Discharging device for inductor shell
By designing the material guide and unloading mechanism, and combining it with negative pressure adsorption technology, the problem of vertical drop during the discharge of inductor housings was solved, achieving protective conveying of inductor housings, avoiding bumps and scratches, and improving product quality.
Patent Information
- Application Number
- CN202520102529.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-16
- Publication Date
- 2026-02-27
- Estimated Expiration
- 2035-01-16
AI Technical Summary
Existing inductor housing ejection devices are prone to causing damage and scratches to the metal housing when there is a large vertical drop, which affects product quality.
The system employs a combination of a guide component and a feeding mechanism, with a geared motor driving a rotating disk and an adsorption component. It utilizes negative pressure adsorption technology to reduce vertical drop, achieving horizontal conveying and protective feeding.
This effectively reduces the vertical drop of the inductor housing during the discharge process, preventing bumps and scratches and improving the mechanical protection of the product.
Smart Images

Figure CN223950071U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to inductance shell processing discharge technical field, and specifically relates to an inductance shell discharge device. BACKGROUND
[0002] The main functions of inductance shell include mechanical protection, electromagnetic shielding and protection against special environments. Specifically, it includes the following types:
[0003] Mechanical protection: Inductance shell can provide strong physical protection to prevent inductance from mechanical damage such as collision and pressure. Especially in high-load vibration environment, the shock resistance of the shell is particularly important.
[0004] Electromagnetic shielding: Metal shell can effectively shield external electromagnetic interference and reduce measurement error.
[0005] Protection against special environments: The shell can also protect the inductance from corrosion, high temperature, low temperature and other special environments to prolong the service life of the inductance.
[0006] For example, in aerospace, nuclear industry and other occasions, high temperature, high pressure and strong corrosive medium are required, so corresponding metal materials are required; The volume of inductance shell is small, and the discharge is generally carried out by using vibrating screen structure, but the current discharge vibrating screen directly discharges the inductance shell to the external receiving barrel after sorting, and due to the material of inductance shell including metal material, the above discharge method is prone to deformation and scratching due to the large drop. UTILITY MODEL CONTENT
[0007] In view of the problems existing in the prior art, the purpose of the utility model is to provide an inductance shell discharge device which can reduce the vertical drop and protect the shell.
[0008] To solve the above background technical problems, the utility model adopts the following technical scheme.
[0009] An inductance shell discharge device, comprising a bottom plate, a vibrating disc is fixedly connected to the top of the bottom plate, a sieve disc is installed on the vibrating disc, a discharge slot is formed in the upper end of the sieve disc, a support is fixedly installed on the top of the bottom plate, a guide piece is fixedly installed on the top of the support, a discharging mechanism is installed on the support and located below the guide piece for receiving material, and a discharge belt is fixedly installed on one side of the support.
[0010] As a further description of the above technical solution: the material guiding piece comprises a fixing frame, a material falling port and a conveying belt, one end of the fixing frame is fixedly connected to the outside of the material screening disc, the conveying belt is installed on the fixing frame and the right end is in butt joint with the discharge chute, the material falling port is arranged on the fixing frame and is located at the left end side of the conveying belt.
[0011] As a further description of the above technical solution: the discharging mechanism comprises a speed reducer, a rotating disc, annularly distributed suction accessories and a suction connecting mechanism, the output end of the speed reducer is fixedly connected with the rotating disc through a shaft coupling, the suction accessories are annularly fixed to the outside of the rotating disc, the suction connecting mechanism is movably installed in the inside of the rotating disc and is in communication and cooperation with part of the suction accessories, the outside of the rotating disc is provided with annularly distributed material holes, and the suction accessories are in communication and cooperation with the material holes.
[0012] As a further description of the above technical solution: the suction accessories comprise a suction pipe and a rubber porous pad, one end of the suction pipe is inserted into the outside of the rotating disc, the end of the suction pipe located in the inside of the rotating disc is in communication and cooperation with the suction connecting mechanism, the other end of the suction pipe extends to the inside of the material hole, the end of the suction pipe located in the inside of the material hole is fixedly connected with the rubber porous pad, and the outside of the rubber porous pad is fixedly connected to the inside of the material hole.
[0013] As a further description of the above technical solution: a cavity is arranged in the inside of the rotating disc, and the end of the suction pipe away from the rubber porous pad is in communication with the inside of the cavity.
[0014] As a further description of the above technical solution: the suction connecting mechanism comprises a connecting pipe, a rotating disc and an annular mesh cover, one end of the connecting pipe is fixedly connected with the rotating disc, one side of the annular mesh cover is fixedly connected with the side surface of the rotating disc, the outside of the rotating disc is rotatably connected to the inside of the rotating disc, the right end of the connecting pipe extends to the right side of the rotating disc, and the rotating disc and the annular mesh cover are rotatably connected to the inside of the cavity, and the outside of the annular mesh cover is fixedly connected with a semicircular blocking ring.
[0015] Compared with the prior art, the utility model has the advantages that:
[0016] The device has the advantages of reducing the vertical drop of the metal material inductance shell during discharging, discharging and protecting the shell by using the material guiding piece and the discharging mechanism. BRIEF DESCRIPTION OF DRAWINGS
[0017] Figure 1 It is a front view of the sectional structure of the utility model;
[0018] Figure 2 It is a front view of the sectional structure of the utility model; Figure 1 It is an enlarged schematic view of the A part of the utility model;
[0019] Figure 3 It is part side view structure schematic diagram of the utility model;
[0020] Figure 4 It is part three-dimensional structure schematic diagram of the utility model.
[0021] Mark explanation in the drawing:
[0022] 1, bottom plate; 2, sieve tray; 3, discharge slot; 4, support; 5, material guiding piece; 51, fixing frame; 52, blanking opening; 53, conveying belt; 6, blanking mechanism; 61, speed reducer motor; 62, rotating disc; 621, cavity; 622, semicircular blocking ring; 63, suction accessory; 631, suction pipe; 632, rubber porous pad; 64, air extraction connecting mechanism; 641, connecting pipe; 642, rotating disc; 643, annular mesh enclosure; 65, material hole; 7, discharge belt; 8, vibrating disc. DETAILED DESCRIPTION
[0023] The technical scheme in the utility model embodiment will be clearly and completely described below with the drawings in the utility model embodiment;
[0024] Please refer to Figures 1 to 4 In the utility model, a kind of inductance shell discharge device, including bottom plate 1, the top of bottom plate 1 is fixedly connected with vibrating disc 8, vibrating disc 8 is installed with sieve tray 2, and the upper end of sieve tray 2 is equipped with discharge slot 3, and the top of bottom plate 1 is fixedly installed with support 4, and the top of support 4 is fixedly installed with material guiding piece 5, and support 4 is installed with blanking mechanism 6, and blanking mechanism 6 is below material guiding piece 5 for receiving material, and the side of support 4 is fixedly installed with discharge belt 7.
[0025] In the utility model, by bottom plate 1 as device support, first start vibrating disc 8 to drive sieve tray 2 to run and sort inductance shell in it to be transported outward, inductance shell is transported to material guiding piece 5 by discharge slot 3, material guiding piece 5 horizontally transports inductance shell a distance, then makes it fall to the blanking mechanism 6 on bottom, and blanking mechanism 6 adsorbs column of inductance shell, and starts blanking mechanism 6 rotation, and inductance shell is rotated downward one hundred and eighty degrees finally and is finally dropped into horizontal discharge belt 7 to realize blanking, so as to realize that device has when inductance shell is discharged, for the inductance shell of metal material conveying reduces vertical drop, carries out blanking, realizes the protection side advantage of shell, solves the general discharge of vibrating sieve tray structure in prior art, but the inductance shell of current discharge vibrating sieve tray is generally sorted and discharged to external receiving barrel, and because the material of inductance shell includes metal material, and above-mentioned discharge mode, because drop is larger, it is prone to cause deformation and scratch before each other due to collision.
[0026] Please refer to Figure 2Wherein: the material guide 5 includes fixed frame 51, blanking hole 52 and transmission belt 53, one end of the fixed frame 51 is fixedly connected to the outside of the screening disc 2, the transmission belt 53 is installed to the fixed frame 51 and the right end is in butt joint with the discharge chute 3, the blanking hole 52 is opened in the fixed frame 51, and the blanking hole 52 is located at the left end side of the transmission belt 53.
[0027] In the utility model, the transmission belt 53 on the fixed frame 51 is started to run, the inductance shell discharged from the discharge chute 3 is horizontally conveyed, and the inductance shell is moved to the blanking hole 52 and falls down vertically into the upper unloading mechanism 6.
[0028] Please refer to Figure 1 、 Figure 3 and Figure 4 Wherein: the unloading mechanism 6 includes a speed reducer motor 61, a rotating disc 62, an annularly distributed suction accessory 63 and a suction connecting mechanism 64, the output end of the speed reducer motor 61 is fixedly connected with the rotating disc 62 through a shaft coupling, the suction accessory 63 is annularly fixed to the outside of the rotating disc 62, the suction connecting mechanism 64 is movably installed to the inside of the rotating disc 62 and is in communication and cooperation with part of the suction accessory 63, and the outside of the rotating disc 62 is provided with annularly distributed material holes 65, and the suction accessory 63 is in communication and cooperation with the material holes 65.
[0029] In the utility model, the rotating disc 62 is driven to rotate by starting the speed reducer motor 61, whenever the material hole 62 on the rotating disc 62 rotates to be directly below the blanking hole 5, the inductance shell falling down falls into the inside of the blanking hole 5, an external negative pressure mechanism is connected through the suction connecting mechanism 64, negative pressure is extracted from the suction accessory 63, the inductance shell in the inside of the material hole 62 is adsorbed and fixed, then the inductance shell rotates one hundred and eighty degrees with the rotating disc 62 to the lowest part of the rotating disc 62, at this time, the negative pressure is released, and the inductance shell falls into the horizontal discharge belt 7 with the smallest drop.
[0030] Please refer to Figure 2 and Figure 3 Wherein: the suction accessory 63 includes a suction pipe 631 and a rubber porous pad 632, one end of the suction pipe 631 is inserted into the outside of the rotating disc 62, one end of the suction pipe 631 in the inside of the rotating disc 62 is in communication and cooperation with the suction connecting mechanism 64, the other end of the suction pipe 631 extends to the inside of the material hole 65, one end of the suction pipe 631 in the inside of the material hole 65 is in communication and fixed with the rubber porous pad 632, and the outside of the rubber porous pad 632 is fixedly connected to the inside of the material hole 65.
[0031] In the utility model, an external negative pressure mechanism is connected through the suction connecting mechanism 64, negative pressure is extracted from the suction pipe 631, the rubber porous pad 632 adsorbs and fixes the inductance shell falling down thereon, and the inductance shell stably rotates with the rotating disc 62.
[0032] Please refer toFigure 3 Wherein: the inside of the rotating disc 62 is provided with a cavity 621, and the end of the adsorption pipe 631 away from the rubber porous pad 632 is communicated with the inside of the cavity 621.
[0033] In the utility model, the inside of the rotating disc 62 is subjected to negative pressure by the air extraction connecting mechanism 64, so that a negative pressure area is formed, then the adsorption pipe 631 generates suction force through the negative pressure cavity 621, so that the inductance shell falling on the rubber porous pad 632 is adsorbed and tightly attached to the rubber porous pad 632, thereby ensuring adsorption stability.
[0034] Please refer to Figure 1 and Figure 3 Wherein: the air extraction connecting mechanism 64 comprises a connecting pipe 641, a rotating disc 642 and an annular mesh enclosure 643, one end of the connecting pipe 641 is fixedly connected with the rotating disc 642, one side of the annular mesh enclosure 643 is fixedly connected with the side surface of the rotating disc 642, the outer side of the rotating disc 642 is rotatably connected to the inside of the rotating disc 62, the right end of the connecting pipe 641 extends to the right side of the rotating disc 642, the rotating disc 642 and the annular mesh enclosure 643 are rotatably connected to the inside of the cavity 621, and the outer side of the annular mesh enclosure 643 is fixedly connected with a semicircular plugging ring 622.
[0035] In the utility model, the connecting pipe 641 is connected with the external negative pressure mechanism, the rotating disc 642 and the annular mesh enclosure 643 are used to extract air from the inside of the cavity 621, so that negative pressure is formed, and the semicircular plugging ring 622 is always fixedly closed with one side of the annular mesh enclosure 643, so that the connecting end of the adsorption pipe 631 on one side of the semicircular plugging ring 622 and the cavity 621 is closed when the rotating disc 62 rotates, so that the suction force is lost, and material falling is realized.
[0036] The above merely describes the preferred specific implementation of the utility model; however, the protection scope of the utility model is not limited to this. Any skilled person in the art can make equivalent replacement or change according to the technical scheme and improvement concept of the utility model within the technical range disclosed by the utility model, which should be covered in the protection scope of the utility model.
Claims
1. An inductor housing outfeed device comprising a base plate (1), characterised in that: The top of the bottom plate (1) is fixedly connected with a vibrating disc (8), a screening disc (2) is installed on the vibrating disc (8), a discharging groove (3) is formed in the upper end of the screening disc (2), a support (4) is fixedly installed on the top of the bottom plate (1), a material guiding piece (5) is fixedly installed on the top of the support (4), a discharging mechanism (6) is installed on the support (4) and located below the material guiding piece (5) for receiving materials, and a discharging belt (7) is fixedly installed on one side of the support (4).
2. An inductor case discharge apparatus according to claim 1, characterized by: The material guiding piece (5) comprises a fixing frame (51), a discharging port (52) and a conveying belt (53), one end of the fixing frame (51) is fixedly connected to the outer side of the screening disc (2), the conveying belt (53) is installed on the fixing frame (51) and the right end thereof is in abutting engagement with the discharging groove (3), and the discharging port (52) is formed in the fixing frame (51) and located on the left end side of the conveying belt (53).
3. The inductor case outfeed apparatus of claim 1, wherein: The discharging mechanism (6) comprises a speed reducer (61), a rotating disc (62), annularly distributed suction accessories (63) and an air extraction connecting mechanism (64), the output end of the speed reducer (61) is fixedly connected with the rotating disc (62) through a shaft coupling, the suction accessories (63) are annularly fixed to the outer side of the rotating disc (62), the air extraction connecting mechanism (64) is movably installed in the interior of the rotating disc (62) and in communication with part of the suction accessories (63), and the outer side of the rotating disc (62) is provided with annularly distributed material holes (65) in communication with the suction accessories (63).
4. A device for dispensing inductance housings according to claim 3, characterized in that: The suction accessory (63) comprises a suction pipe (631) and a rubber porous pad (632), one end of the suction pipe (631) is inserted into the outer side of the rotating disc (62), the end of the suction pipe (631) located in the interior of the rotating disc (62) is in communication with the air extraction connecting mechanism (64), the other end of the suction pipe (631) extends into the interior of the material hole (65), the end of the suction pipe (631) located in the interior of the material hole (65) is fixedly connected with the rubber porous pad (632), and the outer side of the rubber porous pad (632) is fixedly connected to the interior of the material hole (65).
5. An inductor case discharge apparatus according to claim 4, wherein: The interior of the rotating disc (62) is provided with a cavity (621) in communication with the end of the suction pipe (631) away from the rubber porous pad (632).
6. A device for dispensing inductance housings according to claim 3, characterized in that: The air extraction connecting mechanism (64) comprises a connecting pipe (641), a rotating disc (642) and an annular mesh cover (643), one end of the connecting pipe (641) is fixedly connected with the rotating disc (642), one side of the annular mesh cover (643) is fixedly connected with the side surface of the rotating disc (642), the outer side of the rotating disc (642) is rotatably connected to the interior of the rotating disc (62), the right end of the connecting pipe (641) extends to the right side of the rotating disc (642), and the rotating disc (642) and the annular mesh cover (643) are rotatably connected to the interior of the cavity (621), and the outer side of the annular mesh cover (643) is fixedly connected with a semicircular blocking ring (622).