Machining equipment for aluminum cylinder of shock absorber

By designing integrated shock absorber aluminum cylinder processing equipment and integrating cutting, reaming and pore functions, the problems of many equipment, large area and cumbersome material flow in the existing technology are solved, and a more efficient production process and lower costs are achieved.

CN222957983UActive Publication Date: 2025-06-10WUXI EDWEI TECH CO LTD
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Patent Information

Application Number
CN202421916260.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-08
Publication Date
2025-06-10
Estimated Expiration
2034-08-08

AI Technical Summary

Technical Problem

In the existing aluminum cylinder production process of shock absorbers, the cutting, hole reaming and pores require the use of three processing equipment respectively, which covers a large area and cumbersome material flow, resulting in high cost and low efficiency.

Method used

An integrated processing equipment is designed, including a frame, drive mechanism, turntable mechanism, cutting mechanism, hole reaming mechanism and pore mechanism, and power is provided through the hydraulic station to realize cutting, hole reaming and pore processing of aluminum cylinders.

Benefits of technology

The merger of the original three equipment into one is achieved, saving costs and footprint, and improving the conversion speed and overall efficiency between processes.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses processing equipment, belongs to the technical field of shock absorber aluminum cylinder processing, and particularly relates to the processing equipment of a shock absorber aluminum cylinder, which comprises a rack, a driving mechanism, a turntable mechanism, a cutting mechanism, a reaming mechanism, a pore mechanism, a hydraulic station and a housing, the driving mechanism drives the rotary disc mechanism to rotate, and the cutting mechanism, the reaming mechanism and the pore mechanism are all installed on the rack and are in butt joint with the rotary disc mechanism so as to conduct cutting, reaming and pore forming work on the shock absorber aluminum cylinder. The hydraulic station is respectively connected with the rotary table mechanism, the cutting mechanism, the reaming mechanism and the pore mechanism to provide power for the rotary table mechanism, the cutting mechanism, the reaming mechanism and the pore mechanism, original three machining devices are combined into one machining device, cost is saved, occupied area is reduced, the conversion speed among processes is greatly improved, and efficiency is higher.
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Description

Technical Field

[0001] The utility model discloses a processing device, belonging to the technical field of shock absorber aluminum cylinder processing, and specifically relates to a processing device for shock absorber aluminum cylinders. Background Technique

[0002] A shock absorber aluminum cylinder refers to a component installed on the shock absorber of an electric vehicle, usually made of aluminum alloy. The main function of the shock absorber aluminum cylinder is to serve as the outer shell of the shock absorber, used to accommodate components such as pistons, valves, and hydraulic oil inside the shock absorber, and withstand the forces and pressures generated during the operation of the vehicle or equipment.

[0003] In the automotive industry and other mechanical equipment, the design and manufacture of shock absorber aluminum cylinders are to ensure that the shock absorber can effectively reduce the vibrations and impacts generated by uneven road surfaces during vehicle or equipment driving, improving driving comfort and safety.

[0004] Currently, the electric vehicle market is huge, and the demand for shock absorber aluminum cylinders of electric vehicles is considerable. In the previous production process of shock absorber aluminum cylinders, there were processes such as cutting, reaming, and pore-making. Each process required a processing device, occupying a large area, and the materials also needed to be manually transferred between each process, consuming a lot of manpower and material resources. To solve this problem, an integrated processing device for shock absorber aluminum cylinders is needed. Content of the Utility Model

[0005] Utility Model Objective: To provide a processing device for shock absorber aluminum cylinders to solve the above-mentioned problems.

[0006] Technical Solution: A processing device for shock absorber aluminum cylinders, the processing device includes: a frame, a driving mechanism, a turntable mechanism, a cutting mechanism, a reaming mechanism, a pore-making mechanism, a hydraulic station, and a housing;

[0007] The driving mechanism is installed on the frame; the turntable mechanism is installed on the driving mechanism to rotate following the driving mechanism; the cutting mechanism, the reaming mechanism, and the pore-making mechanism are all installed on the frame and are docked with the turntable mechanism to perform cutting, reaming, and pore-making work on the shock absorber aluminum cylinder; the hydraulic station is fixedly installed inside the housing and is respectively connected to the turntable mechanism, the cutting mechanism, the reaming mechanism, and the pore-making mechanism to provide power for them; the housing is fixedly installed on the frame and forms an installation cavity with the frame.

[0008] In a further embodiment, the driving mechanism includes: a main shaft wall panel fixedly installed on one side of the frame; a support seat fixedly installed on one side of the main shaft wall panel; a speed reducer fixedly installed on the support seat; a first motor installed on the speed reducer and having a rotating shaft connected to one end of the speed reducer to drive its rotation; a main shaft installed on the main shaft wall panel through a bearing seat, one end of which is connected to the other end of the speed reducer through a flange to rotate following the speed reducer; a positioning disk sleeved on the main shaft; a thin cylinder fixedly installed at both ends of the support seat; a positioning pin shaft fixedly installed on the thin cylinder and cooperating with the upper positioning hole of the positioning disk; a first inductor fixedly installed on the thin cylinder; a first sensing piece fixedly installed on the positioning disk; and a rotary joint fixedly installed on the other end of the main shaft.

[0009] In a further embodiment, the turntable mechanism includes: a tooling square box, one side of which is connected to the main shaft through a flange to rotate following the main shaft; four groups of aluminum cylinder placement toolings fixedly installed at the four corners of the tooling square box in a circumferential rotation array manner; four groups of pressing oil cylinder assemblies corresponding to the aluminum cylinder placement toolings and fixedly installed on the tooling square box; a fixed shaft, one end of which is fixedly installed on the other side of the tooling square box through a ball bearing seat; and a main shaft middle column fixedly installed on the frame and fixedly connected to the fixed shaft.

[0010] In a further embodiment, the cutting mechanism includes: a column wall panel fixedly installed on the frame; a cutting platform fixedly installed on the column wall panel and the main shaft middle column; a first guide rail fixedly installed on the cutting platform; a first slider slidably installed on the first guide rail; a cutting slide plate fixedly installed on the first slider; a cutting oil cylinder fixedly installed on the cutting platform and having a telescopic rod connected to the bottom of the cutting slide plate to drive the cutting slide plate to move; a cutting motor fixedly installed on the cutting slide plate; a cutting blade sleeved on the rotating shaft of the cutting motor; a material sliding groove fixedly installed on the cutting slide plate and located below the cutting blade; a second inductor fixedly installed on the cutting slide plate; and a second sensing piece fixedly installed on the cutting platform.

[0011] In a further embodiment, the hole expanding mechanism includes: a second guide rail fixedly installed on the frame; a second slider slidably installed on the second guide rail; a second slide plate fixedly installed on the second slider; a second oil cylinder fixedly installed on the frame, and the telescopic rod is fixedly connected to one side of the second slide plate to drive the second slide plate to move; a rack fixedly installed on one side of the second slide plate; a pore encoder fixedly installed on the frame through a bracket; a gear sleeved on the pore encoder and meshing with the rack; a double-axis drill press power head fixedly installed on the second slide plate; a pore adjusting plate fixedly installed on the second slide plate through an adjusting screw and located on the double-axis drill press power head; a second motor fixedly installed on the pore adjusting plate; a driving pulley sleeved on the rotating shaft of the second motor; a driven pulley sleeved on one end rotating shaft of the double-axis drill press power head; the driving pulley and the driven pulley are connected by a belt; a drill bit fixedly installed on the other end of the double-axis drill press power head to rotate following the double-axis drill press power head.

[0012] In a further embodiment, the pore mechanism has the same structure as the hole expanding mechanism.

[0013] In a further embodiment, the aluminum cylinder placement tooling includes: a fixture seat fixedly installed on the tooling square box; a base bottom plate fixedly installed on the fixture seat; a tooling assembly installed on the base bottom plate in an adjustable manner; a positioning seat fixedly installed on one side of the base bottom plate.

[0014] In a further embodiment, the pressing oil cylinder assembly includes: a cylinder seat fixedly installed on the tooling square box; a support seat fixedly installed on one side of the cylinder seat; a clamping arm rotatably installed in the middle on the support seat; a pressing oil cylinder installed in the tooling square box through a TC frame, and the telescopic rod is connected to one end of the clamping arm; a pressing block fixedly installed on the other end of the clamping arm.

[0015] Beneficial effects: The present invention includes: a frame, a driving mechanism, a turntable mechanism, a cutting mechanism, a hole expanding mechanism, a pore mechanism, a hydraulic station, and a housing; the driving mechanism drives the turntable mechanism to rotate, and the cutting mechanism, the hole expanding mechanism, and the pore mechanism are all installed on the frame and are docked with the turntable mechanism to perform cutting, hole expanding, and pore work on the shock absorber aluminum cylinder; the hydraulic station is respectively connected to the turntable mechanism, the cutting mechanism, the hole expanding mechanism, and the pore mechanism to provide power for them. The original three processing devices of the present invention are combined into one processing device, saving costs and reducing the floor area. The conversion speed between various processes is greatly improved, and the efficiency is higher. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 is a schematic diagram of the present invention.

[0017] Figure 2 It is an isometric view of the present utility model.

[0018] Figure 3 It is a schematic diagram of the driving mechanism and the turntable mechanism of the present utility model.

[0019] Figure 4 It is a front view of the driving mechanism and the turntable mechanism of the present utility model.

[0020] Figure 5 It is an isometric view of the cutting mechanism of the present utility model.

[0021] Figure 6 It is a front view of the cutting mechanism of the present utility model.

[0022] Figure 7 It is a schematic diagram of the hole expanding mechanism and the pore mechanism of the present utility model.

[0023] Figure 8 It is an isometric view of the hole expanding mechanism and the pore mechanism of the present utility model.

[0024] Figure 9 It is a front view of the hole expanding mechanism and the pore mechanism of the present utility model.

[0025] Figure 10 It is an isometric view of the turntable mechanism of the present utility model.

[0026] Reference numerals: frame 1, driving mechanism 2, turntable mechanism 3, cutting mechanism 4, hole expanding mechanism 5, pore mechanism 6, hydraulic station 7, housing 8, main shaft wallboard 9, support seat 10, reducer 11, first motor 12, driving shaft 13, positioning disk 14, thin cylinder 15, positioning pin shaft 16, first inductor 17, first induction piece 18, rotary joint 19, tooling square box 20, aluminum cylinder placement tooling 21, pressing oil cylinder assembly 22, fixed shaft 23, main shaft middle column 24, column wallboard 25, cutting platform 26, first guide rail 27, first slider 28, cutting slide plate 29, cutting oil cylinder 30, cutting motor 31, cutting blade 32, material sliding groove 33, second inductor 34, second induction piece 35, second guide rail 36, second slider 37, second slide plate 38, second oil cylinder 39, rack 40, pore encoder 41, gear 42, double-axis drill press power head 43, pore adjusting plate 44, second motor 45, driving pulley 46, driven pulley 47, drill bit 48, fixture seat 49, base bottom plate 50, tooling assembly 51, positioning seat 52, cylinder seat 53, support seat 54, clamping arm 55, pressing oil cylinder 56, pressing block 57. Detailed implementation manners

[0027] The technical solution of the present utility model will be clearly and completely described below in conjunction with the accompanying drawings. Obviously, the described embodiments are part of the embodiments of the present utility model, rather than all of them. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present utility model without creative efforts shall fall within the protection scope of the present utility model.

[0028] In the description of the present utility model, it should be noted that the orientation or positional relationship indicated by the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present utility model and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus cannot be understood as a limitation to the present utility model. In addition, the terms "first", "second", "third" are only used for descriptive purposes and cannot be understood as indicating or implying relative importance.

[0029] In the description of the present utility model, it should be noted that unless otherwise clearly specified and defined, the terms "installation", "connection", "connection" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the communication inside two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present utility model can be understood according to specific situations. In addition, the technical features involved in different embodiments of the present utility model described below can be combined with each other as long as they do not conflict with each other.

[0030] A processing device for a shock absorber aluminum cylinder, as Figure 1 and Figure 2 shown, includes: a frame 1, a driving mechanism 2, a turntable mechanism 3, a cutting mechanism 4, a reaming mechanism 5, a pore mechanism 6, a hydraulic station 7, and a housing 8.

[0031] In one embodiment, as Figure 1 and Figure 2 shown, the driving mechanism 2 is installed on the frame 1; the turntable mechanism 3 is installed on the driving mechanism 2 to rotate following the driving mechanism 2; the cutting mechanism 4, the reaming mechanism 5, and the pore mechanism 6 are all installed on the frame 1 and are docked with the turntable mechanism 3 to perform cutting, reaming, and pore work on the shock absorber aluminum cylinder; the hydraulic station 7 is fixedly installed in the housing 8 and is respectively connected to the turntable mechanism 3, the cutting mechanism 4, the reaming mechanism 5, and the pore mechanism 6 to provide power for them; the housing 8 is fixedly installed on the frame 1 and forms an installation cavity with the frame 1.

[0032] In one embodiment, as Figure 3 and Figure 4 shown, the driving mechanism 2 includes: a main shaft wall panel 9, fixedly installed on one side of the frame 1; a bracket seat 10, fixedly installed on one side of the main shaft wall panel 9; a speed reducer 11, fixedly installed on the bracket seat 10; a first motor 12, installed on the speed reducer 11 and having a rotating shaft connected to one end of the speed reducer 11 to drive it to rotate; a main shaft 13, installed on the main shaft wall panel 9 through a bearing seat, and one end thereof is connected to the other end of the speed reducer 11 through a flange to rotate following the speed reducer 11; a positioning disc 14, sleeved on the main shaft 13; a thin cylinder 15, fixedly installed at both ends of the bracket seat 10; a positioning pin shaft 16, fixedly installed on the thin cylinder 15 and cooperating with the upper positioning hole of the positioning disc 14; a first inductor 17, fixedly installed on the thin cylinder 15; a first induction piece 18, fixedly installed on the positioning disc 14; and a rotary joint 19, fixedly installed on the other end of the main shaft 13.

[0033] In one embodiment, as Figure 3 and Figure 4 shown, the turntable mechanism includes: a tooling square box 20, one side of which is connected to the main shaft 13 through a flange to rotate following the main shaft 13; four sets of aluminum cylinder placement toolings 21, fixedly installed at the four corners of the tooling square box 20 in a circumferential rotation array manner; four sets of pressing oil cylinder assemblies 22, corresponding to the aluminum cylinder placement toolings 21 and fixedly installed on the tooling square box 20; a fixed shaft 23, one end of which is fixedly installed on the other side of the tooling square box 20 through a ball bearing seat; a main shaft middle column 24, fixedly installed on the frame 1, and the fixed shaft 23 is fixedly connected to the main shaft middle column 24.

[0034] In one embodiment, as Figure 5 and Figure 6As shown in the figure, the cutting mechanism 4 includes: a column wall plate 25 fixedly installed on the frame 1; a cutting platform 26 fixedly installed on the column wall plate 25 and the main shaft middle column 24; a first guide rail 27 fixedly installed on the cutting platform 26; a first slider 28 slidably installed on the first guide rail 27; a cutting slide plate 29 fixedly installed on the first slider 28; a cutting oil cylinder 30 fixedly installed on the cutting platform 26, and the telescopic rod is connected to the bottom of the cutting slide plate 29 to drive the cutting slide plate 29 to move; a cutting motor 31 fixedly installed on the cutting slide plate 29; a cutting blade 32 sleeved on the rotating shaft of the cutting motor 31; a material sliding groove 33 fixedly installed on the cutting slide plate 29 and located below the cutting blade 32; a second sensor 34 fixedly installed on the cutting slide plate 29; a second sensing piece 35 fixedly installed on the cutting platform 26.

[0035] In one embodiment, the hole expanding mechanism 5 includes: a second guide rail 36 fixedly installed on the frame 1; a second slider 37 slidably installed on the second guide rail 36; a second slide plate 38 fixedly installed on the second slider 37; a second oil cylinder 39 fixedly installed on the frame 1, and the telescopic rod is fixedly connected to one side of the second slide plate 38 to drive the second slide plate 38 to move; a rack 40 fixedly installed on one side of the second slide plate 38; a pore encoder 41 fixedly installed on the frame 1 through a bracket; a gear 42 sleeved on the pore encoder 41 and meshing with the rack 40; a double-axis drill press power head 43 fixedly installed on the second slide plate 38; a pore adjusting plate 44 fixedly installed on the second slide plate 38 through an adjusting screw rod and located on the double-axis drill press power head 43; a second motor 45 fixedly installed on the pore adjusting plate 44; a driving pulley 46 sleeved on the rotating shaft of the second motor 45; a driven pulley 47 sleeved on one end rotating shaft of the double-axis drill press power head 43; the driving pulley 46 is connected to the driven pulley 47 through a belt; a drill bit 48 fixedly installed on the other end of the double-axis drill press power head 43 to rotate following the double-axis drill press power head 43.

[0036] In one embodiment, as Figures 7 to 9 shown, the pore mechanism 6 has the same structure as the hole expanding mechanism 5.

[0037] In one embodiment, as Figure 10 shown, the aluminum cylinder placement tooling 21 includes: a fixture seat 49 fixedly installed on the tooling square box 20; a base bottom plate 50 fixedly installed on the fixture seat 49; a tooling assembly 51 installed on the base bottom plate 50 in an adjustable manner; a positioning seat 52 fixedly installed on one side of the base bottom plate 50.

[0038] In one embodiment, as Figure 10 shown, the pressing oil cylinder assembly 22 includes: a cylinder seat 53 fixedly installed on the tooling square box 20; a support seat 54 fixedly installed on one side of the cylinder seat 53; a clamping arm 55 rotatably installed in the middle on the support seat 54; a pressing oil cylinder 56 installed in the tooling square box 20 through a TC frame, and the telescopic rod is connected to one end of the clamping arm 55; a pressing block 57 fixedly installed on the other end of the clamping arm 55.

[0039] Working principle: The operation process of the processing equipment for the shock absorber aluminum cylinder: First, place the aluminum cylinder of the turntable mechanism 3 on the aluminum cylinder placement tooling 21 and adjust the position of the adjusting nut according to the model of the aluminum cylinder to be processed. Then place the aluminum cylinder to be processed on the aluminum cylinder placement tooling 21, and then press the pressing button. At this time, the pressing oil cylinder assembly 22 presses the aluminum cylinder to be processed, and then press the start button; the turntable mechanism 3 rotates, and the aluminum cylinder reaches the cutting station. The cutting machine operates, and the oil cylinder operates. The cutting machine reaches the working position through the linear guide rail to cut the aluminum cylinder. After the cutting is completed, the cutting machine returns to its original position. The cut-off material head slides into the waste box through the material head chute 33, and the cut-off aluminum chips directly fall into the aluminum chip box below; then the turntable mechanism 3 rotates the aluminum cylinder to the reaming station, the three-phase asynchronous motor starts, drives the double-axis drill head power head 43 through the belt pulley mechanism, the reaming drill bit 48 operates, and then the oil cylinder operates. The reaming depth is calculated through the encoder and the gear 42 and the rack 40. After the reaming is completed, the oil cylinder returns to its original position; then the turntable mechanism 3 rotates the aluminum cylinder to the pore station, the three-phase asynchronous motor starts, drives the double-axis drill head power head 43 through the belt pulley mechanism, the pore drill bit 48 operates, and then the oil cylinder operates. The reaming depth is calculated through the encoder and the gear 42 and the rack 40. After the pore is completed, the oil cylinder returns to its original position; then the turntable mechanism 3 rotates. In addition, when working for the first time, place an aluminum cylinder on the station. Each time the square box rotates, place one aluminum cylinder. After the four stations are full, after completing the cutting, reaming and pore operations, take out the aluminum cylinder, and then place the aluminum cylinder to be processed according to the above method, and repeat the above movement process.

[0040] Specifically, the working process of the present invention is divided into the following:

[0041] Loading process:

[0042] First, place the shock absorber aluminum cylinder on the aluminum cylinder placement tooling 21 of the turntable mechanism 3 and fix it by the pressing oil cylinder assembly 22. First, place the shock absorber aluminum cylinder on the workpiece assembly body, and at the same time, the positioning seat 52 performs positioning. Then, the pressing oil cylinder 56 operates, drives the clamping arm 55 to rotate on the support seat 54, and thus the pressing block 57 presses the shock absorber aluminum cylinder to achieve fixation;

[0043] Rotation process:

[0044] The driving mechanism 2 operates. The first motor 12 rotates and drives the driving shaft 13 to rotate through the speed reducer 11. Thus, the driving shaft 13 drives the tooling square box 20 in the turntable mechanism 3 to rotate through the flange. Consequently, the tooling square box 20 drives the shock absorber aluminum cylinder on the aluminum cylinder placement tooling 21 to rotate. When reaching a working station, at this time, the first motor 12 stops working, and the thin cylinder 15 operates to drive the positioning pin shaft 16 to insert into the positioning hole of the positioning disk 14, thereby realizing the positioning of the tooling square box 20;

[0045] Cutting process:

[0046] When reaching the cutting station, the cutting oil cylinder 30 operates to drive the cutting slide plate 29 to move through the first guide rail 27 and the first slider 28, and stops moving to the specified position. Then, the cutting motor 31 works to drive the cutting blade 32 to cut the shock absorber aluminum cylinder, and the scrap material flows away through the material chute 33;

[0047] Reaming and pore-making process:

[0048] When reaching the reaming mechanism 5 and the pore-making mechanism 6, first, the second oil cylinder 39 operates to drive the second slide plate 38 to move through the second guide rail 36 and the second slider 37, thereby driving the double-axis drill head power head 43 and the second motor 45 to move. At the same time, as the second slider 37 moves, the gear 42 meshes with the rack 40, and the pore encoder 41 calculates the reaming and pore-making depth. Thus, the second motor 45 rotates, the driving pulley 46 rotates, and drives the driven pulley 47 to rotate through the belt, thereby driving the double-axis drill head power head 43 to rotate. Consequently, the double-axis drill head power head 43 drives the drill bit 48 to rotate, thereby performing the reaming and pore-making work on the shock absorber aluminum cylinder.

[0049] After completing the above process, the processed aluminum cylinder is taken out manually, and then the aluminum cylinder to be processed is put in, repeating the above movement process.

[0050] Obviously, the above embodiments are merely examples given for clear illustration and are not limitations on the implementation manners. For those of ordinary skill in the art, other different forms of changes or variations can be made based on the above description. It is not necessary and impossible to enumerate all the implementation manners here. And the obvious changes or variations derived therefrom are still within the protection scope of the present utility model.

Claims

1. A processing device for shock absorber aluminum cylinder, characterized in that: The processing equipment includes: a frame, a driving mechanism, a turntable mechanism, a cutting mechanism, a hole expansion mechanism, a pore mechanism, a hydraulic station and a cover; The driving mechanism is installed on the frame; the turntable mechanism is installed on the driving mechanism to rotate with the driving mechanism; the cutting mechanism, the reaming mechanism and the pore mechanism are all installed on the frame and docked with the turntable mechanism to perform cutting, reaming and pore work on the shock absorber aluminum cylinder; the hydraulic station is fixedly installed in the cover shell and is respectively connected to the turntable mechanism, the cutting mechanism, the reaming mechanism and the pore mechanism to provide power for them; the cover shell is fixedly installed on the frame to form an installation cavity with the frame.

2. The processing equipment for shock absorber aluminum cylinder according to claim 1, characterized in that: The driving mechanism includes: a main shaft wall plate fixedly mounted on one side of the frame; a bracket seat fixedly mounted on one side of the main shaft wall plate; a reducer fixedly mounted on the bracket seat; a first motor mounted on the reducer, and a rotating shaft connected to one end of the reducer to drive the reducer to rotate; A driving shaft is installed on the main shaft wall plate through a bearing seat, and one end of the driving shaft is connected to the other end of the reducer through a flange to rotate with the reducer; a positioning plate is sleeved on the driving shaft; a thin cylinder is fixedly installed on both ends of the bracket seat; a positioning pin is fixedly installed on the thin cylinder and cooperates with the upper positioning hole of the positioning plate; a first sensor is fixedly installed on the thin cylinder; a first sensor sheet is fixedly installed on the positioning plate; a rotary joint is fixedly installed on the other end of the driving shaft.

3. The processing equipment for shock absorber aluminum cylinder according to claim 2, characterized in that: The turntable mechanism includes: a tooling box, one side of which is connected to the driving shaft through a flange to follow the driving shaft; an aluminum cylinder placing tooling, which is provided with four groups and is fixedly installed at the four corners of the tooling box in a circular rotating array; a clamping cylinder assembly, which is provided with four groups and is fixedly installed on the tooling box corresponding to the aluminum cylinder placing tooling; a fixed shaft, one end of which is fixedly installed on the other side of the tooling box through a ball bearing seat; a main shaft center column, which is fixedly installed on the frame, and the fixed shaft is fixedly connected to the main shaft center column.

4. The processing equipment for shock absorber aluminum cylinder according to claim 3, characterized in that: The cutting mechanism includes: a column wall panel, fixedly installed on the frame; a cutting platform, fixedly installed on the column wall panel and the main shaft center column; a first guide rail, fixedly installed on the cutting platform; a first slider, slidably installed on the first guide rail; a cutting slide, fixedly installed on the first slide; a cutting cylinder, fixedly installed on the cutting platform, and a telescopic rod connected to the bottom of the cutting slide to drive the cutting slide to move; a cutting motor, fixedly installed on the cutting slide; a cutting blade, sleeved on the rotating shaft of the cutting motor; a sliding trough, fixedly installed on the cutting slide and located below the cutting blade; a second sensor, fixedly installed on the cutting slide; a second sensor sheet, fixedly installed on the cutting platform.

5. The processing equipment for shock absorber aluminum cylinder according to claim 1, characterized in that: The reaming mechanism includes: a second guide rail fixedly mounted on the frame; a second slider slidably mounted on the second guide rail; a second slide plate fixedly mounted on the second slide plate; a second oil cylinder fixedly mounted on the frame, and a telescopic rod fixedly connected to one side of the second slide plate to drive the second slide plate to move; a rack fixedly mounted on one side of the second slide plate; a pore encoder fixedly mounted on the frame through a bracket; a gear sleeved on the pore encoder and meshed with the rack; a double-axis drilling machine power head fixedly mounted on the second slide plate; a pore adjustment plate fixedly mounted on the second slide plate through an adjustment screw and located on the double-axis drilling machine power head; a second motor fixedly mounted on the pore adjustment plate; a driving pulley sleeved on the rotating shaft of the second motor; a driven pulley sleeved on one end of the rotating shaft of the double-axis drilling machine power head; the driving pulley and the driven pulley are connected by a belt; a drill bit fixedly mounted on the other end of the double-axis drilling machine power head to rotate with the double-axis drilling machine power head.

6. The processing equipment for shock absorber aluminum cylinder according to claim 5, characterized in that: The pore mechanism and the pore expansion mechanism have the same structure.

7. The processing equipment for shock absorber aluminum cylinder according to claim 3, characterized in that: The aluminum cylinder placement tooling includes: a fixture seat, fixedly installed on the tooling square box; a base bottom plate, fixedly installed on the fixture seat; a tooling assembly, adjustable on the base bottom plate; and a positioning seat, fixedly installed on one side of the base bottom plate.

8. The processing equipment for shock absorber aluminum cylinder according to claim 7, characterized in that: The clamping cylinder assembly includes: a cylinder seat, fixedly mounted on the tooling box; a support seat, fixedly mounted on one side of the cylinder seat; a clamping arm, the middle of which is rotatably mounted on the support seat; a clamping cylinder, installed in the tooling box through a TC frame, and on a telescopic rod and one end of the clamping arm; and a pressure block, fixedly mounted on the other end of the clamping arm.