Light inspection equipment for bee product production
By cooperating with the limit frame and the extrusion block, the angle of the tank is adjusted, and the problem of observing blind spots at the bottom of the tank in honey products is solved, achieving a more comprehensive inspection effect.
Patent Information
- Application Number
- CN202510831154.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-20
- Publication Date
- 2025-08-26
- Estimated Expiration
- 2045-06-20
AI Technical Summary
The existing testing devices cannot adjust the angle of the tank, resulting in blind spots of observing impurities at the bottom of the tank in honey products, affecting product quality.
Through the matching of the limit frame and the extrusion block, the extrusion tank body is pressed to lift its bottom, and the pushing component and lifting component are combined to adjust the angle of the tank body for full illumination and observation.
Reduce blind spots in the tank body, increase the probability of impurities being detected, and ensure the quality of honey products.
Smart Images

Figure CN120334133B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of light inspection equipment, and in particular to light inspection equipment for bee product production. Background Art
[0002] Bee products include honey, royal jelly, propolis, bee pollen, etc. When testing the honey in bee products, a light transmission inspection is generally used, that is, the product is illuminated by light to observe the product's appearance, transparency, and whether there are impurities to determine whether the product is qualified. The existing detection device generally uses a conveyor belt to move the can containing honey, so that the can is moved to the area illuminated by the light inspection box for inspection. The detection lamp emits light to illuminate the impurities in the honey. Since the bottom of some existing cans is provided with an arc structure, when the light illuminates the bottom of such cans, the arc structure of the can will refract or reflect part of the light, resulting in some areas of the bottom of the can not be effectively illuminated and a blind spot is formed. When the sediment in the honey is deposited in the edge area of the bottom of the can, the light emitted by the light inspection box cannot intuitively display the impurities on the bottom, and the existing detection device cannot adjust the angle of the can, resulting in the staff's line of sight being affected by the arc structure of the can, and the actual situation of the honey in the can cannot be accurately observed, causing the staff to miss something, affecting the final quality of the honey product. Summary of the Invention
[0003] The present invention provides a light inspection device for bee product production, which is used to solve the disadvantage that the existing detection device cannot adjust the angle of the tank body.
[0004] The technical solution of the present invention is: a light inspection device for bee product production, comprising:
[0005] A testing platform, wherein a testing light is installed on the testing platform and a conveyor belt is provided on the testing platform;
[0006] A limit frame is fixedly connected to a side of the detection platform close to the detection light, and a limit surface is provided on the upper portion of the limit frame, and the limit surface is used to support the tank body;
[0007] Symmetrically distributed connecting frames are all fixed to the side of the detection platform away from the detection light. The connecting frames are fixed with extrusion blocks. The side of the extrusion blocks close to the detection light is provided with an extrusion surface, which is used to squeeze the upper part of the tank body to tilt the tank body. The extrusion surface is parallel to the limiting surface. The extrusion block and the limiting frame are both located above the conveyor belt, and the extrusion block is located above the limiting frame.
[0008] A connecting plate is fixedly connected between the symmetrically distributed extrusion blocks, wherein the side of the connecting plate close to the detection light is coplanar with the extrusion surface;
[0009] The pushing assembly is arranged on the detection platform and is used to push the can body into between the limiting frame and the extrusion block.
[0010] Furthermore, a first guide surface is provided on the limit frame, and the first guide surface is used to guide the tank body to move between the limit frame and the extrusion block. Second guide surfaces are provided on the back sides of the symmetrically distributed extrusion blocks. The distance between the symmetrically distributed second guide surfaces increases as the distance between them and the detection light increases. The second guide surface is used to squeeze the tank body so that the tank body gradually tilts.
[0011] Furthermore, the length of the limiting surface in the horizontal direction is greater than the maximum distance of the symmetrically distributed second guide surfaces in the horizontal direction.
[0012] Furthermore, the pusher assembly includes:
[0013] A motor, wherein a fixing plate is fixedly connected to a side of the test platform away from the test light, the motor is fixedly connected to the fixing plate of the test platform, and an output shaft of the motor is fixedly connected to a rotating shaft;
[0014] The rotating sleeve is arranged on the rotating shaft. The rotating sleeve and the rotating shaft are both fixedly connected with a push plate. The push plate is used to push the can body to move. The push plate is provided with a curved surface, which is used to clamp the can body.
[0015] Furthermore, it also includes:
[0016] The limiting assembly is provided on the rotating sleeve and is used to increase the stability of the tank during movement. The limiting assembly includes:
[0017] an elastic rod fixedly connected between the rotating shaft and the rotating sleeve, wherein the rotating shaft is rotatably connected to the rotating sleeve;
[0018] A limit block is fixedly connected to the fixed plate of the detection platform, and the limit block is used to limit the push plate on the rotating sleeve.
[0019] Furthermore, it also includes:
[0020] A positioning assembly is provided on the symmetrically distributed connecting frames and is used to limit the position of the upper portion of the tank body. The positioning assembly includes:
[0021] A support plate is fixed to the symmetrically distributed connecting frames;
[0022] a positioning plate, slidably connected to the support plate, a tension spring being fixedly connected between the positioning plate and the support plate, and a lower side surface of the positioning plate being perpendicular to the extrusion surface;
[0023] The support assembly is arranged on the symmetrically distributed connecting frames and is used to support the bottom of the tank body.
[0024] Furthermore, the support assembly includes:
[0025] A support frame is fixedly connected to the symmetrically distributed connecting frame, the support frame is provided with a support surface parallel to the lower side of the positioning plate, and the support frame is provided with symmetrically distributed arc surfaces, the arc surfaces are used to squeeze the bottom of the tank from bottom to top;
[0026] The lifting assembly is arranged on the symmetrically distributed connecting frames and is used to push the movable tank to move back and forth.
[0027] Furthermore, the lifting assembly includes:
[0028] A lifting frame, wherein a rectangular groove is provided on the support frame, and the lifting frame is slidably connected to the rectangular groove of the support frame, and the lifting frame is used to push the tank body to move;
[0029] The electric push rod is fixed in the support frame, and an elastic block is fixed between the telescopic end of the electric push rod and the lifting frame.
[0030] Furthermore, it also includes:
[0031] The rotating assembly is provided on the lifting frame and is used to drive the tank body to rotate during the reciprocating movement of the tank body. The rotating assembly includes:
[0032] The symmetrically distributed first limiting wheels are all rotatably connected to the lifting frame. An electric rotating shaft is provided on the lifting frame. The electric rotating shaft is located between the symmetrically distributed first limiting wheels. The electric rotating shaft is fixed with a rotating wheel. The rotating wheel is rotatably connected to the lifting frame. The rotating wheel is used to drive the tank body to rotate.
[0033] Furthermore, the lifting frame is fixed with an adjustment plate, the adjustment plate is rotatably connected to a second limiting wheel, a through hole is provided on the support frame, the second limiting wheel is located in the through hole on the support frame, and the second limiting wheel is used to limit the position of the tank body.
[0034] Compared with the prior art, the present invention has the following advantages: 1. When the tank body is subjected to a light inspection, the present invention cooperates with the limit frame and the extrusion block to extrude the tank body, causing the bottom of the tank body to tilt upward, so that the light emitted by the detection lamp can illuminate the material inside the tank body from different angles, reducing the area of blind spots in the tank body and making it easier for staff to observe the situation at the bottom of the tank body.
[0035] 2. In the process of adjusting the angle of the tank body, the present invention squeezes the upper part of the tank body through the positioning plate, applies a force in the opposite direction to the tank body, limits the range of movement of the tank body, improves the stability of the tank body during movement, and ensures that the tank body can be tested normally.
[0036] 3. The present invention uses a lifting frame to drive the tank body to shake up and down, so that the honey in the tank body drives the impurities deposited at the bottom to move together, so that the impurities are away from the edge area of the bottom of the tank body, thereby increasing the probability of the impurities being exposed to light, thereby making it easier for staff to observe whether there is any abnormality in the tank body. BRIEF DESCRIPTION OF THE DRAWINGS
[0037] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention;
[0038] Figure 2 It is a schematic diagram of the three-dimensional structure of the detection platform, the limiting frame and the push plate of the present invention;
[0039] Figure 3 It is a schematic diagram of the three-dimensional structure of the extrusion block, the connecting plate and the pusher plate of the present invention;
[0040] Figure 4 It is a schematic diagram of the three-dimensional structure of the support plate, positioning plate and tension spring of the present invention;
[0041] Figure 5 It is a schematic diagram of the three-dimensional structure of the extrusion surface, support frame and lifting frame of the present invention;
[0042] Figure 6 It is a schematic diagram of the three-dimensional structure of the motor, elastic rod and limit block of the present invention;
[0043] Figure 7 It is a schematic diagram of the three-dimensional structure of the electric push rod, the first limiting wheel and the rotating wheel of the present invention;
[0044] Figure 8 It is a schematic diagram of the three-dimensional structure of the support frame, support surface and lifting frame of the present invention;
[0045] Figure 9 It is a schematic diagram of the three-dimensional structure of the lifting frame, the adjustment plate and the second limiting wheel of the present invention.
[0046] Explanation of the accompanying drawings: 1-detection table, 2-detection light, 3-conveyor belt, 4-limiting frame, 5-limiting surface, 6-connecting frame, 7-extrusion block, 8-extrusion surface, 9-connecting plate, 10-first guide surface, 11-second guide surface, 12-motor, 13-rotating shaft, 14-rotating sleeve, 15-pushing plate, 16-elastic rod, 17-limiting block, 18-support plate, 19-positioning plate, 20-tension spring, 21-support frame, 22-support surface, 23-arc surface, 24-lifting frame, 25-electric push rod, 26-first limiting wheel, 27-rotating wheel, 28-adjusting plate, 29-second limiting wheel. DETAILED DESCRIPTION
[0047] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0048] Example 1: The present invention provides a light inspection device for bee product production, which is used to solve the disadvantage that the existing detection device cannot adjust the angle of the tank.
[0049] A light inspection device for bee product production, such as Figure 1-Figure 5 As shown, it includes: an inspection table 1, a detection light 2 is installed on the inspection table 1, and a conveyor belt 3 is provided on the inspection table 1; a limit frame 4 is fixedly connected to the side of the inspection table 1 close to the detection light 2, and a limit surface 5 is provided on the upper part of the limit frame 4, which is used to support the tank body; symmetrically distributed connecting frames 6 are all fixedly connected to the side of the inspection table 1 away from the detection light 2, and an extrusion block 7 is fixedly connected to the connecting frame 6, and an extrusion surface 8 is provided on the side of the extrusion block 7 close to the detection light 2. The extrusion surface 8 is used to squeeze the upper part of the tank body to tilt the tank body, and the extrusion surface 8 is parallel to the limit surface 5. The extrusion block 7 and the limit frame 4 are both located above the conveyor belt 3, and the extrusion block 7 is located above the limit frame 4; a connecting plate 9 is fixed between the symmetrically distributed extrusion blocks 7, and the side of the connecting plate 9 close to the detection light 2 is coplanar with the extrusion surface 8; a pushing assembly is provided on the inspection table 1 for pushing the tank body into between the limit frame 4 and the extrusion block 7.
[0050] The above scheme provides a method for driving the can body to tilt and adjust the position of the can body during the honey lamp inspection process, so as to facilitate the staff to observe the bottom of the can body; this embodiment is for a cylindrical can body, and a platform is provided at the front of the inspection table 1 for placing unqualified products, the inspection lamp 2 is installed at the rear of the inspection table 1, and the conveyor belt 3 is located at the front side of the inspection table 1; the limit frame 4 is made of a transparent material, so that the light emitted by the inspection lamp 2 can pass through the limit frame 4 and shine on the can body, the limit frame 4 is located at the rear of the upper side of the inspection table 1, and the limit surface 5 is located above the rear of the conveyor belt 3, and the lowest part of the limit surface 5 is located at the can body. The lower third of the tank body is located at, to reduce the probability of the tank body tipping over. In this embodiment, the angle between the limiting surface 5 and the horizontal plane is 70°, which is used to make the center of gravity of the tank body located in front of the contact point between the tank body and the conveyor belt 3, so that the tank body can change from tilted to vertical under the action of its own gravity. The angle and height of the limiting surface 5 can be adjusted according to actual usage. There are two connecting frames 6, both located in front of the conveyor belt 3, and the extrusion surface 8 is located above the front side of the conveyor belt 3; the connecting plate 9 is a transparent thin plate. When the tank body moves along the connecting plate 9, the staff can observe the condition of the honey in the tank body through the connecting plate 9.
[0051] Further, such as Figure 2-Figure 5 As shown, a first guide surface 10 is provided on the limit frame 4, and the first guide surface 10 is used to guide the tank body to move between the limit frame 4 and the extrusion block 7. The back sides of the symmetrically distributed extrusion blocks 7 are each provided with a second guide surface 11. The distance between the symmetrically distributed second guide surfaces 11 increases as the distance between them and the detection light 2 increases. The second guide surface 11 is used to squeeze the tank body so that the tank body gradually tilts.
[0052] Further, such as Figure 2-Figure 4 As shown, the length of the limiting surface 5 in the horizontal direction is greater than the maximum distance of the symmetrically distributed second guiding surfaces 11 in the horizontal direction.
[0053] In the above scheme, the first guide surface 10 is located on the right part of the limit frame 4. The first guide surface 10 is used to guide the tank body to move forward, and the second guide surface 11 is used to guide the tank body to tilt backward. In the process of the tank body moving to the left, the second guide surface 11 gradually guides the upper part of the tank body to tilt backward, so that the upper part of the tank body gradually tilts backward. Before the second guide surface 11 contacts the tank body, the front side surface of the limit frame 4 first contacts the tank body under the guidance of the first guide surface 10, so that the tank body cannot move backward, thereby providing support force for the tank body in the process of tilting backward.
[0054] Working process: When the honey needs to be inspected by light, the staff starts the inspection light 2 and the conveyor belt 3. Then the staff places the can containing honey on the right side of the conveyor belt 3 through the existing loading device. The conveyor belt 3 drives the can to move to the left and gradually enters the irradiation area of the inspection light 2. When the can moves in front of the inspection light 2, the staff observes the condition of the can at this time. When the can contacts the first guide surface 10, the can moves forward under the pressure of the first guide surface 10 until the can separates from the first guide surface 10 and contacts the second guide surface 11. As the conveyor belt 3 continues to drive the can to move to the left, the second guide surface 11 squeezes the upper part of the can, causing the upper part of the can to gradually tilt backward, and the bottom of the can The front side is tilted upward, which makes it convenient for the staff to observe the bottom situation of the tank body. When the tank body is separated from the second guide surface 11 on the right side, the tank body contacts the limit surface 5 and the extrusion surface 8, and the tank body stops tilting backward and remains stable. Then the tank body continues to move to the left driven by the conveyor belt 3. When the tank body contacts the connecting plate 9, the staff observes the situation inside the tank body until the tank body contacts the second guide surface 11 on the extrusion block 7 on the left. The second guide surface 11 gradually loses its restriction on the upper part of the tank body. Under the action of gravity, the tank body gradually swings forward to reset and separates from the limit surface 5. Until the tank body is separated from the second guide surface 11 on the left, the tank body is upright again. Then the staff repeats the above process to inspect other tank bodies.
[0055] Example 2: Based on Example 1, Figure 2 、 Figure 3 and Figure 6 As shown, the pushing assembly includes: a motor 12, a fixed plate is fixedly connected to the side of the inspection platform 1 away from the inspection light 2, the motor 12 is fixedly connected to the fixed plate of the inspection platform 1, and the output shaft of the motor 12 is fixedly connected to the rotating shaft 13; a rotating sleeve 14, which is arranged on the rotating shaft 13, and the rotating sleeve 14 and the rotating shaft 13 are both fixedly connected to a pushing plate 15, which is used to push the can body to move, and the pushing plate 15 is provided with a curved surface, which is used to clamp the can body.
[0056] The above scheme provides a method of assisting the movement of the tank body by squeezing the tank body when the tank body enters between the limit frame 4 and the extrusion block 7; the motor 12 is used to drive the rotating shaft 13 to swing back and forth; in this embodiment, the rotating sleeve 14 and the rotating shaft 13 are fixedly connected, and the projection of the push plate 15 on the rotating sleeve 14 on the horizontal plane coincides with the projection of the push plate 15 on the rotating shaft 13 on the horizontal plane. The frequency of starting the motor 12 matches the distance between adjacent tank bodies on the conveyor belt 3, and the rotation speed of the output shaft of the motor 12 matches the speed at which the conveyor belt 3 drives the tank body to move. The first guide surface 10 can be provided with a pressure sensor to control the motor 12, that is, the motor 12 starts after the pressure sensor is squeezed by the tank body.
[0057] Workflow: This embodiment performs subsequent actions based on the backward tilting of the tank body in embodiment 1: During the process of the tank body moving forward along the first guide surface 10, when the tank body contacts the pressure sensor on the first guide surface 10, the motor 12 is started, and the output shaft of the motor 12 drives the rotating shaft 13 to rotate counterclockwise ( Figure 6 , looking from top to bottom), the rotating shaft 13 drives the rotating sleeve 14 to rotate synchronously, and the rotating shaft 13 and the rotating sleeve 14 drive the pushing plate 15 thereon to rotate counterclockwise together. When the curved surface of the pushing plate 15 contacts the tank body, the pushing plate 15 pushes the tank body to the left, exerting a force to move left for the tank body, assisting the tank body to enter between the extrusion block 7 and the limit frame 4. When the tank body contacts the second guide surface 11 on the right, the tank body tilts backward along the second guide surface 11 until the pushing plate 15 faces directly rearward, the tank body separates from the second guide surface 11 and contacts both the limit surface 5 and the extrusion surface 8. The output shaft of the motor 12 drives the rotating shaft 13 and the parts thereon to rotate in the opposite direction and reset, and the conveyor belt 3 drives the tilted tank body to move to the left.
[0058] Example 3: Based on Example 2, Figure 6 As shown, it also includes: a limiting component, which is arranged on the rotating sleeve 14 and is used to increase the stability of the tank body during movement. The limiting component includes: an elastic rod 16, which is fixed between the rotating shaft 13 and the rotating sleeve 14, and the rotating shaft 13 is rotatably connected to the rotating sleeve 14; a limiting block 17, which is fixed to the fixed plate of the detection platform 1, and the limiting block 17 is used to limit the push plate 15 on the rotating sleeve 14.
[0059] The above scheme provides a method of squeezing the tank body by first pushing the lower part of the tank body and then pushing the upper part of the tank body in the process of pushing the tank body to move, thereby increasing the stability of the tank body during the tilting process; in this embodiment, an arc groove is provided on the upper part of the rotating sleeve 14, and a protrusion is provided on the lower part of the rotating shaft 13. The protrusion of the rotating shaft 13 is located in the arc groove of the rotating sleeve 14 and slides. The elastic rod 16 is located in the arc groove of the rotating sleeve 14, and the elastic rod 16 is used to push the rotating sleeve 14 to rotate and reset. Initially, the projection of the push plate 15 on the rotating shaft 13 on the horizontal plane and the projection of the push plate 15 on the rotating sleeve 14 on the horizontal plane do not completely coincide, and the push plate 15 on the rotating sleeve 14 is located at the rear side of the rotating sleeve 14 on the rotating shaft 13; when the push plate 15 on the rotating sleeve 14 is facing straight back, the limit block 17 contacts the push plate 15 on the rotating sleeve 14, so that the push plate 15 can no longer move.
[0060] Workflow: This embodiment performs subsequent actions based on the push plate 15 moving to the left in embodiment 2: when the output shaft of the motor 12 drives the rotating shaft 13 to rotate, the rotating shaft 13 drives the rotating sleeve 14 to rotate synchronously by squeezing the elastic rod 16, so that the rotating shaft 13 and the rotating sleeve 14 respectively drive the adjacent push plate 15 to rotate counterclockwise ( Figure 6 , looking from top to bottom), when the push plate 15 on the rotating sleeve 14 contacts the lower part of the tank body, the push plate 15 pushes the lower part of the tank body to move to the left, so that the tank body has a tendency to tilt to the right under the extrusion of the push plate 15 on the rotating sleeve 14. Due to the increase in the rotation resistance of the rotating sleeve 14, the rotating shaft 13 rotates counterclockwise relative to the rotating sleeve 14 and compresses the elastic rod 16. In this process, the tank body moves to the left under the push of the push plate 15 and enters between the right extrusion block 7 and the limit frame 4. At the same time, the upper part of the tank body tilts to the right under the action of the second guide surface 11 on the right and approaches the push plate 15 on the rotating shaft 13 until the push plate 15 on the rotating shaft 13 contacts the tank body. After the contact, the rotating shaft 13 and the rotating sleeve 14 stop moving relative to each other, and the two push the tank body to the left through the adjacent pushing plates 15. When the pushing plate 15 on the rotating sleeve 14 contacts the limit block 17, the rotating sleeve 14 stops rotating, and the rotating shaft 13 continues to drive the parts thereon to rotate. When the pushing plate 15 on the rotating shaft 13 points to the rear side, the tank body separates from the second guide surface 11, so that the tank body stably enters between the extrusion block 7 and the limit frame 4, thereby improving the stability of the tank body during the backward tilting process and reducing the probability of the tank body tipping over to the left or right. The output shaft of the motor 12 drives the rotating shaft 13 and the upper collar parts thereof to move in the opposite direction and reset, and the elastic rod 16 stretches and resets.
[0061] Example 4: Based on Example 3, Figure 2-Figure 5 As shown, it also includes: a positioning component, which is arranged on the symmetrically distributed connecting frame 6 and is used to limit the position of the upper part of the tank body. The positioning component includes: a support plate 18, which is fixed to the symmetrically distributed connecting frame 6; a positioning plate 19, which is slidably connected to the support plate 18, and a tension spring 20 is fixed between the positioning plate 19 and the support plate 18, and the lower side surface of the positioning plate 19 is perpendicular to the extrusion surface 8; a support component, which is arranged on the symmetrically distributed connecting frame 6 and is used to support the bottom of the tank body.
[0062] In the above scheme, the lengths of the support plate 18 and the positioning plate 19 are both greater than the maximum distance between the two second guide surfaces 11 in the horizontal direction; the positioning plate 19 is used to squeeze the upper side surface of the tank body so that the upper side surface of the tank body fits with the positioning plate 19, which is used to further reduce the probability of the tank body tilting to the left and right directions, and the tension spring 20 is used to push the positioning plate 19 to move and reset.
[0063] Working process: This embodiment performs subsequent actions on the basis of first pushing the lower part of the tank body and then pushing the upper part of the tank body in Example 3: in the process of the above-mentioned pushing plate 15 pushing the tank body to the left, as the tank body gradually tilts backward, when the tank body contacts the positioning plate 19, the tank body squeezes the positioning plate 19, causing the positioning plate 19 to move upward and compress the tension spring 20. In this process, if the tank body tends to tilt left and right, taking the tendency of the tank body to tilt to the left as an example, the direction of the force between the tank body and the positioning plate 19 changes, and the tank body applies an upward squeezing force to the positioning plate 19, so that the positioning plate 19 applies a downward force to the tank body, thereby preventing the tank body from deflecting to the left, thereby increasing the stability of the upper part of the tank body during the backward tilting process.
[0064] Example 5: Based on Example 4, Figure 2-Figure 5 and Figure 7 As shown, the support assembly includes: a support frame 21, which is fixed to the symmetrically distributed connecting frame 6, and the support frame 21 is provided with a support surface 22 parallel to the lower side of the positioning plate 19, and the support frame 21 is provided with a symmetrically distributed arc surface 23, and the arc surface 23 is used to squeeze the bottom of the tank body from the bottom to the top; a lifting assembly, which is provided on the symmetrically distributed connecting frame 6, and is used to push the mobile tank body to move back and forth.
[0065] Further, such as Figure 5 、 Figure 7 and Figure 8 As shown, the lifting assembly includes: a lifting frame 24, a rectangular groove is provided on the support frame 21, the lifting frame 24 is slidably connected to the rectangular groove of the support frame 21, and the lifting frame 24 is used to push the tank body to move; an electric push rod 25, fixed in the support frame 21, and an elastic block is fixed between the telescopic end of the electric push rod 25 and the lifting frame 24.
[0066] The above scheme provides a way to drive the tank body to shake slightly up and down, causing the material inside the tank body to flow chaotically, making it convenient for staff to observe whether there are foreign objects deposited in the tank; the support frame 21 is used to support the bottom of the tank body and further limit the position of the tank body; the arc surface 23 is used to assist the second guide surface 11 in adjusting the position of the tank body so that the tank body gradually tilts. Initially, the lifting frame 24 is located in the rectangular groove of the support frame 21, so that the tank body can move normally along the support surface 22; the telescopic end of the electric push rod 25 is connected to the lifting frame 24 by an elastic block, which is used to adapt to the changes in the position of the lifting frame 24, and initially, the telescopic end of the electric push rod 25 is in a retracted state.
[0067] Working process: This embodiment performs subsequent actions on the basis of making the tank body tilt backward stably in embodiment 4: in the process of the above-mentioned tank body moving to the left, after the bottom of the tank body contacts the curved surface 23, the curved surface 23 cooperates with the second guide surface 11 to squeeze the tank body, causing the tank body to gradually tilt backward until the tank body is separated from the second guide surface 11, and the tank body is separated from the curved surface 23 and contacts the support surface 22. As the conveyor belt 3 continues to drive the tank body to move to the left, when the tank body moves to the top of the lifting frame 24, the electric push rod 25 is started, and the telescopic end of the electric push rod 25 pushes the lifting frame 24 to move through the elastic block, so that the lifting frame 24 moves upward in a direction perpendicular to the support surface 22, and the lifting frame 24 drives the tank body to move synchronously The tank body is separated from the conveyor belt 3 and the positioning plate 19 is squeezed, so that the positioning plate 19 moves and compresses the tension spring 20. After the telescopic end of the electric push rod 25 is extended to the limit position, the telescopic end of the electric push rod 25 is retracted and reset, and the tension spring 20 pushes the positioning plate 19 to reset. After that, the telescopic end of the electric push rod 25 is continuously extended and retracted, so that the tank body is continuously moved up and down and drives the honey therein to shake and flow, so that the impurities deposited at the bottom of the tank body flow in the tank body with the honey flow, further increasing the probability of the impurities being illuminated by the detection light 2, thereby facilitating subsequent observation by the staff. After the electric push rod 25 is started for a fixed time (the fixed time is set by the staff), the telescopic end of the electric push rod 25 is retracted and closed.
[0068] Example 6: Based on Example 5, Figure 7-Figure 9 As shown, it also includes: a rotating assembly, which is arranged on the lifting frame 24 and is used to drive the tank body to rotate during the reciprocating movement of the tank body. The rotating assembly includes: symmetrically distributed first limiting wheels 26, which are all rotatably connected to the lifting frame 24. An electric rotating shaft is provided on the lifting frame 24, and the electric rotating shaft is located between the symmetrically distributed first limiting wheels 26. The electric rotating shaft is fixed with a rotating wheel 27, which is rotatably connected to the lifting frame 24 and is used to drive the tank body to rotate.
[0069] The above scheme provides a method for driving the tank body to rotate in the process of shaking by the lifting frame 24, thereby further increasing the degree of disorder of the material in the tank; in this embodiment, there are two first limiting wheels 26 and one rotating wheel 27, and the specific number and position can be adjusted according to actual conditions. The distance between the first limiting wheel 26 and the rotating wheel 27 is less than or equal to the diameter of the tank body, so as to ensure that the two can contact the tank body at the same time, so that the rotating wheel 27 drives the tank body to rotate. The upper sides of the first limiting wheel 26 and the rotating wheel 27 are both provided with rounded corners, which are used to guide the tank body to move between the first limiting wheel 26 and the rotating wheel 27. The electric shaft is used to drive the rotating wheel 27 to rotate clockwise ( Figure 8, viewed from the front to the back), the rotating wheel 27 cooperates with the first limiting wheel 26 to drive the tank body to rotate counterclockwise. Initially, the upper side surface of the first limiting wheel 26 and the upper side surface of the rotating wheel 27 are both flush with the support surface 22.
[0070] like Figure 8 As shown, the lifting frame 24 is fixed with an adjustment plate 28, and the adjustment plate 28 is rotatably connected to a second limiting wheel 29. A through hole is provided on the support frame 21, and the second limiting wheel 29 is located in the through hole on the support frame 21. The second limiting wheel 29 is used to limit the position of the tank body.
[0071] In the above solution, an adjustment plate 28 is fixed to the lower part of the lifting frame 24, and there is a gap between the adjustment plate 28 and the support frame 21. The second limiting wheel 29 is used to prevent the tank body from moving left, so that the tank body and the conveyor belt 3 move relative to each other and rotate.
[0072] Working process: This embodiment performs subsequent actions on the basis of the reciprocating vibration of the tank body driven by the lifting frame 24 in Example 5: in the process of the above-mentioned tank body moving to the left, when the tank body moves to between the first limiting wheel 26 and the rotating wheel 27 on the left, the telescopic end of the electric push rod 25 extends, and the lifting frame 24 drives the first limiting wheel 26, the rotating wheel 27 and the adjustment plate 28 to move, and the first limiting wheel 26 and the rotating wheel 27 move to clamp the adjacent tank body, and then the electric rotating shaft on the lifting frame 24 is started, and the electric rotating shaft drives the rotating wheel 27 to rotate, so that the rotating wheel 27 drives the tank body to rotate during the up and down shaking of the tank body, further increasing the degree of disorder of the material in the tank body, and when the telescopic end of the electric push rod 25 is retracted, the first limiting wheel After the lifting frame 24 is reset, the adjusting plate 28 drives the second limiting wheel 29 to reset, so that the second limiting wheel 29 is separated from the tank body, and the staff can observe the situation inside the tank body.
[0073] While the present invention has been described with reference to exemplary embodiments, it is to be understood that the invention is not limited to the disclosed exemplary embodiments.
Claims
1. A light inspection equipment for bee product production, Its characteristics include: A testing platform (1), wherein a testing light (2) is installed on the testing platform (1), and a conveyor belt (3) is provided on the testing platform (1); A limit frame (4) is fixedly connected to a side of the detection platform (1) close to the detection light (2), and a limit surface (5) is provided on the upper part of the limit frame (4), and the limit surface (5) is used to support the tank body; The symmetrically distributed connecting frames (6) are all fixedly connected to the side of the detection table (1) away from the detection light (2), and the connecting frame (6) is fixedly connected with an extrusion block (7). The side of the extrusion block (7) close to the detection light (2) is provided with an extrusion surface (8), and the extrusion surface (8) is used to squeeze the upper part of the tank body to tilt the tank body. The extrusion surface (8) is parallel to the limiting surface (5). The extrusion block (7) and the limiting frame (4) are both located above the conveyor belt (3), and the extrusion block (7) is located above the limiting frame (4); A connecting plate (9) is fixedly connected between the symmetrically distributed extrusion blocks (7), and the side of the connecting plate (9) close to the detection light (2) is coplanar with the extrusion surface (8); A pushing assembly, arranged on the inspection platform (1), for pushing the can body into between the limiting frame (4) and the extrusion block (7); Also included are: A positioning assembly is provided on the symmetrically distributed connecting frame (6) and is used to limit the position of the upper portion of the tank body. The positioning assembly includes: A support plate (18) is fixedly connected to the symmetrically distributed connecting frames (6); A positioning plate (19) is slidably connected to the support plate (18), a tension spring (20) is fixedly connected between the positioning plate (19) and the support plate (18), and the lower side surface of the positioning plate (19) is perpendicular to the extrusion surface (8); A support assembly is provided on the symmetrically distributed connecting frames (6) and is used to support the bottom of the tank; The support assembly includes: A support frame (21) is fixedly connected to the symmetrically distributed connecting frame (6), the support frame (21) is provided with a support surface (22) parallel to the lower side of the positioning plate (19), and the support frame (21) is provided with symmetrically distributed arc surfaces (23), and the arc surfaces (23) are used to squeeze the bottom of the tank from bottom to top; A lifting assembly is provided on the symmetrically distributed connecting frame (6) and is used to push the movable tank body to move back and forth; The lifting assembly includes: A lifting frame (24), wherein a rectangular groove is provided on the support frame (21), and the lifting frame (24) is slidably connected to the rectangular groove of the support frame (21), and the lifting frame (24) is used to push the tank body to move; The electric push rod (25) is fixedly connected in the support frame (21), and an elastic block is fixedly connected between the telescopic end of the electric push rod (25) and the lifting frame (24).
2. The light inspection equipment for bee product production according to claim 1, characterized in that: The limiting frame (4) is provided with a first guiding surface (10), and the first guiding surface (10) is used to guide the tank body to move between the limiting frame (4) and the extrusion block (7). The back side of the symmetrically distributed extrusion block (7) is provided with a second guiding surface (11), and the distance between the symmetrically distributed second guiding surfaces (11) increases as the distance between them and the detection light (2) increases. The second guiding surface (11) is used to squeeze the tank body so that the tank body gradually tilts.
3. The light inspection equipment for bee product production according to claim 2, characterized in that: The length of the limiting surface (5) in the horizontal direction is greater than the maximum distance of the symmetrically distributed second guide surfaces (11) in the horizontal direction.
4. The light inspection equipment for bee product production according to claim 2, characterized in that: The pusher assembly includes: A motor (12), a fixed plate is fixedly connected to a side of the detection platform (1) away from the detection lamp (2), the motor (12) is fixedly connected to the fixed plate of the detection platform (1), and the output shaft of the motor (12) is fixedly connected to a rotating shaft (13); A rotating sleeve (14) is arranged on the rotating shaft (13); the rotating sleeve (14) and the rotating shaft (13) are both fixedly connected with a push plate (15); the push plate (15) is used to push the tank body to move; the push plate (15) is provided with a curved surface, and the curved surface is used to clamp the tank body.
5. The light inspection equipment for bee product production according to claim 4, characterized in that: Also included are: A limiting assembly is provided on the rotating sleeve (14) and is used to increase the stability of the tank during movement. The limiting assembly includes: An elastic rod (16) is fixed between the rotating shaft (13) and the rotating sleeve (14), and the rotating shaft (13) and the rotating sleeve (14) are rotatably connected; A limit block (17) is fixedly connected to a fixed plate of the detection platform (1), and the limit block (17) is used to limit the push plate (15) on the rotating sleeve (14).
6. The light inspection equipment for bee product production according to claim 1, characterized in that: Also included are: A rotating assembly is provided on the lifting frame (24) and is used to drive the tank body to rotate during the reciprocating movement of the tank body. The rotating assembly includes: The symmetrically distributed first limiting wheels (26) are all rotatably connected to the lifting frame (24). An electric rotating shaft is provided on the lifting frame (24). The electric rotating shaft is located between the symmetrically distributed first limiting wheels (26). The electric rotating shaft is fixedly connected to a rotating wheel (27). The rotating wheel (27) is rotatably connected to the lifting frame (24). The rotating wheel (27) is used to drive the tank body to rotate.
7. The light inspection equipment for bee product production according to claim 6, characterized in that: The lifting frame (24) is fixedly connected to an adjustment plate (28), and the adjustment plate (28) is rotatably connected to a second limiting wheel (29). A through hole is provided on the support frame (21), and the second limiting wheel (29) is located in the through hole on the support frame (21). The second limiting wheel (29) is used to limit the position of the tank body.
Citation Information
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