Conveying device for optical filter switcher production

By designing a uniform loading mechanism and a circulating centering mechanism in the conveying device for filter switch production, the nesting rotation of the spindle and synchronization wheel is used to solve the problems of inconvenient loading and unstable centering conveying in the prior art, and a stable and convenient loading and centering conveying effect is achieved.

CN120039635AInactive Publication Date: 2025-05-27GANZHOU AOHAINA PHOTOELECTRIC CO LTD
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Patent Information

Application Number
CN202510525867.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-25
Publication Date
2025-05-27
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing conveyor device for the production of filter switches is not convenient for effective loading and affecting centralized conveying, and is not convenient for alternate loading.

Method used

A conveying device including a uniform feeding mechanism and a circulating centering mechanism is designed. Through the nesting rotation of the spindle and the synchronization wheel, the movement of the loading rod and the extrusion plate is controlled to realize the linkage loading, limiting and alternate discharge.

Benefits of technology

The filter switch is stable and centralized conveying, which improves the convenience and stability of loading and reduces limit damage to the product.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a conveying device for optical filter switcher production, and belongs to the technical field of optical filter switcher production conveying devices.The conveying device is provided with a conveying frame capable of achieving constant-speed feeding, a conveying belt is rotationally arranged on the inner surface of the conveying frame, and a switcher body is conveyed on the upper surface of the conveying belt; comprising a feeding frame which is installed on the left rear side of the conveying frame, a main shaft is rotationally arranged on the rear side of the outer surface of the feeding frame, and a main synchronizing wheel is nested in the outer surface of the main shaft. According to the conveying device for optical filter switcher production, the main shaft used for main driving is arranged, a feeding rod on a feeding frame can be controlled to continuously move left and right in a reciprocating mode, an adsorption part is controlled to feed an optical filter switcher, and a first synchronous belt and a second synchronous belt are controlled to rotate through a main synchronous wheel on the main shaft; therefore, the extrusion plate is adjusted to conduct continuous reciprocating elastic extrusion centering, the first alternating rod and the second alternating rod on the extrusion piece are controlled to move alternately, and the conveying frame is controlled to conduct constant-speed conveying work.
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Description

Technical Field

[0001] The present invention relates to the technical field of optical filter switch production conveying devices, and in particular to a conveying device for optical filter switch production. Background Art

[0002] In the production of filter switches, it is necessary to use a conveying device to convey the initially produced filter switches, and cooperate with the conveying device for the next processing, so as to reduce the use of personnel through automatic loading, avoid excessive misalignment during loading, and affect the center limit. However, during use, it is inconvenient to control the convenience of loading, and it affects the stability of the filter switcher transportation.

[0003] In order to overcome the above-mentioned defects, the prior art (Chinese patent application with application number CN202022083962.1 and application date 20210415) provides a dual-filter switch production and conveying device, which can place the dual-filter switch in the middle of the conveyor belt through the action of two correction plates, so that the dual-filter switch can be better protected, and when spot-checking the dual-filter switch, the spot-checked dual-filter switch can be placed in the placement groove on the top of the placement plate, so as to avoid the dual-filter switch from falling to the ground and causing damage due to unstable placement on the placement plate; and the prior art (Chinese patent application with application number CN201821494144.7 and application date 2018-09-13) provides a circuit The inlet and outlet extension device of the plate conveyor belt is connected to the support plate of the original conveyor belt through a fixed plate. The first mounting hole on the support plate was originally a sensor seat. After the fixing plate is installed, the fixing plate uses the first mounting hole and the second mounting hole to fix the extension plate and the support plate. The fixing plate adjusts the tightening screws and uses the positioning plate as a reference plane to make the extension plate and the support plate in the same plane for easy alignment. Then the extended conveyor belt is installed, and the sensor seat is moved outward and installed on the extension plate to meet the sensing requirements of the circuit board in and out. Although the existing technology can complete the transportation, it is not convenient to effectively load the stacked filter switchers during work, and it affects the centering transportation of the filter switcher, and it is not convenient to alternately load the filter switcher during processing.

[0004] In view of the above problems, it is urgent to carry out innovative design based on the original conveying device for filter switch production. Summary of the invention

[0005] The object of the present invention is to provide a conveying device for the production of filter switches to solve the problems raised in the above-mentioned background technology that it is inconvenient to effectively load and use the stacked filter switches, which affects the central transportation of the filter switches and is inconvenient to alternately load and use the filter switches during processing.

[0006] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: a conveying device for filter switcher production, provided with a conveying frame for uniform speed feeding, and a conveyor belt is rotated on the inner surface of the conveying frame, and a switcher body is conveyed on the upper surface of the conveyor belt; including: a feeding frame, installed on the left rear side of the conveying frame, and a main shaft is rotated on the rear side of the outer surface of the feeding frame, and a main synchronous wheel is embedded on the outer surface of the main shaft, and a turntable is installed on the outer front end of the main shaft, and the turntable is provided with a uniform speed feeding mechanism; a synchronous belt 1 is rotated on the inner side of the inner surface of the main synchronous wheel, and a synchronous belt 2 is rotated on the outer side of the inner surface of the main synchronous wheel, and a secondary synchronous wheel 1 is rotated on the lower side of the synchronous belt 1, and a bevel gear set is rotated through the shaft of the secondary synchronous wheel 1, and a secondary shaft is rotated on the upper surface of the bevel gear set, and a circulating centering mechanism is provided on the secondary shaft.

[0007] Preferably, the loading rack and the conveying rack form an integrated structure, and the loading rack forms a rotating structure through the main shaft and the turntable, and the main shaft and the main synchronous wheel form a nested rotating structure.

[0008] Through the above structure, when in use, the main synchronous wheel nested in the main shaft is used to control multiple groups of functional structures to form linked loading, limiting and alternating discharging.

[0009] Preferably, the uniform speed feeding mechanism includes a connecting rod 1 assembled by an eccentric rotation of the turntable, and the outer surface of the connecting rod 1 is rotatably connected to a rack 1 on the left side, and the rack 1 is limitedly slid on the rear side of the inner surface of the feeding rack, and the upper surface of the rack 1 is meshingly connected to a spur gear, and the spur gear is installed with a connecting rod 2 through a shaft.

[0010] Through the above structure, the rack can be effectively used to control the connecting rod 2 to rotate continuously and alternately left and right, and the structure on the connecting rod 2 can be controlled for feeding.

[0011] Preferably, the other end of the inner surface of the connecting rod 2 is axially connected to a feeding rod, and the rear side of the outer surface of the feeding rod is vertically slidably connected to a slider, and the rear side of the inner surface of the slider is transversely slidably connected to a slide rail, and the slide rail is installed on the front side of the inner surface of the feeding rack, and at the same time, a grabbing piece is nested and installed on the inner surface of the feeding rod, and a connecting plate is installed on the lower surface of the grabbing piece, and an adsorption piece is installed at the corner of the inner surface of the connecting plate.

[0012] Through the above structure, the feeding rod on the second connecting rod can be effectively controlled to move stably left and right repeatedly during use, so as to control the feeding rod to feed stably.

[0013] Preferably, the turntable forms a circular linear moving structure through connecting rod 1 and rack 1, and rack 1 and the feeding frame form a limited sliding structure, and rack 1 and connecting rod 2 form an engaging rotation structure through a spur gear, while connecting rod 2 and the feeding rod form a rotating structure, and the feeding rod and the slider form a vertical sliding structure, and the slider forms a horizontal sliding structure with the feeding frame through a slide rail, while the feeding rod and the grabbing piece form a built-in nested structure.

[0014] Through the above structure, when in use, the rack one, the connecting rod two and the feeding rod can be effectively controlled to form continuous control, and the feeding rod can be controlled to feed stably.

[0015] Preferably, the main synchronous wheel forms a rotating structure with the synchronous belt 1 and the synchronous belt 2, and the synchronous belt 1 forms a meshing transmission structure with the secondary shaft through the auxiliary synchronous wheel 1 and the bevel gear set.

[0016] Through the above structure, it is convenient to effectively control the synchronous belt 1 and the synchronous belt 2 to form a linked rotation during use, thereby controlling the secondary shaft for subsequent linked rotation.

[0017] Preferably, the circulating centering mechanism includes a toothed gear which is rotatably connected to the secondary shaft by a belt, and the toothed gear shaft is rotatably connected to the lower side of the inner surface of the conveying frame, and the outer surface of the toothed gear is meshingly connected with rack 2, and rack 2 is limitedly slid on the inner surface of the conveying frame, and a push plate is installed on the outer surface of rack 2, and a return spring 1 is elastically connected between the push plate and the conveying frame.

[0018] Through the above structure, when in use, the belt is used to link the rotation of the toothless gear, and through the cooperation of the toothless gear, rack 2 and the reset spring, the push plate on rack 2 is controlled to disengage after being centered and reset for use.

[0019] Preferably, the outer surface of the push plate is connected to a telescopic component, and a return spring is nested on the outside of the telescopic component, and the other end of the telescopic component is connected to an extrusion plate, and the extrusion plate passes through the side wall of the conveying frame, and the extrusion spring is nested inside the telescopic component.

[0020] With the above structure, the extrusion plate can be controlled to be elastically centered through the elastically adjustable telescopic component during use, thereby avoiding excessive extrusion damage to the filter switch.

[0021] Preferably, the secondary shaft forms a meshing structure with the toothless gear through a belt, and the toothless gear forms a meshing structure with rack 2, and rack 2 is set at equal angles with respect to the center axis of the toothless gear, and rack 2 and the push plate form an integrated structure, and the push plate forms an elastic structure with the conveying frame through a return spring 1, and the push plate forms an elastic telescopic structure with the extrusion plate through a telescopic assembly and an extrusion spring, and the return spring 1 and the telescopic assembly form a nested structure.

[0022] Through the above structure, the linkage coordination of the rotation control can be improved during use, and the stability of the centering adjustment of the extrusion plate can be controlled through the coordination of the rotation and meshing structure and the elastic structure.

[0023] Preferably, the lower side of the inner surface of the synchronous belt 2 is rotatably connected to the auxiliary synchronous wheel 2, and the inner surface axis of the auxiliary synchronous wheel 2 is rotatably connected to the extrusion piece, and the outer surface of the extrusion piece is fitted with a ball roller, and at the same time, the outer surface of the ball roller is nested and connected to the alternating rod 1 and the alternating rod 2, and the alternating rod 2 is limited and slid on the side wall of the conveying frame, and the outer surfaces of the alternating rod 1 and the alternating rod 2 are both installed with positioning plates, and a return spring 2 is elastically connected between the positioning plate and the conveying frame, and the return spring 2 is nested in the outer surfaces of the alternating rod 1 and the alternating rod 2; the synchronous belt 2 forms a rotating structure with the extrusion piece through the auxiliary synchronous wheel 2, and the outer surface front side of the extrusion piece is an inclined structure, and the outer surface front side of the extrusion piece is in point contact with the outer surface rear side of the ball roller, and at the same time, the ball rollers form a nested rolling structure with the alternating rod 1 and the alternating rod 2, and the alternating rod 1 and the alternating rod 2 form an elastic telescopic structure with the conveying frame through the positioning plate and the return spring 2, and the outer surface ends of the alternating rod 1 and the alternating rod 2 are in an inclined structure.

[0024] Through the above structure, when in use, it is convenient to effectively alternately control the alternating rod 1 and the alternating rod 2 through linkage rotation to form independent loading use for the filter switch body, thereby improving the loading stability.

[0025] Compared with the prior art, the present invention has the following beneficial effects: 1. The conveying device for the production of the filter switcher is provided with a main shaft for main driving, which can control the loading rod on the loading rack to move back and forth continuously, control the adsorbent to load the filter switcher, and control the rotation of the synchronous belt 1 and the synchronous belt 2 respectively through the main synchronous wheel on the main shaft, so as to adjust the extrusion plate to perform continuous reciprocating elastic extrusion to the center, and control the alternating rod 1 and the alternating rod 2 on the extrusion piece to move alternately, so as to control the uniform speed conveying of the conveying rack.

[0026] 2. The conveying device for the production of the filter switcher is provided with a uniform speed feeding mechanism. Through the turntable installed on the main shaft, the connecting rod is controlled to rotate and adjust the rack to move back and forth in a straight line, thereby adjusting the feeding rod controlled by the spur gear to move back and forth left and right, and cooperate with the adsorption part on the grabbing part to adsorb and feed the product.

[0027] 3. The conveying device for the production of the filter switcher is provided with a circulating centering mechanism, which effectively cooperates with the bevel gear set through the use of the auxiliary synchronous wheel 1 assembled with the synchronous belt 1 to control the rotation of the belt on the secondary shaft, thereby adjusting the toothless gear to rotate continuously; further, through the continuous rotation of the toothless gear, the push plate and the reset spring 1 installed on the rack 2 are coordinated to control the push plate to be continuously centered and expanded, and automatically reset after centering, and the telescopic component with the reset spring 2 is assembled with the push plate to effectively control the extrusion plate to form elastic centering, thereby reducing the extrusion damage to the filter switcher; further, through the simultaneous rotation of the synchronous belt 2, the extrusion piece is controlled to rotate continuously, the alternating rod 1 and the alternating rod 2 are controlled to alternately block the filter switcher, and the filter switcher is stably and continuously conveyed for other processing, and the use of balls reduces the wear of the extrusion piece and the alternating rod 1 and the alternating rod 2. BRIEF DESCRIPTION OF THE DRAWINGS

[0028] Figure 1 It is a schematic diagram of the three-dimensional structure of the conveying frame of the present invention; Figure 2 It is a schematic diagram of a partially cutaway three-dimensional structure of the conveying frame of the present invention; Figure 3 It is a schematic diagram of a partial left-view stereoscopic structure of a loading rack of the present invention; Figure 4 It is a schematic diagram of a partial cross-sectional three-dimensional structure of a loading rack of the present invention; Figure 5 It is a schematic diagram of the three-dimensional structure of the push plate of the present invention; Figure 6 It is a schematic diagram of a partially cutaway three-dimensional structure of an extruded plate of the present invention; Figure 7 It is a schematic diagram of a half-section three-dimensional structure of an extruded part of the present invention.

[0029] In the figure: 1. conveyor frame; 2. conveyor belt; 3. switch body; 4. loading frame; 5. main shaft; 6. main synchronous wheel; 7. turntable; 8. connecting rod one; 9. rack one; 10. spur gear; 11. connecting rod two; 12. loading rod; 13. slider; 14. slide rail; 15. grabber; 16. connecting plate; 17. adsorption part; 18. synchronous belt one; 19. auxiliary synchronous wheel one; 20. bevel gear set; 21. secondary shaft; 22. toothless gear; 23. rack two; 24. push plate; 25. reset spring one; 26. extrusion plate; 27. telescopic component; 28. extrusion spring; 29. ​​synchronous belt two; 30. auxiliary synchronous wheel two; 31. extrusion piece; 32. ball; 33. alternating rod one; 34. positioning plate; 35. reset spring two; 36. alternating rod two. DETAILED DESCRIPTION

[0030] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. 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 creative work are within the scope of protection of the present invention.

[0031] See also Figure 1-Figure 7 The present invention provides a technical solution: a conveying device for producing a filter switcher, which is provided with a conveying frame 1 for uniformly loading materials, and a conveying belt 2 is rotated on the inner surface of the conveying frame 1, and a switcher body 3 is conveyed on the upper surface of the conveying belt 2.

[0032] Embodiment 1: Figure 1-Figure 4 The technical scheme shown in the invention provides the following technical scheme: a conveying device for filter switcher production, disclosed: comprising: a loading rack 4, installed on the left rear side of the conveying rack 1, and a main shaft 5 is rotatably provided on the rear side of the outer surface of the loading rack 4, and a main synchronous wheel 6 is nested on the outer surface of the main shaft 5, and a turntable 7 is installed on the outer front end of the main shaft 5, and the turntable 7 is provided with a uniform speed loading mechanism; the loading rack 4 and the conveying rack 1 form an integrated structure, and the loading rack 4 forms a rotating structure with the turntable 7 through the main shaft 5, and the main shaft 5 and the main synchronous wheel 6 form a nested rotating structure; the uniform speed loading mechanism includes a connecting rod 18 assembled by the turntable 7 through eccentric rotation, and a rack 19 is rotatably connected to the left side of the outer surface of the connecting rod 18, and the rack 19 is limitedly slid on the rear side of the inner surface of the loading rack 4, and the upper surface of the rack 19 is meshedly connected with a spur gear 10, and the spur gear 10 is installed with a connecting rod 2 11 through a shaft; the inner surface of the connecting rod 2 11 is also A feeding rod 12 is rotatably connected to one end of the shaft, and a slider 13 is vertically slidably connected to the rear side of the outer surface of the feeding rod 12, and a slide rail 14 is transversely slidably connected to the rear side of the inner surface of the slider 13, and the slide rail 14 is installed on the front side of the inner surface of the feeding rack 4, and a grabbing piece 15 is nested and installed on the inner surface of the feeding rod 12, and a connecting plate 16 is installed on the lower surface of the grabbing piece 15, and an adsorption piece 17 is installed at the corner of the inner surface of the connecting plate 16; the turntable 7 forms a circular linear moving structure with the connecting rod 1 8 and the rack 1 9 through the connecting rod 1 8, and the rack 1 9 and the feeding rack 4 form a limited sliding structure, and the rack 1 9 and the connecting rod 2 11 form an engaging rotating structure through the spur gear 10, and the connecting rod 2 11 and the feeding rod 12 form a rotating structure, and the feeding rod 12 and the slider 13 form a vertical sliding structure, and the slider 13 forms a transverse sliding structure with the feeding rack 4 through the slide rail 14, and the feeding rod 12 and the grabbing piece 15 form a built-in nested structure.

[0033] When in use, the motor assembled on the rear side of the conveyor frame 1 is started to control the conveyor belt 2 to rotate, and the conveyor belt 2 is used to feed the switch body 3, and the servo motor assembled on the loading rack 4 installed on the conveyor frame 1 is controlled to control the main shaft 5 to rotate, and at the same time drive the main synchronous wheel 6 and the turntable 7 to rotate, and when the turntable 7 is working, it drives the rack 9 through the installed eccentric control connecting rod 8 to form a circular linear movement on the loading rack 4, and through the sliding of the rack 9, the meshing control spur gear 10 is replaced by clockwise and counterclockwise rotation, thereby controlling the spur gear The connecting rod 11 installed at 10 forms an axial rotation on the loading rack 4, and when the connecting rod 11 rotates, it will drive the loading rod 12 to move, and the loading rod 12 cooperates with the sliding assembled slider 13 and the sliding rail 14 sliding on the rear side of the slider 13 to control the loading rod 12 to slide in a limited position, thereby controlling the loading rod 12 to cooperate with the installed grabbing piece 15, and the adsorption piece 17 installed on the connecting plate 16 assembled with the grabbing piece 15 to be sucked onto the switcher body 3, and then slide upward and slide horizontally in a limited position, so as to effectively transport the switcher body 3 to the conveyor belt 2 and form a stable loading use.

[0034] Embodiment 2: Figure 1 , Figure 2 , Figure 5 and Figure 6The technical solution shown in the embodiment further discloses a synchronous belt 18 controlling the centering and automatic reset of the extrusion plate 26 on the basis of the embodiment 1, and the specific contents are as follows: the synchronous belt 18 rotates on the inner side of the inner surface of the main synchronous wheel 6, and the synchronous belt 29 rotates on the outer side of the inner surface of the main synchronous wheel 6, and the lower side of the synchronous belt 18 rotates with the auxiliary synchronous wheel 19, and the auxiliary synchronous wheel 19 rotates with the bevel gear set 20 through the shaft, and the upper surface of the bevel gear set 20 rotates with the secondary shaft 21, The secondary shaft 21 is provided with a circulating centering mechanism; the main synchronous wheel 6 forms a rotating structure with the synchronous belt 18 and the synchronous belt 29, and the synchronous belt 18 forms a meshing transmission structure with the secondary shaft 21 through the secondary synchronous wheel 19 and the bevel gear set 20; the circulating centering mechanism includes a toothless gear 22 that is rotatably connected to the secondary shaft 21 through a belt, and the toothless gear 22 is rotatably connected to the lower side of the inner surface of the conveying frame 1, and the outer surface of the toothless gear 22 is meshed with a rack 23, and the rack 23 is limited It slides on the inner surface of the conveying frame 1, and a push plate 24 is installed on the outer surface of the rack 23, and a return spring 25 is elastically connected between the push plate 24 and the conveying frame 1; the outer surface of the push plate 24 is connected to a telescopic component 27, and the return spring 25 is nested on the outside of the telescopic component 27, and the other end of the telescopic component 27 is connected to an extrusion plate 26, and the extrusion plate 26 passes through the side wall of the conveying frame 1, and an extrusion spring 28 is nested and connected inside the telescopic component 27; the secondary shaft 21 forms a meshing structure with the toothless gear 22 through a belt, and the toothless gear 22 forms a meshing structure with the rack 23, and the rack 23 is arranged at equal angles about the central axis of the toothless gear 22, and the rack 23 and the push plate 24 form an integrated structure, and the push plate 24 forms an elastic structure with the conveying frame 1 through the return spring 25, and the push plate 24 forms an elastic telescopic structure with the extrusion plate 26 through the telescopic component 27 and the extrusion spring 28, and the return spring 25 and the telescopic component 27 form a nested structure.

[0035] When the main shaft 5 rotates, the synchronous belt 18 on the main synchronous wheel 6 is synchronously controlled to rotate, which can drive the secondary synchronous wheel 19 to rotate synchronously, and control the bevel gear set 20 connected to the secondary synchronous wheel 19 axis to adjust the secondary shaft 21 to rotate on the lower side of the conveyor frame 1, and control the secondary shaft 21 to assemble the belt to adjust the toothless gear 22 to form continuous rotation, then the teeth on the toothless gear 22 are used to mesh and adjust the rack 23 to slide in the center on the conveyor frame 1, and when the rack 23 slides, it will drive the installed push plate 24 to move into the conveyor frame 1, and drive the telescopic component 27 installed on the push plate 24 to penetrate the side wall of the conveyor frame 1, and control the extrusion plate 26 assembled at the other end of the telescopic component 27 to move in the center of the inner side of the conveyor frame 1 at the same time, so that the extrusion plate 26 can be controlled to control the conveying on the conveyor frame 1. When the switch body 3 forms a centering limit and the extrusion plate 26 squeezes the switch body 3, it cooperates with the extrusion spring 28 built into the telescopic component 27 to form elastic extrusion to avoid excessive extrusion damage to the switch body 3. After the switch body 3 is centered and limited, the meshing of the toothless gear 22 and the rack 2 23 will be disengaged, and under the continuous rotation of the toothless gear 22, the rack 2 23 cooperates with the reset spring 1 25 between the push plate 24 and the outer side of the conveying frame 1 to form an elastic reset, and then the extrusion plate 26 is synchronously controlled to reset, and under the next meshing of the toothless gear 22 and the rack 2 23, it is squeezed and centered again to form a continuous centering limit, thereby improving the coordination between feeding and centering, controlling the stability of the switch body 3 during transportation, and reducing the limit damage of the switch body 3.

[0036] Embodiment 3: Figure 1 , Figure 2 and Figure 7The technical solution shown in the embodiment 2 further discloses that a synchronous belt 29 controls the continuous rotation and alternating discharge of the extrusion member 31, and the specific contents are as follows: the lower side of the inner surface of the synchronous belt 29 is rotatably connected to the auxiliary synchronous wheel 20, and the inner surface axis of the auxiliary synchronous wheel 20 is rotatably connected to the extrusion member 31, and the outer surface of the extrusion member 31 is fitted with a ball 32, and the outer surface of the ball 32 is nested with an alternating rod 1 33 and an alternating rod 2 36, and the alternating rod 2 36 is limitedly slid on the side wall of the conveying frame 1, and the outer surfaces of the alternating rod 1 33 and the alternating rod 2 36 are both installed with positioning plates 34, and the positioning plates 34 are elastically connected to the conveying frame 1. A reset spring 2 35 is connected, and the reset spring 2 35 is nested in the outer surface of the alternating rod 1 33 and the alternating rod 2 36; the synchronous belt 2 29 forms a rotating structure with the extrusion piece 31 through the secondary synchronous wheel 2 30, and the front side of the outer surface of the extrusion piece 31 is in an inclined structure, and the front side of the outer surface of the extrusion piece 31 is in point contact with the rear side of the outer surface of the ball 32, and the ball 32 forms a nested rolling structure with the alternating rod 1 33 and the alternating rod 2 36, and the alternating rod 1 33 and the alternating rod 2 36 form an elastic telescopic structure with the conveying frame 1 through the positioning plate 34 and the reset spring 2 35, and the outer surface ends of the alternating rod 1 33 and the alternating rod 2 36 are in an inclined structure.

[0037] When the main shaft 5 controls the rotation of the main synchronous wheel 6, the synchronous belt 29 is controlled to adjust the rotation of the secondary synchronous wheel 2 30 at the same time, and the extrusion piece 31 assembled on the axis of the secondary synchronous wheel 2 30 is controlled to rotate on the right rear side of the conveying frame 1, so that the extrusion piece 31 can be controlled to form a continuous rotation, and through the inclined surface of the extrusion piece 31, the alternating rod 1 33 and the alternating rod 2 36 nested in the extrusion ball 32 are alternately blocked to stably load the production of the switcher body 3, and the positioning plate 34 installed on the alternating rod 1 33 and the positioning plate 34 installed on the alternating rod 2 36, and through the nested reset spring 2 35, the rotation control of the extrusion piece 31 is cooperated to form an elastic automatic reset on the lower conveying frame 1, and the conveying speed of the conveying frame 1 is cooperated to control the switcher body 3 to load, center and discharge, stably convey the switcher body 3, increase the stability of the switcher body 3 conveying, and reduce the conveying damage to the switcher body 3.

[0038] The contents not described in detail in this specification belong to the prior art known to professional and technical personnel in this field.

[0039] Although embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions and variations may be made to the embodiments without departing from the principles and spirit of the present invention, and that the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A conveying device for producing a filter switcher, comprising a conveying frame (1) for uniformly loading materials, a conveying belt (2) rotating on the inner surface of the conveying frame (1), and a switcher body (3) being conveyed on the upper surface of the conveying belt (2); It is characterized in that include: A loading rack (4) is installed on the left rear side of the conveying rack (1), and a main shaft (5) is rotatably arranged on the rear side of the outer surface of the loading rack (4), a main synchronous wheel (6) is embedded in the outer surface of the main shaft (5), a turntable (7) is installed at the outer front end of the main shaft (5), and the turntable (7) is provided with a uniform speed loading mechanism; A synchronous belt 1 (18) rotates on the inner side of the inner surface of the main synchronous wheel (6), and a synchronous belt 2 (29) rotates on the outer side of the inner surface of the main synchronous wheel (6), and a secondary synchronous wheel 1 (19) rotates on the lower side of the synchronous belt 1 (18), and a bevel gear set (20) rotates through the shaft of the secondary synchronous wheel 1 (19), and a secondary shaft (21) rotates on the upper surface of the bevel gear set (20), and the secondary shaft (21) is provided with a circulating centering mechanism.

2. The conveying device for filter switcher production according to claim 1, characterized in that: The loading rack (4) and the conveying rack (1) form an integrated structure, and the loading rack (4) forms a rotating structure through the main shaft (5) and the turntable (7), and the main shaft (5) and the main synchronous wheel (6) form a nested rotating structure.

3. The conveying device for filter switcher production according to claim 1, characterized in that: The uniform speed feeding mechanism comprises a connecting rod 1 (8) assembled by an off-axis rotation of a rotating disk (7), and a rack 1 (9) is rotatably connected to the left side of the outer surface of the connecting rod 1 (8), and the rack 1 (9) is limitedly slid on the rear side of the inner surface of the feeding frame (4), and the upper surface of the rack 1 (9) is meshingly connected to a spur gear (10), and the spur gear (10) is installed with a connecting rod 2 (11) through a shaft.

4. The conveying device for producing a filter switcher according to claim 3, characterized in that: The other end of the inner surface of the second connecting rod (11) is rotatably connected to a feeding rod (12), and the rear side of the outer surface of the feeding rod (12) is vertically slidably connected to a slider (13), and the rear side of the inner surface of the slider (13) is laterally slidably connected to a slide rail (14), and the slide rail (14) is installed on the front side of the inner surface of the feeding rack (4), and a grabbing piece (15) is nested and installed on the inner surface of the feeding rod (12), and a connecting plate (16) is installed on the lower surface of the grabbing piece (15), and an adsorption piece (17) is installed at the corner of the inner surface of the connecting plate (16).

5. The conveying device for producing a filter switcher according to claim 3, characterized in that: The turntable (7) forms a circular linear moving structure through connecting rod 1 (8) and rack 1 (9), and rack 1 (9) and the loading rack (4) form a limited sliding structure, and rack 1 (9) and connecting rod 2 (11) form a meshing rotation structure through a spur gear (10), and connecting rod 2 (11) and the loading rod (12) form a rotating structure, and the loading rod (12) and the slider (13) form a vertical sliding structure, and the slider (13) and the loading rack (4) form a horizontal sliding structure through a slide rail (14), and the loading rod (12) and the grabbing member (15) form a built-in nesting structure.

6. The conveying device for producing a filter switcher according to claim 1, characterized in that: The main synchronous wheel (6) forms a rotating structure with the synchronous belt 1 (18) and the synchronous belt 2 (29), and the synchronous belt 1 (18) forms a meshing transmission structure with the secondary shaft (21) through the secondary synchronous wheel 1 (19) and the bevel gear set (20).

7. The conveying device for producing a filter switcher according to claim 6, characterized in that: The circulating centering mechanism comprises a toothless gear (22) connected to a secondary shaft (21) by a belt, and the toothless gear (22) is connected to the lower side of the inner surface of the conveying frame (1) by a shaft, and the outer surface of the toothless gear (22) is meshedly connected with a rack 2 (23), and the rack 2 (23) is limitedly slid on the inner surface of the conveying frame (1), and a push plate (24) is installed on the outer surface of the rack 2 (23), and a return spring 1 (25) is elastically connected between the push plate (24) and the conveying frame (1).

8. The conveying device for producing a filter switcher according to claim 7, characterized in that: The outer surface of the push plate (24) is connected to a telescopic component (27), and a return spring (25) is nested on the outside of the telescopic component (27); the other end of the telescopic component (27) is connected to an extrusion plate (26), and the extrusion plate (26) passes through the side wall of the conveying frame (1); and an extrusion spring (28) is nested and connected inside the telescopic component (27).

9. The conveying device for producing a filter switcher according to claim 7, characterized in that: The secondary shaft (21) forms a meshing structure with the toothless gear (22) through a belt, and the toothless gear (22) forms a meshing structure with the second rack (23), and the second rack (23) is arranged at an equal angle with respect to the central axis of the toothless gear (22), and the second rack (23) and the push plate (24) form an integrated structure, and the push plate (24) forms an elastic structure with the conveying frame (1) through the return spring (25), and the push plate (24) forms an elastic telescopic structure with the extrusion plate (26) through the telescopic component (27) and the extrusion spring (28), and the return spring (25) and the telescopic component (27) form a nested structure.

10. The conveying device for producing a filter switcher according to claim 1, characterized in that: The lower side of the inner surface of the second synchronous belt (29) is rotatably connected to the second auxiliary synchronous wheel (30), and the inner surface of the second auxiliary synchronous wheel (30) is rotatably connected to the extrusion piece (31), and the outer surface of the extrusion piece (31) is fitted and connected to the ball (32), and the outer surface of the ball (32) is nested and connected to the alternating rod (33) and the alternating rod (36), and the alternating rod (36) is limitedly slid on the side wall of the conveying frame (1), and the outer surfaces of the alternating rod (33) and the alternating rod (36) are both installed with positioning plates (34), and the positioning plates (34) and the conveying frame (1) are elastically connected to the second return spring (35), and the second return spring (35) is nested in the alternating rod The synchronous belt 2 (29) forms a rotating structure with the extrusion piece (31) through the auxiliary synchronous wheel 2 (30), and the front side of the outer surface of the extrusion piece (31) is in an inclined structure, and the front side of the outer surface of the extrusion piece (31) is in point contact with the rear side of the outer surface of the ball (32), and the ball (32) forms a nested rolling structure with the alternating rod 1 (33) and the alternating rod 2 (36), and the alternating rod 1 (33) and the alternating rod 2 (36) form an elastic telescopic structure with the conveying frame (1) through the positioning plate (34) and the return spring 2 (35), and the outer surface ends of the alternating rod 1 (33) and the alternating rod 2 (36) are in an inclined structure.

Citation Information

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