Feeding device for tapered roller barreling
By designing a tapered roller rolling loading device including a conveying mechanism and a loading mechanism, automatic loading is achieved using a guide frame and a servo motor system, the problems of inconvenient loading and low transportation efficiency in the prior art are solved, and transportation efficiency and safety are improved.
Patent Information
- Application Number
- CN202421237688.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-03
- Publication Date
- 2025-06-24
- Estimated Expiration
- 2034-06-03
AI Technical Summary
The existing tapered roller loading device cannot meet the working needs and requires manual transportation by staff, which is time-consuming and labor-consuming. At the same time, the tapered rollers are easy to slide on the conveyor belt, affecting the transportation rate.
A feeding device for rolling and grinding of tapered rollers is designed, including a conveying mechanism and a feeding mechanism. The tapered rollers are guided into the feeding mechanism through the guide frame, and the feeding and feeding are realized using a servo motor and a synchronous belt system to ensure that the movement frequency of the feeding mechanism and the conveying mechanism is the same.
The automated loading process is realized, which reduces the operating frequency and consumption of staff, improves transportation efficiency, and avoids transportation delays caused by sliding tapered rollers.
Smart Images

Figure CN223012845U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of conical roller processing equipment, in particular to a feeding device for conical roller grinding and polishing. Background Art
[0002] When conical rollers are ground, workers need to pour the conical rollers into the grinding machine. The existing feeding devices are all single-piece feeding, which cannot meet the working requirements. Workers need to transport them manually, which is time-consuming and laborious. At the same time, when the conical rollers are transported through the conveyor belt, they will slide on the conveyor belt, which will affect the transportation speed.
[0003] For the existing feeding mechanism for conical roller processing, such as a feeding mechanism for conical roller processing disclosed in the publication (announcement) number: CN218840834U, when discharging conical rollers, they are all discharged one by one. When the discharging speed is too fast, blockage may occur. At the same time, workers need to climb to a relatively high position for loading. Summary of the Utility Model
[0004] In order to overcome the deficiencies in the background art, the utility model discloses a feeding device for conical roller grinding and polishing. The utility model feeds conical rollers through a conveying mechanism, which is convenient for workers to load. The conical rollers discharged by the conveying mechanism are guided by a guiding frame so that the conical rollers enter the feeding mechanism. The feeding mechanism feeds the conical rollers. At the same time, the conveying mechanism drives the feeding mechanism to work, so that the movement frequencies of the feeding mechanism and the conveying mechanism are the same, and there is no need for workers to adjust separately.
[0005] In order to achieve the purpose of the utility model, the following technical scheme is adopted:
[0006] A feeding device for conical roller grinding and polishing, comprising a conveying mechanism and a feeding mechanism, and the feeding mechanism is located on one side of the conveying mechanism. A guiding frame is installed at the discharging end of the conveying mechanism, and the discharging end of the guiding frame corresponds to the feeding end of the feeding mechanism. A power switch is installed at the fixed end of the conveying mechanism, and the input end of the power switch is connected to the output end of an external power supply. The power supply output end of the power switch is electrically connected to the power supply input end of the conveying mechanism, and the driving end of the conveying mechanism is connected to the driving end of the feeding mechanism.
[0007] The guiding frame is a U-shaped frame.
[0008] The conveying mechanism includes a first frame body, a first conveyor belt, a first synchronous belt, a first synchronous pulley, a first support leg, a first transmission rod, and a servo motor. Two first transmission rods are rotatably connected inside the first frame body, and belt rollers are fixedly connected to the first transmission rods. The two belt rollers are connected by a first conveyor belt. One end of the first transmission rod passes through the first frame body and is connected to the first synchronous pulley. Two first synchronous pulleys are fixedly connected to the first transmission rod close to the feeding mechanism. The first synchronous belts are connected between the first synchronous pulleys on both sides. A servo motor is fixedly connected to the first transmission rod on which two first synchronous pulleys are installed. Four corners at the bottom end of the first frame body are respectively fixedly connected with first support legs, and a guiding frame is installed at one end of the first frame body close to the feeding mechanism.
[0009] The feeding mechanism includes a second frame body, second support legs, second synchronous pulleys, second transmission rods, a second conveyor belt, a placing plate, a second synchronous belt, and a third synchronous belt. Two second transmission rods are rotatably connected inside the second frame body, and belt rollers are also fixedly connected to the second transmission rods. The two belt rollers are connected by a second conveyor belt, and equidistantly arranged placing plates are fixedly connected to the second conveyor belt. One end of the second transmission rod passes through the second frame body and is connected to the second synchronous pulley. Two second synchronous pulleys are fixedly connected to the second transmission rod close to the first frame body. One of the second synchronous pulleys is connected to the first synchronous pulley through a third synchronous belt, and the second synchronous belt is connected between two non-adjacent second synchronous pulleys. Two second support legs are fixedly connected to one side at the bottom end of the second frame body.
[0010] The second frame body is in an inclined state, and the lower end of the bottom of the second frame body is located below the guiding frame.
[0011] The placing plate is a semi-circular arc plate.
[0012] Due to the adoption of the above technical solutions, the utility model has the following beneficial effects:
[0013] For the feeding device used for grinding tapered roller of the present utility model, the tapered roller is fed through the conveying mechanism, which is convenient for the staff to load. The tapered roller discharged by the conveying mechanism is guided by the guiding frame so that the tapered roller enters the feeding mechanism. The feeding mechanism feeds the tapered roller. At the same time, the conveying mechanism drives the feeding mechanism to work, so that the movement frequencies of the feeding mechanism and the conveying mechanism are the same, and there is no need for the staff to adjust separately. Description of the Drawings
[0014] Figure 1 is a three-dimensional structural schematic diagram of the present utility model;
[0015] Figure 2 is a side view of the present utility model;
[0016] Figure 3 Schematic enlarged structure diagram of part A of the present utility model;
[0017] 1. Conveyor mechanism; 101. First frame; 102. First conveyor belt; 103. First synchronous belt; 104. First synchronous pulley; 105. First support leg; 106. First transmission rod; 107. Servo motor; 2. Guide frame; 3. Loading mechanism; 301. Second frame; 302. Second support leg; 303. Second synchronous pulley; 304. Second transmission rod; 305. Second conveyor belt; 306. Placing plate; 307. Second synchronous belt; 308. Third synchronous belt; 4. Power switch. Specific embodiments
[0018] The present utility model can be explained in detail through the following embodiments. The purpose of disclosing the present utility model is to protect all technical improvements within the scope of the present utility model.
[0019] Combined with the attached Figures 1 to 3 The described feeding device for conical roller grinding includes a conveyor mechanism 1 and a loading mechanism 3, and the loading mechanism 3 is located on one side of the conveyor mechanism 1. A guide frame 2 is installed at the discharging end of the conveyor mechanism 1, and the discharging end of the guide frame 2 corresponds to the feeding end of the loading mechanism 3. A power switch 4 is installed at the fixed end of the conveyor mechanism 1, and the input end of the power switch 4 is connected to the output end of an external power supply. The power supply output end of the power switch 4 is electrically connected to the power supply input end of the conveyor mechanism 1. The power switch 4 is provided with switch buttons corresponding one by one to the electrical equipment used in the conveyor mechanism 1, and the electrical equipment used in the conveyor mechanism 1 is controlled to work through the power switch 4, and the driving end of the conveyor mechanism 1 is connected to the driving end of the loading mechanism 3.
[0020] The guide frame 2 is a U-shaped frame to prevent the conical rollers from falling off from both sides of the guide frame 2.
[0021] The conveying mechanism 1 includes a first frame 101, a first conveyor belt 102, a first synchronous belt 103, a first synchronous pulley 104, a first support leg 105, a first transmission rod 106, and a servo motor 107. Two first transmission rods 106 are rotatably connected inside the first frame 101, and belt rollers are fixedly connected to the first transmission rods 106. The two belt rollers are connected by a first conveyor belt 102. One end of the first transmission rod 106 passes through the first frame 101 and is connected to the first synchronous pulley 104. Two first synchronous pulleys 104 are fixedly connected to the first transmission rod 106 near the feeding mechanism 3. The first synchronous belts 103 are connected between the first synchronous pulleys 104 on both sides. A servo motor 107 is fixedly connected to the first transmission rod 106 where two first synchronous pulleys 104 are installed. Four corners at the bottom end of the first frame 101 are respectively fixedly connected with first support legs 105, and a guiding frame 2 is installed at one end of the first frame 101 close to the feeding mechanism 3.
[0022] The feeding mechanism 3 includes a second frame 301, second support legs 302, second synchronous pulleys 303, second transmission rods 304, a second conveyor belt 305, a placing plate 306, a second synchronous belt 307, and a third synchronous belt 308. Two second transmission rods 304 are rotatably connected inside the second frame 301, and belt rollers are also fixedly connected to the second transmission rods 304. The two belt rollers are connected by a second conveyor belt 305, and equally spaced placing plates 306 are fixedly connected to the second conveyor belt 305. One end of the second transmission rod 304 passes through the second frame 301 and is connected to the second synchronous pulley 303. Two second synchronous pulleys 303 are fixedly connected to the second transmission rod 304 near the first frame 101. One of the second synchronous pulleys 303 is connected to the first synchronous pulley 104 through a third synchronous belt 308, and the second synchronous belts 307 are connected between two non-adjacent second synchronous pulleys 303. Two second support legs 302 are fixedly connected to one side of the bottom end of the second frame 301.
[0023] The second frame 301 is in an inclined state, and the lower end of the second frame 301 is located below the guiding frame 2, enabling feeding to a higher position.
[0024] The placing plate 306 is a semi-circular arc plate to prevent the tapered rollers from slipping off the second conveyor belt 305.
[0025] For the described feeding device for grinding tapered roller bearings, during operation, the operator starts the servo motor 107 through the power switch 4. The servo motor 107 drives one of the first drive rods 106 to rotate. The first drive rod 106 driven by the servo motor 107 drives the first synchronous belt 103 and the third synchronous belt 308 to rotate respectively through two first synchronous pulleys 104. The first synchronous belt 103 drives the first synchronous pulley 104 on the other side to rotate, and the third synchronous belt 308 drives the second drive rod 304 equipped with two second synchronous pulleys 303 to rotate. The second drive rod 304 and the first drive rod 106 drive the second conveyor belt 305 and the first conveyor belt 102 to move respectively through the belt rollers, and the tapered roller bearings are fed and loaded through the second conveyor belt 305 and the first conveyor belt 102.
[0026] The parts not detailed in the present invention are prior art. Although the present invention is specifically shown and introduced in combination with the preferred implementation solutions, there are many methods and ways to specifically implement this technical solution. The above description is only the preferred implementation mode of the present invention. However, those skilled in the art should understand that various changes can be made to the present invention in terms of form and details without departing from the spirit and scope of the present invention defined by the appended claims, and all of them fall within the protection scope of the present invention.
Claims
1. A feeding device for tapered roller grinding, comprising a conveying mechanism (1) and a feeding mechanism (3), wherein the feeding mechanism (3) is located on one side of the conveying mechanism (1), and is characterized in that: A guide frame (2) is installed on the discharge end of the conveying mechanism (1), and the discharge end of the guide frame (2) corresponds to the feed end of the feeding mechanism (3); a power switch (4) is installed on the fixed end of the conveying mechanism (1), and the input end of the power switch (4) is connected to the output end of the external power supply, the power supply output end of the power switch (4) is electrically connected to the power supply input end of the conveying mechanism (1), and the driving end of the conveying mechanism (1) is connected to the driving end of the feeding mechanism (3); The feeding mechanism (3) comprises a second frame (301), a second supporting leg (302), a second synchronous wheel (303), a second transmission rod (304), a second conveyor belt (305), a receiving plate (306), a second synchronous belt (307) and a third synchronous belt (308); two second transmission rods (304) are rotatably connected in the second frame (301), and a belt roller is also fixedly connected to the second transmission rod (304), and the two belt rollers are connected by a second conveyor belt (305), and the second conveyor belt (305) is fixedly connected to receiving plates arranged equidistantly. (306), one end of the second transmission rod (304) passes through the second frame (301) and is connected to the second synchronous wheel (303), and two second synchronous wheels (303) are fixedly connected to the second transmission rod (304) close to the first frame (101), one of the second synchronous wheels (303) is connected to the first synchronous wheel (104) through a third synchronous belt (308), and two non-adjacent second synchronous wheels (303) are connected through a second synchronous belt (307), and one side of the bottom end of the second frame (301) is fixedly connected to two second support legs (302).
2. The feeding device for tapered roller grinding according to claim 1 is characterized in that: The guide frame (2) is a U-shaped frame.
3. The feeding device for tapered roller grinding according to claim 1 is characterized in that: The conveying mechanism (1) comprises a first frame (101), a first conveyor belt (102), a first synchronous belt (103), a first synchronous wheel (104), a first supporting leg (105), a first transmission rod (106) and a servo motor (107); two first transmission rods (106) are rotatably connected in the first frame (101), and a belt roller is fixedly connected to the first transmission rod (106); the two belt rollers are connected via the first conveyor belt (102); one end of the first transmission rod (106) passes through the first frame (101) and is connected to the first synchronous wheel (104); The first frame (101) is connected to a step wheel (104), and two first synchronous wheels (104) are fixedly connected to a first transmission rod (106) close to the feeding mechanism (3), the first synchronous wheels (104) on both sides are connected via a first synchronous belt (103), a servo motor (107) is fixedly connected to the first transmission rod (106) on which the two first synchronous wheels (104) are installed, the four corners of the bottom end of the first frame (101) are respectively fixedly connected to first supporting legs (105), and a guide frame (2) is installed on one end of the first frame (101) close to the feeding mechanism (3).
4. The feeding device for tapered roller grinding according to claim 1 is characterized in that: The second frame (301) is in an inclined state, and the lower end of the second frame (301) is located at the lower side of the guide frame (2).
5. The feeding device for tapered roller grinding according to claim 1 is characterized in that: The containing plate (306) is a semicircular arc plate.
Citation Information
Patent Citations
A feeding mechanism for tapered roller machining
CN218840834U