A processing device for processing hydraulic brakes

By designing a processing equipment for processing hydraulic brakes, the early corrosion and wear problems caused by environmental factors during the processing process are solved, and efficient storage, replacement and maintenance of the tool is achieved, extending the service life and reducing production costs.

CN119501648BActive Publication Date: 2025-05-09NINGBO PENK INTELLIGENT TECH CO LTD
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Patent Information

Application Number
CN202510082513.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-01-20
Publication Date
2025-05-09
Estimated Expiration
2045-01-20

AI Technical Summary

Technical Problem

In the existing tool management system, tools are easily affected by environmental factors during processing, resulting in early rust and wear problems, shortening the service life of the tool and increasing production costs.

Method used

A processing equipment for processing an oil-pressure brake is designed, including a chassis mechanism, a tool magazine mechanism, a tool changing mechanism, a driving mechanism, a first downward mechanism, a second downward mechanism, a separation mechanism and a maintenance mechanism. Through the collaborative work of these mechanisms, efficient storage, replacement and maintenance of tools are achieved, ensuring that the tool surface is always covered with an oil film to prevent oxidation and corrosion.

Benefits of technology

It effectively extends the service life of the tool, reduces production costs, and improves the surface quality of the processed workpieces.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a processing equipment for processing hydraulic brakes, including a chassis mechanism, a processing part and a tool. The chassis mechanism includes a chassis, the interior of the chassis is symmetrically and slidably sleeved with a cover door, and the inner top of the chassis is provided with a tool magazine mechanism for storing the tool. The present invention drives a first pressing mechanism and a maintenance mechanism to work by providing a driving mechanism, wherein the first pressing mechanism rotates the tool by extrusion so that it can enter the interior of the maintenance mechanism, and then the kinetic energy of the driving mechanism is regulated by the separation mechanism so that the kinetic energy is transferred to the maintenance mechanism. At this time, the maintenance mechanism drives the sleeve to rotate. Since the sponge fits the tool, when the sleeve rotates, the oil can be evenly applied to the tool to ensure that a layer of oil film is left on its surface to avoid being in the tool magazine for a long time, thereby accelerating the oxidation and corrosion of the tool.
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Description

Technical Field

[0001] The present invention relates to the technical field of brakes, and in particular to a processing device for processing hydraulic brakes. Background Art

[0002] The hydraulic brake is a device that uses the hydraulic principle to brake. It mainly achieves the braking function by transmitting pressure through hydraulic oil. It consists of a cylinder, a plunger, a hydraulic oil pipe, a pressure control device and a hydraulic converter. It can convert braking energy into hydraulic energy to achieve braking. The key point in the brake is the oil tank, which is used to store and transport the oil. The processing of the oil tank is mostly done by a professional CNC machining center, which can quickly complete the processing of the oil tank through the CNC machining center.

[0003] In a CNC machining center, the tool magazine is where various machining tools are stored. Various tools are replaced by the tool magazine to complete the processing of the product. In the existing tool management system, the tools are usually directly stored in the tool magazine after completing the processing task. Since the tools are in contact with the workpiece during the processing, the protective oil film on the surface is worn away. If they are not cleaned and maintained in time, they are easily affected by environmental factors. As a result, the tools often rust and wear prematurely during storage due to lack of effective protection measures. This not only shortens the service life of the tools, but also increases the production costs of the company.

[0004] To this end, we propose a processing equipment for processing hydraulic brakes. Summary of the invention

[0005] The object of the present invention is to provide a processing device for processing hydraulic brakes to solve the problems raised in the above background technology.

[0006] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: a processing equipment for processing hydraulic brakes, including a chassis mechanism, a processing part and a tool, the chassis mechanism including a chassis, the interior of the chassis is symmetrically and slidably sleeved with a cover door, the inner top end of the chassis is provided with a tool magazine mechanism for storing tools, the inner top end of the chassis is located at one side of the tool magazine mechanism and is provided with a tool changing mechanism for replacing tools, the interior of the tool magazine mechanism is provided with a first pressing mechanism and a second pressing mechanism for driving the tool to perform a flipping motion, the inner top end of the chassis is located at one side of the tool magazine mechanism and is provided with a driving mechanism for driving the first pressing mechanism and the second pressing mechanism to work, a maintenance mechanism for coating an oil film on the surface of the tool is provided below the tool magazine mechanism, and a separation mechanism for controlling the kinetic energy conversion between the first pressing mechanism and the maintenance mechanism is provided inside the driving mechanism.

[0007] As a preferred embodiment of the above technical solution, the inner side wall of the chassis is fixedly connected with a stand, a movable table is arranged inside the chassis, a Y-axis moving mechanism is arranged at the inner bottom end of the chassis below the movable table, a processing spindle is slidably sleeved on the outer side wall of the stand, and a Z-axis moving mechanism for driving the processing spindle to rise and fall is arranged at the upper top of the chassis above the stand.

[0008] As a preferred embodiment of the above technical solution, the upper top of the movable table is slidably sleeved with a placing table, and an X-axis moving mechanism for driving the placing table to perform linear motion is arranged inside the movable table, and the upper top of the placing table is symmetrically fixedly connected with a rotating seat, and the two opposite sides of the rotating seats are rotatably sleeved with a limiting table, and the tops of the two opposite sides of the limit tables are fixedly connected with a processing table, and the upper top of the processing table is symmetrically fixedly connected with a plurality of groups of hydraulic push rods, and the upper top of the processing table is located on one side of the hydraulic push rod and is rotatably sleeved with a limiting piece for limiting the workpiece, and the lower bottom end of the limiting piece is rotatably sleeved with the hydraulic push rod, and the other end of the limiting piece abuts against the upper top of the workpiece.

[0009] As a preferred embodiment of the above technical solution, the tool magazine mechanism includes a tool collection magazine fixedly connected to the top end of the chassis, the inner side wall of the tool collection magazine is symmetrically rotatably sleeved with a sprocket, the outer walls of the two groups of the sprockets are meshed and sleeved with chains for transmission, the inner side wall of the tool collection magazine is located at the center of one of the sprockets and is fixedly connected to a first motor, the output end of the first motor is fixedly connected to a first driving shaft, and the first driving shaft is fixedly connected to the end of one of the sprockets, the inner side of the tool collection magazine is slidably sleeved with a plurality of elastic limit sleeves, the upper top of the elastic limit sleeve is symmetrically fixedly connected with an ear plate connected to the chain limit, the inner side wall of the elastic limit sleeve is rotatably sleeved with a magnetic suction sleeve, the end of the elastic limit sleeve is symmetrically fixedly connected with a connecting rod, and the end of the connecting rod away from the elastic limit sleeve is rotatably sleeved with a movable ball, the inner side wall of the tool collection magazine is fixedly connected with a limiting sleeve, a plurality of the movable ball rollers are sleeved inside the limiting sleeve, the tool is sleeved inside the magnetic suction sleeve, and the outer walls of a plurality of the magnetic suction sleeves are provided with guide grooves.

[0010] As a preferred embodiment of the above technical solution, the tool changing mechanism includes a first electric push rod symmetrically fixedly connected to one side of the tool collection magazine, the telescopic ends of the two first electric push rods are fixedly connected to a fixed plate, a second motor is fixedly connected to the center of the lower bottom end of the fixed plate, the output end of the second motor is fixedly connected to a second drive shaft, and the end of the second drive shaft away from the second motor is fixedly connected to a tool changing arm for replacing the tool.

[0011] As a preferred embodiment of the above technical solution, the driving mechanism includes a load-bearing plate fixedly connected to the top of the chassis on one side of the tool storage, the inner bottom end of the load-bearing plate is fixedly connected to a third motor, and the two output ends of the third motor are respectively fixedly connected to a third drive shaft and a fourth drive shaft, the outer side wall of the load-bearing plate is symmetrically fixedly connected to a first bearing frame, the ends of the third drive shaft and the fourth drive shaft are rotatably sleeved with the inner side wall of the first bearing frame, the lower bottom end of the load-bearing plate is symmetrically fixedly connected to extension arms, and the ends of the two extension arms are rotatably sleeved with double synchronous wheels.

[0012] As a preferred embodiment of the above technical solution, the first pressing mechanism includes a first limit frame symmetrically fixedly connected to the inner wall of the tool collection magazine, the first limit frame is located at the interval of the chain, a first gear ring is slidably sleeved at the interval between the two groups of the first limit frames, a second bearing frame is fixedly connected to the outer walls of the two first limit frames, a synchronous shaft is rotatably sleeved inside the two second bearing frames, a first gear meshing with the first gear ring is fixedly connected to the outer wall of the synchronous shaft, a third synchronous wheel is fixedly connected to the outer wall of the synchronous shaft, the third synchronous wheel is also rotatably sleeved on the outer wall of the fourth drive shaft, and a third synchronous belt for transmission is sleeved on the outer walls of the two third synchronous wheels.

[0013] As a preferred embodiment of the above technical solution, the second pressing mechanism includes a second limiting frame symmetrically fixedly connected to the inner wall of the tool collecting magazine, a second gear ring is slidably sleeved at the interval between the two groups of the second limiting frames, the outer walls of the first limiting frame and the second limiting frame are fixedly connected to an extension rod fixedly connected to the inner wall of the tool collecting magazine, the outer walls of the two second limiting frames are fixedly connected to a third bearing frame, the inner walls of the two third bearing frames are fixedly sleeved with a second gear meshing with the second gear ring for transmission, the outer walls of the two third bearing frames are coaxial with the second gear and the third driving shaft are fixedly sleeved with a first synchronous wheel, the outer walls of the two first synchronous wheels are sleeved with a first synchronous belt for transmission, the lower bottom end of the tool collecting magazine is located at the position of the first pressing mechanism and the second pressing mechanism, and a U-shaped notch is provided for the magnetic suction sleeve to limit after flipping, and the ends of the first gear ring and the second gear ring are slidably sleeved with the magnetic suction sleeve through a guide groove.

[0014] As a preferred embodiment of the above technical scheme, the separation mechanism includes a second electric push rod symmetrically fixedly connected to the inner side wall of the first bearing frame away from one end of the third driving shaft, the telescopic ends of the two second electric push rods are fixedly connected to a limit plate, the outer wall of the fourth driving shaft and the third synchronous wheel are rotatably sleeved with a fourth synchronous wheel at a symmetrical position, the double synchronous wheel and the outer wall of the fourth synchronous wheel are sleeved with a fourth synchronous belt for transmission, the outer wall of the fourth driving shaft is provided with a spline groove at the interval between the third synchronous wheel and the fourth synchronous wheel, the outer wall of the fourth driving shaft is slidably sleeved with a double chuck at the position of the spline groove, the side of the third synchronous wheel close to the double chuck is fixedly connected to the second chuck, the side of the fourth synchronous wheel close to the double chuck is fixedly connected to the first chuck, the double chucks are both meshed with the first chuck and the second chuck for transmission, and the first chuck and the second chuck are rotatably sleeved with the fourth driving shaft, and the limit plate is rotatably sleeved on the outer wall of the double chuck.

[0015] As a preferred embodiment of the above technical solution, the maintenance mechanism includes a card frame fixedly connected to the lower bottom end of the tool collection magazine, the card frame is rotatably sleeved with a sleeve, the outer wall of the sleeve is fixedly sleeved with a worm gear, the outer wall of the sleeve is rotatably sleeved with a second protective frame at the position of the worm gear, the outer wall of the second protective frame is fixedly sleeved with a mounting frame, and the end of the mounting frame is fixedly connected to the lower bottom end of the tool collection magazine, the inner side wall of the second protective frame is rotatably sleeved with a worm that meshes with the worm gear, the outer wall of the worm is fixedly connected with a second synchronous wheel, the second synchronous wheel and the outer wall of the double synchronous wheels are sleeved with a second synchronous belt, the outer wall of the second protective frame is located at the position of the second synchronous belt and is fixedly connected to the first protective frame, and the other end of the first protective frame is rotatably sleeved on The two extension arms are located at the outer wall of the double synchronous wheels, and a plurality of limit grooves are opened in an annular array on the inner wall of the sleeve, and the inner top end of the limit groove is fixedly connected with a tension spring, and the inner wall of the sleeve is slidably sleeved with a sponge for absorbing oil, and a plurality of inner sliding blocks are inlaid with an annular array on the outer wall of the sponge, and the end of the tension spring is fixedly connected to the top end of the nearest inner sliding block, and the inner sliding block is slidably sleeved inside the limit groove, and the upper top end of the sponge is fixedly connected with a top plate, and the lower bottom end of the sleeve is provided with an oil pipe for oil supply, and the lower bottom end of the tool collection magazine is located on one side of the bracket and is fixedly connected with a third electric push rod, and the telescopic end of the third electric push rod is fixedly connected with a clamping sleeve, and the inside of the clamping sleeve is fixedly sleeved with a fourth electric push rod for pressing the top plate.

[0016] Compared with the prior art, the present invention has the following beneficial effects:

[0017] The present invention drives the first pressing mechanism and the maintenance mechanism to work by providing a driving mechanism, wherein the first pressing mechanism rotates the tool by squeezing so that it can enter the interior of the maintenance mechanism, and then the kinetic energy of the driving mechanism is regulated by the separation mechanism to transfer its kinetic energy to the maintenance mechanism. At this time, the maintenance mechanism drives the sleeve to rotate. Since the sponge fits the tool, when the sleeve rotates, the oil can be evenly applied to the tool to ensure that a layer of oil film remains on its surface, thereby avoiding being in the tool storage for a long time, which accelerates the oxidation and corrosion of the tool. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 It is a schematic diagram of the overall structure of the present invention;

[0019] Figure 2 It is a schematic diagram of the chassis split structure in the present invention;

[0020] Figure 3 It is a schematic diagram of the structure of the X, Y, and Z axis moving mechanism in the present invention;

[0021] Figure 4 It is a schematic diagram of the top structure of the placement table in the present invention;

[0022] Figure 5 This is a schematic diagram of the tool magazine structure in the present invention;

[0023] Figure 6 It is a schematic diagram of the internal structure of the tool magazine in the present invention;

[0024] Figure 7 This is a schematic diagram of the connection structure between the magnetic sleeve and the chain in the present invention;

[0025] Figure 8 This is a schematic diagram of the separation structure of the magnetic suction sleeve and the tool in the present invention;

[0026] Fig. 9 This is a schematic diagram of the bottom structure of the tool magazine in the present invention;

[0027] Fig.10 It is a schematic diagram of the structure of the first and second pressing mechanisms in the present invention;

[0028] Fig.11 It is a schematic diagram of the structure of the local driving mechanism in the present invention;

[0029] Fig.12 It is a schematic diagram of the split structure of the sleeve in the present invention;

[0030] Fig.13 It is a schematic diagram of the structure of the tool changing mechanism in the present invention;

[0031] Fig.14 for Figure 5 The enlarged structural diagram at A in the middle;

[0032] Fig.15 for Figure 5 The enlarged structural diagram at B in the middle;

[0033] Fig.16 for Fig.10 Enlarged structural diagram at point C in the middle.

[0034] In the figure: 1, chassis mechanism; 101, chassis; 102, cover door; 103, stand; 104, movable table; 105, placement table; 106, rotating seat; 107, processing table; 1071, hydraulic push rod; 1072, limiter; 108, limiter; 2, processing part; 3, Y-axis moving mechanism; 4, X-axis moving mechanism; 5, processing spindle; 6, Z-axis moving mechanism; 7, tool magazine mechanism; 701, tool magazine; 7011, limiter sleeve; 702, magnetic suction sleeve; 7021, guide groove; 703, tool; 704, sprocket; 705, chain; 706, first motor ; 707, first drive shaft; 708, elastic limit sleeve; 7081, connecting rod; 7082, movable ball; 7083, ear plate; 8, tool changing mechanism; 801, first electric push rod; 802, fixed plate; 803, second motor; 804, second drive shaft; 805, tool changing arm; 9, drive mechanism; 901, load-bearing plate; 9011, first bearing frame; 902, third motor; 9021, third drive shaft; 9022, fourth drive shaft; 9023, spline groove; 903, first synchronous wheel; 904, first synchronous belt; 905, extension arm; 906, double Synchronous wheel; 9061, second synchronous wheel; 907, second synchronous belt; 908, first protective frame; 909, second protective frame; 9091, mounting frame; 10, first pressing mechanism; 1001, first limiting frame; 1002, first gear ring; 1003, extension rod; 1004, second bearing frame; 1005, synchronous shaft; 1006, first gear; 1007, third synchronous belt; 1008, third synchronous wheel; 11, second pressing mechanism; 1101, second gear ring; 1102, second limiting frame; 1103, third bearing frame; 1104, second gear; 12 , separation mechanism; 1201, second electric push rod; 1202, limit plate; 1203, double chuck; 1204, first chuck; 1205, second chuck; 1206, fourth synchronous wheel; 1207, fourth synchronous belt; 13, maintenance mechanism; 1301, sleeve; 13011, oil pipe; 1302, worm wheel; 1303, worm; 1304, bracket; 1305, limit groove; 1306, sponge; 1307, top plate; 1308, inner slider; 1309, tension spring; 14, third electric push rod; 1401, clamping sleeve; 1402, fourth electric push rod. DETAILED DESCRIPTION

[0035] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. 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 creative work are within the scope of protection of the present invention.

[0036] See also Figure 1-Figure 4 The present invention provides a technical solution: a processing equipment for processing a hydraulic brake, comprising a chassis mechanism 1, a workpiece 2 and a tool 703, the chassis mechanism 1 comprises a chassis 101, the interior of the chassis 101 is symmetrically slidably sleeved with a cover door 102, the inner top end of the chassis 101 is provided with a tool magazine mechanism 7 for storing the tool 703, the inner top end of the chassis 101 is located at one side of the tool magazine mechanism 7 and is provided with a tool changing mechanism 8 for replacing the tool 703, the interior of the tool magazine mechanism 7 is provided with a first pressing mechanism 10 and a second pressing mechanism 11 for driving the tool 703 to perform a flipping motion, the inner top end of the chassis 101 is located at one side of the tool magazine mechanism 7 and is provided with a driving mechanism 9 for driving the first pressing mechanism 10 and the second pressing mechanism 11 to work, a maintenance mechanism 13 for coating an oil film on the surface of the tool 703 is provided below the tool magazine mechanism 7, and a separation mechanism 12 for controlling the kinetic energy conversion between the first pressing mechanism 10 and the maintenance mechanism 13 is provided inside the driving mechanism 9.

[0037] By adopting the above technical solution, an efficient tool magazine mechanism 7 is deployed at the inner top of the chassis 101. The mechanism is specially used to store a variety of tools 703 to meet different processing requirements. The tool magazine mechanism 7 innovatively integrates a first pressing mechanism 10 and a second pressing mechanism 11. The two mechanisms work together to drive the tool 703 to perform precise flipping movements, ensuring the stable positioning and efficient use of the tool 703 during the processing. In order to further enhance the automation level of the equipment, a powerful driving mechanism 9 is configured on the other side of the tool magazine mechanism 7 at the inner top of the chassis 101. The driving mechanism 9 is not only responsible for driving the first pressing mechanism 10 and the second pressing mechanism 11, but also for driving the tool 703 to rotate. The operation of the pressing mechanism 11 also realizes precise control of the entire processing flow through its internal highly integrated control system. A separation mechanism 12 is cleverly arranged inside the driving mechanism 9. This mechanism plays a key role in kinetic energy conversion. It can effectively control the energy flow and conversion between the first pressing mechanism 10 and the maintenance mechanism 13, ensuring that the equipment can perform necessary maintenance on the tool 703 while performing efficient processing. The maintenance mechanism 13 can automatically apply oil film to the surface of the tool 703 before and after use, effectively reducing the wear of the tool 703, extending its service life, and also improving the surface quality of the processed workpiece.

[0038] See also Figure 1-Figure 4The inner wall of the chassis 101 is fixedly connected with a stand 103, a movable table 104 is arranged inside the chassis 101, a Y-axis moving mechanism 3 is arranged at the inner bottom end of the chassis 101 below the movable table 104, a processing spindle 5 is slidably sleeved on the outer wall of the stand 103, and a Z-axis moving mechanism 6 for driving the processing spindle 5 to rise and fall is arranged above the stand 103 at the upper top of the chassis 101.

[0039] By adopting the above technical scheme, the machining spindle 5 is a key component for executing machining tasks, and its high precision and stability are directly related to the machining quality. Through the precise control of the Z-axis moving mechanism 6, the machining spindle 5 can be lifted and lowered above the stand 103 and the upper top of the chassis 101, thereby realizing precise adjustment of the machining depth and angle and meeting different machining requirements. The setting of the Z-axis moving mechanism 6 not only improves the machining flexibility of the equipment, but also ensures the stability and precision of the machining spindle 5 during the lifting process through its efficient transmission system.

[0040] See also Figure 1-Figure 4 The upper top of the movable table 104 is slidably sleeved with a placing table 105, and the interior of the movable table 104 is provided with an X-axis moving mechanism 4 that drives the placing table 105 to make a linear motion. The upper top of the placing table 105 is symmetrically fixedly connected with a rotating seat 106, and the two rotating seats 106 are rotatably sleeved on the opposite sides of the limiting tables 108. The tops of the two limiting tables 108 are fixedly connected with a processing table 107 on the opposite sides. The upper top of the processing table 107 is symmetrically fixedly connected with a plurality of groups of hydraulic push rods 1071. The upper top of the processing table 107 is located on one side of the hydraulic push rod 1071 and is rotatably sleeved with a limiting member 1072 for limiting the workpiece 2. The lower bottom end of the limiting member 1072 is rotatably sleeved with the hydraulic push rod 1071, and the other end of the limiting member 1072 abuts against the upper top of the workpiece 2.

[0041] By adopting the above technical scheme, the sliding sleeve design on the top of the movable table 104 enables the placement table 105 to move smoothly and accurately in the X-axis direction thereon. This feature, combined with the powerful driving force of the X-axis moving mechanism 4, realizes the all-round positioning of the workpiece 2 in the horizontal plane, laying a solid foundation for subsequent precision machining. The ingenious combination of the rotating seat 106 and the limit table 108 on the top of the placement table 105 provides a more flexible and stable support for the workpiece 2. The precise extension and retraction of the hydraulic push rod 1071 can drive the limit member 1072 to tightly and stably limit the workpiece 2, effectively preventing the workpiece 2 from shaking and deflecting during the machining process. At the same time, the other end of the limit member 1072 abuts against the upper top of the workpiece 2, which not only ensures the stable support of the workpiece 2 during the machining process, but also realizes the flexible adjustment of the workpiece 2 at different machining angles through its rotatable connection method.

[0042] See also Figure 5-Figure 8 The tool magazine mechanism 7 includes a tool magazine 701 fixedly connected to the top of the chassis 101, the inner wall of the tool magazine 701 is symmetrically rotatably sleeved with a sprocket 704, the outer walls of the two groups of sprockets 704 are meshed and sleeved with a chain 705 for transmission, the inner wall of the tool magazine 701 is located at the center of one of the sprockets 704 and is fixedly connected with a first motor 706, the output end of the first motor 706 is fixedly connected with a first drive shaft 707, and the first drive shaft 707 is fixedly connected to the end of one of the sprockets 704, the interior of the tool magazine 701 is slidably sleeved with a plurality of elastic limit sleeves 708, and the elastic limit sleeves 708 The upper top is symmetrically fixedly connected with an ear plate 7083 which is limited by the chain 705, the inner wall of the elastic limit sleeve 708 is rotatably sleeved with a magnetic sleeve 702, the end of the elastic limit sleeve 708 is symmetrically fixedly connected with a connecting rod 7081, the end of the connecting rod 7081 away from the elastic limit sleeve 708 is rotatably sleeved with a movable ball 7082, the inner wall of the tool storage 701 is fixedly connected with a limiting sleeve 7011, several movable balls 7082 are sleeved inside the limiting sleeve 7011, the tool 703 is sleeved inside the magnetic sleeve 702, and the outer walls of several magnetic sleeves 702 are provided with guide grooves 7021.

[0043] By adopting the above technical solution, the tool magazine 701 serves as the main storage area for the tool 703. The sprocket 704 symmetrically rotated and sleeved on the inner wall and the meshing sleeved chain 705 constitute a stable and efficient transmission system. By accurately controlling the rotation speed and direction of the first motor 706, the moving speed and direction of the chain 705 can be accurately regulated, thereby ensuring the fast and accurate transmission of the tool 703 in the tool magazine 701. The elastic limit sleeve 708 is connected to the chain 705 through the ear plate 7083 on the top thereof, thereby achieving close cooperation with the transmission system. At the same time, the elastic design of the elastic limit sleeve 708 , so that it can adapt to tools 703 of different sizes and shapes, ensuring the stability and safety of tool 703 during storage. The setting of magnetic sleeve 702 not only provides a stable support platform for tool 703, but also realizes the close adsorption of tool 703 through its internal magnetic material, effectively preventing the tool 703 from falling off and shaking during storage and transportation. The rolling of movable ball 7082 inside limiting sleeve 7011 not only reduces the friction during sliding, but also improves the smoothness and stability of sliding, thereby ensuring the efficiency and accuracy of tool 703 during storage and replacement.

[0044] See also Figure 2 and Fig.13The tool changing mechanism 8 includes a first electric push rod 801 symmetrically fixedly connected to one side of the tool storage magazine 701, the telescopic ends of the two first electric push rods 801 are fixedly connected to a fixed plate 802, the center of the lower bottom end of the fixed plate 802 is fixedly connected to a second motor 803, the output end of the second motor 803 is fixedly connected to a second driving shaft 804, and the end of the second driving shaft 804 away from the second motor 803 is fixedly connected to a tool changing arm 805 for replacing the tool 703.

[0045] By adopting the above technical solution, the fixed plate 802 serves as the core supporting structure of the tool changing mechanism 8, and the second motor 803 fixedly connected at the center of its lower bottom end provides a stable power source for the rotation of the tool changing arm 805. The output end of the second motor 803 is tightly connected to the tool changing arm 805 through the second drive shaft 804, thereby realizing fast and accurate replacement of the tool 703.

[0046] See also Figure 5-Figure 11 The driving mechanism 9 includes a load-bearing plate 901 fixedly connected to the top of the chassis 101 and located on one side of the tool storage magazine 701, the inner bottom end of the load-bearing plate 901 is fixedly connected to the third motor 902, and the two output ends of the third motor 902 are respectively fixedly connected to the third drive shaft 9021 and the fourth drive shaft 9022, the outer wall of the load-bearing plate 901 is symmetrically fixedly connected to the first bearing frame 9011, the ends of the third drive shaft 9021 and the fourth drive shaft 9022 are rotatably sleeved with the inner wall of the first bearing frame 9011, and the lower bottom end of the load-bearing plate 901 is symmetrically fixedly connected to the extension arm 905, and the ends of the two extension arms 905 are rotatably sleeved with double synchronous wheels 906.

[0047] By adopting the above technical scheme, the load-bearing plate 901 serves as the basic supporting structure of the driving mechanism 9, and is firmly connected to the top of the chassis 101, located on the side of the tool storage 701, providing a solid installation platform for the third motor 902 and its accessories. The third motor 902 serves as the main power source of the driving mechanism 9, and its dual output end design realizes the simultaneous driving of the third drive shaft 9021 and the fourth drive shaft 9022. This feature significantly improves the working efficiency and flexibility of the driving mechanism 9. The third motor 902 can adopt an asynchronous dual-axis motor. By accurately controlling the speed and direction of the third motor 902, the third drive shaft 9021 and the fourth drive shaft 9022 can be independently or synchronously controlled, thereby meeting the flexible response to different driving requirements during the processing process. The setting of the first bearing frame 9011 not only provides stable support for the ends of the third drive shaft 9021 and the fourth drive shaft 9022, but also ensures the stability and precision of the drive shaft during rotation through its rotating sleeve design.

[0048] See also Figure 5-Figure 11The first pressing mechanism 10 includes a first limiting frame 1001 which is symmetrically fixedly connected to the inner wall of the tool collection magazine 701, the first limiting frame 1001 is located at the interval of the chain 705, a first gear ring 1002 is slidably sleeved at the interval between the two groups of first limiting frames 1001, a second bearing frame 1004 is fixedly connected to the outer wall of the two first limiting frames 1001, a synchronous shaft 1005 is rotatably sleeved inside the two second bearing frames 1004, a first gear 1006 meshing with the first gear ring 1002 is fixedly connected to the outer wall of the synchronous shaft 1005, a third synchronous wheel 1008 is fixedly connected to the outer wall of the synchronous shaft 1005, the outer wall of the fourth driving shaft 9022 is also rotatably sleeved with the third synchronous wheel 1008, and the outer walls of the two third synchronous wheels 1008 are sleeved with a third synchronous belt 1007 for transmission.

[0049] By adopting the above technical solution, the first limit frame 1001 is located at the interval of the chain 705. This design avoids interference with the transmission system and ensures the smooth storage and transmission of the tool 703. The sliding sleeve of the first gear ring 1002 at the interval of the first limit frame 1001 provides a stable transmission path for the downward pressure of the tool 703. Through the sliding of the first gear ring 1002, the tool 703 can be accurately positioned and controlled in the vertical direction. The close cooperation between the second bearing frame 1004 and the synchronous shaft 1005 provides a stable support for the rotation of the first gear 1006. The first gear 1006 fixedly connected to the outer wall of the step shaft 1005 and the meshing transmission with the first gear ring 1002 realize precise control of the sliding process of the first gear ring 1002, which not only improves the efficiency and stability of the transmission, but also optimizes the internal layout of the equipment through its compact structural design. The two third synchronous wheels 1008 are connected through the third synchronous belt 1007 to realize the synchronous transmission between the fourth drive shaft 9022 and the synchronous shaft 1005, which not only simplifies the transmission system, but also improves the control accuracy and response speed of the drive mechanism 9 to the first pressing mechanism 10 through its efficient transmission method.

[0050] See also Figure 5-Figure 11The second pressing mechanism 11 includes a second limiting frame 1102 symmetrically fixedly connected to the inner wall of the tool collecting magazine 701, a second gear ring 1101 is slidably sleeved at the interval between the two sets of second limiting frames 1102, the outer walls of the first limiting frame 1001 and the second limiting frame 1102 are fixedly connected to the inner wall of the tool collecting magazine 701, and the outer walls of the two second limiting frames 1102 are fixedly connected to the third bearing frames 1103, and the inner walls of the two third bearing frames 1103 are fixedly sleeved with a second gear ring 1101 meshing with the second gear ring 1101. The second gear 1104 of transmission is coaxial with the second gear 1104 and the outer wall of the third driving shaft 9021 is fixedly sleeved with the first synchronous wheel 903, the outer walls of the two first synchronous wheels 903 are sleeved with the first synchronous belt 904 for transmission, the lower bottom end of the tool collection magazine 701 is located at the position of the first pressing mechanism 10 and the second pressing mechanism 11, and a U-shaped groove is provided for the magnetic suction sleeve 702 to limit the position after flipping, and the ends of the first gear ring 1002 and the second gear ring 1101 are slidably sleeved with the magnetic suction sleeve 702 through the guide groove 7021.

[0051] By adopting the above technical solution, the second limit frame 1102 serves as the supporting structure of the second pressing mechanism 11, and complements the first limit frame 1001, and together provides a stable guide for the sliding of the second gear ring 1101, which not only optimizes the space utilization inside the equipment, but also ensures the stability and accuracy of the second gear ring 1101 during the sliding process. The sliding sleeve of the second gear ring 1101 at the interval between the two sets of second limit frames 1102 provides another independent transmission path for the downward pressing of the tool 703. Similar to the first gear ring 1002, the second gear ring 1 The sliding of 101 can also realize precise positioning and control of the tool 703 in the vertical direction. The U-shaped groove opened at the lower end of the tool storage magazine 701 provides a stable limit for the magnetic suction sleeve 702 after flipping, which not only ensures the safety of the tool 703 during the replacement process, but also avoids interference with the transmission system through its clever layout. At the same time, the ends of the first gear ring 1002 and the second gear ring 1101 are slidably connected with the magnetic suction sleeve 702 through the guide groove 7021, thereby realizing all-round control of the tool 703 in the vertical and horizontal directions.

[0052] See also Figure 10-Figure 16The separation mechanism 12 includes a second electric push rod 1201 symmetrically fixedly connected to the inner wall of the first bearing frame 9011 at one end away from the third drive shaft 9021, and the telescopic ends of the two second electric push rods 1201 are fixedly connected to the limit plate 1202. The outer wall of the fourth drive shaft 9022 is symmetrical to the third synchronous wheel 1008 and is rotatably sleeved with a fourth synchronous wheel 1206. The outer walls of the double synchronous wheels 906 and the fourth synchronous wheel 1206 are sleeved with a fourth synchronous belt 1207 for transmission. The outer wall of the fourth drive shaft 9022 is provided with a spacer at the interval between the third synchronous wheel 1008 and the fourth synchronous wheel 1206. The outer wall of the fourth drive shaft 9022 is located at the position of the spline groove 9023 and is slidably connected with a double chuck 1203. The third synchronous wheel 1008 is fixedly connected with the second chuck 1205 on the side close to the double chuck 1203. The fourth synchronous wheel 1206 is fixedly connected with the first chuck 1204 on the side close to the double chuck 1203. The double chucks 1203 are meshed with the first chuck 1204 and the second chuck 1205 for transmission, and the first chuck 1204 and the second chuck 1205 are rotatably connected with the fourth drive shaft 9022, and the limit plate 1202 is rotatably connected to the outer wall of the double chuck 1203.

[0053] By adopting the above technical solution, the second electric push rod 1201 is used as the power source of the separation mechanism 12. The design of the second electric push rod 1201 being symmetrically fixedly connected to the inner wall of the first bearing frame 9011 not only ensures the stability of the limit plate 1202 during the extension and retraction process, but also realizes the precise adjustment of the sliding position of the double chuck 1203 on the fourth drive shaft 9022 through its precise extension and retraction control. The double chuck 1203 is the core component of the separation mechanism 12. The design of the double chuck 1203 being slidably sleeved on the outer wall of the fourth drive shaft 9022 and the meshing transmission with the first chuck 1204 and the second chuck 1205 together construct an efficient and stable transmission system. The meshing transmission of the chuck 1203 and the first chuck 1204 and the second chuck 1205 ensures the kinetic energy conversion of the first pressing mechanism 10 and the maintenance mechanism 13. The opening of the spline groove 9023 provides stable guidance and limitation for the sliding of the double chuck 1203 on the fourth drive shaft 9022, which not only enhances the stability of the double chuck 1203 during the sliding process, but also avoids interference with the transmission system through its ingenious layout. The limit plate 1202 is rotatably sleeved on the outer wall of the double chuck 1203, which provides stable limitation and guidance for the sliding of the double chuck 1203, which not only ensures the smoothness and precision of the double chuck 1203 during the sliding process.

[0054] See also Figure 9-12The maintenance mechanism 13 includes a bracket 1304 fixedly connected to the lower bottom end of the tool collection magazine 701, a sleeve 1301 is rotatably sleeved inside the bracket 1304, a worm gear 1302 is fixedly sleeved on the outer wall of the sleeve 1301, a second protective frame 909 is rotatably sleeved on the outer wall of the sleeve 1301 at the position of the worm gear 1302, a mounting frame 9091 is fixedly sleeved on the outer wall of the second protective frame 909, and an end of the mounting frame 9091 is fixedly connected to the lower bottom end of the tool collection magazine 701 The inner wall of the second protection frame 909 is rotatably sleeved with a worm 1303 meshing with the worm wheel 1302, the outer wall of the worm 1303 is fixedly connected with a second synchronous wheel 9061, the outer wall of the second synchronous wheel 9061 and the double synchronous wheel 906 are sleeved with a second synchronous belt 907, the outer wall of the second protection frame 909 is located at the position of the second synchronous belt 907 and is fixedly connected with a first protection frame 908, and the other end of the first protection frame 908 is rotatably sleeved at the positions of the two extension arms 905. At the outer wall of the double synchronous wheel 906, a plurality of limit grooves 1305 are provided in an annular array on the inner wall of the sleeve 1301, and a tension spring 1309 is fixedly connected to the inner top of the limit groove 1305. A sponge 1306 for absorbing oil is slidably sleeved on the inner wall of the sleeve 1301, and a plurality of inner sliders 1308 are inlaid in an annular array on the outer wall of the sponge 1306. The end of the tension spring 1309 is fixedly connected to the top of the nearest inner slider 1308, and the inner slider 1308 slides. It is sleeved inside the limiting groove 1305, the upper top of the sponge 1306 is fixedly connected to the top plate 1307, the lower bottom end of the sleeve 1301 is provided with an oil pipe 13011 for oil supply, the lower bottom end of the tool storage magazine 701 is located on one side of the bracket 1304 and is fixedly connected to the third electric push rod 14, the telescopic end of the third electric push rod 14 is fixedly connected to the clamping sleeve 1401, and the inside of the clamping sleeve 1401 is fixedly sleeved with the fourth electric push rod 1402 that squeezes the top plate 1307.

[0055] By adopting the above technical solution, the close cooperation between the sleeve 1301 and the worm wheel 1302 provides a stable support for the transmission of the worm 1303. At the same time, the addition of the second protective frame 909 not only provides necessary protection for the meshing transmission of the worm wheel 1302 and the worm 1303, but also improves the durability and reliability of the entire transmission system through its solid structural design. The fixed connection between the worm 1303 and the second synchronous wheel 9061, and the transmission of the second synchronous wheel 9061 and the double synchronous wheels 906 through the second synchronous belt 907 realize the precise control of the rotation of the sleeve 1301. The sponge 1306 is a key component for absorbing oil. The sliding sleeve connection between the inner slider 1308 inlaid with the annular array and the limiting groove 1305 not only ensures the sponge 1 306 is smooth and precise during the sliding process, and the elastic force of the tension spring 1309 realizes the automatic resetting of the sponge 1306, which not only improves the efficiency and stability of oil adsorption, but also meets the diverse needs of oil adsorption at different positions of the tool 703 during the processing through its flexible sliding method. The distance between the sponge 1306 and the tool 703 can be accurately adjusted by lifting and lowering the top plate 1307, thereby ensuring effective adsorption of the oil. The lifting and lowering position of the top plate 1307 can be accurately adjusted by the telescopic control of the third electric push rod 14, and the addition of the fourth electric push rod 1402 further enhances the squeezing effect of the top plate 1307 on the sponge 1306, thereby improving the efficiency and stability of oil adsorption.

[0056] Regarding the movement of the tool 703: when the first motor 706 drives the first drive shaft 707 to rotate, it will synchronously drive the sprocket 704 to rotate, and the sprocket 704 drives the remaining sprockets 704 to rotate through the chain 705, and a plurality of ear plates 7083 connected to the elastic limiting sleeve 708 are arranged on the outer wall of the chain 705. When the chain 705 rotates, it can drive the elastic limiting sleeve 708 to rotate, so that the tool 703 can be moved through the elastic limiting sleeve 708 and the chain 705. Since the guide groove 7021 is provided on the outer wall of the magnetic suction sleeve 702, each group of magnetic suction sleeves 70 2 are in a parallel state after moving to the lowest position. When moving to the position of the first pressing mechanism 10, the third motor 902 can be started, and the fourth driving shaft 9022 is driven to rotate by the third motor 902. At this time, the fourth driving shaft 9022 drives the third synchronous wheel 1008 and the third synchronous belt 1007 to rotate, and synchronously drives the synchronous shaft 1005 and the first gear 1006 to rotate. Since the first gear 1006 is meshed with the first gear ring 1002 for transmission, the first gear ring 1002 makes an arc movement, and its end is slidably sleeved with the guide groove 7021 on the outer wall of the magnetic suction sleeve 702. At this time The end of the first gear ring 1002 will squeeze the magnetic sleeve 702 to separate it from the elastic limiting sleeve 708. At this time, the magnetic sleeve 702 takes the inner center position of the elastic limiting sleeve 708 as the axis and rotates ninety degrees. At this time, the tool 703 is set vertically downward, and the tool body part at its end enters into the interior of the sleeve 1301 and squeezes the sponge 1306. Before this, oil needs to be sent into the interior of the sleeve 1301 through the oil pipe 13011, and the telescopic end of the third electric push rod 14 needs to be controlled to drive the fourth electric push rod 1402 to move. When the fourth electric push rod 1402 After the center point coincides with the center point of the sleeve 1301, the telescopic end of the fourth electric push rod 1402 moves downward and squeezes the top plate 1307 and the sponge 1306, and the sponge 1306 will stretch the tension spring 1309 to stretch it, and the sponge 1306 will be compressed by the force. At this time, since there is oil at the inner bottom end of the sleeve 1301, the compressed sponge 1306 will contact the oil, and the adsorption of the oil sponge 1306 can absorb the oil. When the blade of the cutter 703 squeezes the sponge 1306, the sponge 1306 will fit the blade of the cutter 703;

[0057] Since the blade of the tool 703 enters the interior of the sleeve 1301 at this time, it is necessary to control the telescopic end of the second electric push rod 1201 to drive the limit plate 1202 to move, thereby driving the double chuck 1203 to separate from the second chuck 1205. At this time, the double chuck 1203 moves on the outer wall of the fourth drive shaft 9022 and stops moving after engaging with the first chuck 1204. At this time, when the fourth drive shaft 9022 rotates again, it will drive the fourth synchronous wheel 1206 and the fourth synchronous belt 1207 to rotate, and the first lower The pressing mechanism 10 will no longer work, and the rotation of the fourth synchronous belt 1207 can drive the double synchronous wheels 906 and the second synchronous belt 907 below to rotate, and the second synchronous belt 907 drives the second synchronous wheel 9061 and the worm 1303 to rotate, and the worm 1303 drives the worm wheel 1302 and the sleeve 1301 to rotate. Since the sponge 1306 is slidably sleeved in the limiting groove 1305 through the inner slider 1308, when the sleeve 1301 rotates, it can drive the sponge 1306 to rotate, so that the internal The oil is applied to the body of the tool 703 so that an oil film exists on its surface to prevent the tool 703 from being in the tool storage magazine 701 for a long time, which accelerates the oxidation and corrosion of the tool 703. After the application is completed, the power of the maintenance mechanism 13 is disconnected through the separation mechanism 12 again, so that it re-establishes a power connection with the first pressing mechanism 10. At this time, the first gear 1006 will rotate in the opposite direction with the help of the third motor 902, thereby driving the first gear ring 1002 and the magnetic suction sleeve 702 to reset. At this time, the tool 703 located inside the magnetic suction sleeve 702 will Return to the original position and move the position with the help of the chain 705 and the sprocket 704. When the tool needs to be changed, the tool 703 needs to be moved to the bottom of the second pressing mechanism 11, and the third drive shaft 9021 is driven to rotate by the other output end of the third motor 902, and the first synchronous wheel 903 and the first synchronous belt 904 are driven to rotate synchronously, so that the second gear 1104 is engaged with the second gear ring 1101, and the tool 703 that needs to be changed is squeezed to make it turn over ninety degrees, and then the tool can be changed using the tool changing mechanism 8.

[0058] It should be noted that, in this article, relational terms such as first and second, etc. are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Moreover, the terms "include", "comprise" or any other variants thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements includes not only those elements, but also other elements not explicitly listed, or also includes elements inherent to such process, method, article or device.

[0059] Although embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions and variations may be made to the embodiments without departing from the principles and spirit of the present invention, and that the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A processing device for processing a hydraulic brake, comprising a chassis mechanism, a processing part and a tool, characterized in that: The chassis mechanism includes a chassis, a cover door is symmetrically slidably sleeved inside the chassis, a tool magazine mechanism for storing tools is arranged at the inner top end of the chassis, a tool changing mechanism for replacing tools is arranged at the inner top end of the chassis located at one side of the tool magazine mechanism, a first pressing mechanism and a second pressing mechanism for driving the tool to perform a flipping movement are arranged inside the tool magazine mechanism, a driving mechanism for driving the first pressing mechanism and the second pressing mechanism to work is arranged at the inner top end of the chassis located at one side of the tool magazine mechanism, a maintenance mechanism for coating an oil film on the surface of the tool is arranged below the tool magazine mechanism, a separation mechanism for controlling the kinetic energy conversion of the first pressing mechanism and the maintenance mechanism is arranged inside the driving mechanism, and the tool magazine mechanism includes a The tool collecting magazine at the end, the driving mechanism includes a load-bearing plate fixedly connected to the top of the chassis and located on one side of the tool collecting magazine, the inner bottom end of the load-bearing plate is fixedly connected to a third motor, and two output ends of the third motor are respectively fixedly connected to a third driving shaft and a fourth driving shaft, the outer wall of the load-bearing plate is symmetrically fixedly connected to a first bearing frame, the ends of the third driving shaft and the fourth driving shaft are rotatably sleeved with the inner wall of the first bearing frame, the lower bottom end of the load-bearing plate is symmetrically fixedly connected to an extension arm, and the ends of the two extension arms are rotatably sleeved with double synchronous wheels, the first pressing mechanism includes a first limiting frame symmetrically fixedly connected to the inner wall of the tool collecting magazine, the first limiting frame is located at the interval of the chain, and is slidably sleeved at the interval of two groups of the first limiting frames The gear train of claim 1, wherein the first gear train is an assembly made of a plurality of gears and a plurality of gears are connected to the plurality of gears, and the plurality of gears are connected to the plurality of gears. The outer wall of the second limiting frame is fixedly connected to the third bearing frame, the inner walls of the two third bearing frames are fixedly sleeved with a second gear meshing with the second gear ring for transmission, the outer walls of the second gear and the third driving shaft are fixedly sleeved with a first synchronous wheel, the outer walls of the two first synchronous wheels are sleeved with a first synchronous belt for transmission, the lower bottom end of the tool collection magazine is located at the position of the first pressing mechanism and the second pressing mechanism, and a U-shaped notch is provided for the magnetic suction sleeve to limit after flipping, the ends of the first gear ring and the second gear ring are slidably sleeved with the magnetic suction sleeve through a guide groove, and the separation mechanism includes a second electric push rod symmetrically fixedly connected to the inner side wall of the first bearing frame away from one end of the third driving shaft, and the telescopic ends of the two second electric push rods are fixedly connected to the limiting disk,The outer wall of the fourth driving shaft is rotatably sleeved with a fourth synchronous wheel at a symmetrical position with the third synchronous wheel, the outer walls of the double synchronous wheel and the fourth synchronous wheel are sleeved with a fourth synchronous belt for transmission, the outer wall of the fourth driving shaft is provided with a spline groove at the interval between the third synchronous wheel and the fourth synchronous wheel, the outer wall of the fourth driving shaft is slidably sleeved with a double chuck at the position of the spline groove, the side of the third synchronous wheel close to the double chuck is fixedly connected to the second chuck, the side of the fourth synchronous wheel close to the double chuck is fixedly connected to the first chuck, and the double chucks are The first and second chucks are meshed for transmission, and the first and second chucks are rotatably sleeved with the fourth drive shaft, the limit plate is rotatably sleeved on the outer wall of the double chucks, the maintenance mechanism includes a bracket fixedly connected to the lower bottom end of the tool collection magazine, the inner part of the bracket is rotatably sleeved with a sleeve, the outer wall of the sleeve is fixedly sleeved with a worm gear, the outer wall of the sleeve is rotatably sleeved with a second protective frame at the position of the worm gear, the outer wall of the sleeve is rotatably sleeved with a mounting frame, and the end of the mounting frame is fixedly connected to the lower bottom end of the tool collection magazine, and the second protective frame The inner wall of the frame is rotatably sleeved with a worm that meshes with the worm gear, the outer wall of the worm is fixedly connected with a second synchronous wheel, the second synchronous wheel and the outer wall of the double synchronous wheels are sleeved with a second synchronous belt, the outer wall of the second protective frame is located at the position of the second synchronous belt and is fixedly connected to the first protective frame, and the other end of the first protective frame is rotatably sleeved on the outer walls of the double synchronous wheels where two extension arms are located, a plurality of limiting grooves are provided in an annular array on the inner wall of the sleeve, the inner top end of the limiting groove is fixedly connected with a tension spring, and the inner wall of the sleeve is slidably sleeved with a pair of The sponge absorbs oil, and the outer wall of the sponge is inlaid with a plurality of inner sliders in an annular array. The end of the tension spring is fixedly connected to the top of the nearest inner slider, and the inner slider is slidably sleeved inside the limit groove. The upper top of the sponge is fixedly connected to the top plate, and the lower bottom of the sleeve is provided with an oil pipe for oil supply. The lower bottom of the tool collection magazine is located on one side of the bracket and is fixedly connected to the third electric push rod. The telescopic end of the third electric push rod is fixedly connected to the clamping sleeve, and the inside of the clamping sleeve is fixedly sleeved with the fourth electric push rod for pressing the top plate.

2. The processing equipment for processing hydraulic brakes according to claim 1 is characterized in that: The inner wall of the chassis is fixedly connected with a stand, a movable table is arranged inside the chassis, a Y-axis moving mechanism is arranged at the inner bottom end of the chassis below the movable table, a processing spindle is slidably sleeved on the outer wall of the stand, and a Z-axis moving mechanism for driving the processing spindle to rise and fall is arranged above the stand at the upper top of the chassis.

3. The processing equipment for processing hydraulic brakes according to claim 2 is characterized in that: The upper top of the movable table is slidably sleeved with a placing table, and an X-axis moving mechanism for driving the placing table to make linear motion is arranged inside the movable table, and the upper top of the placing table is symmetrically fixedly connected with a rotating seat, and the two opposite sides of the rotating seats are rotatably sleeved with a limiting table, and the tops of the two opposite sides of the limiting tables are fixedly connected with a processing table, and the upper top of the processing table is symmetrically fixedly connected with a plurality of groups of hydraulic push rods, and the upper top of the processing table is located on one side of the hydraulic push rod and is rotatably sleeved with a limiting piece for limiting the processing workpiece, and the lower bottom end of the limiting piece is rotatably sleeved with the hydraulic push rod, and the other end of the limiting piece abuts against the upper top of the processing workpiece.

4. The processing equipment for processing hydraulic brakes according to claim 1 is characterized in that: The inner side wall of the tool collecting magazine is symmetrically rotatably sleeved with a sprocket, and the outer walls of the two groups of sprockets are meshed and sleeved with chains for transmission, and the inner side wall of the tool collecting magazine is located at the center of one of the sprockets and is fixedly connected to a first motor, an output end of the first motor is fixedly connected to a first driving shaft, and the first driving shaft is fixedly connected to an end of one of the sprockets, and a plurality of elastic limit sleeves are slidably sleeved inside the tool collecting magazine, the upper top of the elastic limit sleeve is symmetrically fixedly connected with an ear plate connected to the chain limit, the inner side wall of the elastic limit sleeve is rotatably sleeved with a magnetic sleeve, the end of the elastic limit sleeve is symmetrically fixedly connected with a connecting rod, and the end of the connecting rod away from the elastic limit sleeve is rotatably sleeved with a movable ball, the inner side wall of the tool collecting magazine is fixedly connected with a limiting sleeve, a plurality of the movable balls are sleeved inside the limiting sleeve, the tool is sleeved inside the magnetic sleeve, and guide grooves are provided on the outer walls of a plurality of the magnetic sleeves.

5. The processing equipment for processing hydraulic brakes according to claim 4 is characterized in that: The tool changing mechanism includes a first electric push rod symmetrically fixedly connected to one side of the tool collection magazine, the telescopic ends of the two first electric push rods are fixedly connected to a fixed plate, the center of the lower bottom end of the fixed plate is fixedly connected to a second motor, the output end of the second motor is fixedly connected to a second driving shaft, and the end of the second driving shaft away from the second motor is fixedly connected to a tool changing arm for replacing the tool.

Citation Information

Patent Citations

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