cylinder is installed on the slider of the third linear mold group, the output end of the rotating air cylinder is connected with the rotating rod, and the third push block is installed on the rotating rod.
[0014] Further, the powder filling mechanism comprises a powder feeding assembly, a powder filling station and an upper pressing air cylinder, the upper pressing air cylinder is below the powder filling station and the output end of the upper pressing air cylinder is connected with the powder filling station, and the powder feeding assembly is above the powder filling station.
[0015] Compared with the prior art, the beneficial effects of the present application are that: The upper belt conveyor of the inductance powder demolding integrated machine is used for abutting the core filling machine and the hot press machine respectively, the lower belt conveyor is also used for abutting the core filling machine and the hot press machine respectively, but the conveying directions of the upper belt conveyor and the lower belt conveyor are opposite; the mold coming out of the core filling machine reaches the powder filling mechanism to perform the powder filling process through the upper belt conveyor and the first moving mechanism in sequence, then the mold is conveyed to the hot press machine to perform the hot pressing process through the first moving mechanism and the upper belt conveyor in sequence; the mold coming out of the hot press machine reaches the demolding mechanism to perform the demolding process through the lower belt conveyor and the second moving mechanism, then the mold (i.e. the empty mold) flows back to the core filling machine to perform the core filling process through the second moving mechanism and the lower belt conveyor in sequence. As known from the above, the inductance powder demolding integrated machine can realize the integration and coordination of powder filling and demolding, has the advantage of small space occupation, and can be reasonably abutted with the core filling and hot pressing processes. BRIEF DESCRIPTION OF DRAWINGS
[0016] Figure 1 It is a structure schematic view of the inductance powder demolding integrated machine of the embodiment of the present application; Figure 2 It is a top view of the inductance powder demolding integrated machine of the embodiment of the present application; Figure 3 It is a structure schematic view of the inductance powder demolding integrated machine of the embodiment of the present application, which omits the double-layer conveying assembly, the first moving mechanism and the second moving mechanism; Figure 4The structure schematic view of the double-layer conveying assembly of the embodiment of the present application is shown in the figure; Figure 5 The structure schematic view of the double-layer conveying assembly of the embodiment of the present application is shown in the figure; Figure 6 The structure schematic view of the double-layer conveying assembly of the embodiment of the present application is shown in the figure; Figure 7 The structure schematic view of the first moving mechanism of the embodiment of the present application is shown in the figure; Figure 8 The structure schematic view of the second moving mechanism of the embodiment of the present application is shown in the figure; Figure 9 The combined structure schematic view of the lifting platform, the lifting cylinder, the lower slide, and the third moving mechanism of the embodiment of the present application is shown in the figure; Figure 10 The structure schematic view of the powder filling mechanism of the embodiment of the present application is shown in the figure; Figure 11 The structure schematic view of the demolding mechanism of the embodiment of the present application is shown in the figure; Figure 12 The side view of the demolding mechanism of the embodiment of the present application is shown in the figure; Figure 13 The rear view of the demolding mechanism of the embodiment of the present application is shown in the figure.
[0017] In the figure: 100, double-layer conveying assembly; 110, upper belt conveyor; 111, upper opening; 112, upper stop block; 120, lower belt conveyor; 121, lower opening; 122, lower stop block; 200, powder filling mechanism; 210, powder feeding assembly; 220, powder filling station; 230, upper pressing cylinder; 300, demolding mechanism; 301, first opening; 302, second opening; 310, demolding needle assembly; 320, demolding station; 330, material collecting assembly; 331, OK product collecting box; 332, NG product collecting box; 340, horizontal moving module; 350, pre-demolding separating assembly; 400, first moving mechanism; 410, first linear module; 420, first lower pressing cylinder; 430, first push block; 500, second moving mechanism; 510, second linear module; 520, second lower pressing cylinder; 530, second push block; 600, upper slide; 610, visual detection mechanism; 700, lifting platform; 710, lifting cylinder; 800, third moving mechanism; 810, third linear module; 820, rotating cylinder; 830, rotating rod; 840, third push block; 900, lower slide. DETAILED DESCRIPTION
[0018] The application will be further described below in conjunction with the drawings and specific embodiments. It should be noted that the embodiments described below or technical features between the embodiments can be combined in any manner to form new embodiments without conflict.
[0019] Reference Figures 1-13 The embodiment of the application provides a powder filling and demolding integrated machine for an inductor, which comprises a double-layer conveying assembly 100, a powder filling mechanism 200, a demolding mechanism 300, a first moving mechanism 400 and a second moving mechanism 500. The powder filling mechanism 200 and the demolding mechanism 300 are located on the same side of the double-layer conveying assembly 100, the double-layer conveying assembly 100 comprises an upper layer belt conveyor 110 and a lower layer belt conveyor 120 arranged side by side, and the conveying directions of the upper layer belt conveyor 110 and the lower layer belt conveyor 120 are opposite. Specifically, the two ends of the upper layer belt conveyor 110 are used for abutting against a filling core machine and a hot press machine respectively, the conveying direction is the filling core machine -> the hot press machine, and the two ends of the lower layer belt conveyor 120 are also used for abutting against the filling core machine and the hot press machine respectively, but the conveying direction is the filling core machine <- the hot press machine. In addition, the first moving mechanism 400 is used for realizing the back-and-forth movement of a mold between the upper layer belt conveyor 110 and the powder filling mechanism 200, and the second moving mechanism 500 is used for realizing the back-and-forth movement of the mold between the lower layer belt conveyor 120 and the demolding mechanism 300. The arrangement of the double-layer conveying assembly 100 and the layout of the powder filling mechanism 200 and the demolding mechanism 300 on the same side of the double-layer conveying assembly 100 can effectively optimize the occupied space and reasonably abut against the filling core and hot pressing processes.
[0020] In the powder filling and demolding integrated machine for an inductor provided by the embodiment of the application, the first moving mechanism 400 comprises a first linear module 410, a first downward pressing cylinder 420 and a first push block 430, the first linear module 410 is transversely perpendicular to the upper layer belt conveyor 110, the first downward pressing cylinder 420 is installed on a sliding block of the first linear module 410, and the first downward pressing cylinder 420 is connected with the first push block 430 to realize the up-and-down movement of the first push block 430; the second moving mechanism 500 comprises a second linear module 510, a second downward pressing cylinder 520 and a second push block 530, the second linear module 510 is transversely perpendicular to the lower layer belt conveyor 120, the second downward pressing cylinder 520 is installed on a sliding block of the second linear module 510, and the second downward pressing cylinder 520 is connected with the second push block 530 to realize the up-and-down movement of the second push block 530. Here, "transversely" means parallel to a reference surface (for example, a machine table surface or a horizontal surface).
[0021] In the inductive powder filling and demolding integrated machine, the upper layer belt conveyor 110 is provided with an upper layer opening 111 on the side facing the powder filling mechanism 200, and the upper layer opening 111 is used to facilitate the mold to enter and exit from the side of the upper layer belt conveyor 110. The lower layer belt conveyor 120 is provided with a lower layer opening 121 on the side facing the demolding mechanism 300, and the lower layer opening 121 is used to facilitate the mold to enter and exit from the side of the lower layer belt conveyor 120.
[0022] The upper layer belt conveyor 110 is provided with two upper layer stop blocks 112, each of which is connected with an upper layer cylinder to realize up and down movement, and the upper layer opening 111 is between the two upper layer stop blocks 112, and the upper layer stop block 112 in front is used to block the mold at the position corresponding to the upper layer opening 111; wherein the upper layer stop block 112 in front refers to the stop block closer to the output end of the upper layer belt conveyor 110. The lower layer belt conveyor 120 is provided with two lower layer stop blocks 122, each of which is connected with a lower layer cylinder to realize up and down movement, and the lower layer opening 121 is between the two lower layer stop blocks 122, and the lower layer stop block 122 in front is used to block the mold at the position corresponding to the lower layer opening 121; wherein the lower layer stop block 122 in front refers to the stop block closer to the output end of the lower layer belt conveyor 120.
[0023] The inductive powder filling and demolding integrated machine further comprises a visual detection mechanism 610 and an upper layer slide 600 between the upper layer belt conveyor 110 and the powder filling mechanism 200, and the upper layer slide 600 is transversely perpendicular to the upper layer belt conveyor 110, and the visual detection mechanism 610 is used to visually detect the mold in the upper layer slide 600, and the main detection items include: 1) before powder filling, detecting whether the T-core on the mold is placed or missed; 2) after powder filling, detecting whether the mold is completely filled.
[0024] The inductive powder filling and mold stripping integrated machine further comprises a lifting platform 700, a lifting cylinder 710 and a third transfer mechanism 800. The lifting platform 700 is located between the upper slide 600 and the upper belt conveyor 110. The lifting cylinder 710 is connected with the lifting platform 700 to enable the lifting platform 700 to ascend to the upper station or descend to the lower station. The upper slide 600 is connected with the powder filling mechanism 200. When the lifting platform 700 is at the upper station, the lifting platform 700 realizes the connection between the upper slide 600 and the upper belt conveyor 110. The third transfer mechanism 800 is used to transfer the mold on the lifting platform 700 to between the mold stripping mechanism 300 and the lower belt conveyor 120 when the lifting platform 700 is at the lower station. The lifting platform 700 mainly functions to switch the mold moving path according to the detection result. For example, after the powder is filled, if the visual detection result is NG, the first transfer mechanism 400 moves the mold to the lifting platform 700, and then the lifting platform 700 descends to the lower station. If the visual detection result is OK, the first transfer mechanism 400 moves the mold to the upper belt conveyor 110, and then the upper belt conveyor 110 sends the mold to the hot press.
[0025] The inductive powder filling and mold stripping integrated machine further comprises a lower slide 900 parallel to the lower belt conveyor 120. The lower slide 900 is located between the third transfer mechanism 800 and the lower belt conveyor 120. The mold stripping mechanism 300 is provided with a first opening 301 connected with the lower belt conveyor 120 and a second opening 302 connected with the lower slide 900. When the lifting platform 700 is at the lower station, the lifting platform 700 is connected with the lower slide 900.
[0026] Specifically, the mold stripping mechanism 300 comprises a mold stripping needle assembly 310, a mold stripping station 320, a material collecting assembly 330, a horizontal moving mold group 340 and a mold stripping and separating assembly 350. The mold stripping and separating assembly 350 is used to separate the middle mold plate and the middle mold sliding block in cooperation with the second transfer mechanism 500. The mold is composed of the middle mold plate and the middle mold sliding block, which is a prior art. The mold stripping needle assembly 310 is located above the mold stripping station 320. The material collecting assembly 330 is located below the mold stripping station 320. The material collecting assembly 330 comprises an OK product collecting box 331 and an NG product collecting box 332. OK means qualified, and NG means unqualified. The OK product collecting box 331 and the NG product collecting box 332 are installed side by side on the sliding block of the horizontal moving mold group 340. The horizontal moving mold group 340 is composed of a cylinder, a slide rail, a sliding block and the like. The cylinder can be extended and retracted to switch the collecting box below the mold stripping station 320 between the OK product collecting box 331 and the NG product collecting box 332. In this way, the mold stripping mechanism 300 can not only collect normal products, but also recover materials when the detection result of the visual detection mechanism 610 is NG.
[0027] Specifically, the third transferring mechanism 800 comprises a third linear module 810, a rotating cylinder 820, a rotating rod 830 and a third push block 840, the third linear module 810 is parallel to the lower belt conveyor 120, the rotating cylinder 820 is installed on the slider of the third linear module 810, the output end of the rotating cylinder 820 is connected with the rotating rod 830, and the third push block 840 is installed on the rotating rod 830. The rotating cylinder 820 can make the rotating rod 830 be longitudinally arranged (perpendicular to the machine table or horizontal plane) or transversely arranged (parallel to the machine table or horizontal plane), so that the structure can avoid the components such as the lifting platform 700 and the lifting cylinder 710.
[0028] Specifically, the powder filling mechanism 200 comprises a powder feeding assembly 210, a powder filling station 220 and an upper pressing cylinder 230, the upper pressing cylinder 230 is below the powder filling station 220, the output end of the upper pressing cylinder 230 is connected with the powder filling station 220, and the powder feeding assembly 210 is above the powder filling station 220.
[0029] The working principle of the embodiment of the application is as follows: 1) The mold (filled with a T-core) discharged from the core filling machine enters the upper belt conveyor 110, and is blocked at the position of the upper opening 111 by the upper stop block 112, at this time, the lifting platform 700 is at the upper station, the mold is transferred to the upper slide 600 by the first transferring mechanism 400, then the mold is subjected to first visual inspection by the visual inspection mechanism 610, if the detection result is OK, the mold is continuously transferred to the powder filling assembly by the first transferring mechanism 400, after the powder filling is completed, the mold is transferred to the upper slide 600 for second visual inspection by the first transferring mechanism 400, if the detection result is OK, the mold is continuously moved to the upper belt conveyor 110 by the first transferring mechanism 400, and then the mold with the filled powder is transferred to the hot press by the upper belt conveyor 110.
[0030] 2) When the first visual inspection or the second visual inspection result is NG, the mold is transferred to the lifting platform 700 by the first transferring mechanism 400, then the lifting platform 700 is lowered to the lower station, the mold is transferred to the position between the demolding mechanism 300 and the lower belt conveyor 120 by the third transferring mechanism 800, then the mold is transferred to the demolding mechanism 300 by the second transferring mechanism 500, so as to recycle the NG product material, and then the empty mold is transferred to the lower belt conveyor 120 by the second transferring mechanism 500, and the empty mold is transferred to the core filling machine by the lower belt conveyor 120.
[0031] 3) The mold from the hot press enters the lower belt conveyor 120, and is blocked by the lower stopper 122 at the position of the lower opening 121, then the second transfer mechanism 500 transfers the mold to the pre-demolding separation assembly 350, the pre-demolding separation assembly 350 sinks for a distance, then the second transfer mechanism 500 pulls the middle mold plate out of the middle mold slider, and transfers the middle mold plate to the demolding station 320 for demolding of the normal product, after the demolding is completed, the second transfer mechanism 500 transfers the middle mold plate to the middle mold slider, and then transfers the entire empty mold to the lower belt conveyor 120, and the empty mold is transferred to the core filling machine by the lower belt conveyor 120.
[0032] From the above working principle, it can be known that the inductance powder filling and demolding integrated machine can realize the integration and coordination of powder filling and demolding, and can be reasonably connected with the core filling and hot pressing process; in addition, the design of the double-layer conveying assembly, the layout of the powder filling mechanism and the demolding mechanism on the same side of the double-layer conveying assembly, and the demolding mechanism used for recycling of normal products and NG products at the same time can effectively simplify the machine structure and reduce the occupied space.
[0033] The above embodiments are only preferred embodiments of the present application, and cannot be used to limit the scope of protection of the present application, and any non-essential changes and replacements made by those skilled in the art on the basis of the present application are within the scope of protection of the present application.
Claims
1. An inductor powder filling and demoulding integrated machine, characterized in that: It includes a double-layer conveying assembly, a powder filling mechanism, a demoulding mechanism, a first transfer mechanism and a second transfer mechanism. The powder filling mechanism and the demoulding mechanism are on the same side of the double-layer conveying assembly. The double-layer conveying assembly includes an upper belt conveyor and a lower belt conveyor arranged side by side. The conveying directions of the upper belt conveyor and the lower belt conveyor are opposite. The first transfer mechanism is used to realize the back-and-forth movement of the mold between the upper belt conveyor and the powder filling mechanism, and the second transfer mechanism is used to realize the back-and-forth movement of the mold between the lower belt conveyor and the demoulding mechanism.
2. The inductor powder filling and demoulding integrated machine according to claim 1, characterized in that: The first transfer mechanism includes a first linear module, a first downward pressure cylinder and a first push block, the first linear module is transversely perpendicular to the upper belt conveyor, the first downward pressure cylinder is installed on the slider of the first linear module, and the first downward pressure cylinder is connected to the first push block to realize the up and down movement of the first push block; The second transfer mechanism includes a second linear module, a second downward pressure cylinder and a second push block. The second linear module is transversely perpendicular to the lower belt conveyor. The second downward pressure cylinder is installed on the slider of the second linear module, and the second downward pressure cylinder is connected to the second push block to realize the up and down movement of the second push block.
3. The inductor powder filling and demoulding integrated machine according to claim 1, characterized in that: The upper belt conveyor is provided with an upper opening on a side facing the powder filling mechanism, and the lower belt conveyor is provided with a lower opening on a side facing the demoulding mechanism.
4. The inductor powder filling and demoulding integrated machine according to claim 3, characterized in that: The upper belt conveyor is provided with two upper stoppers, each of which is connected to an upper cylinder to achieve up and down movement, the upper opening is located between the two upper stoppers, and the upper stopper in the front is used to block the mold at a position corresponding to the upper opening; The lower belt conveyor is provided with two lower block, each lower block is connected to a lower cylinder to achieve up and down movement, the lower opening is located between the two lower block, and the lower block in the front is used to block the mold at a position corresponding to the lower opening.
5. The inductor powder filling and demoulding integrated machine according to claim 3, characterized in that: The inductor powder filling and demoulding integrated machine also includes a visual inspection mechanism and an upper slide located between the upper belt conveyor and the powder filling mechanism. The upper slide is transversely perpendicular to the upper belt conveyor. The visual inspection mechanism is used to perform visual inspection on the mold on the upper slide.
6. The inductor powder filling and demoulding integrated machine according to claim 5, characterized in that: The inductor powder filling and demoulding integrated machine also includes a lifting platform, a lifting cylinder and a third transfer mechanism. The lifting platform is located between the upper slide and the upper belt conveyor. The lifting cylinder is connected to the lifting platform so that the lifting platform can rise to the upper workstation or descend to the lower workstation. The upper slide is docked with the powder filling mechanism. When the lifting platform is at the upper workstation, the lifting platform realizes the connection between the upper slide and the upper belt conveyor. The third transfer mechanism is used to transfer the mold on the lifting platform to between the demoulding mechanism and the lower belt conveyor when the lifting platform is at the lower workstation.
7. The inductor powder filling and demoulding integrated machine according to claim 6, characterized in that: The inductor powder filling and demoulding integrated machine also includes a lower slide parallel to the lower belt conveyor, and the lower slide is located between the third transfer mechanism and the lower belt conveyor. The demoulding mechanism is provided with a first opening docking with the lower belt conveyor and a second opening docking with the lower slide. When the lifting platform is at the lower work station, the lifting platform docks with the lower slide.
8. The inductor powder filling and demoulding integrated machine according to claim 7, characterized in that: The demoulding mechanism includes a demoulding pin assembly, a demoulding station, a material receiving assembly, a transverse module and a pre-demolding separation assembly. The pre-demolding separation assembly is used to cooperate with the second transfer mechanism to realize the separation of the middle template and the middle mold slider. The demoulding pin assembly is located above the demoulding station, and the material receiving assembly is located below the demoulding station. The material receiving assembly includes an OK product receiving box and an NG product receiving box. The OK product receiving box and the NG product receiving box are installed side by side on the slider of the transverse module.
9. The inductor powder filling and demoulding integrated machine according to claim 6, characterized in that: The third transfer mechanism includes a third linear module, a rotating cylinder, a rotating rod and a third push block. The third linear module is parallel to the lower belt conveyor. The rotating cylinder is installed on the slider of the third linear module. The output end of the rotating cylinder is connected to the rotating rod. The third push block is installed on the rotating rod.
10. The inductor powder filling and demoulding integrated machine according to claim 1, characterized in that: The powder filling mechanism includes a powder feeding assembly, a powder filling station and an upper pressure cylinder, the upper pressure cylinder is located below the powder filling station and the output end of the upper pressure cylinder is connected to the powder filling station, and the powder feeding assembly is located above the powder filling station.
Citation Information
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