A rotary direction-dividing device

By designing a rotary directional device, utilizing a rotary directional flow channel and cylinder system, the problem of inconsistent direction of HSG products was solved, achieving efficient directional operation and reducing costs.

CN112027585BActive Publication Date: 2025-11-28FCI CONNECTORS DONGGUAN
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Patent Information

Application Number
CN202010779752.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2020-08-05
Publication Date
2025-11-28
Estimated Expiration
2040-08-05

AI Technical Summary

Technical Problem

When sorting HSG products, existing vibratory feeders have difficulty ensuring that the product orientation is consistent, resulting in low sorting efficiency, and additional sorting devices are needed.

Method used

A rotary direction-separating device was designed. By rotating the direction-separating channel and cylinder system by 180 degrees, combined with the sensor to detect the direction of HSG, the product can be accurately flipped and separated.

Benefits of technology

This improves the sorting efficiency of HSG products, ensures product orientation consistency, and reduces investment costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application provides a rotary distributing device, which comprises a frame, a conveying flow channel arranged on the frame, a rotary distributing mechanism arranged on one side of the frame, a rotary distributing flow channel arranged on the upper end of the conveying flow channel, and a rotary cylinder, a material supporting cylinder and a material blocking cylinder arranged on one side of the frame and matched with the rotary distributing flow channel. The application has the advantages of simple structure, high practicability, accurate HSG distributing operation and high distributing efficiency. The application realizes normal transmission of HSG through a transmission belt, detects whether the HSG is missing an angle through the missing angle detection, and realizes the 180-degree overturning of the missing angle HSG through the material supporting cylinder, the rotary cylinder and the material blocking cylinder, so as to realize the distributing action of the HSG. The application realizes the layout of the channel and the rotary distributing flow channel through the arrangement of the semicircular fixed support.
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Description

Technical Field

[0001] This invention relates to a vibratory feeder discharge direction-diverting device, and more particularly to a rotary direction-diverting device for HSG. Background Technology

[0002] A vibratory feeder is an auxiliary feeding device for automated assembly or processing machinery. It can feed various products in an orderly manner.

[0003] Arranged in order, these components are assembled into a complete product using automated assembly equipment, or processed by automated machining machinery. They are widely used in various industries such as electronics, hardware, plastics, watchmaking, batteries, food, connectors, medical devices, pharmaceuticals, toys, stationery, and daily necessities manufacturing. In addition to fulfilling the directional sorting of products, they can also be used for sorting, testing, counting, and packaging, making them a modern high-tech product.

[0004] However, vibratory feeders can generally only distinguish products with relatively obvious directional characteristics. For example, the material sorting efficiency is low for products with HSG shapes. After screening the HSG direction by vibratory feeder, it cannot be guaranteed that all HSGs coming out of the vibratory feeder have the same direction, and an additional direction sorting device is required. Summary of the Invention

[0005] To address the shortcomings of existing technologies, this invention provides a rotary directional separator. This device filters HSG flowing out in the opposite direction by rotating 180 degrees, ensuring that all HSG flows in the same direction in the channel. Moreover, the device structure further reduces investment costs.

[0006] The technical solution of the present invention is as follows: a rotary diverting device, including a frame and a conveying channel disposed on the frame. The diverting device further includes a rotary diverting mechanism disposed on one side of the frame. The rotary diverting mechanism includes a rotary diverting channel disposed at the upper end of the conveying channel, and a rotary cylinder, a material-supporting cylinder, and a material-blocking cylinder disposed on one side of the frame for cooperating with the rotary diverting channel.

[0007] Preferably, the conveying channel includes a channel support, a conveyor belt, and a drive motor. The channel support has corresponding transmission rollers at both ends. The conveyor belt is sleeved on the transmission rollers. The conveyor belt is also connected to the motor shaft of the drive motor located on one side of the frame. The conveyor belt is also connected to the support rollers located on both sides of the motor shaft on the frame.

[0008] Preferably, the rotating directional flow channel includes a semi-circular arc-shaped first fixed support and a second fixed support, with a semi-circular arc flow channel between the first fixed support and the second fixed support, so that the rotated product HSG can slide down along the semi-circular arc flow channel onto the conveying flow channel.

[0009] Preferably, the lower end of the first and second fixed supports is further provided with a channel, which is above the conveying belt and below the lower end of the semicircular arc flow channel.

[0010] Preferably, the rotating disc of the rotating cylinder is connected with a rotating spindle through a shaft coupling, and the rotating spindle is connected with the first fixed support through a bearing.

[0011] Preferably, the rotating spindle is further connected with the first fixed support through an L-shaped connecting piece, the L-shaped connecting piece is sleeved on the rotating spindle, and the rotating spindle can rotate in the L-shaped connecting piece.

[0012] Preferably, the material supporting cylinder is connected with the rotating spindle through a rotating frame, a material supporting rod is arranged on the piston rod of the material supporting cylinder, the material supporting rod passes through the first fixed support and extends to the feeding end of the semicircular arc flow channel, the product HSG is supported by the material supporting rod and rotated 180 degrees by the rotating spindle driver, so that the product HSG is turned over 180 degrees.

[0013] Preferably, the material blocking cylinder is arranged on the side wall of the first fixed support through a connecting piece, and the piston rod of the material blocking cylinder is further connected with a material blocking rod, the material blocking rod passes through the first fixed support and extends into the channel to block the product HSG.

[0014] Preferably, the device further comprises a material stopping cylinder arranged on the second fixed support, the front and back of the HSG are determined by the material stopping cylinder, the piston rod of the material stopping cylinder is telescopic and contacts the HSG in the telescopic process, and the front and back of the HSG are determined by the telescopic of the piston rod of the material stopping cylinder, that is, if the piston rod of the material stopping cylinder contacts the side wall of the HSG, the piston rod of the material stopping cylinder cannot be telescopic.

[0015] Preferably, the second fixed support is further provided with an HSG in-place inductor and an HSG angle defect inductor, the HSG in-place inductor detects whether the product HSG is in place, if yes, the HSG angle defect inductor detects whether the HSG has an angle defect, if no angle defect is sensed, the material blocking rod is controlled to retreat by the material blocking cylinder, the HSG directly flows out through the conveying belt, if an angle defect is sensed, the HSG is held by the material supporting rod of the material supporting cylinder and enters the rotating direction-dividing flow channel, the material supporting rod is rotated 180 degrees by the rotating spindle to flow out, so that the HSG is corrected.

[0016] Preferably, the second fixed support is further provided with an HSG front and back inductor for cooperating with the material blocking cylinder, if the HSG front and back inductor detects that the HSG is in the forward direction, the material blocking rod is controlled to retreat by the material blocking cylinder, and the product passes, if the HSG front and back inductor detects that the HSG is in the reverse direction, the material blocking rod is controlled to block the product by the material blocking cylinder.

[0017] Preferably, the flow channel support is further provided with an HSG material lack sensor, an HSG passing sensor and an HSG full material sensor.

[0018] The present application has the following advantages:

[0019] 1. The present application has simple structure and high practicability, and can accurately realize HSG direction operation with high direction efficiency.

[0020] 2. The present application realizes normal transmission of HSG through a transmission belt, and detects whether HSG is lack of angle through an angle detection device.

[0021] The angle detection device cooperates with a material supporting cylinder, a rotating cylinder and a material blocking cylinder to realize 180-degree overturning of the HSG lacking of angle, thereby realizing the direction operation of the HSG.

[0022] 3. The present application sets a semicircular fixing support, which not only realizes the layout of the channel, but also realizes the layout of the rotating direction flow channel. BRIEF DESCRIPTION OF DRAWINGS

[0023] Figure 1 It is a structural schematic diagram of the present application.

[0024] Figure 2 It is a structural schematic diagram of the present application after hiding the shell.

[0025] Figure 3 It is a structural schematic diagram of the conveying flow channel of the present application.

[0026] Figure 4 It is a structural schematic diagram of the rotating direction mechanism of the present application.

[0027] Figure 5 It is a structural schematic diagram of the rotating direction mechanism of the present application after hiding some components.

[0028] Figure 6 It is an enlarged structural schematic diagram of position A of the present application. Figure 5

[0029] In the figure, 1 is a rack, 2 is a conveying flow channel, 3 is a rotating direction mechanism,

[0030] 21 is a flow channel support, 22 is a transmission belt, 23 is a driving motor, and 24 is a supporting roller.

[0031] ​31-rotary cylinder, 32- supporting cylinder, 33- material blocking cylinder, 34- first fixed support, 35- second fixed support, 36- semicircular flow channel, 37- coupling, 38- rotary main shaft, 39- L-shaped connecting piece, 40- rotary frame, 41- supporting rod, 42- material blocking rod, 43- material stopping cylinder, 44- HSG in-place sensor, 45- HSG angle-lacking sensor, 46- HSG forward-reverse sensor, 47- HSG material-lacking sensor, 48- HSG passing sensor, 49- HSG full-material sensor. DETAILED DESCRIPTION

[0032] The specific embodiments of the present application are further described below with reference to the accompanying drawings:

[0033] As shown in Figure 1 and 2 , the present embodiment provides a rotary direction-dividing device, which comprises a frame 1 and a conveying flow channel 2 arranged on the frame 1. The conveying flow channel 2 of the present embodiment is used for conveying HSG products. A material vibrating disc is arranged at the feeding end of the conveying flow channel 2. The HSG is vibrated and divided in direction by the material vibrating disc and then enters the conveying flow channel 2 for conveying.

[0034] The direction-dividing device of the present embodiment further comprises a rotary direction-dividing mechanism 3 arranged on one side of the frame 1. The rotary direction-dividing mechanism 3 comprises a rotary direction-dividing flow channel arranged at the upper end of the conveying flow channel 2, a rotary cylinder 31, a supporting cylinder 32 and a material blocking cylinder 33 arranged on one side of the frame 1 for cooperating with the rotary direction-dividing flow channel, and an HSG angle-lacking sensor 45.

[0035] Preferably, as shown in Figure 3 , the conveying flow channel 2 of the present embodiment comprises a flow channel support 21, a transmission belt 22 and a driving motor 23. The flow channel support 21 is arranged on the frame 1 and driving rollers are arranged at both ends of the flow channel support 21. The transmission belt 22 is sleeved on the driving rollers. The driving motor 23 is arranged on the side wall of the frame 1. The transmission belt 22 is also sleeved on the motor shaft of the driving motor 23. Symmetrical supporting rollers 24 are arranged on the frame 1 at both sides of the motor shaft. The transmission belt 22 is connected with the supporting rollers 24. Meanwhile, the flow channel support 21 at both sides of the transmission belt 22 is provided with corresponding baffles.

[0036] Preferably, as shown in Figures 4-6 , the rotary direction-dividing flow channel of the present embodiment is fixed above the transmission belt 22. A corresponding passage is arranged between the rotary direction-dividing flow channel and the transmission belt 22.

[0037] In the embodiment, the rotating diversion flow channel comprises a first fixed support 34 and a second fixed support 35, and a semicircular arc flow channel 36 is arranged between the first fixed support 34 and the second fixed support 35. The product HSG after rotation can slide along the semicircular arc flow channel 36 to the conveying belt 22.

[0038] Preferably, in the embodiment, the lower end of the first fixed support 34 and the second fixed support 35 is further provided with a channel, and the channel is located above the conveying belt 22 and at the lower end of the semicircular arc flow channel 36. The HSG on the conveying belt 22 can be conveyed through the channel.

[0039] Preferably, the rotating disc of the rotating cylinder 31 is connected with a rotating main shaft 38 through a shaft coupling 37, the rotating main shaft 38 is connected with the first fixed support 34 through a bearing, so that the rotating main shaft can rotate around the first fixed support 34. An L-shaped connecting piece 39 is further sleeved on the rotating main shaft, and the other end of the L-shaped connecting piece 39 is connected with the first fixed support 34 through a screw.

[0040] Preferably, in the embodiment, the material supporting cylinder 32 is connected with the rotating main shaft 38 through a rotating frame 40, a material supporting rod 41 is arranged on the piston rod of the material supporting cylinder 32, and the material supporting rod 41 penetrates through the first fixed support 34 and extends to the feeding end of the semicircular arc flow channel 36. In the embodiment, the rotating frame 40 comprises a first connecting frame and a second connecting frame, the first connecting frame is arranged on the rotating main shaft 38, one end of the second connecting frame is connected with the first connecting frame, and the other end of the second connecting frame is sleeved on the material supporting rod 41. The rotating main shaft 38 is driven to rotate by the rotating cylinder 31, so as to drive the rotating frame 40 and the material supporting cylinder 32 to rotate by 180 degrees. In actual use, if the direction of the HSG is incorrect, the product HSG is lifted by the material supporting rod 41, and then is driven to rotate by 180 degrees by the rotating main shaft 40, so as to overturn the product HSG by 180 degrees, and then the product is slid to the conveying belt 22 on the other side through the semicircular arc flow channel 36.

[0041] Preferably, in the embodiment, the material supporting cylinder 32 is connected with the rotating main shaft 38 through a connecting piece arranged on the side wall of the first fixed support 34 on one side of the material supporting cylinder 32, and the piston rod of the material supporting cylinder 33 is connected with a material blocking rod 42, the material blocking rod 42 penetrates through the first fixed support 34 and extends to the channel, so as to block the product HSG.

[0042] Preferably, the device described in the embodiment further comprises a material stopping cylinder 43 arranged on the outer wall of the second fixed support 35, which is mainly used to determine the direction of the HSG. In actual use, the material stopping cylinder 43 determines the direction of the HSG by the extension and retraction of the piston rod, which contacts different positions of the HSG during the extension and retraction. If the piston rod of the material stopping cylinder 43 contacts the side wall of the HSG, the piston rod cannot be extended and retracted, which proves that the HSG is in reverse direction. If the piston rod of the material stopping cylinder 43 contacts the groove of the HSG, the piston rod can be normally extended and retracted, which proves that the HSG is in forward direction.

[0043] Preferably, the second fixed support 35 is further provided with an HSG in-place sensor 44 and an HSG angle defect sensor 45. The HSG in-place sensor 44 is used to detect whether the HSG is in place. If the HSG is in place, the HSG angle defect sensor 45 starts to work. The HSG angle defect sensor 45 detects whether the HSG has an angle defect. If no angle defect is detected, the material stopping cylinder 33 controls the material stopping rod 42 to retreat, so that the HSG is directly conveyed out from the conveying belt 22 through the passage. If an angle defect is detected, the HSG is held by the material holding rod 41 of the material holding cylinder 32 to enter the semicircular arc flow channel 36. The rotary cylinder 31 controls the rotary main shaft 38 to rotate 180 degrees, so as to control the material holding rod 41 to rotate 180 degrees, thereby turning the HSG by 180 degrees, so as to correct the HSG. Then the HSG slides down the semicircular arc flow channel 36 to the conveying belt 22 on the other side.

[0044] Preferably, the second fixed support 35 is further provided with an HSG direction sensor 46 for cooperating with the material stopping cylinder 33. If the HSG direction sensor 46 detects that the HSG is in forward direction, the material stopping cylinder 33 controls the material stopping rod 42 to retreat, so that the product passes through. If the HSG direction sensor 46 detects that the HSG is in reverse direction, the material stopping cylinder 33 controls the material stopping rod 42 to extend, so as to stop the product.

[0045] Preferably, the flow channel support 21 is further provided with an HSG material defect sensor 47, an HSG passing sensor 48 and an HSG full material sensor 49.

[0046] The above embodiments and descriptions are only illustrative of the principles and the best mode of the present application. Without departing from the spirit and scope of the present application, various changes and improvements can be made to the present application, which all fall within the scope of the present application.

Claims

1. A rotary deflector device, characterized by, The device comprises a frame, a conveying flow channel arranged on the frame, and a rotating distribution mechanism arranged on one side of the frame. The conveying flow channel comprises a flow channel support, a transmission belt, and a driving motor. The rotating distribution mechanism comprises a rotating distribution flow channel arranged on the upper end of the conveying flow channel, a rotating cylinder, a material supporting cylinder, and a material blocking cylinder arranged on one side of the frame. The rotating distribution flow channel comprises a semicircular first fixed support and a second fixed support. The first fixed support and the second fixed support are provided with a semicircular arc flow channel. The first fixed support and the second fixed support are further provided with a channel arranged above the transmission belt and at the lower end of the semicircular arc flow channel.

2. A rotary deflector according to claim 1, wherein: The rotating disc of the rotating cylinder is connected with the rotating main shaft through a shaft coupling. The rotating main shaft is connected with the first fixed support through a bearing. The material blocking cylinder is arranged on the side wall of the first fixed support through a connecting piece. The piston rod of the material blocking cylinder is connected with a material blocking rod. The material blocking rod passes through the first fixed support and extends into the channel. The rotating main shaft is further connected with the first fixed support through an L-shaped connecting piece. The L-shaped connecting piece is sleeved on the rotating main shaft, and the rotating main shaft can rotate in the L-shaped connecting piece.

Citation Information

Patent Citations

  • Rotary direction-splitting device

    CN212798447U

  • Apparatus for packing connector plates

    US6048165A