A material catcher for a core-moving machine used in the production of coaxial connectors
By designing a core-type machine catcher with a screening and uniform feeding structure, the problem that traditional catchers cannot clean the debris on the surface of coaxial connectors is solved, efficient cleaning and uniform feeding are achieved, the work difficulty is reduced and the operation convenience is improved.
Patent Information
- Application Number
- CN202411664547.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-20
- Publication Date
- 2025-10-03
- Estimated Expiration
- 2044-11-20
AI Technical Summary
The traditional core-type machine's material catcher can only catch materials during the coaxial connector production process, but cannot effectively clean the debris on the connector surface, making the subsequent cleaning work difficult.
A core-type machine material catcher with a screening structure and a uniform feeding structure is designed. It cleans the debris on the surface of the connector by vibration and blowing, and the uniform feeding structure makes the material receiving more convenient.
It effectively cleans the debris on the surface of the coaxial connector, reduces the difficulty of subsequent cleaning, and makes the splicing process more efficient. The coaxial connectors after splicing are evenly arranged, which is convenient for subsequent packaging and transportation.
Smart Images

Figure CN119542871B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of coaxial connector production, in particular to a material catcher for a core-moving machine used for coaxial connector production. Background Art
[0002] A coaxial connector is a component used to connect the ends of two shafts to ensure that their centerlines are aligned. It is generally used to connect a driving shaft and a driven shaft, transmitting the driving shaft's rotational motion to the driven shaft. It can also be used to transmit radio frequency signals over a wide frequency range, reaching 18GHz or higher. It is primarily used in radar, communications, data transmission, and aerospace equipment. A core-travelling machine is required in the production of coaxial connectors.
[0003] After the core-walking machine completes the production of the coaxial connector, it needs to use a material catcher to connect the coaxial connector. However, there are still some problems in the use of traditional material catchers. During the processing of the coaxial connector, it undergoes operations such as grinding or polishing, which causes some debris to remain on its surface. However, during the use of the traditional core-walking machine material catcher, it can only connect the coaxial connector and is not convenient to clean the debris remaining on the surface of the coaxial connector. Therefore, a core-walking machine material catcher for coaxial connector production is needed to solve the above problems. Summary of the Invention
[0004] The purpose of the present invention is to provide a core-type machine material catcher for coaxial connector production, so as to solve the defect that the existing core-type machine material catcher can only catch one coaxial connector when in use and is inconvenient to clean the debris remaining on the surface of the coaxial connector.
[0005] In order to solve the above technical problems, the present invention provides the following technical solutions: a core-walking machine material receiver for the production of coaxial connectors, comprising a base and a material receiving tray; a material receiving tray is installed on the top of the base, a rotating tray is installed inside the material receiving tray, a conveyor belt is provided on one side of the base, a blocking plate is fixed on one side of the top of the material receiving tray, a guide plate is fixed on one end of the top of the material receiving tray, a rotating structure is provided in the middle of the base and the material receiving tray, a screening structure is provided on one side of the material receiving tray, and a uniform material discharge structure is provided at the bottom end of the screening structure; the screening structure comprises a screening frame, a fixing frame, a blowing frame, a connecting pipe, and a support block , a hair dryer, an impeller, a connecting disk, a supporting frame, a rotating column, a fixed disk and a mounting disk, the fixed frame is fixed to one side of the base, a supporting block is fixed on the top of the fixed frame, a screening frame is hinged at the middle position of the supporting block, a supporting frame is provided at the bottom of one end of the screening frame; a rotating column is fixed inside the supporting frame, a protrusion is fixed on the outside of the rotating column, the hair dryer is fixed to one side of the top of the base, an impeller is installed inside the hair dryer, a mounting disk is installed at the rear end of the hair dryer, a fixed disk is provided on one side of the mounting disk, a connecting pipe is provided on one side of the hair dryer, and the blowing frame is fixed to the top of the screening frame.
[0006] Preferably, a connecting disk is fixed at one end of the rotating column, and the connecting disk is connected to the output shaft of the motor through a belt. Two groups of support frames are provided, and the two groups of support frames are symmetrically distributed at both ends of the rotating column.
[0007] Preferably, one end of the blowing frame is connected to one end of the connecting pipe, and a plurality of nozzles are provided at the bottom end of the blowing frame, and the plurality of nozzles are arranged at equal intervals at the bottom end of the blowing frame.
[0008] Preferably, the protrusions are provided in three groups, and the three groups of protrusions are arranged at equal intervals on the outer side of the rotating column.
[0009] Preferably, a plurality of blades are provided on one side of the impeller, and the plurality of blades are distributed in a ring shape on one side of the impeller.
[0010] Preferably, the rotating structure includes a mounting shell, a worm gear, a connecting shaft and a worm, the mounting shell is fixed to the top of the base, a worm gear is installed inside the mounting shell, a connecting shaft is fixed to the top of the worm gear, the top of the connecting shaft is fixed to the bottom end of the rotating disk, a worm is provided on one side of the worm gear, one end of the worm is fixed to the output end of the motor, and the other end of the worm is fixed to a fixed disk.
[0011] Preferably, a plurality of teeth are provided on the outer side of the worm wheel, and the worm wheel is meshed with the worm.
[0012] Preferably, the uniform unloading structure includes a material box, a unloading barrel, a belt pulley, a transmission disk, a placement groove, a rotating roller and a unloading port. The material box is fixed to the bottom end of the fixed frame, a unloading barrel is fixed to the bottom end of the material box, a unloading port is provided at the bottom end of the unloading barrel, a rotating roller is installed inside the unloading barrel, a placement groove is provided inside the rotating roller, and a transmission disk is installed at one end of the rotating roller.
[0013] Preferably, the material box and the fixing frame are welded together, the belt pulley is fixed to the outside of the output end of the motor, and the belt pulley is connected to the transmission disc through a belt.
[0014] Preferably, the placement grooves are provided in a plurality of groups, and the plurality of groups of placement grooves are distributed in a ring shape inside the rotating roller.
[0015] Compared with the prior art, the beneficial effects of the present invention are as follows: the core-moving machine material receiver for coaxial connector production can vibrate and blow air to the coaxial connector during the receiving process through the setting of the screening structure, thereby cleaning up the debris remaining on the surface of the coaxial connector, reducing the difficulty of the staff's later cleaning work, and through the setting of the uniform feeding structure, the coaxial connector after feeding can be evenly fed and evenly discharged at the top of the conveyor belt, making it more convenient to pack and transport;
[0016] 1. By setting up a screening structure, after the coaxial connector is connected, the motor will drive the connecting disk to rotate through the belt. The rotating connecting disk will drive the protrusions on the surface of the rotating column to rotate, so that the protrusions will continuously lift one end of the screening frame in turn, causing the screening frame to vibrate. The continuously vibrating screening frame will also drive the coaxial connector to vibrate, thereby vibrating off the debris on the surface of the coaxial connector, completing the cleaning work of the debris on the surface of the coaxial connector;
[0017] Furthermore, when the motor rotates, it also drives the fixed disk to rotate through the worm gear. When the fixed disk rotates, it cooperates with the mounting disk to drive the impeller to rotate, thereby generating suction to spray air through the nozzle at the bottom end of the blowing frame. When the screening frame vibrates the coaxial connector, the air is blown toward the surface of the coaxial connector to assist the screening frame in cleaning the debris on the surface of the coaxial connector, making it more convenient to clean the debris.
[0018] 2. A uniform feeding structure is provided to facilitate the packaging and transportation of the coaxial connectors after docking. The belt pulley and the transmission disc are used in conjunction to drive the rotating roller to rotate. By using multiple sets of placement slots, the coaxial connectors can rotate with the rotating roller and then fall through the feeding port, so that the coaxial connectors can fall evenly in rows to the top of the conveyor belt, making it more convenient for subsequent packaging and transportation. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 This is a schematic diagram of the three-dimensional structure of the present invention;
[0020] Figure 2 This is a schematic diagram of the three-dimensional structure of the present invention when viewed from above;
[0021] Figure 3 It is a top view three-dimensional structural schematic diagram of the present invention;
[0022] Figure 4 It is a side view three-dimensional structural schematic diagram of the present invention;
[0023] Figure 5 It is a schematic diagram of a three-dimensional structure of a partial cross section viewed from above of the present invention;
[0024] Figure 6 It is a schematic diagram of a three-dimensional structure of a partial cross-section in a side view of the present invention;
[0025] Figure 7 It is a schematic diagram of a partial cross-section of the three-dimensional structure of the present invention when viewed from above;
[0026] Figure 8 This is a schematic diagram of the three-dimensional structure of the uniform blanking structure of the present invention in a front view cross-section;
[0027] Figure 9 It is a schematic diagram of a three-dimensional structure of a partial cross-section of a side view of the uniform blanking structure of the present invention;
[0028] Figure 10 For the present invention Figure 4 A in the middle is a partial enlarged schematic diagram of the three-dimensional structure;
[0029] Figure 11 For the present invention Figure 5 Schematic diagram of the locally enlarged structure at point B in the middle.
[0030] Explanation of the reference numerals in the figure: 1. base; 2. receiving tray; 3. blocking plate; 4. rotating disk; 5. guide plate; 6. screening structure; 601. screening frame; 602. fixing frame; 603. blowing frame; 604. connecting pipe; 605. supporting block; 606. blower; 607. impeller; 608. connecting disk; 609. supporting frame; 6010. rotating column; 6011. bump; 6012. fixing disk; 6013. mounting disk; 7. uniform feeding structure; 701. feeding box; 702. feeding barrel; 703. belt pulley; 704. transmission disk; 705. placement groove; 706. rotating roller; 707. feeding port; 8. conveyor belt; 9. motor; 10. rotating structure; 1001. mounting shell; 1002. worm gear; 1003. connecting shaft; 1004. worm. DETAILED DESCRIPTION
[0031] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. 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 making creative efforts are within the scope of protection of the present invention.
[0032] See also Figures 1-11 The present invention provides a core-mounted machine material receiver for coaxial connector production, comprising a base 1 and a receiving tray 2; a receiving tray 2 is installed on the top of the base 1, a rotating disk 4 is installed inside the receiving tray 2, a conveyor belt 8 is provided on one side of the base 1, a blocking plate 3 is fixed on one side of the top of the receiving tray 2, a guide plate 5 is fixed on one end of the top of the receiving tray 2, a rotating structure 10 is provided between the base 1 and the receiving tray 2, a screening structure 6 is provided on one side of the receiving tray 2, and a uniform material discharge structure 7 is provided at the bottom end of the screening structure 6, the rotating structure 10 includes a mounting shell 1001, a worm gear 1002 , connecting shaft 1003 and worm 1004, the mounting shell 1001 is fixed to the top of the base 1, and a worm gear 1002 is installed inside the mounting shell 1001. The top of the worm gear 1002 is fixed with a connecting shaft 1003, and the top of the connecting shaft 1003 is fixed to the bottom end of the rotating disk 4. A worm gear 1004 is provided on one side of the worm gear 1002, and one end of the worm gear 1004 is fixed to the output end of the motor 9, and the other end of the worm gear 1004 is fixed with a fixed disk 6012. A plurality of teeth are provided on the outside of the worm gear 1002, and the worm gear 1002 and the worm gear 1004 are meshed with each other.
[0033] Specifically, in this embodiment, when the coaxial connector is being received, the base 1 is installed at the bottom end of the core-walking machine's discharge. After the installation is completed, when receiving the material, the external power supply starts the motor 9. After starting, the motor 9 will drive the rotation of the worm 1004. When the worm 1004 rotates, it will drive the worm wheel 1002 to rotate. As the worm wheel 1002 rotates, the rotating disk 4 is driven to rotate through the connecting shaft 1003. When the rotating disk 4 is rotating, the core-walking machine discharges the material. After the coaxial connector is discharged, it falls to the top of the rotating disk 4 under the obstruction of the blocking plate 3. When the coaxial connector falls to the top of the rotating disk 4, the rotating rotating disk 4 will drive the coaxial connector to move. When the coaxial connector moves to the position of the guide plate 5, the guide plate 5 will guide the coaxial connector so that the coaxial connector falls to the top of the screening rack 601, thereby completing the material receiving work of the coaxial connector.
[0034] Reference Figures 1-11As shown: the bottom end of the screening structure 6 is provided with a uniform feeding structure 7; the screening structure 6 includes a screening frame 601, a fixed frame 602, a blowing frame 603, a connecting pipe 604, a support block 605, a blower 606, an impeller 607, a connecting plate 608, a support frame 609, a rotating column 6010, a fixed plate 6012 and a mounting plate 6013, the fixed frame 602 is fixed to one side of the base 1, the top of the fixed frame 602 is fixed with a support block 605, the middle position of the support block 605 is hinged with the screening frame 601, and the bottom of one end of the screening frame 601 is provided with a support frame 609; the interior of the support frame 609 is fixed with a rotating column 6010, the outer side of the rotating column 6010 is fixed with a protrusion 6011, the blower 606 is fixed to one side of the top of the base 1, the interior of the blower 606 is installed with an impeller 607, and the rear end of the blower 606 is installed with A mounting plate 6013 is provided, and a fixing plate 6012 is provided on one side of the mounting plate 6013. A connecting pipe 604 is provided on one side of the blower 606. The blowing frame 603 is fixed to the top of the screening frame 601. A connecting plate 608 is fixed at one end of the rotating column 6010. The connecting plate 608 is connected to the output shaft of the motor 9 through a belt. Two groups of support frames 609 are provided, and the two groups of support frames 609 are symmetrically distributed at both ends of the rotating column 6010. One end of the blowing frame 603 is connected to one end of the connecting pipe 604. A plurality of nozzles are provided at the bottom end of the blowing frame 603, and the plurality of nozzles are arranged at equal intervals at the bottom end of the blowing frame 603. Three groups of protrusions 6011 are provided, and the three groups of protrusions 6011 are arranged at equal intervals on the outside of the rotating column 6010. A plurality of fan blades are provided on one side of the impeller 607, and the plurality of fan blades are distributed in a ring shape on one side of the impeller 607.
[0035] Specifically, in this embodiment, when the coaxial connector falls into the interior of the screening rack 601, the motor 9 drives the connecting disk 608 to rotate through the connecting end. When the connecting disk 608 rotates, it drives the rotating column 6010 to rotate. When the rotating column 6010 rotates, the support frame 609 limits the rotating column 6010 to make it more stable during rotation. When the rotating column 6010 rotates, it drives the protrusion 6011 to rotate, so that multiple groups of protrusions 6011 will hit the bottom of one end of the screening rack 601, causing one end of the screening rack 601 to be The screening rack 601 is continuously lifted up and lowered, and because the other end of the screening rack 601 is hinged to the support block 605, the screening rack 601 vibrates, and the screening rack 601 drives the coaxial connector to vibrate as well, thereby vibrating away the debris on the surface of the coaxial connector. Since a filter is provided inside the screening rack 601, the coaxial connector remains inside the screening rack 601 during vibration, and the debris falls to the bottom of the screening rack 601, thereby completing the cleaning of the debris on the surface of the coaxial connector.
[0036] When the screening rack 601 is vibrating, the worm 1004 will drive the fixed disk 6012 to rotate, and the fixed disk 6012 will drive the mounting disk 6013 to rotate through the belt when rotating. When the mounting disk 6013 is rotating, it will drive the impeller 607 inside the hair dryer 606 to rotate at high speed. When the impeller 607 rotates, suction will be generated to transport the air to the inside of the blowing rack 603 through the connecting pipe 604. After the air is transported to the inside of the blowing rack 603, it will be ejected through the nozzle at the bottom end thereof and blown toward the surface of the coaxial connector to blow away the debris on the surface of the coaxial connector. Combined with the vibration of the coaxial connector, it can better clean the debris on the surface of the coaxial connector, thereby completing the debris cleaning work.
[0037] Reference Figures 1-11 As shown: the uniform feeding structure 7 includes a material box 701, a feeding barrel 702, a belt pulley 703, a transmission disc 704, a placement groove 705, a rotating roller 706 and a feeding port 707. The material box 701 is fixed to the bottom end of the fixed frame 602, and a feeding barrel 702 is fixed to the bottom end of the material box 701. A feeding port 707 is provided at the bottom end of the feeding barrel 702. A rotating roller 706 is installed inside the feeding barrel 702. A placement groove 705 is provided inside the rotating roller 706. A transmission disc 704 is installed at one end of the rotating roller 706. The material box 701 and the fixed frame 602 are welded together. The belt pulley 703 is fixed to the outside of the output end of the motor 9. The belt pulley 703 is connected to the transmission disc 704 through a belt. There are multiple groups of placement grooves 705, and the multiple groups of placement grooves 705 are distributed in a ring shape inside the rotating roller 706.
[0038] Specifically, in this embodiment, the coaxial connector after vibration screening will fall into the inside of the material box 701. When the coaxial connector falls into the inside of the material box 701, the motor 9 will drive the transmission disk 704 to rotate through the belt pulley 703. When the transmission disk 704 rotates, it will drive the rotating roller 706 to rotate. When the rotating roller 706 rotates, the coaxial connector inside the material box 701 will continue to fall into the inside of the placement groove 705. As the rotating roller 706 rotates, when the coaxial connector inside the placement groove 705 moves to the position of the discharge port 707, it falls. At this time, the use of the discharge port 707 can guide the coaxial connector so that the coaxial connector can fall to the top of the conveyor belt 8, so that a row of coaxial connectors can fall to the top of the conveyor belt 8 at a time, achieving a uniform dropping effect, making it more convenient for subsequent packaging and transportation, and finally completing the material connection work of the coaxial connector.
Claims
1. A material receiving device for a core-type machine used in the production of coaxial connectors, comprising a base (1) and a receiving tray (2); Its characteristics are: A receiving tray (2) is installed at the top of the base (1), a rotating tray (4) is installed inside the receiving tray (2), a conveyor belt (8) is provided on one side of the base (1), a blocking plate (3) is fixed on one side of the top of the receiving tray (2), a guide plate (5) is fixed on one end of the top of the receiving tray (2), a rotating structure (10) is provided between the base (1) and the receiving tray (2), a screening structure (6) is provided on one side of the receiving tray (2), and a uniform material discharge structure (7) is provided at the bottom end of the screening structure (6); The screening structure (6) comprises a screening frame (601), a fixing frame (602), a blowing frame (603), a connecting pipe (604), a support block (605), a blower (606), an impeller (607), a connecting plate (608), a support frame (609), a rotating column (6010), a fixing plate (6012) and a mounting plate (6013), wherein the fixing frame (602) is fixed to one side of the base (1), a support block (605) is fixed to the top end of the fixing frame (602), the screening frame (601) is hingedly connected to the middle position of the support block (605), and a support frame (609) is provided at the bottom of one end of the screening frame (601); A rotating column (6010) is fixed inside the support frame (609), a protrusion (6011) is fixed on the outside of the rotating column (6010), the hair dryer (606) is fixed to one side of the top of the base (1), an impeller (607) is installed inside the hair dryer (606), a mounting plate (6013) is installed at the rear end of the hair dryer (606), a fixing plate (6012) is provided on one side of the mounting plate (6013), a connecting pipe (604) is provided on one side of the hair dryer (606), the blowing frame (603) is fixed to the top of the screening frame (601), a connecting plate (608) is fixed at one end of the rotating column (6010), and the connecting plate (608) is connected to the output shaft of the motor (9) through a belt. The support frame (609) is provided in two groups, and the two groups of support frames (609) are symmetrical at both ends of the rotating column (6010). The blowing frame (603) is connected to one end of the connecting pipe (604) at one end, and a plurality of nozzles are arranged at the bottom end of the blowing frame (603) at equal intervals. The uniform feeding structure (7) includes a feeding box (701), a feeding barrel (702), a belt pulley (703), a transmission disc (704), a placement groove (705), a rotating roller (706) and a feeding port (70 7), the material box (701) is fixed to the bottom end of the fixed frame (602), a discharge barrel (702) is fixed to the bottom end of the material box (701), a discharge port (707) is provided at the bottom end of the discharge barrel (702), a rotating roller (706) is installed inside the discharge barrel (702), a placement groove (705) is provided inside the rotating roller (706), and a transmission disc (704) is installed at one end of the rotating roller (706).
2. The material catcher for a core-moving machine for producing coaxial connectors according to claim 1, characterized in that: The protrusions (6011) are provided in three groups, and the three groups of protrusions (6011) are arranged at equal intervals on the outside of the rotating column (6010).
3. The material catcher for a core-moving machine for producing coaxial connectors according to claim 1, characterized in that: A plurality of blades are provided on one side of the impeller (607), and the plurality of blades are distributed in a ring-like shape on one side of the impeller (607).
4. The material catcher for a core-moving machine for producing coaxial connectors according to claim 1, characterized in that: The rotating structure (10) comprises a mounting shell (1001), a worm gear (1002), a connecting shaft (1003) and a worm (1004); the mounting shell (1001) is fixed to the top of the base (1); a worm gear (1002) is installed inside the mounting shell (1001); a connecting shaft (1003) is fixed to the top of the worm gear (1002); the top of the connecting shaft (1003) is fixed to the bottom of the rotating disk (4); a worm gear (1004) is provided on one side of the worm gear (1002); one end of the worm gear (1004) is fixed to the output end of the motor (9); and the other end of the worm gear (1004) is fixed to a fixed disk (6012).
5. The material catcher for a core-moving machine for producing coaxial connectors according to claim 4, characterized in that: A plurality of teeth are provided on the outer side of the worm wheel (1002), and the worm wheel (1002) is meshed with the worm (1004).
6. The material catcher for a core-moving machine for producing coaxial connectors according to claim 1, characterized in that: The material box (701) and the fixed frame (602) are welded together, the belt pulley (703) is fixed to the outside of the output end of the motor (9), and the belt pulley (703) is connected to the transmission disc (704) via a belt.
7. The material catcher for a core-moving machine for producing coaxial connectors according to claim 1, characterized in that: The placement grooves (705) are provided in multiple groups, and the multiple groups of placement grooves (705) are distributed in a ring shape inside the rotating roller (706).
Citation Information
Patent Citations
Vibration disk dedicated to micro connector rubber case
CN107819264A
Crimping device for automobile electronic wire harness
CN118572489A