Feeding automatic sequencing device for battery detection
By designing an automatic loading and sorting device for battery detection, the high workload and high cost problems caused by manual continuous addition of raw materials are solved, and the automatic loading and sorting of batteries is realized, which improves detection efficiency and accuracy.
Patent Information
- Application Number
- CN202421732181.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-22
- Publication Date
- 2025-07-22
- Estimated Expiration
- 2034-07-22
AI Technical Summary
The existing battery detection system requires manual continuous addition when transmitting raw materials, resulting in large workloads and high labor costs, so it is impossible to leave the workplace for a long time.
An automatic feeding sorting device for battery detection is designed, including a base frame, rotary shaft, conveyor wheel, conveyor belt, clamping mechanism and feeding mechanism. The conveyor belt is driven by the motor to realize automatic feeding and sorting of batteries, and is equipped with clamping, material shake, air drying and material pushing mechanisms to reduce manual intervention.
The automatic feeding and sorting of batteries is realized, which reduces the workload of staff, reduces labor costs, and improves the efficiency and accuracy of battery detection.
Smart Images

Figure CN223133521U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of battery production, in particular to an automatic feeding and sorting device for battery detection. Background Art
[0002] A battery refers to a cup, trough or other container or a partial space of a composite container filled with an electrolyte solution and metal electrodes to generate an electric current, and is a device that can convert chemical energy into electrical energy, having positive and negative electrodes. With the progress of technology, a battery generally refers to a small device that can generate electrical energy, such as a solar cell. After production, the battery needs to be tested, and the main purpose of the test is to detect the reliability and safety of the battery.
[0003] The patent with the patent authorization announcement number CN211495807U discloses an automatic feeding, detecting and sorting system for batteries, including a feeding machine case and a conveyor belt. A bottom plate is installed at the bottom of the conveyor belt. Support legs are welded to the bottoms of the feeding machine case and the bottom plate, and support bases are welded to the bottoms of the support legs. A waste outlet is formed in the front of the feeding machine case, and a motor fixing frame is welded to the bottom of the feeding machine case, and a motor is installed inside the motor fixing frame. Although the above patent can solve the problem that static electricity in the feeding machine case affects the battery by setting up a static electricity collecting plate, a static electricity integrating plate and a connecting wire, there are still deficiencies in actual use. For example, when transporting raw materials, workers continuously add raw materials to the side of the conveyor belt far from the feeding machine case, and the raw materials are transported on the rollers. This work results in a large workload for the workers, and the system cannot run without people for a long time. To ensure the feeding efficiency, several workers need to alternately stay beside the system to add materials, thus increasing the labor cost.
[0004] Therefore, there is a particular need for an automatic feeding and sorting device for battery detection to solve the problems existing in the prior art. Content of the Utility Model
[0005] In order to overcome the shortcomings that when the prior patent transports raw materials, workers continuously add raw materials to the side of the conveyor belt far from the feeding machine case, and the raw materials are transported on the rollers. This work results in a large workload for the workers, and the system cannot run without people for a long time. To ensure the feeding efficiency, several workers need to alternately stay beside the system to add materials, thus increasing the labor cost, the utility model provides an automatic feeding and sorting device for battery detection.
[0006] The present utility model is achieved through the following technical means: An automatic feeding and sorting device for battery detection, comprising a chassis, a rotating shaft, conveying wheels, a conveyor belt, a first motor, and a material clamping mechanism. The upper part of the chassis is rotatably connected with left and right distributed rotating shafts, and the rotating shafts are fixedly connected with front and rear distributed conveying wheels. A conveyor belt is connected between two laterally aligned conveying wheels. The first motor is installed at the upper right rear side of the chassis, and the output shaft of the first motor is fixedly connected with the right rotating shaft. The conveyor belt is provided with a material clamping mechanism for clamping the battery body. By operating the first motor, the rotating shaft drives the conveying wheels to rotate, and then the conveyor belt rotates. It also includes a feeding mechanism arranged on the chassis for feeding the battery body.
[0007] In one embodiment, the feeding mechanism includes a support frame, a loading frame, a second motor, a grooved wheel, a support rod, a discharging frame, a receiving plate, a material limiting block, and a second spring. The support frame is fixedly connected to the rear side of the chassis, the upper part of the support frame is fixedly connected with the loading frame, the second motor is installed at the rear side of the loading frame, the output shaft of the second motor penetrates into the interior of the loading frame and is fixedly connected with the grooved wheel. The front and rear two side surfaces of the grooved wheel are closely attached to the inner wall of the loading frame. The support rods symmetrically distributed front and rear are fixedly connected to the right side of the chassis, and the discharging frame is fixedly connected between the upper ends of the two support rods. The receiving plate is fixedly connected to the lower left side of the discharging frame, at least one material limiting block is slidably connected to the left side of the receiving plate, and at least one second spring is connected between the material limiting block and the receiving plate. By operating the second motor, the grooved wheel rotates, thereby continuously receiving the battery bodies inside the loading frame. The received battery bodies continuously roll into the discharging frame and then fall onto the receiving plate and are blocked by the material limiting block.
[0008] In one embodiment, it further includes a protective pad. A protective pad for protection is connected in the groove of the grooved wheel, and the protective pad is made of a soft material.
[0009] In one embodiment, the material clamping mechanism includes fixed blocks, sliding rods, clamping plates, first springs, and limiting plates. A plurality of fixed blocks evenly spaced are fixedly connected to the conveyor belt. The sliding rods are slidably connected to the fixed blocks. The mutually approaching ends of two longitudinally aligned sliding rods are fixedly connected with the clamping plates. First springs for assisting in resetting are sleeved on the sliding rods, and the two ends of the first springs are respectively connected with the fixed blocks and the sliding rods. The symmetrically distributed limiting plates are fixedly connected to the upper part of the chassis, and concave surfaces are provided at both ends of the limiting plates. By driving the fixed blocks to rotate through the conveyor belt, the sliding rods are aligned with the concave surfaces of the limiting plates, and the first springs assist the sliding rods to move outwards.
[0010] In one embodiment, it further includes a vibrating mechanism for vibrating the battery body arranged on the chassis. The vibrating mechanism includes a first connecting rod, a second connecting rod, a guiding block and a vibrating rack. The first connecting rod is rotatably connected to the front side of the groove wheel. The upper end of the first connecting rod is rotatably connected to the second connecting rod. The guiding block is fixedly connected to the front side of the lower part of the loading frame. The second connecting rod is slidably connected to the guiding block. The upper end of the second connecting rod penetrates into the interior of the loading frame and is fixedly connected to the vibrating rack. The edge of the vibrating rack is closely attached to the inner wall of the loading frame, enabling the vibrating rack to move smoothly. The vibrating rack is provided with a plurality of material passing grooves. By the groove wheel driving the first connecting rod to rotate, the second connecting rod is further pulled downward, causing the vibrating rack to move downward.
[0011] In one embodiment, it further includes a drying mechanism for drying the battery body arranged on the limiting plate. The drying mechanism includes an installation frame, a fan, a heating pipe, a filter screen, a fixing plate, a rack and a toothed ring cylinder. The installation frame is fixedly connected between the right sides of the two limiting plates. The upper part of the installation frame is provided with symmetrically distributed fans. Inside the installation frame, a plurality of heating pipes are horizontally arranged at uniform intervals. The heating pipes are located below the fans, such that the air flow heated by the heating pipes is blown onto the battery body. A filter screen for filtering the air flow is installed at the lower part inside the installation frame. At least one fixing plate is fixedly connected to the rear side of the limiting plate. The upper part of the fixing plate is fixedly connected to the rack. The toothed ring cylinder is rotatably connected inside the fixed block. The length of the rack is equal to the diameter length of the teeth of the toothed ring cylinder, enabling the toothed ring cylinder to rotate 360 degrees when meshing with the rack. And the sliding rod and the toothed ring cylinder are connected by a chute and a slider. At this time, both ends of the first spring are connected to the toothed ring cylinder and the sliding rod respectively. The air flow generated by the fan is blown onto the battery body. The heating pipes operate to heat the air flow into hot air. Then, by the toothed ring cylinder meshing with the rack, the toothed ring cylinder drives the sliding rod to rotate.
[0012] In one embodiment, it further includes a pushing mechanism for pushing down the battery body arranged on the limiting plate. The pushing mechanism includes a support frame, a detector, a cylinder and a push plate. The support frame is fixedly connected between the left sides of the two limiting plates. A plurality of detectors are installed inside the support frame in a vertical distribution. The cylinder is installed on the upper left side of the support frame. The push plate is fixedly connected to the telescopic rod of the cylinder. The adjacent two clamping plates are located below the push plate. By the detector operating to detect whether the production quality of the battery body is qualified, when the detection result is unqualified, the detector transmits a signal to the cylinder, causing the telescopic rod of the cylinder to extend and retract successively, and then causing the push plate to move downward and upward successively. When the push plate moves downward, it pushes down the battery body.
[0013] In one embodiment, it further includes a diversion frame. The diversion frame is installed on the right side of the chassis and is located below the installation frame, such that the liquid flowing down from the surface of the battery body drips onto the diversion frame.
[0014] In one embodiment, a material guiding frame is further included. The material guiding frame is installed on the left side of the chassis and is located below the pushing plate, so that the battery body pushed down by the pushing plate falls onto the material guiding frame.
[0015] In one embodiment, a material receiving frame is further included. The material receiving frame is placed on the left side of the chassis and is located to the left of the conveyor belt, so that the material receiving frame can catch the falling battery body.
[0016] From the above description of the structure of the present invention, the design starting point, concept and advantages of the present invention are as follows: 1. By setting up a feeding mechanism, an appropriate amount of battery bodies are poured into the loading frame at regular intervals. The groove wheel rotates to make the battery bodies fall into the grooves in turn. The groove wheel continues to rotate, and then the battery bodies fall out of the grooves into the discharging frame and then roll out of the discharging frame onto the receiving plate, so as to achieve the purpose of automatic feeding. There is no need for manual continuous addition of battery bodies, thus reducing the workload of the staff and also reducing the labor cost. And during the feeding process, the battery bodies are clamped between two clamping plates for automatic sorting.
[0017] 2. By setting up a pushing mechanism, when it is detected that the battery body is unqualified, the detector transmits a signal to the cylinder, causing the telescopic rod of the cylinder to extend and retract for one cycle. When the telescopic rod of the cylinder extends, it drives the pushing plate to move downward, pushing the unqualified battery body out from between the two clamping plates, so as to facilitate separating the unqualified battery bodies.
[0018] 3. By setting up a vibrating mechanism, the groove wheel drives the first connecting rod to rotate, causing the first connecting rod to continuously pull and push the second connecting rod to move downward and upward. The second connecting rod continuously drives the vibrating frame to move downward and upward, thereby vibrating the battery bodies in the loading frame, so that the battery bodies accurately fall into the grooves of the groove wheel through the material passing groove of the vibrating frame, thus preventing the battery bodies from staying in the loading frame.
[0019] 4. By setting up a drying mechanism, the fan and the heating pipe cooperate to make the air flow become hot air and blow it onto the battery body, thereby drying the liquid on the surface of the battery body, improving the drying degree of the surface of the battery body. At the same time, the gear ring cylinder meshes with two racks in turn to rotate, and then drives the sliding rod to rotate 360 degrees twice, causing the clamping plate to drive the battery body to rotate 360 degrees for drying, so as to achieve a good drying effect. Brief Description of the Drawings
[0020] Figure 1 It is a three-dimensional structural schematic diagram of the present invention.
[0021] Figure 2 It is a three-dimensional structural schematic diagram of components such as the conveyor wheel, conveyor belt and first motor of the present invention.
[0022] Figure 3This is a three-dimensional structural schematic diagram of components such as the first motor, fixed block, and limit plate of the present utility model.
[0023] Figure 4 This is a three-dimensional structural schematic diagram of components such as the sliding rod, clamping plate, and first spring of the present utility model.
[0024] Figure 5 This is a three-dimensional structural schematic diagram of components such as the loading frame, second motor, and groove wheel of the present utility model.
[0025] Figure 6 This is a three-dimensional structural schematic diagram of components such as the first connecting rod, second connecting rod, and guide block of the present utility model.
[0026] Figure 7 This is a three-dimensional sectional structural schematic diagram of components such as the groove wheel, protective pad, and first connecting rod of the present utility model.
[0027] Figure 8 This is a three-dimensional structural schematic diagram of components such as the support rod, discharge frame, and receiving plate of the present utility model.
[0028] Figure 9 This is a three-dimensional sectional structural schematic diagram of components such as the receiving plate, material limiting block, and second spring of the present utility model.
[0029] Figure 10 This is a three-dimensional structural schematic diagram of components such as the limit plate, mounting frame, and fan of the present utility model.
[0030] Figure 11 This is a three-dimensional structural schematic diagram of components such as the fan, heating pipe, and filter net of the present utility model.
[0031] Figure 12 This is a three-dimensional structural schematic diagram of components such as the fixed plate, rack, and toothed ring cylinder of the present utility model.
[0032] Figure 13 This is a three-dimensional structural schematic diagram of components such as the fixed block and toothed ring cylinder of the present utility model.
[0033] Figure 14 This is a three-dimensional structural schematic diagram of components such as the support frame, detector, and cylinder of the present utility model.
[0034] Figure 15 This is a three-dimensional structural schematic diagram of components such as the detector, cylinder, and push plate of the present utility model.
[0035] Figure 16 This is a three-dimensional structural schematic diagram of components such as the diversion frame, material guiding frame, and material receiving frame of the present utility model.
[0036] In the attached drawing reference numerals: 1, chassis; 2, rotating shaft; 3, conveying wheel; 4, conveyor belt; 5, first motor; 6, fixing block; 7, sliding rod; 8, clamping plate, 801, battery body; 9, first spring; 10, limiting plate; 11, support frame; 12, loading frame; 13, second motor; 14, groove wheel; 15, protective pad; 16, first connecting rod; 17, second connecting rod; 18, guiding block; 19, vibrating material rack; 20, support rod; 21, discharging frame; 22, receiving plate; 23, material limiting block; 24, second spring; 25, mounting frame; 26, fan; 27, heating pipe; 28, filter screen, 2801, fixing plate, 2802, rack, 2803, toothed ring cylinder; 29, support frame; 30, detector; 31, cylinder; 32, push plate; 33, diversion frame; 34, material guiding frame; 35, collecting frame. Detailed implementation mode
[0037] The embodiments of the present utility model will be described in detail below with reference to the attached drawings.
[0038] Embodiment 1: An automatic feeding and sorting device for battery detection, refer to Figures 1 - 10 , Figures 12 - 14 and Figure 16As shown in the figure, it includes a chassis 1, a rotating shaft 2, conveying wheels 3, a conveyor belt 4, a first motor 5 and a material clamping mechanism. The upper part of the chassis 1 is rotatably connected with the left and right distributed rotating shafts 2. The rotating shafts 2 are connected with the front and back distributed conveying wheels 3 by welding. A conveyor belt 4 is connected between two laterally aligned conveying wheels 3. The upper right rear side of the chassis 1 is connected with a first motor 5 by bolts. The output shaft of the first motor 5 is fixedly connected with the right rotating shaft 2. A material clamping mechanism for clamping the battery body 801 is arranged on the conveyor belt 4. By operating the first motor 5, the rotating shaft 2 drives the conveying wheels 3 to rotate, and the conveyor belt 4 rotates. It also includes a feeding mechanism arranged on the chassis 1 for feeding the battery body 801. The feeding mechanism includes a support frame 11, a loading frame 12, a second motor 13, a groove wheel 14, a support rod 20, a discharge frame 21, a receiving plate 22, a limiting block 23 and a second spring 24. The rear side of the chassis 1 is connected with the support frame 11 by welding. The upper part of the support frame 11 is connected with the loading frame 12 by welding. The rear side of the loading frame 12 is connected with the second motor 13 by bolts. The output shaft of the second motor 13 penetrates into the interior of the loading frame 12 and is connected with the groove wheel 14 by welding. The front and rear two sides of the groove wheel 14 are closely attached to the inner wall of the loading frame 12. The right side of the chassis 1 is connected with the front and back symmetric support rods 20 by welding. The upper ends of the two support rods 20 are connected with the discharge frame 21 by welding. The lower left side of the discharge frame 21 is connected with the receiving plate 22 by welding. At least one limiting block 23 is slidably connected to the left side of the receiving plate 22. At least one second spring 24 is connected between the limiting block 23 and the receiving plate 22. By operating the second motor 13, the groove wheel 14 rotates, and then continuously catches the battery body 801 inside the loading frame 12. The caught battery body 801 continuously rolls into the discharge frame 21 and then falls onto the receiving plate 22 and is blocked by the limiting block 23.
[0039] Refer to Figures 3 - 4 、 Figure 8 and Figures 10 - 14 As shown in the figure, the material clamping mechanism includes a fixed block 6, a sliding rod 7, a clamping plate 8, a first spring 9 and a limiting plate 10. A number of uniformly spaced fixed blocks 6 are connected to the conveyor belt 4 by welding. A sliding rod 7 is slidably connected to the fixed block 6. The mutually close ends of two longitudinally aligned sliding rods 7 are connected with a clamping plate 8 by welding. A first spring 9 for assisting in resetting is sleeved on the sliding rod 7. The two ends of the first spring 9 are respectively connected with the fixed block 6 and the sliding rod 7. Symmetrically distributed limiting plates 10 are connected to the upper part of the chassis 1 by welding. Concave surfaces are provided at both ends of the limiting plates 10. By driving the fixed block 6 to rotate by the conveyor belt 4, the sliding rod 7 is aligned with the concave surface of the limiting plate 10, and the first spring 9 assists the sliding rod 7 to move outwards.
[0040] Refer to Figure 1 、 Figure 14 and Figure 15As shown in the figure, it further includes a pushing mechanism disposed on the limiting plate 10 for pushing down the battery body 801. The pushing mechanism includes a support frame 29, a detector 30, a cylinder 31, and a pushing plate 32. A support frame 29 is connected between the left sides of the two limiting plates 10 by welding. A plurality of detectors 30 distributed up and down are connected inside the support frame 29 by bolts. A cylinder 31 is connected to the upper left side of the support frame 29 by bolts. A pushing plate 32 is connected to the telescopic rod of the cylinder 31 by welding. Two adjacent clamping plates 8 are located below the pushing plate 32. The detector 30 operates to detect whether the production quality of the battery body 801 is qualified. When the detection result is unqualified, the detector 30 transmits a signal to the cylinder 31, causing the telescopic rod of the cylinder 31 to extend and retract successively, and then causing the pushing plate 32 to move downward and upward successively. When the pushing plate 32 moves downward, it pushes down the battery body 801.
[0041] Refer to Figure 1 and Figure 16 As shown in the figure, it further includes a material guiding frame 34 and a material receiving frame 35. The material guiding frame 34 is connected to the left side of the chassis 1 by bolts. The material guiding frame 34 is located below the pushing plate 32, so that the battery body 801 pushed down by the pushing plate 32 falls onto the material guiding frame 34. A material receiving frame 35 is placed on the left side of the chassis 1. The material receiving frame 35 is located to the left of the conveyor belt 4, so that the material receiving frame 35 can catch the falling battery body 801.
[0042] Initially, the first spring 9 is in a compressed state. First, the staff turns on the first motor 5. The output shaft of the first motor 5 drives the right rotating shaft 2 to rotate, thereby causing the right conveyor wheel 3 and the left conveyor wheel 3 to cooperate to drive the conveyor belt 4 to rotate. Then, the detector 30 is turned on to start its operation. Subsequently, the staff turns on the second motor 13. The output shaft of the second motor 13 drives the grooved pulley 14 to rotate. Then, an appropriate amount of battery bodies 801 are poured into the loading frame 12. When the grooved pulley 14 rotates, the battery bodies 801 fall into the grooves in sequence. The protective pad 15 plays a protective role to prevent the surface of the battery bodies 801 from being damaged. The grooved pulley 14 continues to rotate to an appropriate angle so that the grooves containing the battery bodies 801 are aligned with the discharge frame 21 in sequence. The battery bodies 801 fall out of the grooves into the discharge frame 21 and then roll out of the discharge frame 21 onto the receiving plate 22. The limiting block 23 blocks the battery bodies 801 on the receiving plate 22 to prevent the battery bodies 801 from falling. At this time, the conveyor belt 4 drives the fixed block 6, the sliding rod 7, etc. to rotate, so that the sliding rod 7 is squeezed and moves inward after passing through the concave surface on the right side of the limiting plate 10, and the first spring 9 is compressed accordingly. When the sliding rod 7 drives the clamping plate 8 to move inward, the clamping plate 8 clamps the battery bodies 801 on the receiving plate 22. The conveyor belt 4 continues to drive the fixed block 6, the sliding rod 7, etc. to rotate, so that the clamping plate 8 drives the battery bodies 801 to move to the left, causing the battery bodies 801 to squeeze the limiting block 23 to move downward, and the second spring 24 is stretched accordingly. When the clamping plate 8 drives the battery bodies 801 to move to the left and pass through the support frame 29, the detector 30 operates to detect whether the production quality of the battery bodies 801 is qualified. When it detects that the battery bodies 801 are unqualified, the detector 30 transmits a signal to the cylinder 31, causing the telescopic rod of the cylinder 31 to extend and retract for one cycle. When the telescopic rod of the cylinder 31 extends, it drives the push plate 32 to move downward, pushing the unqualified battery bodies 801 down from between the two clamping plates 8, so that the unqualified battery bodies 801 fall onto the guide frame 34. After pushing down the battery bodies 801, the telescopic rod of the cylinder 31 retracts and drives the push plate 32 to move upward. When it detects that the battery bodies 801 are qualified, the detector 30 does not transmit a signal to the cylinder 31. The clamping plate 8 continues to drive the battery bodies 801 to move to the left. At this time, the sliding rod 7 is aligned with the concave surface on the left side of the limiting plate 10, and the first spring 9 assembly gradually returns to its original state, thereby causing the sliding rod 7 to drive the clamping plate 8 to move outward and stop clamping the battery bodies 801, so that the battery bodies 801 fall into the collection frame 35 for centralized collection.
[0043] Embodiment 2: On the basis of Embodiment 1, refer to Figure 6 and Figure 7As shown in the figure, it further includes a vibrating mechanism for vibrating the battery body 801 arranged on the chassis 1. The vibrating mechanism includes a first connecting rod 16, a second connecting rod 17, a guide block 18 and a vibrating frame 19. The first connecting rod 16 is rotatably connected to the front side of the groove wheel 14. The upper end of the first connecting rod 16 is rotatably connected to the second connecting rod 17. The front side of the lower part of the loading frame 12 is connected with the guide block 18 by welding. The second connecting rod 17 is slidably connected with the guide block 18. The upper end of the second connecting rod 17 penetrates into the interior of the loading frame 12 and is connected with the vibrating frame 19 by welding. The edge of the vibrating frame 19 is closely attached to the inner wall of the loading frame 12, so that the vibrating frame 19 moves smoothly. A number of material passing grooves are arranged on the vibrating frame 19. By the groove wheel 14 pulling the first connecting rod 16 to rotate, the second connecting rod 17 is further pulled to move downward, so that the vibrating frame 19 moves downward.
[0044] Refer to Figure 1 and Figures 10 - 14 As shown in the figure, it further includes a drying mechanism for drying the battery body 801 arranged on the limiting plate 10. The drying mechanism includes a mounting frame 25, a fan 26, a heating pipe 27, a filter screen 28, a fixing plate 2801, a rack 2802 and a toothed ring cylinder 2803. The mounting frame 25 is connected between the right sides of the two limiting plates 10 by welding. The upper part of the mounting frame 25 is connected with symmetrically distributed fans 26 by bolts. A number of heating pipes 27 evenly spaced horizontally are connected inside the mounting frame 25 by bolts. The heating pipes 27 are located below the fans 26, so that the air flow heated by the heating pipes 27 is blown onto the battery body 801. The filter screen 28 for filtering the air flow is connected to the lower part inside the mounting frame 25 by bolts. At least one fixing plate 2801 is connected to the rear side of the limiting plate 10 by welding. The rack 2802 is connected to the upper part of the fixing plate 2801 by welding. The toothed ring cylinder 2803 is rotatably connected inside the fixing block 6. The length of the rack 2802 is equal to the diameter length of the teeth of the toothed ring cylinder 2803, so that the toothed ring cylinder 2803 rotates 360 degrees when meshing with the rack 2802, and the sliding rod 7 is slidably connected with the toothed ring cylinder 2803 by a chute and a slider. At this time, both ends of the first spring 9 are connected to the toothed ring cylinder 2803 and the sliding rod 7 respectively. The air flow generated by the fan 26 is blown onto the battery body 801. The heating pipes 27 operate to heat the air flow into hot air, and then through the meshing of the toothed ring cylinder 2803 and the rack 2802, the toothed ring cylinder 2803 drives the sliding rod 7 to rotate.
[0045] Refer to Figure 16 As shown in the figure, it further includes a diversion frame 33. The diversion frame 33 is connected to the right side of the chassis 1 by bolts. The diversion frame 33 is located below the mounting frame 25, so that the liquid flowing down from the surface of the battery body 801 drips onto the diversion frame 33.
[0046] During the process of transporting the battery, electrolyte solution remains on the surface of the battery. The staff pre - turn on the fan 26 and the heating tube 27, and control the temperature of the heating tube 27 to an appropriate value. When the grooved wheel 14 rotates, the grooved wheel 14 drives the first connecting rod 16 to rotate, causing the first connecting rod 16 to continuously pull and push the second connecting rod 17 up and down. The second connecting rod 17 continuously drives the vibrating material rack 19 up and down, thereby vibrating the battery body 801 in the loading frame 12, so that the battery body 801 precisely falls into the groove of the grooved wheel 14 through the material - passing groove of the vibrating material rack 19, thus preventing the battery body 801 from staying in the loading frame 12. When the clamping plate 8 drives the battery body 801 to move leftward, the battery body 801 passes through the mounting frame 25. At this time, the fan 26 rotates to draw external air into the mounting frame 25 to form an air current. The air current passes through the heating tube 27 and becomes hot air blown onto the battery body 801, thereby drying the liquid on the surface of the battery body 801 and improving the drying degree of the surface of the battery body 801. During drying, the filter net 28 filters the air current to prevent impurities from being carried in the air current. At the same time, part of the liquid on the surface of the battery body 801 drips into the diversion frame 33 and flows out. Meanwhile, the gear ring cylinder 2803 meshes with the two racks 2802 successively to rotate, thereby driving the slide rod 73 to rotate 360 degrees twice, causing the clamping plate 8 to drive the battery body 801 to rotate 360 degrees for drying, so as to achieve a good drying effect.
[0047] Refer to Figure 7 As shown, it further includes a protective pad 15. A protective pad 15 for protection is connected in the groove of the grooved wheel 14, and the protective pad 15 is made of a soft material.
[0048] The above are only examples of the implementation of the present utility model and are not used to limit the present utility model. All equivalent replacements made within the principles of the present utility model shall be included within the protection scope of the present utility model. The content not elaborated in detail in the present utility model belongs to the known prior art of those skilled in the professional field.
Claims
1. An automatic feeding and sorting device for battery detection, comprising a chassis (1), a rotating shaft (2), conveying wheels (3), a conveyor belt (4), a first motor (5) and a material clamping mechanism. The upper part of the chassis (1) is rotatably connected with the left and right distributed rotating shafts (2). The rotating shafts (2) are fixedly connected with the front and rear distributed conveying wheels (3). A conveyor belt (4) is connected between two laterally aligned conveying wheels (3). A first motor (5) is installed on the upper right rear side of the chassis (1). The output shaft of the first motor (5) is fixedly connected with the right rotating shaft (2). A material clamping mechanism for clamping the battery body (801) is arranged on the conveyor belt (4). The chassis (1) is also provided with a feeding mechanism for feeding the battery body (801).
2. The automatic feeding and sorting device for battery detection according to claim 1, characterized in that: The feeding mechanism includes a support frame (11), a loading frame (12), a second motor (13), a grooved wheel (14), a support rod (20), a discharge frame (21), a receiving plate (22), a material limiting block (23) and a second spring (24). The support frame (11) is fixedly connected to the rear side of the chassis (1). The upper part of the support frame (11) is fixedly connected with the loading frame (12). The second motor (13) is installed on the rear side of the loading frame (12). The output shaft of the second motor (13) penetrates into the interior of the loading frame (12) and is fixedly connected with the grooved wheel (14). The front and rear two side surfaces of the grooved wheel (14) are in close contact with the inner wall of the loading frame (12). The support rods (20) which are symmetrically distributed front and rear are fixedly connected to the right side of the chassis (1). A discharge frame (21) is fixedly connected between the upper ends of the two support rods (20). A receiving plate (22) is fixedly connected to the lower left side of the discharge frame (21). At least one material limiting block (23) is slidably connected to the left side of the receiving plate (22). At least one second spring (24) is connected between the material limiting block (23) and the receiving plate (22).
3. The automatic feeding and sorting device for battery detection according to claim 2, characterized in that: It also includes a protective pad (15). A protective pad (15) for protection is connected in the groove of the grooved wheel (14).
4. The automatic feeding and sorting device for battery detection according to claim 3, characterized in that: The material clamping mechanism includes fixing blocks (6), sliding rods (7), clamping plates (8), first springs (9) and limiting plates (10). A number of fixing blocks (6) which are evenly spaced are fixedly connected to the conveyor belt (4). The sliding rods (7) are slidably connected to the fixing blocks (6). The mutually close ends of two longitudinally aligned sliding rods (7) are fixedly connected with the clamping plates (8). The first springs (9) for assisting in resetting are sleeved on the sliding rods (7). The two ends of the first springs (9) are respectively connected with the fixing blocks (6) and the sliding rods (7). The symmetrically distributed limiting plates (10) are fixedly connected to the upper part of the chassis (1). Concave surfaces are provided at both ends of the limiting plates (10).
5. The automatic feeding and sorting device for battery detection according to claim 4, characterized in that: Further, a material shaking mechanism for shaking the battery body (801) is provided on the chassis (1). The material shaking mechanism includes a first connecting rod (16), a second connecting rod (17), a guide block (18) and a material shaking frame (19). The first connecting rod (16) is rotatably connected to the front side of the groove wheel (14). The upper end of the first connecting rod (16) is rotatably connected to the second connecting rod (17). The guide block (18) is fixedly connected to the front side of the lower part of the loading frame (12). The second connecting rod (17) is slidably connected to the guide block (18). The upper end of the second connecting rod (17) penetrates into the interior of the loading frame (12) and is fixedly connected to the material shaking frame (19). The edge of the material shaking frame (19) is closely attached to the inner wall of the loading frame (12), so that the material shaking frame (19) moves smoothly. A plurality of material passing grooves are provided on the material shaking frame (19).
6. The automatic feeding and sorting device for battery detection according to claim 5, characterized in that: Further, a drying mechanism for drying the battery body (801) is provided on the limiting plate (10). The drying mechanism includes a mounting frame (25), a fan (26), a heating pipe (27), a filter net (28), a fixing plate (2801), a rack (2802) and a toothed ring cylinder (2803). The mounting frame (25) is fixedly connected between the right sides of the two limiting plates (10). The upper part of the mounting frame (25) is provided with symmetrically distributed fans (26). A plurality of heating pipes (27) are horizontally and evenly spaced inside the mounting frame (25). The heating pipes (27) are located below the fans (26), so that the air flow heated by the heating pipes (27) is blown onto the battery body (801). A filter net (28) for filtering the air flow is installed at the lower part inside the mounting frame (25). At least one fixing plate (2801) is fixedly connected to the rear side of the limiting plate (10). The rack (2802) is fixedly connected to the upper part of the fixing plate (2801). The toothed ring cylinder (2803) is rotatably connected inside the fixed block (6). The length of the rack (2802) is equal to the diameter length of the teeth of the toothed ring cylinder (2803), so that the toothed ring cylinder (2803) rotates 360 degrees when meshing with the rack (2802).
7. The automatic loading and sorting device for battery detection according to claim 6, characterized in that: Further, a material pushing mechanism for pushing down the battery body (801) is provided on the limiting plate (10). The material pushing mechanism includes a support frame (29), a detector (30), a cylinder (31) and a push plate (32). The support frame (29) is fixedly connected between the left sides of the two limiting plates (10). A plurality of detectors (30) are installed up and down inside the support frame (29). The cylinder (31) is installed on the upper left side of the support frame (29). The push plate (32) is fixedly connected to the telescopic rod of the cylinder (31). The adjacent two clamping plates (8) are located below the push plate (32).
8. The automatic loading and sorting device for battery detection according to claim 7, characterized in that: It further includes a flow guiding frame (33). The flow guiding frame (33) is installed on the right side of the chassis (1), and the flow guiding frame (33) is located below the installation frame (25), so that the liquid flowing down from the surface of the battery body (801) drips onto the flow guiding frame (33).
9. The automatic feeding and sorting device for battery detection according to claim 8, wherein: It further includes a material guiding frame (34). The material guiding frame (34) is installed on the left side of the chassis (1), and the material guiding frame (34) is located below the push plate (32), so that the battery body (801) pushed down by the push plate (32) falls onto the material guiding frame (34).
10. The automatic feeding and sorting device for battery detection according to claim 9, characterized in that: It further includes a material receiving frame (35). The material receiving frame (35) is placed on the left side of the chassis (1), and the material receiving frame (35) is located to the left of the conveyor belt (4), so that the material receiving frame (35) can catch the dropped battery body (801).
Citation Information
Patent Citations
Automatic feeding, detecting and sequencing system for batteries
CN211495807U