T-shaped three-way pipe shaping machine

By designing an automated T-shaped tee pipe shaping machine, using rotating discs and multiple components to achieve automatic loading, drilling, shaping, flat opening and other processes, the problems of low processing efficiency and large labor consumption in the existing technology are solved, and an efficient and automated processing process is achieved.

CN222971497UActive Publication Date: 2025-06-13FOSHAN SHANGPIN YOUJIA TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202422116363.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-29
Publication Date
2025-06-13
Estimated Expiration
2034-08-29

AI Technical Summary

Technical Problem

The existing T-shaped tee pipe processing process lacks assembly line operations, resulting in low work efficiency and manual transfer, which consumes manpower.

Method used

A T-shaped tee pipe shaping machine is designed, and a vertically arranged rotating disk is used to perform the feeding of the station. Each station is equipped with a vibrating disk, a feeding component, a drilling component, a shaping component and a flat port component to realize automatic loading, drilling, a shaping, a flat port and other actions.

Benefits of technology

Through automated processing processes, the processing efficiency of T-shaped tee pipes is improved, manpower participation is reduced, and production efficiency and product quality are improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The T-shaped three-way pipe shaping machine comprises a vibrating disc, a feeding assembly, a rotating disc assembly, clamp assemblies, a drilling-through assembly, a shaping assembly and a flattening assembly, the rotating disc assembly is provided with a rotating disc which is vertically arranged and can rotate, and the edge portion of the rotating disc is provided with a plurality of evenly-distributed clamp assemblies; the feeding station, the shaping station and the opening flattening station are sequentially arranged in the rotating direction of the rotating disc, automatic feeding, drilling through, shaping, opening flattening and other actions are achieved, the working efficiency is improved, and manpower is reduced.
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Description

Technical Field

[0001] The utility model relates to the technical field of pipe processing, in particular to a T-shaped three-way pipe shaping machine. Background Art

[0002] After the T-shaped three-way pipe is formed, it needs to be drilled, shaped and flattened. At present, each processing process is carried out by corresponding processing equipment, and there is no assembly line operation, so the work efficiency is low. Moreover, after each process is completed, manual transfer is required, which consumes manpower. Content of the Utility Model

[0003] The purpose of the utility model is to provide a T-shaped three-way pipe shaping machine, which uses a vertically arranged rotating disk to execute the feeding of the workstations. Each workstation is correspondingly provided with a vibrating disk, a feeding component, a drilling component, a shaping component and a flattening component to realize automatic feeding, drilling, shaping, flattening and other actions, improve work efficiency and reduce manpower.

[0004] To achieve the above purpose, the utility model adopts the following technical solutions:

[0005] A T-shaped three-way pipe shaping machine includes a vibrating disk, a feeding component, a turntable component, a fixture component, a drilling component, a shaping component and a flattening component;

[0006] The turntable component is provided with a vertically arranged and rotatable rotating disk, and a plurality of uniformly distributed fixture components are arranged at the edge of the rotating disk;

[0007] A feeding workstation, a shaping workstation and a flattening workstation are arranged in sequence along the rotation direction of the rotating disk;

[0008] The feeding workstation is provided with a feeding component, and the feeding component is connected with the vibrating disk;

[0009] The feeding workstation is also provided with a drilling component;

[0010] The shaping workstation is provided with a shaping component;

[0011] The flattening workstation is provided with a flattening component.

[0012] In some embodiments, the fixture component includes a first clamping block, a second clamping block and a lever cylinder;

[0013] The first clamping block is provided with a first groove body, the second clamping block is provided with a second groove body, and the first groove body and the second groove body form a space capable of accommodating the T-shaped three-way pipe;

[0014] The edge of the rotating disk is provided with a first notch and a second notch, and the end of the second notch is communicated with the first notch;

[0015] The lever cylinder is disposed in the first notch, and the first clamping block and the second clamping block are located in the second notch. Among them, the first clamping block is connected to the output end of the lever cylinder, and the second clamping block is connected to the rotating disk.

[0016] In some embodiments, the feeding assembly includes a first plate body and a second plate body, and the first plate body is disposed above the second plate body;

[0017] The first plate body is provided with a through port corresponding to the vertical conveying channel of the vibrating disk;

[0018] The second plate body is provided with a third groove corresponding to the through port, and the third groove is used for placing the T-shaped three-way pipe;

[0019] A spring is provided between the first plate body and the second plate body;

[0020] The first plate body is connected to the first driving member.

[0021] In some embodiments, the feeding assembly further includes a guide seat, and the top of the guide seat is provided with a guide groove that cooperates with the first plate body;

[0022] The feeding assembly further includes a first guide rail and a first slider. The first guide rail is connected to the guide seat, and the first slider is connected to the second plate body.

[0023] In some embodiments, the drilling-through assembly includes a drill bit, a first motor, and a first hydraulic power head;

[0024] The first motor drives the drill bit to rotate, and the first motor is disposed on the top of the first hydraulic power head;

[0025] The first hydraulic power head drives the drill bit to move axially.

[0026] In some embodiments, the drilling-through assembly further includes a first position adjusting mechanism;

[0027] The first position adjusting mechanism includes a first wedge block and a second wedge block. The first wedge block is connected to the first hydraulic power head, and the second wedge block is connected to the chassis;

[0028] The inclined surface of the first wedge block is provided with a convex rail, and the inclined surface of the second wedge block is provided with a concave rail;

[0029] The flange of the concave rail is provided with a first limiting member;

[0030] One side of the second wedge block is provided with a vertical plate, and the vertical plate is provided with a second limiting member.

[0031] In some embodiments, the shaping assembly includes a shaping die and a second driving member, and the second driving member is drivingly connected to the shaping die.

[0032] In some embodiments, the flat-mouth component includes a flat-mouth cutter, which includes a cutting blade and a positioning post, and the cutting blade is provided on one side of the positioning post.

[0033] In some embodiments, the flat-mouth component further includes a second motor and a second hydraulic power head;

[0034] The second motor drives the flat-mouth cutter to rotate, and the second motor is provided on the top of the second hydraulic power head;

[0035] The second hydraulic power head drives the flat-mouth cutter to move axially.

[0036] In some embodiments, the flat-mouth component further includes a second position adjustment mechanism, which can adjust the height position of the flat-mouth cutter.

[0037] The beneficial effects of the present utility model: The shaping machine uses a vertically arranged rotating disk to perform the feeding of the workstations. Each workstation is correspondingly provided with a vibrating disk, a feeding component, a drilling-through component, a shaping component and a flat-mouth component, realizing automatic feeding, drilling-through, shaping, flat-mouth and other actions, improving work efficiency and reducing labor. Description of the Drawings

[0038] Figure 1 It is a structural diagram of the T-shaped tee of the present utility model;

[0039] Figure 2 It is a structural diagram of the shaping machine of the present utility model;

[0040] Figure 3 It is a top view of the shaping machine of the present utility model;

[0041] Figure 4 It is a structural diagram of the turntable assembly of the present utility model;

[0042] Figure 5 It is a structural diagram of the turntable assembly of the present utility model;

[0043] Figure 6 It is a structural diagram of the rotating disk and the fixture assembly of the present utility model;

[0044] Figure 7 It is a structural diagram of the vibrating disk of the present utility model;

[0045] Figure 8 It is a structural diagram of the feeding component and the drilling-through component of the present utility model;

[0046] Figure 9 It is a structural diagram of the feeding component of the present utility model;

[0047] Figure 10 It is an exploded view of the feeding component of the present utility model;

[0048] Figure 11 Structural diagram of the first position adjustment mechanism of the present utility model;

[0049] Figure 12 Structural diagram of the shaping component of the present utility model;

[0050] Figure 13 Structural diagram of the flat mouth component of the present utility model;

[0051] Figure 14 Structural diagram of the flat mouth cutter of the present utility model;

[0052] Wherein: 1 - vibrating disk; 11 - horizontal conveying channel; 12 - vertical conveying channel; 2 - feeding component; 21 - first plate body; 210 - through port; 22 - second plate body; 220 - third groove body; 23 - spring; 24 - first driving member; 25 - guiding seat; 251 - guiding groove; 261 - first guide rail; 262 - first slider; 3 - turntable component; 3a - feeding station; 3b - shaping station; 3c - flat mouth station; 31 - rotating disk; 311 - first notch; 312 - second notch; 33 - rotary diverter valve; 34 - gantry; 4 - fixture component; 41 - first clamping block; 410 - first groove body; 42 - second clamping block; 420 - second groove body; 43 - lever cylinder; 5 - drilling through component; 51 - drill bit; 52 - first motor; 53 - first oil pressure power head; 54 - first position adjustment mechanism; 541 - first wedge block; 5410 - convex rail; 542 - second wedge block; 5420 - concave rail; 543 - vertical plate; 544 - first limiting member; 545 - second limiting member; 6 - shaping component; 61 - shaping die; 62 - second driving member; 7 - flat mouth component; 71 - flat mouth cutter; 711 - cutting tool; 712 - positioning column; 72 - second motor; 73 - second oil pressure power head; 74 - second position adjustment mechanism; 8 - chassis; 9 - T-shaped three-way pipe; 9a - first pipe body; 9b - second pipe body; 9c - third pipe body. Detailed implementation manners

[0053] The present utility model will be further described in detail below with reference to the accompanying drawings.

[0054] Refer to Figures 1 to 3 , a T-shaped three-way pipe shaping machine, used for automatically shaping and processing the T-shaped three-way pipe 9, and the T-shaped three-way pipe 9 is composed of a first pipe body 9a, a second pipe body 9b and a third pipe body 9c.

[0055] The shaping machine includes a vibrating disk 1, a feeding component 2, a turntable component 3, a fixture component 4, a drilling through component 5, a shaping component 6 and a flat mouth component 7, and the above components are arranged above the chassis 8;

[0056] The turntable assembly 3 is provided with a vertically arranged and rotatable rotating disk 31, and a plurality of uniformly distributed fixture assemblies 4 are arranged at the edge of the rotating disk 31;

[0057] In the rotation direction of the rotating disk 31, a loading station 3a, a shaping station 3b and a flat-mouth station 3c are successively arranged, and the intervals between the stations can be set at 90 degrees;

[0058] A loading component 2 is correspondingly arranged at the loading station 3a, and the loading component 2 is connected with the vibrating disk 1;

[0059] A drilling-through component 5 is also correspondingly arranged at the loading station 3a;

[0060] A shaping component 6 is correspondingly arranged at the shaping station 3b;

[0061] A flat-mouth component 7 is correspondingly arranged at the flat-mouth station 3c.

[0062] The vibrating disk 1 orderly conveys the T-shaped three-way pipe 9 to the loading component 2;

[0063] The loading component 2 pushes the T-shaped three-way pipe 9 into the fixture assembly 4 at the loading station 3a, and then, the fixture assembly 4 clamps the T-shaped three-way pipe 9;

[0064] The drilling-through component 5 drills through the third pipe body 9c of the T-shaped three-way pipe 9. Since the third pipe body 9c is blocked and is a blind hole structure when the T-shaped three-way pipe 9 is formed, it needs to be drilled through before shaping;

[0065] The rotating disk 31 rotates, and the T-shaped three-way pipe 9 feeds to the shaping station 3b, and the shaping component 6 shapes the three pipe bodies of the T-shaped three-way pipe 9;

[0066] Then, the T-shaped three-way pipe 9 feeds to the flat-mouth station 3c, and the flat-mouth component 7 performs flat-mouth processing on the pipe orifices of the three pipe bodies of the T-shaped three-way pipe 9;

[0067] Finally, the T-shaped three-way pipe 9 is unloaded.

[0068] Therefore, this shaping machine realizes the automatic processing procedures such as loading, drilling through, shaping, and flat-mouth of the T-shaped three-way pipe 9, improves work efficiency and reduces manpower. Among them, the rotating disk 31 is vertically arranged, so that after the T-shaped three-way pipe 9 is clamped, the three pipe bodies all face outwards, which is more convenient for the drilling-through component 5, the shaping component 6 and the flat-mouth component 7 to perform corresponding processing actions, convenient for the assembly and layout of each component, and makes the structure of the whole machine more compact.

[0069] Reference Figure 4 And Figure 5, the rotating disk 31 is rotatably connected to the gantry 34; the turntable assembly 3 further includes a rotating motor and a rotating flow divider valve 33. The rotating motor drives the rotating disk 31 to rotate, and the rotating flow divider valve 33 can improve the rotation accuracy of the rotating disk 31. The rotating motor and the rotating flow divider valve 33 can be respectively arranged on both sides of the rotating disk 31.

[0070] Reference Figure 6 , the fixture assembly 4 includes a first clamping block 41, a second clamping block 42 and a lever cylinder 43;

[0071] The first clamping block 41 is provided with a first groove 410, and the second clamping block 42 is provided with a second groove 420. The first groove 410 and the second groove 420 form a space capable of accommodating the T-shaped tee 9, so as to clamp the T-shaped tee 9;

[0072] The edge part of the rotating disk 31 is provided with a first notch 311 and a second notch 312, and the end of the second notch 312 is communicated with the end of the first notch 311; the first notch 311 and the second notch 312 generally form an "L"-shaped space;

[0073] The lever cylinder 43 is arranged in the first notch 311. The lever cylinder 43 can be fixed by a bracket and screws. The first clamping block 41 and the second clamping block 42 are located in the second notch 312;

[0074] Among them, the first clamping block 41 is connected to the output end of the lever cylinder 43. The lever cylinder 43 converts the telescopic movement of the cylinder through a lever structure, so as to drive the first clamping block 41 to move in a swinging manner, thereby realizing the opening and closing of the fixture. The lever cylinder 43 is a prior art and is only applied here;

[0075] The second clamping block 42 is connected to the rotating disk 31. The second clamping block 42 can be provided with lugs and is fixed to the rotating disk 31 by screws;

[0076] Thus, by providing the first notch 311 and the second notch 312 on the rotating disk 31, the fixture assembly 4 is cleverly assembled on the edge part of the rotating disk 31, with a beautiful and compact structure.

[0077] Reference Figure 7 , the vibrating disk 1 is provided with a horizontal conveying channel 11 and a vertical conveying channel 12. The vibrating disk 1 conveys the T-shaped tee 9 to the feeding assembly 2 in an orderly manner, and through the vertical conveying channel 12, the T-shaped tee 9 falls one by one onto the feeding assembly 2. Among them, the vertical conveying channel 12 has an inner cavity shape that matches the T-shaped tee 9.

[0078] Reference Figures 8 to 10 , the feeding assembly 2 includes a first plate body 21 and a second plate body 22, and the first plate body 21 is arranged above the second plate body 22;

[0079] The first plate body 21 is provided with a through port 210 corresponding to the vertical conveying channel 12 of the vibrating disk 1;

[0080] The second plate body 22 is provided with a third groove body 220 corresponding to the through port 210, and the third groove body 220 is used for placing the T-shaped three-way pipe 9;

[0081] A spring 23 is provided between the first plate body 21 and the second plate body 22;

[0082] The first plate body 21 is connected to a first driving member 24. The first driving member 24 can be a mechanism such as a cylinder, a hydraulic cylinder or a lead screw, etc., and preferably a cylinder;

[0083] Thus, after the T-shaped three-way pipe 9 falls into the third groove body 220, the first driving member 24 drives the first plate body 21 and the second plate body 22 to move closer to the fixture assembly 4 at the same time. When the second plate body 22 abuts against the fixture assembly 4, the second plate body 22 stops moving. Since a spring 23 is provided between the first plate body 21 and the second plate body 22, at this time, the first plate body 21 continues to move under the drive of the first driving member 24, the spring 23 is compressed, and the first plate body 21 pushes the T-shaped three-way pipe 9 into the fixture assembly 4 through the escort of the through port 210, thereby realizing the feeding of the T-shaped three-way pipe 9. Finally, the first plate body 21 and the second plate body 22 are reset.

[0084] Therefore, the first plate body 21 and the second plate body 22 form a double-layer structure. The first stage: the first plate body 21 and the second plate body 22 move closer to the fixture assembly 4 synchronously; the second stage: the second plate body 22 does not move, and the first plate body 21 continues to move, and then pushes the T-shaped three-way pipe 9 into the fixture assembly 4.

[0085] The feeding assembly 2 further includes a guide seat 25, and the top of the guide seat 25 is provided with a guide groove 251 that cooperates with the first plate body 21;

[0086] The feeding assembly 2 further includes a first guide rail 261 and a first slider 262. The first guide rail 261 is connected to the guide seat 25, and the first slider 262 is connected to the second plate body 22. Thereby improving the movement accuracy and stability of the first plate body 21 and the second plate body 22.

[0087] Reference Figure 8 , the drilling-through assembly 5 includes a drill bit 51, a first motor 52 and a first hydraulic power head 53;

[0088] The first motor 52 drives the drill bit 51 to rotate, and the first motor 52 is arranged on the top of the first hydraulic power head 53;

[0089] The first hydraulic power head 53 drives the drill bit 51 to move along the axial direction.

[0090] The first motor 52 can drive the drill bit 51 through transmission structures such as gears, belts, and rotating shafts. The first hydraulic power head 53 drives the drill bit 51 to feed along the axial direction through the oil pressure. The oil pressure is used as the power for feeding, and the power is stronger and more stable. Among them, the first motor 52 and the first hydraulic power head 53 are both existing technologies and are only applied here.

[0091] refer to Figure 11 , the drilling assembly 5 further includes a first position adjustment mechanism 54 for adjusting the height position of the drill bit 51;

[0092] The first position adjustment mechanism 54 includes a first wedge block 541 and a second wedge block 542. The first wedge block 541 is connected to the first hydraulic power head 53, and the second wedge block 542 is connected to the bottom frame 8.

[0093] The inclined surface of the first wedge block 541 is provided with a convex track 5410, and the inclined surface of the second wedge block 542 is provided with a concave track 5420; the convex track 5410 cooperates with the concave track 5420 to achieve guidance and limit, thereby improving the adjustment accuracy;

[0094] The flange of the concave rail 5420 is provided with a first stopper 544;

[0095] A vertical plate 543 is disposed on one side of the second wedge block 542, and a second stopper 545 is disposed on the vertical plate 543. The first stopper 544 and the second stopper 545 can both be screws.

[0096] Thus, the first wedge block 541 is pushed to move along the inclined surface, so that the position of the drill bit 51 can be adjusted. When the position is adjusted to the desired position, the first stopper 544 and the second stopper 545 are rotated to cause the stopper to contact the first wedge block 541, and the position of the first wedge block 541 is limited by friction. There can be multiple first stoppers 544.

[0097] refer to Figure 12 The shaping assembly 6 includes a shaping mold 61 and a second driving member 62, and the second driving member 62 is drivingly connected to the shaping mold 61. The second driving member 62 can be a cylinder, a hydraulic cylinder, a screw rod or the like, preferably a hydraulic cylinder.

[0098] There are three shaping components 6, which correspond to the first tube body 9a, the second tube body 9b and the third tube body 9c of the T-shaped three-way pipe 9, respectively, to shape the tube openings of the three tube bodies, which can be expansion shaping or shrinking shaping, which is selected according to the processing conditions. When expanding shaping, an expansion mold is selected, and when shrinking shaping, a shrinking mold is selected. The three shaping components 6 can be arranged on the top and both sides of the gantry 34.

[0099] refer to Figure 13 and Figure 14, the flat - mouth component 7 includes a flat - mouth cutter 71. The flat - mouth cutter 71 includes a cutting blade 711 and a positioning post 712, and the cutting blade 711 is provided on one side of the positioning post 712.

[0100] Thus, when performing flat - mouth machining, the positioning post 712 is inserted into the pipe body of the T - shaped tee 9. Then, the flat - mouth cutter 71 rotates, and the cutting blade 711 makes a circular motion to cut the pipe orifice, thereby flattening the pipe orifice. Among them, the positioning post 712 can limit the pipe body, reducing the vibration, displacement, etc. of the pipe body during the cutting process, thereby improving the cutting accuracy and quality.

[0101] Reference Figure 13 , the flat - mouth component 7 further includes a second motor 72 and a second hydraulic power head 73;

[0102] The second motor 72 drives the flat - mouth cutter 71 to rotate, and the second motor 72 is provided on the top of the second hydraulic power head 73;

[0103] The second hydraulic power head 73 drives the flat - mouth cutter 71 to move axially.

[0104] The second motor 72 can drive the flat - mouth cutter 71 through transmission structures such as gears, belts, and rotating shafts. The second hydraulic power head 73 drives the flat - mouth cutter 71 to make a feeding motion axially through hydraulic pressure. Using hydraulic pressure as the feeding power, the power is stronger and more stable. Among them, both the second motor 72 and the second hydraulic power head 73 are existing technologies and are only applied here.

[0105] The flat - mouth component 7 further includes a second position - adjusting mechanism 74, and the second position - adjusting mechanism 74 can adjust the height position of the flat - mouth cutter 71. Among them, the structure of the second position - adjusting mechanism 74 is basically the same as or similar to that of the first position - adjusting mechanism 54.

[0106] There are three flat - mouth components 7, corresponding to the first pipe body 9a, the second pipe body 9b, and the third pipe body 9c of the T - shaped tee 9 respectively, for performing flat - mouth machining on the orifices of the three pipe bodies.

[0107] This shaping machine orderly transports the T - shaped tee 9 to the feeding component 2 through the vibrating bowl 1. The feeding component 2 pushes the T - shaped tee 9 to the fixture component 4 at the feeding station 3a. After the fixture component 4 clamps the T - shaped tee 9, the rotating disk 31 rotates, feeding the T - shaped tee 9 to the shaping station 3b, and the shaping component 6 performs the shaping action. Then, the T - shaped tee 9 is fed to the flat - mouth station 3c, and the flat - mouth component 7 performs the flat - mouth action. Finally, the T - shaped tee 9 is discharged, thereby realizing automated processing and improving the processing efficiency and quality.

[0108] The above are only some embodiments of the present utility model. For those of ordinary skill in the art, without departing from the creative concept of the present utility model, several modifications and improvements can still be made, and these all fall within the protection scope of the utility model.

Claims

1. T-shaped three-way pipe shaping machine, characterized in that: It comprises a vibration plate (1), a feeding assembly (2), a turntable assembly (3), a clamp assembly (4), a drilling assembly (5), a shaping assembly (6) and a flat-mouth assembly (7); The turntable assembly (3) is provided with a vertically arranged and rotatable rotating disk (31), and a plurality of uniformly distributed clamp assemblies (4) are provided on the edge of the rotating disk (31); A loading station (3a), a shaping station (3b) and a flattening station (3c) are sequentially arranged along the rotation direction of the rotating disk (31); The loading station (3a) is provided with the loading assembly (2), and the loading assembly (2) is connected to the vibration plate (1); The loading station (3a) is also provided with the drilling assembly (5); The shaping station (3b) is provided with a shaping component (6); The flat-mouth station (3c) is provided with a flat-mouth component (7).

2. The T-shaped three-way pipe shaping machine according to claim 1, characterized in that: The clamp assembly (4) comprises a first clamp block (41), a second clamp block (42) and a lever cylinder (43); The first clamping block (41) is provided with a first groove body (410), and the second clamping block (42) is provided with a second groove body (420), and the first groove body (410) and the second groove body (420) form a space capable of accommodating a T-shaped three-way pipe (9); The edge of the rotating disk (31) is provided with a first notch (311) and a second notch (312), and the second notch (312) is connected to the end of the first notch (311); The lever cylinder (43) is arranged in the first notch (311), and the first clamping block (41) and the second clamping block (42) are located in the second notch (312), wherein the first clamping block (41) is connected to the output end of the lever cylinder (43), and the second clamping block (42) is connected to the rotating disk (31).

3. The T-shaped three-way pipe shaping machine according to claim 1, characterized in that: The loading assembly (2) comprises a first plate (21) and a second plate (22), wherein the first plate (21) is arranged above the second plate (22); The first plate (21) is provided with a through opening (210) corresponding to the vertical conveying channel (12) of the vibration plate (1); The second plate body (22) is provided with a third groove body (220) corresponding to the through opening (210), and the third groove body (220) is used to place the T-shaped three-way pipe (9); A spring (23) is provided between the first plate body (21) and the second plate body (22); The first plate body (21) is connected to a first driving member (24).

4. The T-shaped three-way pipe shaping machine according to claim 3, characterized in that: The loading assembly (2) further comprises a guide seat (25), and a guide groove (251) matching with the first plate (21) is provided on the top of the guide seat (25); The loading assembly (2) further comprises a first guide rail (261) and a first slide block (262); the first guide rail (261) is connected to the guide seat (25); and the first slide block (262) is connected to the second plate body (22).

5. The T-shaped three-way pipe shaping machine according to claim 1, characterized in that: The drilling assembly (5) comprises a drill bit (51), a first motor (52) and a first hydraulic power head (53); The first motor (52) drives the drill bit (51) to rotate, and the first motor (52) is arranged on the top of the first hydraulic power head (53); The first hydraulic power head (53) drives the drill bit (51) to move along the axial direction.

6. The T-shaped three-way pipe shaping machine according to claim 5, characterized in that: The drilling assembly (5) further comprises a first position adjustment mechanism (54); The first position adjustment mechanism (54) comprises a first wedge block (541) and a second wedge block (542), wherein the first wedge block (541) is connected to the first hydraulic power head (53), and the second wedge block (542) is connected to the base frame (8); The inclined surface of the first wedge-shaped block (541) is provided with a convex track (5410), and the inclined surface of the second wedge-shaped block (542) is provided with a concave track (5420); The flange of the concave rail (5420) is provided with a first limiting member (544); A vertical plate (543) is provided on one side of the second wedge-shaped block (542), and the vertical plate (543) is provided with a second limiting member (545).

7. The T-shaped three-way pipe shaping machine according to claim 1, characterized in that: The shaping assembly (6) comprises a shaping mold (61) and a second driving member (62), and the second driving member (62) is drivingly connected to the shaping mold (61).

8. The T-shaped three-way pipe shaping machine according to claim 1, characterized in that: The flat-edge component (7) comprises a flat-edge tool (71), wherein the flat-edge tool (71) comprises a cutting tool (711) and a positioning column (712), wherein the cutting tool (711) is arranged on one side of the positioning column (712).

9. The T-shaped three-way pipe shaping machine according to claim 8, characterized in that: The flat-mouth assembly (7) further comprises a second motor (72) and a second hydraulic power head (73); The second motor (72) drives the flat-edge cutter (71) to rotate, and the second motor (72) is arranged on the top of the second hydraulic power head (73); The second hydraulic power head (73) drives the flat-edge tool (71) to move along the axial direction.

10. The T-shaped three-way pipe shaping machine according to claim 9, characterized in that: The flat-edge assembly (7) further comprises a second position adjustment mechanism (74), wherein the second position adjustment mechanism (74) is capable of adjusting the height position of the flat-edge tool (71).