Automatic production and detection equipment for automobile brake oil can floater

By designing automatic production and testing equipment for automobile brake oil pot floats and using robotic arms and automation equipment to replace manual operation, the risk factors and errors in quality inspection in float production are solved, and efficient and safe production and inspection are achieved.

CN120190979APending Publication Date: 2025-06-24NINGBO LI JIANG ROBOT TECH CO LTD
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Patent Information

Application Number
CN202510349481.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-24
Publication Date
2025-06-24

AI Technical Summary

Technical Problem

Car brake oil bottle floats involve high temperature and high pressure during the production process. Manual operation requires contact with potential hazardous sources, and human operators cannot work 24 hours a day, which affects the efficiency of the production line. The float body needs to be tested after production is completed, and manual operation classification is prone to accidents caused by mistakes and affects quality.

Method used

An automated production and testing equipment for floating floats of automobile brake oil pots was designed. The first robot arm was used instead of manual grasping magnets for production and transfer of float bodies. Combined with the loading box, positioning platform and the second robot arm, the positioning detection and classification of automatic loading and float bodies were realized.

Benefits of technology

Through automated production and testing equipment, personnel safety is protected, 24-hour uninterrupted production is achieved, production efficiency and finished product quality are improved, and the risk of manual operation errors is reduced.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of automatic production and detection equipment for automobile brake oil can floaters, and discloses automatic production and detection equipment for automobile brake oil can floaters, which comprises a mounting floor, and a first mechanical arm is fixedly connected above the mounting floor. According to the automatic production and detection equipment for the automobile brake oil can floaters, through the arrangement of the first mechanical arm, manual magnet grabbing can be replaced for production of floater bodies, the produced floater bodies are transferred to the next working procedure, personnel safety is protected, continuous work can be achieved, the production efficiency is improved, and the production cost is reduced. Through the arrangement of the feeding box, automatic feeding can be achieved, manual operation is saved, the production cost is reduced, through the arrangement of the positioning platform, the floater body can be positioned, the second mechanical arm can conveniently grab the floater body for detection, the working precision is improved, through the arrangement of the second mechanical arm, the floater body can be automatically detected and classified, the classification accuracy is improved, and the working efficiency is improved. And the finished product quality is improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of automatic production and detection equipment for automotive brake fluid reservoir floats, and particularly relates to an automatic production and detection equipment for automotive brake fluid reservoir floats. Background Art

[0002] The float in an automotive brake fluid reservoir is an important component, mainly used to monitor the level of the brake fluid. It is usually located inside the brake fluid reservoir and floats up and down as the amount of brake fluid changes. When the brake fluid level drops to a certain level, the change in the position of the float will trigger a warning light to remind the driver to check or add brake fluid. The main production method of the float is injection molding outside the magnet.

[0003] The automatic production and detection equipment for automotive brake fluid reservoir floats is an important means to improve efficiency and ensure product quality in modern manufacturing. During the production process of automotive brake fluid reservoir floats, there are risk factors such as high temperature and high pressure. Manual operation requires contact with potential hazards, and at the same time, human operators cannot work 24 hours a day, which affects the production line efficiency. After the production of the float body is completed, it needs to be detected, and the qualified and unqualified floats need to be classified and placed. Manual classification is prone to accidents due to mistakes, which affects the quality. Therefore, an automatic production and detection equipment for automotive brake fluid reservoir floats is proposed. Summary of the Invention

[0004] The main purpose of the present invention is to provide an automatic production and detection equipment for automotive brake fluid reservoir floats, which solves the problems that during the production process of automotive brake fluid reservoir floats, there are risk factors such as high temperature and high pressure, manual operation requires contact with potential hazards, and at the same time, human operators cannot work 24 hours a day, which affects the production line efficiency. After the production of the float body is completed, it needs to be detected, and the qualified and unqualified floats need to be classified and placed. Manual classification is prone to accidents due to mistakes, which affects the quality.

[0005] To achieve the above purpose, the technical solution adopted by the present invention is as follows:

[0006] An automatic production and detection equipment for automotive brake fluid reservoir floats, including a mounting floor, a first robotic arm is fixedly connected above the mounting floor, a first mounting rod is fixedly connected to the driving end above the first robotic arm, a limit clamping seat is clamped on the outside of the first mounting rod, a connecting plate is fixedly connected below the limit clamping seat, four first vacuum fixing tubes are fixedly connected at equal intervals on the outside of the connecting plate, four first electric clamps are fixedly connected at equal intervals below the connecting plate, the inner sides of the four first electric clamps are all clamped with a float body, an injection molding machine is fixedly connected above the mounting floor, and a second connection groove is opened on the outside of the connecting plate.

[0007] Further, an operation cabinet is fixedly connected above the installation floor. An operation platform is fixedly connected inside the upper part of the operation cabinet. A fixing bracket is fixedly connected above the operation platform. Two first electric push rods are fixedly connected at equal intervals on the inner side above the fixing bracket. The output ends on the inner sides of the two first electric push rods are fixedly connected with two first transmission rods at equal intervals.

[0008] Further, two second electric push rods are fixedly connected at equal intervals above the operation platform. The output ends of the two second electric push rods are fixedly connected with two second transmission rods at equal intervals.

[0009] Further, four feeding boxes are fixedly connected at equal intervals above the operation platform. First transmission grooves are formed inside the four feeding boxes. The outer ends of the four second transmission rods are respectively movably installed in the four first transmission grooves.

[0010] Further, four third electric push rods are fixedly connected at equal intervals above the operation platform. The output ends above the four third electric push rods are fixedly connected with four third transmission rods. Second transmission grooves are formed below the four feeding boxes. The upper parts of the four third transmission rods are respectively movably installed in the four second transmission grooves. Feeding pipes are fixedly connected above the four feeding boxes.

[0011] Further, a first mounting plate is fixedly connected to the outside of the operation cabinet. Two electric instrument shears are fixedly connected at equal intervals above the first mounting plate. A second mounting plate is fixedly connected to the outside of the operation cabinet. Four placing brackets are fixedly connected at equal intervals above the second mounting plate.

[0012] Further, a positioning platform is fixedly connected above the operation platform. A first positioning plate is fixedly connected above the positioning platform. Two first positioning grooves are formed at equal intervals on both sides of the first positioning plate. Two fourth electric push rods are fixedly connected at equal intervals below the positioning platform. The output ends on the inner sides of the two fourth electric push rods are fixedly connected with transmission plates. Two first connection grooves are formed at equal intervals above the positioning platform. The upper parts of the two transmission plates respectively pass through the two first connection grooves. Second positioning plates are fixedly connected above the two transmission plates. Second positioning grooves are formed inside the two second positioning plates.

[0013] Further, a second robotic arm is fixedly connected above the operation platform. A second electric clamp is fixedly connected to the output end on one side of the second robotic arm. A magnetic force detection platform is fixedly connected above the operation platform. A weighing device is fixedly connected above the operation platform on one side of the magnetic force detection platform.

[0014] Further, a first discharge port is provided above the operation platform. A first discharge pipe is fixedly connected to the operation platform below the first discharge port. A recycling cart abuts against one side of the operation cabinet. A second discharge port is provided above the operation platform. A second discharge pipe is fixedly connected to the operation platform below the second discharge port. A third discharge port is provided above the operation platform. A third discharge pipe is fixedly connected to the operation platform below the third discharge port. A fourth discharge port is provided above the operation platform. A fourth discharge pipe is fixedly connected to the operation platform below the fourth discharge port. A fifth discharge port is provided above the operation platform. A fifth discharge pipe is fixedly connected to the operation platform below the first discharge port. Four collection boxes are fixedly connected inside the operation platform.

[0015] Compared with the prior art, the present invention has the following beneficial effects:

[0016] 1. By setting the first robotic arm, the present invention can replace manual labor to grasp magnets for the production of the float body and transfer the produced float body to the next process, protecting the safety of personnel, enabling continuous operation to improve production efficiency. The first robotic arm can drive the connecting plate to rotate through the first mounting rod and the limit clamping seat. The connecting plate drives the first vacuum fixing pipe to suck up the feeding magnet, and then places the magnet in the mold of the injection molding machine. At this time, the first robotic arm can drive the connecting plate away from the injection molding machine through the first mounting rod and the limit clamping seat. When the magnet is injection-molded into the float body in the injection molding machine, the first electric clamp is driven by the connecting plate again to clamp out the float body in the injection molding machine to the next process. Through such a setting, it can replace manual labor to grasp magnets for the production of the float body and transfer the produced float body to the next process, protecting the safety of personnel and enabling continuous operation to improve production efficiency.

[0017] 2. By setting the feeding box, the present invention can automatically feed materials, saving manual operation and reducing production costs. Place multiple magnets for production in the feeding pipe. Start the first electric push rod. The first electric push rod pushes the magnet at the bottom of the feeding pipe into the first transmission groove through the first transmission rod. At this time, start the second electric push rod. The second electric push rod pushes the magnet into the second transmission groove through the second transmission rod. Start the third electric push rod. The third electric push rod pushes the magnet out of the second transmission groove until the magnet is pushed above the feeding box. At this time, the magnet can be fed for production, and the operation is repeated for the next magnet feeding. Through such a setting, it can automatically feed materials, saving manual operation and reducing production costs.

[0018] 3. Through the positioning platform provided in the present invention, the float body can be positioned, facilitating the second robotic arm to grasp the float body for detection, improving the working precision. When the connecting plate moves above the positioning platform, the first electric clamp is activated to release the float body, and the float body falls onto the positioning platform. At this time, the fourth electric push rod is activated. The fourth electric push rod drives the second positioning plate through the transmission plate, and the second positioning plate, in conjunction with the float body and the first positioning plate, positions and limits the float body, restricting the float body within the second positioning groove and the first positioning groove. Through such a setting, the float body can be positioned, facilitating the second robotic arm to grasp the float body for detection and improving the working precision.

[0019] 4. Through the second robotic arm provided in the present invention, the float body can be automatically detected and classified, improving the classification accuracy and the finished product quality. When the second robotic arm is activated, the second robotic arm grasps the float body through the second electric clamp and moves it to the magnetic force detection platform and the weighing device for detection. After the detection is completed, the second robotic arm grasps the unqualified float body through the second electric clamp and releases it onto the first discharge port. The float body falls into the recycling vehicle through the first discharge port and is guided by the first discharge pipe. Similarly, the second robotic arm grasps the qualified float body through the second electric clamp and releases it onto the second discharge port, the third discharge port, the fourth discharge port, and the fifth discharge port respectively, and then falls into the collection box through the second discharge pipe, the third discharge pipe, the fourth discharge pipe, and the fifth discharge pipe respectively. Through such a setting, the float body can be automatically detected and classified, improving the classification accuracy and the finished product quality.

[0020] Parts not involved in this device are the same as the prior art or can be implemented using the prior art. Description of the Drawings

[0021] Figure 1 It is a schematic diagram of the overall structure of the first angle of an automatic production and detection equipment for an automotive brake fluid reservoir float according to the present invention.

[0022] Figure 2 It is a schematic diagram of the overall structure of the second angle of an automatic production and detection equipment for an automotive brake fluid reservoir float according to the present invention.

[0023] Figure 3 It is an enlarged schematic diagram of a partial structure of the first robotic arm of an automatic production and detection equipment for an automotive brake fluid reservoir float according to the present invention.

[0024] Figure 4 It is an enlarged schematic diagram of a partial structure of the connecting plate of an automatic production and detection equipment for an automotive brake fluid reservoir float according to the present invention.

[0025] Figure 5It is an enlarged schematic diagram of a partial structure of the state of the operation cabinet of an automatic production and detection equipment for a float of an automobile brake oil pot according to the present invention.

[0026] Figure 6 It is an enlarged schematic diagram of a partial structure of the state of the recycling vehicle of an automatic production and detection equipment for a float of an automobile brake oil pot according to the present invention.

[0027] Figure 7 It is an enlarged schematic diagram of a partial structure of the feeding pipe of an automatic production and detection equipment for a float of an automobile brake oil pot according to the present invention.

[0028] Figure 8 It is an enlarged schematic diagram of a partial structure of the feeding box of an automatic production and detection equipment for a float of an automobile brake oil pot according to the present invention.

[0029] Figure 9 It is an enlarged schematic diagram of a partial structure of the first angle of the positioning platform of an automatic production and detection equipment for a float of an automobile brake oil pot according to the present invention.

[0030] Figure 10 It is an enlarged schematic diagram of a partial structure of the second angle of the positioning platform of an automatic production and detection equipment for a float of an automobile brake oil pot according to the present invention.

[0031] Figure 11 It is an enlarged schematic diagram of a partial structure of the second robotic arm of an automatic production and detection equipment for a float of an automobile brake oil pot according to the present invention.

[0032] Figure 12 It is an enlarged schematic diagram of a partial structure of the operation platform of an automatic production and detection equipment for a float of an automobile brake oil pot according to the present invention.

[0033] In the figure: 1. Installation floor; 2. Injection molding machine; 3. First robotic arm; 4. First mounting rod; 5. Limit clamping seat; 6. Connection plate; 7. First vacuum fixing tube; 8. First electric fixture; 9. Float body; 10. Operation cabinet; 11. Fixed bracket; 12. First electric push rod; 13. First transmission rod; 14. Feeding pipe; 15. Feeding box; 16. Second electric push rod; 17. Second transmission rod; 18. Third electric push rod; 19. Third transmission rod; 20. First transmission groove; 21. Second transmission groove; 22. Electric instrument scissors; 23. Placing bracket; 24. Positioning platform; 25. First positioning plate; 26. First positioning groove; 27. Second positioning plate; 28. Second positioning groove; 29. First connection groove; 30. Fourth electric push rod; 31. Transmission plate; 32. Second robotic arm; 33. Second electric fixture; 34. Magnetic detection platform; 35. Operation platform; 36. First discharge port; 37. First discharge pipe; 38. Second discharge port; 39. Second discharge pipe; 40. Third discharge port; 41. Third discharge pipe; 42. Fourth discharge port; 43. Fourth discharge pipe; 44. Fifth discharge port; 45. Fifth discharge pipe; 46. Collection box; 47. Recycling cart; 48. Weighing device; 49. Second connection groove. Detailed implementation manners

[0034] In order to make the technical means, creative features, achieved purposes and effects of the present invention easy to understand, the present invention will be further described below in conjunction with specific implementation manners.

[0035] As Figures 1-4 shown, an automatic production and detection equipment for an automotive brake fluid reservoir float includes an installation floor 1. A first robotic arm 3 is fixedly connected above the installation floor 1. A first mounting rod 4 is fixedly connected to the driving end above the first robotic arm 3. A limit clamping seat 5 is clamped outside the first mounting rod 4. A connection plate 6 is fixedly connected below the limit clamping seat 5. Four first vacuum fixing tubes 7 are fixedly connected at equal intervals outside the connection plate 6. Four first electric fixtures 8 are fixedly connected at equal intervals below the connection plate 6. The inner sides of the four first electric fixtures 8 are all clamped with a float body 9. An injection molding machine 2 is fixedly connected above the installation floor 1. A second connection groove 49 is opened outside the connection plate 6. By adopting the above technical solution, the first electric fixture 8 can control the grasping and releasing of the float body 9;

[0036] An air pump is connected to the outside of the first vacuum fixing tube 7, which can suck the magnet by vacuum suction, and after placing the magnet on the mold on the injection molding machine 2, the suction is cancelled;

[0037] A mold is installed on the injection molding machine 2, which can inject the outside of the magnet into the float body 9.

[0038] As Figures 1-6As shown in the figure, an operation cabinet 10 is fixedly connected above the installed floor 1. An operation platform 35 is fixedly connected inside the upper part of the operation cabinet 10. A fixing bracket 11 is fixedly connected above the operation platform 35. Two first electric push rods 12 are fixedly connected at equal intervals on the inner side above the fixing bracket 11. The inner output ends of the two first electric push rods 12 are fixedly connected with two first transmission rods 13 at equal intervals. By adopting the above technical solution, the first transmission rod 13 is arranged above the feeding pipe 14, and the first electric push rod 12 can push the first transmission rod 13 into the feeding pipe 14.

[0039] As Figures 1-6 shown in the figure, two second electric push rods 16 are fixedly connected at equal intervals above the operation platform 35. The output ends of the two second electric push rods 16 are fixedly connected with two second transmission rods 17 at equal intervals. With such a setting, the second electric push rod 16 can push the second transmission rod 17 to move.

[0040] As Figures 1-8 shown in the figure, four feeding boxes 15 are fixedly connected at equal intervals above the operation platform 35. First transmission grooves 20 are opened on the inner sides of the four feeding boxes 15. The outer ends of the four second transmission rods 17 are respectively movably installed in the four first transmission grooves 20. With such a setting, the second transmission rod 17 can move linearly in the first transmission groove 20.

[0041] As Figures 1-8 shown in the figure, four third electric push rods 18 are fixedly connected at equal intervals above the operation platform 35. The upper output ends of the four third electric push rods 18 are fixedly connected with third transmission rods 19. Second transmission grooves 21 are opened below the four feeding boxes 15. The upper parts of the four third transmission rods 19 are respectively movably installed in the four second transmission grooves 21. Feeding pipes 14 are fixedly connected above the four feeding boxes 15. With such a setting, the spaces of the second transmission groove 21 and the first transmission groove 20 are communicated, and the second transmission rod 17 can push the magnet in the first transmission groove 20 into the second transmission groove 21;

[0042] The space of the feeding pipe 14 is communicated with that of the first transmission groove 20, and the magnet in the feeding pipe 14 can enter the first transmission groove 20.

[0043] As Figures 1-5 shown in the figure, a first mounting plate is fixedly connected to the outside of the operation cabinet 10. Two electric instrument scissors 22 are fixedly connected at equal intervals above the first mounting plate. A second mounting plate is fixedly connected to the outside of the operation cabinet 10. Four placing brackets 23 are fixedly connected at equal intervals above the second mounting plate. With such a setting, the electric instrument scissors 22 can cut off the injection molding residues on the float body 9;

[0044] The placing bracket 23 can place and fix the float body 9.

[0045] As Figures 1-5 , Figures 9-10 shown, a positioning platform 24 is fixedly connected above the operation platform 35, a first positioning plate 25 is fixedly connected above the positioning platform 24, two first positioning grooves 26 are equidistantly opened on both sides of the first positioning plate 25, two fourth electric push rods 30 are fixedly connected below the positioning platform 24 at equal intervals, the inner output ends of the two fourth electric push rods 30 are fixedly connected with transmission plates 31, two first connection grooves 29 are equidistantly opened above the positioning platform 24, the upper parts of the two transmission plates 31 respectively pass through the two first connection grooves 29, the upper parts of the two transmission plates 31 are fixedly connected with second positioning plates 27, and second positioning grooves 28 are opened on the inner sides of the two second positioning plates 27. By adopting the above technical solution, the inner sides of the first connection groove 29 and the second positioning groove 28 are both trapezoidal, having a certain guiding effect.

[0046] As Figures 1-11 shown, a second robotic arm 32 is fixedly connected above the operation platform 35, a second electric clamp 33 is fixedly connected to the output end of one side of the second robotic arm 32, a magnetic force detection platform 34 is fixedly connected above the operation platform 35, and a weighing device 48 is fixedly connected on one side of the magnetic force detection platform 34 above the operation platform 35. Through such a setting, the magnetic force detection platform 34 can detect the magnetism of the float body 9, and the weighing device 48 can detect the weight of the float body 9.

[0047] As Figures 1-12 shown, a first discharge port 36 is opened above the operation platform 35, a first discharge pipe 37 is fixedly connected below the operation platform 35 at the first discharge port 36, a recycling cart 47 abuts against one side of the operation cabinet 10, a second discharge port 38 is opened above the operation platform 35, a second discharge pipe 39 is fixedly connected below the operation platform 35 at the second discharge port 38, a third discharge port 40 is opened above the operation platform 35, a third discharge pipe 41 is fixedly connected below the operation platform 35 at the third discharge port 40, a fourth discharge port 42 is opened above the operation platform 35, a fourth discharge pipe 43 is fixedly connected below the operation platform 35 at the fourth discharge port 42, a fifth discharge port 44 is opened above the operation platform 35, a fifth discharge pipe 45 is fixedly connected below the operation platform 35 at the first discharge port 36, and four collection boxes 46 are fixedly connected inside the operation platform 35. Through such a setting, the recycling cart 47 is arranged on one side below the first discharge pipe 37, and the unqualified float body 9 can be transported by the recycling cart 47.

[0048] It should be noted that during use, multiple magnets for production are placed in the feeding pipe 14. The first electric push rod 12 is started, and the first electric push rod 12 pushes the magnet at the bottom of the feeding pipe 14 into the first transmission groove 20 through the first transmission rod 13. At this time, the second electric push rod 16 is started, and the second electric push rod 16 pushes the magnet into the second transmission groove 21 through the second transmission rod 17. The third electric push rod 18 is started, and the third electric push rod 18 pushes the magnet out of the second transmission groove 21 through the third transmission rod 19 until the magnet is pushed above the feeding box 15.

[0049] The first robotic arm 3 can drive the connecting plate 6 to rotate through the first mounting rod 4 and the limit clamping seat 5. The connecting plate 6 drives the first vacuum fixing pipe 7 to suck the feeding magnet, and then places the magnet in the mold of the injection molding machine 2. At this time, the first robotic arm 3 can drive the connecting plate 6 to leave the injection molding machine 2 through the first mounting rod 4 and the limit clamping seat 5. After the magnet is injection molded into the float body 9 in the injection molding machine 2, the first electric fixture 8 is driven by the connecting plate 6 again to clamp the float body 9 in the injection molding machine 2. Then the first electric fixture 8 transfers the float body 9 to cut off the injection residue on the electric instrument shear 22. Then the first electric fixture 8 places the float body 9 on the placement bracket 23, and then flips the connecting plate 6 to let the placement bracket 23 and the float body 9 pass through the second connection groove 49. Then the first electric fixture 8 is used to clamp and take away the float body 9, and then the connecting plate 6 is flipped back to the correct position, and the first electric fixture 8 can drive the float body 9 to flip.

[0050] When the connecting plate 6 moves above the positioning platform 24, the first electric fixture 8 is started to release the float body 9, and the float body 9 falls on the positioning platform 24. At this time, the fourth electric push rod 30 is started, and the fourth electric push rod 30 pushes the second positioning plate 27 through the transmission plate 31. The second positioning plate 27 and the first positioning plate 25 jointly act on the float body 9 to position and limit the float body 9, and the float body 9 is limited in the second positioning groove 28 and the first positioning groove 26.

[0051] The second robotic arm 32 is started, and the second robotic arm 32 grabs the float body 9 to the magnetic force detection platform 34 and the weighing device 48 for detection through the second electric fixture 33. After the detection is completed, the second robotic arm 32 grabs the unqualified float body 9 through the second electric fixture 33 and releases it on the first discharge port 36. The float body 9 falls into the recycling cart 47 through the first discharge port 36 and is guided by the first discharge pipe 37. Similarly, the second robotic arm 32 grabs the qualified float body 9 through the second electric fixture 33 and releases it on the second discharge port 38, the third discharge port 40, the fourth discharge port 42, and the fifth discharge port 44 respectively. Then they fall into the collection box 46 through the second discharge pipe 39, the third discharge pipe 41, the fourth discharge pipe 43, and the fifth discharge pipe 45 respectively.

[0052] The main purpose of the present invention is to provide an automatic production and detection equipment for the float of an automobile brake fluid reservoir, which solves the problems that in the production process of the float of the automobile brake fluid reservoir, there are dangerous factors such as high temperature and high pressure, manual operation requires contact with potential hazard sources, and at the same time, human operators cannot work 24 hours a day, which affects the production line efficiency. After the production of the float body 9 is completed, it needs to be detected and the qualified and unqualified floats are classified and placed. Manual classification is prone to accidents due to mistakes and affects the quality. It is relatively practical.

[0053] The above shows and describes the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited by the above embodiments. The above embodiments and the descriptions in the specification only illustrate the principles of the present invention. Without departing from the spirit and scope of the present invention, the present invention will have various changes and improvements, and these changes and improvements all fall within the scope of the present invention claimed. The scope of the present invention claimed is defined by the appended claims and their equivalents.

Claims

1. An automated production and testing equipment for automobile brake oil tank floats, comprising a mounting floor (1), characterized in that: A first mechanical arm (3) is fixedly connected to the top of the installation floor (1); a first installation rod (4) is fixedly connected to the upper transmission end of the first mechanical arm (3); a limit clamping seat (5) is clamped on the outer side of the first installation rod (4); a connecting plate (6) is fixedly connected to the bottom of the limit clamping seat (5); four first vacuum fixing tubes (7) are fixedly connected to the outer side of the connecting plate (6) at equal intervals; four first electric clamps (8) are fixedly connected to the bottom of the connecting plate (6) at equal intervals; a float body (9) is clamped on the inner side of each of the four first electric clamps (8); an injection molding machine (2) is fixedly connected to the top of the installation floor (1); and a second connecting groove (49) is provided on the outer side of the connecting plate (6).

2. The automatic production and testing equipment for automobile brake oil tank float according to claim 1 is characterized in that: An operating cabinet (10) is fixedly connected above the installation floor (1), an operating platform (35) is fixedly connected inside the upper part of the operating cabinet (10), a fixed bracket (11) is fixedly connected above the operating platform (35), two first electric push rods (12) are fixedly connected at equal distances to the inner side of the upper part of the fixed bracket (11), and two first transmission rods (13) are fixedly connected to the inner output ends of the two first electric push rods (12) at equal distances.

3. The automatic production and testing equipment for automobile brake oil tank float according to claim 2 is characterized in that: Two second electric push rods (16) are equidistantly fixedly connected above the operating platform (35), and output ends of the two second electric push rods (16) are equidistantly fixedly connected to two second transmission rods (17).

4. The automatic production and testing equipment for automobile brake oil tank float according to claim 3 is characterized by: Four loading boxes (15) are fixedly connected at equal intervals above the operating platform (35), and the inner sides of the four loading boxes (15) are each provided with a first transmission groove (20), and the outer ends of the four second transmission rods (17) are movably mounted in the four first transmission grooves (20).

5. The automatic production and testing equipment for automobile brake oil tank float according to claim 4 is characterized by: Four third electric push rods (18) are fixedly connected at equal intervals above the operating platform (35); the upper output ends of the four third electric push rods (18) are fixedly connected to third transmission rods (19); second transmission grooves (21) are opened below the four loading boxes (15); the tops of the four third transmission rods (19) are movably installed in the four second transmission grooves (21) respectively; and the tops of the four loading boxes (15) are fixedly connected to loading pipes (14).

6. The automatic production and testing equipment for automobile brake oil tank float according to claim 5 is characterized by: A first mounting plate is fixedly connected to the outside of the operating cabinet (10), two electric shears (22) are fixedly connected equidistantly above the first mounting plate, a second mounting plate is fixedly connected to the outside of the operating cabinet (10), and four placement brackets (23) are fixedly connected equidistantly above the second mounting plate.

7. The automatic production and testing equipment for automobile brake oil tank float according to claim 6 is characterized by: A positioning platform (24) is fixedly connected to the top of the operating platform (35), a first positioning plate (25) is fixedly connected to the top of the positioning platform (24), two first positioning grooves (26) are equidistantly provided on both sides of the first positioning plate (25), two fourth electric push rods (30) are fixedly connected to the bottom of the positioning platform (24), the inner output ends of the two fourth electric push rods (30) are fixedly connected to a transmission plate (31), two first connecting grooves (29) are equidistantly provided on the top of the positioning platform (24), the tops of the two transmission plates (31) pass through the two first connecting grooves (29) respectively, the tops of the two transmission plates (31) are fixedly connected to the second positioning plates (27), and the inner sides of the two second positioning plates (27) are provided with second positioning grooves (28).

8. The automatic production and testing equipment for automobile brake oil tank float according to claim 7 is characterized in that: A second mechanical arm (32) is fixedly connected above the operating platform (35); a second electric clamp (33) is fixedly connected to one side output end of the second mechanical arm (32); a magnetic detection platform (34) is fixedly connected above the operating platform (35); and a weighing device (48) is fixedly connected to one side of the magnetic detection platform (34) above the operating platform (35).

9. The automatic production and testing equipment for automobile brake oil tank float according to claim 2, characterized in that: A first discharge port (36) is provided above the operating platform (35), a first discharge pipe (37) is fixedly connected to the operating platform (35) below the first discharge port (36), a recycling vehicle (47) is abutted against one side of the operating cabinet (10), a second discharge port (38) is provided above the operating platform (35), a second discharge pipe (39) is fixedly connected to the operating platform (35) below the second discharge port (38), a third discharge port (40) is provided above the operating platform (35), and the operating platform (3 5) A third discharge pipe (41) is fixedly connected below the third discharge port (40), a fourth discharge port (42) is provided above the operating platform (35), a fourth discharge pipe (43) is fixedly connected below the fourth discharge port (42) of the operating platform (35), a fifth discharge port (44) is provided above the operating platform (35), a fifth discharge pipe (45) is fixedly connected below the first discharge port (36) of the operating platform (35), and four collection boxes (46) are fixedly connected inside the operating platform (35).

Citation Information

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