High-precision high-speed tube socket positioning sintering mold

By designing a high-precision, high-speed tube seat positioning sintering mold, and utilizing cleaning and mold closing components, the problem of dust residue inside the mold was solved, ensuring the cleanliness and molding stability of the mold, extending its service life, and reducing maintenance costs.

CN224034372UActive Publication Date: 2026-03-24BAISIJIE (ZHUHAI) TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-11
Publication Date
2026-03-24

AI Technical Summary

Technical Problem

In existing technologies, dust and ash remain inside the mold after high-speed tube sintering, leading to unstable product quality and affecting molding quality.

Method used

A high-precision, high-speed tube seat positioning sintering mold was designed, comprising a base plate, guide pillars, top plate, upper mold, lower mold, guide seat, cleaning components, and bidirectional mold closing components. The internal cleaning of the mold is achieved through air blowing pipes and electric push rods, and precise mold closing and control are achieved by combining power supply and controller.

Benefits of technology

It enables timely cleaning of the mold interior, extends mold life, reduces maintenance costs, and improves the stability and consistency of tube seat molding.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a high-precision high-speed tube socket positioning and sintering die, which belongs to the technical field of high-speed tube socket sintering and comprises a bottom plate, guide posts connected to corners at the upper end of the bottom plate, a top plate connected to the guide posts, a middle plate component arranged in the middle of the guide posts, and an upper die arranged at the lower end of the top plate. The outer end of the upper die is connected with a plurality of symmetrically-arranged guide seats A, the guide seats A are slidably connected with guide columns, a lower die is arranged on the upper portion of the bottom plate, the outer end of the lower die is connected with a plurality of symmetrically-arranged guide seats B, the guide seats B are slidably connected with guide columns, and a cleaning assembly is arranged on one side of the middle plate assembly. The cleaning assembly is used for cleaning the surfaces of the upper mold and the lower mold, and a bidirectional mold closing assembly is arranged at the outer end of one side of the bottom plate and the outer end of one side of the top plate and used for closing the upper mold and the lower mold. According to the mold cleaning device, dust and impurities in the mold can be timely and effectively cleaned, and the cleanliness in the mold is ensured, so that the service life of the mold is prolonged, and the maintenance cost is reduced.
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Description

TECHNICAL FIELD

[0001] The utility model relates to high -speed rate pipe base sintering technical field, concretely is a kind of high-precision high -speed rate pipe base positioning sintering mould. BACKGROUND

[0002] High -speed rate pipe base is usually referred to in electronic, communication etc. field, for connecting and fixed electronic component or device, and can support high -speed data transmission a kind of connecting component, it has good electrical performance and mechanical performance, can keep stable connection and low signal loss under high frequency, high -speed signal transmission environment, to ensure the accuracy and high efficiency of data transmission, generally by cover, pin, ground pin and glass insulator are formed by sintering;

[0003] In prior art, there is the problem that after sintering action is completed on high -speed rate pipe base, residue and dust after sintering action exist in mould, product quality is unstable when sintering action is subsequently carried out on high -speed rate pipe base, finally lead to the result that the quality of formed high -speed rate pipe base declines, for this, we propose a kind of high-precision high -speed rate pipe base positioning sintering mould. UTILITY MODEL CONTENT

[0004] The utility model aims at providing a kind of high-precision high -speed rate pipe base positioning sintering mould to solve the problems raised in the above background.

[0005] To achieve the above object, the utility model provides the following technical scheme: a kind of high-precision high -speed rate pipe base positioning sintering mould, including bottom plate, each corner of bottom plate upper end is connected with guide pillar, the guide pillar is connected with top plate, middle part of the guide pillar is provided with middle plate assembly, the top plate lower end is provided with upper mould, the upper mould outer end is connected with multiple symmetrically arranged guide seat A, the guide seat A is slidably connected guide pillar, the bottom plate upper portion is provided with lower mould, the lower mould outer end is connected with multiple symmetrically arranged guide seat B, the guide seat B is slidably connected guide pillar, the middle plate assembly one side is provided with cleaning component, the cleaning component is used to the surface cleaning action of upper mould and lower mould, the bottom plate and top plate one side outer end are provided with two-way mould closing assembly, the two-way mould closing assembly is used to the folding of upper mould and lower mould, the cleaning component includes air pipe, the air pipe is rotatably connected with air pipe B, the air pipe B outer circumferential side is connected with mobile contact ring, the mobile contact ring lower end inner side is connected with the output end of electric push rod, the fixed end of electric push rod is connected with T-shaped plate.

[0006] Preferably, the T-shaped plate is provided with an air passing box away from one end of the middle plate assembly, the outer end of the air passing box is provided with a filter screen, two symmetrical air blowers are arranged on the air passing box, a wind pipe A is arranged on each of the air blowers, a hose is connected to the wind pipe A, a wind pipe B is connected to the hose, a stepping motor B is connected to the outer circumferential side of the wind pipe B, a rotating shaft is connected to the output end of the stepping motor B, a gear is connected to the rotating shaft, and a gear ring is meshingly connected to the gear.

[0007] Preferably, the bidirectional mold closing assembly comprises mounting blocks connected to the side ends of the bottom plate and the top plate, a sliding groove is formed in the inner end of the mounting block, a mounting frame is connected to the upper end of the mounting block, a stepping motor A is arranged on the mounting frame, a rotating rod is connected to the output end of the stepping motor A, two symmetrical screw grooves are formed in the outer circumferential side of the rotating rod, two symmetrical sliding plates are screw-connected to the rotating rod, the upper mold and the lower mold are respectively connected to the sliding plates, and the sliding plates are slidingly connected to the sliding groove.

[0008] Preferably, the guide column is provided with guide seats C in the middle part, and a middle plate assembly is connected between a plurality of the guide seats C.

[0009] Preferably, the top plate is provided with a power supply in the middle part of the upper end, and the air passing box is provided with a controller at the front end.

[0010] Preferably, the upper mold is arranged on the upper part of the middle plate assembly, and the lower mold is arranged on the lower part of the middle plate assembly.

[0011] Preferably, the rotating rod is rotatably connected to the mounting block through a bearing.

[0012] Compared with the prior art, the utility model has the advantages that:

[0013] 1. The utility model is provided with a bottom plate, a guide column, a top plate, an upper mold, a guide seat A, a lower mold, a guide seat B, a middle plate assembly, a cleaning assembly and a guide seat C, and can timely and effectively clean dust and impurities in the mold, ensure the cleanliness of the mold, prolong the service life of the mold and reduce the maintenance cost.

[0014] 2. The bidirectional mold closing assembly can realize precise and rapid mold closing operation, ensure that the parts of the mold are tightly attached, and improve the stability and consistency of the pipe base forming.

[0015] 3. Set with power supply and controller, facilitate the operation of the mold control and monitoring, timely discovery and solve the problem, ensure the continuity and stability of production. BRIEF DESCRIPTION OF DRAWINGS

[0016] Figure 1 It is whole structure schematic view of the utility model;

[0017] Figure 2 It is front view structure schematic view of the utility model;

[0018] Figure 3 It is cleaning assembly structure schematic view of the utility model;

[0019] Figure 4 It is the utility model Figure 3 It is the utility model middle A place enlarged structure schematic view;

[0020] Figure 5 It is two-way mold closing assembly structure schematic view of the utility model;

[0021] Figure 6 It is middle plate assembly structure schematic view of the utility model.

[0022] In the drawing: 1, bottom plate;2, guide column;3, top plate;4, power supply;5, upper mold;6, guide seat A;7, lower mold;8, guide seat B;9, two-way mold closing assembly;901, mounting block;902, sliding groove;903, mounting frame;904, stepper motor A;905, rotating rod;906, sliding plate;10, middle plate assembly;1001, middle plate body;1002, cover positioning groove;1003, pin positioning groove A;1004, pin positioning groove B;1005, glass insulator body;11, cleaning assembly;1101, wind box;1102, filter screen;1103, controller;1104, air blower;1105, air pipe A;1106, hose;1107, air pipe B;1108, electric push rod;1109, moving contact ring;1110, stepper motor B;1111, rotating shaft;1112, gear;1113, gear ring;1114, blowing pipe;1115, T-shaped plate;12, guide seat C. DETAILED DESCRIPTION

[0023] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the protection scope of the utility model.

[0024] Please refer to Figures 1-6The utility model provides a technical scheme: a high accuracy high -speed rate pipe base positioning sintering mould, including bottom plate 1, each corner of bottom plate 1 upper end is connected with guide pillar 2, and guide pillar 2 is connected with top plate 3, and the middle part of guide pillar 2 is provided with middle plate subassembly 10, and top plate 3 lower extreme is provided with upper mould 5, and upper mould 5 outer end is connected with multiple symmetric setting guide seat A 6, and guide seat A 6 slidingly connects guide pillar 2, and bottom plate 1 upper part is provided with lower mould 7, and lower mould 7 outer end is connected with multiple symmetric setting guide seat B 8, and guide seat B 8 slidingly connects guide pillar 2, and middle plate subassembly 10 one side is provided with cleaning subassembly 11, and cleaning subassembly 11 is used for the surface cleaning action of upper mould 5 and lower mould 7, and bottom plate 1 and top plate 3 one side outer end are provided with two -way mould closing subassembly 9, and two -way mould closing subassembly 9 is used for the folding of upper mould 5 and lower mould 7, and cleaning subassembly 11 includes air -blowing pipe 1114, and air -blowing pipe 1114 rotatably connects with air pipe B 1107, and air pipe B 1107 outer circumferential side is connected with mobile contact ring 1109, and mobile contact ring 1109 lower end inboard is connected with electric push rod 1108 output, and electric push rod 1108 fixed end is connected with T-shaped plate 1115.

[0025] Specifically, the T-shaped plate 1115 is provided with an air passing box 1101 at one end away from the middle plate assembly 10, the air passing box 1101 is provided with a filter screen 1102 at an outer end, the air passing box 1101 is provided with two symmetrically arranged air blowers 1104, each air blower 1104 is provided with an air pipe A 1105, the air pipe A 1105 is connected with a hose 1106, the hose 1106 is connected with an air pipe B 1107, the air pipe B 1107 is connected with a step motor B 1110 at an outer circumferential side, the step motor B 1110 is connected with a rotating shaft 1111 at an output end, the rotating shaft 1111 is connected with a gear 1112, the gear 1112 is connected with a gear ring 1113 in a meshing manner, the gear ring 1113 is provided with a blow pipe 1114 penetrating through an end surface; the bidirectional mold closing assembly 9 comprises mounting blocks 901 connected to side ends of the bottom plate 1 and the top plate 3, the mounting blocks 901 are provided with sliding grooves 902 at inner ends, the mounting blocks 901 are connected with mounting racks 903 at upper ends, the mounting racks 903 are provided with step motors A 904, the step motors A 904 are connected with rotating rods 905 at output ends, the rotating rods 905 are provided with two symmetrically arranged screw grooves at an outer circumferential side, the rotating rods 905 are screw-connected with two symmetrically arranged sliding plates 906, the sliding plates 906 are connected with the upper mold 5 and the lower mold 7 respectively, and the sliding plates 906 are slidingly connected with the sliding grooves 902; the guide columns 2 are provided with guide seats C 12 at middle portions, the guide seats C 12 are connected with the middle plate assembly 10, the middle plate assembly 10 comprises a middle plate body 1001 connected to the guide seats C 12, the middle plate body 1001 is provided with a plurality of evenly distributed cover body positioning grooves 1002 at an upper end, the cover body positioning grooves 1002 are connected with pin positioning grooves A 1003 and pin positioning grooves B 1004 provided on the middle plate body 1001, the pin positioning grooves B 1004 are arranged between two symmetrically arranged pin positioning grooves A 1003, and the pin positioning grooves B 1004 are connected with glass insulators 1005 at inner walls; the top plate 3 is provided with the power supply 4 at a middle portion of an upper end, and the air passing box 1101 is provided with a controller 1103 at a front end; the upper mold 5 is arranged on an upper portion of the middle plate assembly 10, and the lower mold 7 is arranged on a lower portion of the middle plate assembly 10; the rotating rod 905 is rotatably connected with the mounting block 901 through a bearing.

[0026] Working principle: when carrying out the pipe base positioning sintering, first, the pipe base parts to be sintered are placed on the middle plate assembly 10, and accurate positioning is carried out through the cover positioning groove 1002, the pin positioning groove A 1003 and the pin positioning groove B 1004 on the middle plate body 1001, then the step motor A 904 in the bidirectional mold closing assembly 9 is started, driving the rotating rod 905 to rotate, due to the two symmetrical thread grooves on the outer circumferential side of the rotating rod 905, the two sliding plates 906 move towards each other along the sliding groove 902, the upper die 5 and the lower die 7 connected respectively move towards the middle plate assembly 10, realizing the mold closing operation, during the sintering process, the power supply 4 provides power support for the operation of the whole mold, the controller 1103 controls and adjusts the operation of each part, after the sintering is completed, the step motor A 904 in the bidirectional mold closing assembly 9 reverses rotation, driving the upper die 5 and the lower die 7 to separate, taking out the sintered pipe base, then the air blower 1104 in the cleaning assembly 11 is started, wind is delivered to the air blowing pipe 1114 through the air pipe A 1105, the hose 1106 and the air pipe B 1107, the electric push rod 1108 can adjust the position of the air blowing pipe 1114, the step motor B 1110 drives the rotating shaft 1111, the gear 1112 and the gear ring 1113 to rotate, so as to adjust the blowing angle of the air blowing pipe 1114, and the inside of the mold is cleaned, preventing impurities from affecting the sintering effect, the utility model realizes that the dust and impurities in the mold can be cleaned in time and effectively, ensures the cleanliness of the inside of the mold, thereby prolonging the service life of the mold and reducing the maintenance cost.

[0027] Although the embodiments of the utility model have been shown and described, it can be understood by those skilled in the art that various changes, modifications, replacements and variations can be made to these embodiments without departing from the principles and spirits of the utility model, the scope of the utility model is defined by the appended claims and their equivalents.

Claims

1. A high-precision, high-speed tube seat positioning sintering mold, comprising a base plate (1), characterized in that: Each corner of the upper end of the base plate (1) is connected to a guide post (2), the guide post (2) is connected to a top plate (3), a middle plate assembly (10) is provided in the middle of the guide post (2), an upper mold (5) is provided at the lower end of the top plate (3), a plurality of symmetrically arranged guide seats A (6) are connected to the outer end of the upper mold (5), the guide seats A (6) are slidably connected to the guide post (2), a lower mold (7) is provided on the upper part of the base plate (1), a plurality of symmetrically arranged guide seats B (8) are connected to the outer end of the lower mold (7), the guide seats B (8) are slidably connected to the guide post (2), a cleaning assembly (11) is provided on one side of the middle plate assembly (10), the cleaning assembly ( 11) Used for cleaning the surfaces of the upper mold (5) and the lower mold (7). A two-way mold closing assembly (9) is provided on the outer side of one side of the bottom plate (1) and the top plate (3). The two-way mold closing assembly (9) is used for closing the upper mold (5) and the lower mold (7). The cleaning assembly (11) includes a blower pipe (1114). The blower pipe (1114) is rotatably connected to a duct B (1107). A movable contact ring (1109) is connected to the outer periphery of the duct B (1107). The lower inner side of the movable contact ring (1109) is connected to the output end of an electric push rod (1108). The fixed end of the electric push rod (1108) is connected to a T-shaped plate (1115).

2. The high-precision, high-speed tube seat positioning sintering mold according to claim 1, characterized in that: The T-shaped plate (1115) is provided with an air box (1101) at the end away from the middle plate assembly (10). A filter screen (1102) is provided at the outer end of the air box (1101). Two symmetrically arranged blowers (1104) are provided on the air box (1101). Each blower (1104) is provided with a duct A (1105). The duct A (1105) is connected to a hose (1106). The hose (1106) is connected to a duct B (1107). A stepper motor B (1110) is connected to the outer periphery of the duct B (1107). The output end of the stepper motor B (1110) is connected to a rotating shaft (1111). The rotating shaft (1111) is connected to a gear (1112). The gear (1112) is meshed with a gear ring (1113). A blower pipe (1114) is provided through the end face of the gear ring (1113).

3. The high-precision, high-speed tube seat positioning sintering mold according to claim 1, characterized in that: The bidirectional mold assembly (9) includes a mounting block (901) connected to the side ends of the base plate (1) and the top plate (3). The mounting block (901) has a groove (902) at its inner end. The mounting block (901) is connected to a mounting bracket (903) at its upper end. A stepper motor A (904) is mounted on the mounting bracket (903). A rotating rod (905) is connected to the output end of the stepper motor A (904). Two symmetrically arranged threaded grooves are opened on the outer periphery of the rotating rod (905). The rotating rod (905) is threadedly connected to two symmetrically arranged sliding plates (906). The sliding plates (906) are respectively connected to the upper mold (5) and the lower mold (7). The sliding plates (906) are slidably connected to the groove (902).

4. The high-precision, high-speed tube seat positioning sintering mold according to claim 1, characterized in that: The guide post (2) is provided with a guide seat C (12) in the middle. A middle plate assembly (10) is connected between multiple guide seats C (12). The middle plate assembly (10) includes a middle plate body (1001) connected to the guide seat C (12). Multiple evenly distributed cover positioning grooves (1002) are opened at the upper end of the middle plate body (1001). The cover positioning grooves (1002) are connected to pin positioning grooves A (1003) and B (1004) opened on the middle plate body (1001). The pin positioning grooves B (1004) are arranged between two symmetrically arranged pin positioning grooves A (1003). A glass insulator body (1005) is connected to the inner wall of the pin positioning grooves B (1004).

5. The high-precision, high-speed tube seat positioning sintering mold according to claim 2, characterized in that: A power supply (4) is provided at the middle of the upper end of the top plate (3), and a controller (1103) is provided at the front end of the air box (1101).

6. The high-precision, high-speed tube seat positioning sintering mold according to claim 1, characterized in that: The upper mold (5) is located on the upper part of the middle plate assembly (10), and the lower mold (7) is located on the lower part of the middle plate assembly (10).

7. The high-precision, high-speed tube seat positioning sintering mold according to claim 3, characterized in that: The rotating rod (905) is rotatably connected to the mounting block (901) via a bearing.