Remote controller suction piece assembling machine

By designing a remote control dome assembly machine, and adopting guiding positioning, dome feeding and delivery mechanisms, an automated mechanical assembly line is constructed, which solves the problem of low efficiency in manual operation and realizes efficient and stable assembly of remote control dome switches.

CN120962334APending Publication Date: 2025-11-18HUIZHOU C&D IND CO LTD
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Patent Information

Application Number
CN202511170512.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-20
Publication Date
2025-11-18

AI Technical Summary

Technical Problem

The existing remote control dome assembly process relies on manual operation, which is inefficient, limited by the accuracy of human eye recognition and finger movements, slow assembly speed, high labor costs, poor production stability, and prone to quality abnormalities.

Method used

Design a remote control chip assembly machine, including a guiding and positioning mechanism, a chip feeding mechanism, a chip delivery mechanism, and a drive mechanism, to build a complete mechanical assembly line, realize automatic feeding, positioning, and assembly of hot dot chips, and eliminate manual intervention.

Benefits of technology

It enables continuous and automated assembly of remote control dome switches, significantly improving assembly speed, reducing labor costs, enhancing production stability, and avoiding bottlenecks and fatigue issues associated with manual operation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of remote controller assembling equipment, in particular to a remote controller suction piece assembling machine which comprises a conveying machine table provided with a guiding and positioning mechanism. The support frame is provided with a sheet supply mechanism and a sheet conveying mechanism; the supporting frame is installed on the side edge of the conveying machine table, and the sheet supplying mechanism is located above the sheet conveying mechanism. Wherein the sheet feeding mechanism is rotationally connected to the supporting frame through a driving mechanism and moves back and forth between the sheet supplying mechanism and the conveying machine table, and through the synergistic effect of the sheet supplying mechanism, the sheet feeding mechanism, the guiding and positioning mechanism and the conveying machine table, a set of complete metal dome mechanical assembly line is constructed; manual intervention is not needed in the whole process from metal dome feeding, taking and placing to remote controller shell positioning, assembling and outputting, continuous operation is achieved, compared with a traditional manual or semi-manual assembling mode, the bottleneck that manual operation is inconsistent in takt, prone to fatigue and the like is eliminated, and the assembling speed is remarkably increased.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of remote controller assembly equipment, and particularly relates to a remote controller suction piece assembly machine. BACKGROUND

[0002] In the field of remote controller manufacturing, the pot piece is a core component for triggering the key, and the assembly quality directly affects the product feel and service life. The existing pot piece assembly process mainly relies on manual assembly line operation: the operator needs to continuously perform manual piece taking, positioning and placing operations beside the assembly line station, and embeds the pot piece into the pre-installed mounting groove of the remote controller shell one by one.

[0003] However, manual operation is low in efficiency, limited by eye recognition and finger action accuracy, and the assembly speed is usually only 10-15 pieces per minute, which is difficult to meet the production rhythm demand of large quantities; secondly, the labor cost is high, at least 2-3 full-time operators need to be arranged for each production line to deal with continuous material supply, and long-time repetitive operation easily leads to operator fatigue, causing quality abnormalities such as missing installation and deviation; thirdly, the production stability is poor, and the material accumulation at the station caused by physiological needs (such as temporary leaving) of the operator forces the assembly line to slow down or stop for material.

[0004] Therefore, in order to improve the efficiency of the existing remote controller production and assembly process, a remote controller suction piece assembly machine is proposed. SUMMARY

[0005] The present application aims at solving the problems of low efficiency, limited by eye recognition and finger action accuracy, and low assembly speed in the prior art, and proposes a remote controller suction piece assembly machine.

[0006] In order to achieve the above-mentioned purpose, the present application adopts the following technical scheme:

[0007] A remote controller suction piece assembly machine is designed, which comprises:

[0008] A conveyor table provided with a guide positioning mechanism;

[0009] And a support frame provided with a piece supply mechanism and a piece feeding mechanism;

[0010] The support frame is installed on the side of the conveyor table, and the piece supply mechanism is located above the piece feeding mechanism.

[0011] The piece feeding mechanism is rotatably connected to the support frame by a driving mechanism and reciprocates between the piece supply mechanism and the conveyor table.

[0012] Further, the guide positioning mechanism comprises:

[0013] A plurality of fixed seats are fixedly installed on both sides of the conveyor table frame, adjusting rods are movably inserted into the fixed seats, guide plates are fixedly connected between two adjusting rods on the same side, a channel for moving the remote controller shell is formed between the two guide plates, and a locking member for locking the adjusting rods is further arranged above the fixed seat.

[0014] Further, the guide positioning mechanism further comprises:

[0015] A front positioning plate is fixedly installed on the conveyor table frame, a rear positioning plate is fixedly installed on the front positioning plate through a support towards the tabletop side of the conveyor table, a blocking cylinder and a positioning cylinder are fixedly installed on the end face of the front positioning plate, the positioning cylinder is located behind the blocking cylinder along the conveying direction of the conveyor table, and a push plate is fixedly installed on the shaft end of the blocking cylinder and the positioning cylinder.

[0016] Further, the piece feeding mechanism comprises two side plates fixedly installed above the support frame, and vertical plates are fixedly installed above the side plates.

[0017] Two installation structures are fixedly installed between the two vertical plates, the two installation structures are obliquely arranged towards the tabletop side of the conveyor table, and a material frame assembly is further installed above the two installation structures.

[0018] Further, the material frame assembly comprises two material frame plates arranged at intervals, and a supporting rod is fixedly installed below the opposite face of each material frame plate.

[0019] A discharging channel is formed between the two material frame plates and the two supporting rods, and a stop component located at the tail end of the discharging channel is further fixedly installed above the vertical plate.

[0020] Further, the installation structure comprises a guide rod and a locking plate fixedly installed between the two vertical plates, the two material frame plates are slidingly connected to the guide rod, a sliding groove is formed in the end face of the locking plate, and a fastener for locking the material frame plate is arranged in the sliding groove.

[0021] Further, the stop component comprises a portal plate fixedly installed between the two vertical plates, an L-shaped baffle is slidingly connected to the front end of the portal plate, the L-shaped baffle is slidingly locked with the portal plate through a fixing structure, a baffle is fixedly installed below the L-shaped baffle, and at least part of the baffle stops on the upper side of the pot piece.

[0022] Further, the piece feeding mechanism comprises a swing arm rotatingly connected to the side plate.

[0023] A shaft is rotatably connected between the ends of the two swing arms and a rotating shaft is fixedly installed thereon. The rotating shaft is rotatably connected between the two side plates. A mounting base is fixedly installed on the outer side of the shaft, and a suction cup assembly is provided on the end face of the mounting base.

[0024] Furthermore, a steering block is fixedly installed at the end of the shaft, a steering plate is fixedly installed above the side plate, a steering rod is rotatably connected to the inner side of the steering plate, and the steering rod and the steering block are movably inserted into each other.

[0025] Furthermore, the drive mechanism includes a motor fixedly mounted above the support frame, a reciprocating plate fixedly mounted on the shaft end of the motor, a connecting rod pinned to the side of the reciprocating plate, and a rocker arm pinned to the connecting rod fixedly mounted on the outer side of the rotating shaft.

[0026] The remote control chip assembly machine proposed in this invention has the following advantages: Through the coordinated action of the chip feeding mechanism, the chip delivery mechanism, the guiding and positioning mechanism and the conveyor table, this invention constructs a complete mechanical assembly line for hot dot chips. The entire process, from the feeding and picking of hot dot chips to the positioning, assembly and output of the remote control shell, does not require manual intervention and realizes continuous operation. Compared with the traditional manual or semi-manual assembly mode, it eliminates the bottlenecks such as inconsistent operation rhythm and easy fatigue of manual operation, which significantly improves the assembly speed and directly reduces the high labor costs. Attached Figure Description

[0027] Figure 1 The three-dimensional representation of the present invention Figure 1 ;

[0028] Figure 2 The three-dimensional representation of the present invention Figure 2 ;

[0029] Figure 3 This is a schematic diagram of the conveyor platform structure of the present invention;

[0030] Figure 4 This is a schematic diagram of the guiding and positioning mechanism of the present invention. Figure 1 ;

[0031] Figure 2 This is a schematic diagram of the guiding and positioning mechanism of the present invention. Figure 6 ;

[0032] Figure 7 This is a schematic diagram of the feeding mechanism of the present invention;

[0033] Figure 8 This is a schematic diagram of the drive mechanism structure of the present invention;

[0034] Figure 9 This is a schematic diagram of the wafer feeding mechanism of the present invention;

[0035] Figure 10 This is a schematic diagram of the material frame assembly structure of the present invention;

[0036] Figures 1-4 This is a schematic diagram of the stop assembly structure of the present invention.

[0037] In the diagram: 1. Conveyor platform; 2. Guiding and positioning mechanism; 21. Fixed seat; 22. Adjusting rod; 23. Guide plate; 24. Locking element; 25. Front positioning plate; 26. Bracket; 27. Rear positioning plate; 28. Blocking cylinder; 29. ​​Positioning cylinder; 210. Push plate; 3. Support frame; 4. Feeding mechanism; 41. Side plate; 42. Vertical plate; 43. Mounting structure; 431. Guide rod; 432. Locking plate; 433. Slide groove; 434. Fastener; 4. Material frame assembly; 441. Material frame plate; 442. Support rod; 45. Stop assembly; 451. Gantry plate; 452. L-shaped baffle; 453. Fixing structure; 454. Baffle; 5. Feeding mechanism; 51. Swing arm; 52. Shaft; 53. Mounting base; 54. Suction cup assembly; 55. Directional block; 56. Directional plate; 57. Directional rod; 58. Rotating shaft; 6. Drive mechanism; 61. Motor; 62. Reciprocating plate; 63. Connecting rod; 64. Rocker arm. Detailed Implementation

[0038] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.

[0039] Reference ​ As an embodiment of the present invention, a remote control chip assembly machine is disclosed. The assembly machine is used to realize continuous automatic feeding of the hot dot chip, so as to improve the efficiency of the remote control hot dot chip assembly process. Specifically, the assembly machine includes a conveyor table 1 equipped with a guide positioning mechanism 2. Of course, in this embodiment, the conveyor table 1 is set as a conveyor belt type conveyor table. The guide positioning mechanism 2 is used to transport and guide the remote control shell to be installed with the hot dot chip, and to position it at the installation station.

[0040] And a support frame 3 with a feeding mechanism 4 and a delivery mechanism 5 installed, the support frame 3 being installed on the side of the conveyor platform 1, and the feeding mechanism 4 being located above the delivery mechanism 5;

[0041] The film feeding mechanism 5 is rotatably connected to the support frame 3 via the drive mechanism 6 and moves back and forth between the film feeding mechanism 4 and the conveyor platform 1.

[0042] In this invention, a feeding mechanism 4 is used to accommodate and supply the hot dome switches. When the feeding mechanism 5 flips, it picks up the hot dome switches from the feeding mechanism 4. After picking them up, it flips back to the conveyor table 1. At this time, the guide positioning mechanism 2 positions the conveyed remote control shell to stop its movement. Then, the feeding mechanism 5 puts the hot dome switches into the remote control shell. The guide positioning mechanism 2 opens, and the remote control shell loaded with hot dome switches is output outward. The next remote control shell then enters the tooling station. This process is repeated to achieve continuous automatic assembly of hot dome switches for remote control shells.

[0043] This invention constructs a complete mechanical assembly line for hot dot chips through the coordinated action of the feeding mechanism 4, the delivery mechanism 5, the guiding and positioning mechanism 2, and the conveyor platform 1. The entire process, from the feeding and placement of hot dot chips to the positioning, assembly, and output of the remote control shell, requires no manual intervention and achieves continuous operation. Compared with the traditional manual or semi-manual assembly mode, it eliminates bottlenecks such as inconsistent operation rhythm and easy fatigue of manual operation, significantly improves the assembly speed, and directly reduces the high labor costs.

[0044] In some embodiments, the guiding and positioning mechanism 2 of the present invention includes:

[0045] Multiple fixed seats 21 are fixedly installed on both sides of the conveyor platform 1 frame. Adjusting rods 22 are movably inserted into the fixed seats 21. Guide plates 23 are fixedly connected between two adjusting rods 22 on the same side. The two guide plates 23 form a channel for the remote control housing to move. A locking member 24 is also provided above the fixed seats 21 to lock the adjusting rods 22.

[0046] Specifically, in this embodiment, the locking member 24 is a bolt threaded onto the fixed base 21, which fixes the position of the guide plate 23 by abutting the adjusting rod 22. Of course, by using two adjusting rods 22 connected movably, the guide plates 23 on both sides can be adjusted according to the width of the remote control during actual use, thereby further improving the applicability of this device.

[0047] Based on the above embodiments, the guiding and positioning mechanism 2 in this embodiment further includes:

[0048] A front positioning plate 25 is fixedly installed on the frame of the conveyor platform 1. A rear positioning plate 27 is fixedly installed on the side of the front positioning plate 25 facing the platform of the conveyor platform 1 via a bracket 26. In this embodiment, two brackets 26 are provided. By using two brackets 26 to transfer and fix the rear positioning plate 27, the rear positioning plate 27 can be suspended and supported above the conveyor platform 1 to avoid rotational interference to the conveyor belt of the conveyor platform 1.

[0049] In addition, it should be noted that the channel formed by the front positioning plate 25 and the rear positioning plate 27 in this embodiment should be arranged opposite to the channel formed by the two guide plates 23. In this way, when the remote control shell is transported through the two guide plates 23, it can enter between the front positioning plate 25 and the rear positioning plate 27.

[0050] A blocking cylinder 28 and a positioning cylinder 29 are fixedly installed on the end face of the front positioning plate 25. The positioning cylinder 29 is located behind the blocking cylinder 28 along the conveying direction of the conveyor platform 1. A push plate 210 is fixedly installed on the shaft end of both the blocking cylinder 28 and the positioning cylinder 29.

[0051] In actual operation, the remote control shell is placed on the conveyor platform 1 for continuous conveying. First, the remote control shell will be guided between two guide plates 23. When the remote control shell continues to move, it will enter between the front positioning plate 25 and the rear positioning plate 27.

[0052] When assembling the dome switch, the blocking cylinder 28 and the positioning cylinder 29 operate simultaneously. The blocking cylinder 28 is used to abut the remote control shell behind it against the rear positioning plate 27 to ensure that it will not continue to move. At the same time, the positioning cylinder 29 also abuts the remote control shell that has moved to the assembly station against the rear positioning plate 27 to position and fix it. This ensures the accuracy of the assembly position of the remote control shell and ensures that the dome switch feeding mechanism 5 can smoothly put the dome switch into the remote control shell.

[0053] Furthermore, it should be noted that in order to detect the position of the remote control housing in this embodiment, an induction switch can be embedded on the end face of the front positioning plate 25 and / or the rear positioning plate 27. When the remote control housing is in position, the blocking cylinder 28 and the positioning cylinder 29 will be activated. Moreover, the blocking cylinder 28 and the positioning cylinder 29 described in this invention are both set as guide rod cylinders, which facilitates the improvement of the control stability of the push plate 210.

[0054] In some embodiments, the feeding mechanism 4 of the present invention includes two side plates 41 fixedly installed above the support frame 3, and a vertical plate 42 fixedly installed above the side plates 41, with the two vertical plates 42 spaced apart.

[0055] Two mounting structures 43 are fixedly installed between the two upright plates 42. The two mounting structures 43 are inclined toward the platform side of the conveyor platform 1. A material frame assembly 44 is also installed above the two mounting structures 43. That is, by adopting an inclined structure design for the two mounting structures 43, the material frame assembly 44 is in an inclined state. When the inside of the material frame assembly 44 is filled with hot plate, the hot plate can move downward continuously and automatically under the action of gravity.

[0056] Preferably, the material frame assembly 44 in this embodiment includes two spaced material frame plates 441, and a support rod 442 is fixedly installed below the opposite surface of each of the two material frame plates 441. The support rod 442 and the material frame plate 441 form an L-shaped structure. The support rod 442 is used to support the bottom of the hot pot slice. Of course, the material frame plate 441 is used to stop the side of the hot pot slice, so as to achieve the positioning of the hot pot slice.

[0057] The two material frame plates 441 and the two support rods 442 form a material feeding channel, and a stop assembly 45 located at the end of the material feeding channel is fixedly installed above the upright plate 42.

[0058] Based on the above embodiments, the installation structure 43 in this embodiment includes a guide rod 431 and a locking plate 432 fixedly installed between two upright plates 42. The two material frame plates 441 are slidably connected to the guide rod 431. A sliding groove 433 is provided on the end face of the locking plate 432, and a fastener 434 for locking the material frame plate 441 is provided in the sliding groove 433.

[0059] In other words, the distance between the two material frame plates 441 in this invention is adjustable. That is, when using different lengths of hot plate pieces, the user can unlock the fastener 434. Of course, the fastener 434 in this embodiment is also set as a bolt, and the end cap of the bolt stops on the outside of the material frame plate 441.

[0060] Once the fastener 434 is unlocked, the spacing and lateral position of the material frame plate 441 can be adjusted by sliding it. After reaching the predetermined position and spacing, the position of the material frame plate 441 can be fixed by fixing the fastener 434.

[0061] Furthermore, the stop assembly 45 of the present invention includes a gantry plate 451 fixedly installed between the two upright plates 42. The gantry plate 451 spans across the material frame assembly 44. An L-shaped baffle 452 is slidably connected to the front end of the gantry plate 451. The L-shaped baffle 452 is slidably locked to the gantry plate 451 by a fixing structure 453. In an optional embodiment, the front end of the gantry plate 451 of the present invention is provided with a T-shaped groove. A T-shaped slider is slidably connected inside the T-shaped groove. The fixing structure 453 includes a bolt passing through the L-shaped baffle 452. The bolt and the T-shaped slider are threadedly connected, thereby realizing the lateral position adjustment and locking of the L-shaped baffle 452.

[0062] Wherein, a baffle 454 is fixedly installed below the L-shaped baffle 452, and at least a portion of the baffle 454 stops the upper side of the hot plate.

[0063] Of course, in this embodiment, two waist-shaped grooves can also be opened on the end face of the baffle 454. The waist-shaped grooves are connected and fixed to the L-shaped baffle 452 by bolts. The waist-shaped groove design is used to adjust the height of the baffle 454 to ensure that the baffle 454 can be at a better stop height. Preferably, the baffle 454 in this embodiment can be set as a plastic plate. With its certain elasticity, when the feeding mechanism 5 picks up the bottom dome piece, it can avoid the outward movement space requirement of the dome piece by deformation. In addition, the lower bent end of the L-shaped baffle 452 in this invention stops above multiple dome pieces, so as to stop and limit the upper part of the dome piece.

[0064] In some embodiments, the feeding mechanism 5 of the present invention includes a swing arm 51 rotatably connected to the side plate 41, and two swing arms 51 are configured.

[0065] A shaft 52 is rotatably connected between the ends of the two swing arms 51, and a rotating shaft 58 is fixedly installed thereon. The rotating shaft 58 is rotatably connected between the two side plates 41. A mounting base 53 is fixedly installed on the outer side of the shaft 52. A suction cup assembly 54 is provided on the end face of the mounting base 53. Specifically, in this embodiment, the suction cup assembly 54 can be set as a suction cup, or it can be set as a cylinder and a suction cup. The suction cup is connected to the shaft end of the cylinder so that the cylinder controls the up and down movement of the suction cup. Of course, the suction cup is connected to an external negative pressure device so that the pot dome is picked up and removed by negative pressure suction.

[0066] Of course, in order to adjust the adsorption direction of the suction cup assembly 54 when the swing arm 51 rotates, in this embodiment, a deflector block 55 is fixedly installed at the end of the shaft 52, a deflector plate 56 is fixedly installed above the side plate 41, a deflector rod 57 is rotatably connected to the inner side of the deflector plate 56, and the deflector rod 57 and the deflector block 55 are movably inserted into each other.

[0067] That is, when picking up or taking out the hot dome, the drive mechanism 6 will drive the rotating shaft 58 to rotate, thereby controlling the two swing arms 51 to rotate.

[0068] During the rotation of the swing arm 51, the shaft end of the shaft 52 is limited by the change block 55 and the change rod 57. Therefore, the change rod 57 will control the change block 55 to rotate and its relative position during the rotation. When the change block 55 rotates, it will drive the suction cup assembly 54 to rotate, so that the suction cup assembly 54 faces the bottom of the material frame assembly 44. At this time, the suction cup assembly 54 contacts the hot plate and uses negative pressure to attract and pick up the hot plate.

[0069] After the retrieval is completed, the drive mechanism 6 controls the swing arm 51 to reverse. Similarly, with the help of the limiting cooperation of the deflector block 55 and the deflector rod 57, the deflector block 55 will drive the suction cup assembly 54 to rotate, so that the suction cup assembly 54 faces the upper end of the conveyor table 1. Then, the dome switch is placed into the remote control housing above the conveyor table 1 through the suction cup assembly 54, thus completing the assembly of the dome switch. This continuous repetition can realize the assembly line operation of the remote control dome switch.

[0070] It should be noted that the drive mechanism 6 in this invention includes a motor 61 fixedly installed above the support frame 3, a reciprocating plate 62 fixedly installed on the shaft end of the motor 61, a connecting rod 63 pinned to the side of the reciprocating plate 62, and a rocker arm 64 pinned to the connecting rod 63 fixedly installed on the outer side of the rotating shaft 58.

[0071] Specifically, when the swing arm 51 needs to be rotated, the reciprocating plate 62 is rotated by the motor 61. Since the two ends of the connecting rod 63 are pin connected to the reciprocating plate 62 and the rocker arm 64, when the motor 61 rotates continuously, it will drive the swing arm 51 to swing back and forth. In this way, the reciprocating motion of the swing arm 51 can be controlled between the feeding mechanism 4 and the delivery mechanism 5 to complete the continuous delivery of the dome to the remote control housing.

[0072] Furthermore, as a preferred embodiment, in order to adjust the swing angle of the swing arm 51, a sensor bracket is also fixedly installed on the housing of the motor 61 in this invention. Two arc-shaped grooves are opened on the end face of the sensor bracket, and a proximity sensor is tightened in each arc-shaped groove by a nut. By using the design of two sensors, the swing angle of the reciprocating plate 62 can be limited, thus enabling the applicability adjustment of the rotation angle of the swing arm 51.

[0073] Of course, each electrical component in this invention should be connected to a control unit, which can be a PLC. The control unit controls the start and stop of each electrical component to achieve automated process operation.

[0074] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.

Claims

1. A remote control assembly machine for suction plates, characterized in that, include: A conveyor platform (1) equipped with a guide positioning mechanism (2); And a support frame (3) equipped with a film feeding mechanism (4) and a film delivery mechanism (5); The support frame (3) is installed on the side of the conveyor platform (1), and the feeding mechanism (4) is located above the feeding mechanism (5); The feeding mechanism (5) is rotatably connected to the support frame (3) via the drive mechanism (6) and moves back and forth between the feeding mechanism (4) and the conveyor platform (1).

2. The remote control suction assembly machine according to claim 1, characterized in that: The guiding and positioning mechanism (2) includes: Multiple fixed seats (21) are fixedly installed on both sides of the conveyor platform (1) frame. Adjusting rods (22) are movably inserted into the fixed seats (21). Guide plates (23) are fixedly connected between two adjusting rods (22) on the same side. The two guide plates (23) form a channel for the remote control housing to move. A locking member (24) for locking the adjusting rods (22) is also provided above the fixed seats (21).

3. The remote control suction assembly machine according to claim 1, characterized in that: The guiding and positioning mechanism (2) also includes: A front positioning plate (25) is fixedly installed on the frame of the conveyor platform (1). A rear positioning plate (27) is fixedly installed on the side of the front positioning plate (25) facing the platform of the conveyor platform (1) via a bracket (26). A blocking cylinder (28) and a positioning cylinder (29) are fixedly installed on the end face of the front positioning plate (25). The positioning cylinder (29) is located behind the blocking cylinder (28) along the conveying direction of the conveyor platform (1). A push plate (210) is fixedly installed on the shaft end of both the blocking cylinder (28) and the positioning cylinder (29).

4. The remote control suction assembly machine according to claim 1, characterized in that: The feeding mechanism (4) includes two side plates (41) fixedly installed above the support frame (3), and a vertical plate (42) is fixedly installed above the side plates (41); Two mounting structures (43) are fixedly installed between the two upright plates (42). The two mounting structures (43) are inclined toward the platform side of the conveyor table (1). A material frame assembly (44) is also installed above the two mounting structures (43).

5. A remote control assembly machine according to claim 4, characterized in that: The material frame assembly (44) includes two spaced material frame plates (441), and a support rod (442) is fixedly installed below the opposite surface of the two material frame plates (441); A feeding channel is formed between the two material frame plates (441) and the two support rods (442), and a stop assembly (45) located at the end of the feeding channel is fixedly installed above the upright plate (42).

6. A remote control suction plate assembly machine according to claim 5, characterized in that: The mounting structure (43) includes a guide rod (431) fixedly installed between two upright plates (42) and a locking plate (432). The two material frame plates (441) are slidably connected to the guide rod (431). A groove (433) is provided on the end face of the locking plate (432), and a fastener (434) for locking the material frame plate (441) is provided in the groove (433).

7. A remote control suction plate assembly machine according to claim 5, characterized in that: The stop assembly (45) includes a gantry plate (451) fixedly installed between the two upright plates (42). An L-shaped baffle (452) is slidably connected to the front end of the gantry plate (451). The L-shaped baffle (452) is slidably locked to the gantry plate (451) by a fixing structure (453). A baffle (454) is fixedly installed below the L-shaped baffle (452). At least part of the baffle (454) stops the upper side of the hot plate.

8. A remote control suction plate assembly machine according to claim 4, characterized in that: The feeding mechanism (5) includes a swing arm (51) rotatably connected to the side plate (41); A shaft (52) is rotatably connected between the ends of the two swing arms (51), and a rotating shaft (58) is fixedly installed. The rotating shaft (58) is rotatably connected between the two side plates (41). A mounting base (53) is fixedly installed on the outer side of the shaft (52), and a suction cup assembly (54) is provided on the end face of the mounting base (53).

9. A remote control suction plate assembly machine according to claim 8, characterized in that: A deflector block (55) is fixedly installed at the end of the shaft (52), and a deflector plate (56) is fixedly installed above the side plate (41). A deflector rod (57) is rotatably connected to the inner side of the deflector plate (56), and the deflector rod (57) and the deflector block (55) are movably inserted into each other.

10. A remote control suction plate assembly machine according to claim 8, characterized in that: The drive mechanism (6) includes a motor (61) fixedly installed above the support frame (3), a reciprocating plate (62) fixedly installed on the shaft end of the motor (61), a connecting rod (63) pinned to the side of the reciprocating plate (62), and a rocker arm (64) pinned to the connecting rod (63) fixedly installed on the outside of the rotating shaft (58).