Continuous train loading equipment with material weighing and re-checking functions
By using pressure sensors and rotary hoppers in train loading equipment, the problems of low loading efficiency, material accumulation and slippage when loading powder materials in trains are solved, and efficient and stable material loading is achieved and material leakage in transportation is reduced.
Patent Information
- Application Number
- CN202510321222.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-18
- Publication Date
- 2025-05-23
AI Technical Summary
The prior art When loading powder materials in trains, the loading efficiency is low, and the materials are prone to stacking and sliding, resulting in the inability to effectively fill the interior of the car, and the residual materials on the conveyor belt cause material leakage.
A continuous train loading equipment with material weighing repetition is designed. Pressure sensors are used to weigh materials, and the rotating hopper and support rod are used in conjunction with each other to achieve rapid inclination of materials into the train car. Through components such as hydraulic cylinders and electric telescopic rods, the materials are smooth and smoothed and avoided accumulation and slide.
It improves the efficiency of loading train carriages, avoids material accumulation and slippage, reduces material residue on the conveyor belt, reduces cleaning difficulty and material leakage during transportation.
Smart Images

Figure CN120024727A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of material conveying and loading, and in particular to continuous train loading equipment with material weighing and verification. Background Art
[0002] When loading powder materials on a train, a certain weight of materials is generally loaded into the train carriage, and the weight of the materials is measured before loading, and then the materials are loaded into the train carriage. When loading materials on a train, after loading a train carriage, the train needs to move forward a carriage distance. Therefore, when loading multiple carriages of the train, the train needs to be started and driven many times, resulting in low train loading efficiency.
[0003] The defects of existing sheet metal assembly equipment are: 1. Prior art JP2016175726A discloses a belt conveyor conveying device, which has a structure for measuring the weight of the conveyed materials multiple times. At the same time, when the materials are transported into the train compartment, when loading a train compartment, the train needs to move forward a distance of one compartment, and then the materials can be loaded into another compartment of the train compartment. The loading efficiency is slow. Therefore, a continuous train loading device with material weighing and rechecking that can measure the weight of the materials multiple times and improve the loading efficiency of the train compartment when loading the train compartment is needed to solve this problem.
[0004] 2. Prior art US08708138B2 discloses a belt conveyor. When loading materials into a train compartment, the materials tend to accumulate, resulting in the inability to effectively fill the compartment. When the materials are piled up too high, they tend to slide out of the train compartment. Therefore, a continuous train loading device with a material weighing and rechecking function is needed to solve this problem. The device can avoid excessive accumulation of materials in the train compartment when loading materials into the train compartment.
[0005] 3. Prior art JP5963183B1 discloses a belt conveyor. When loading materials into a train, if the materials are piled too high, they are easy to slide off the edge of the carriage. Therefore, a continuous train loading equipment with a material weighing and rechecking function is needed to solve this problem. The equipment can prevent the materials from sliding off the edge when the materials are too high inside the carriage.
[0006] 4. Prior art CN215853589U discloses an automatic loader based on multi-sensor safety redundant verification. When this technology conveys materials on a belt, materials are easily left on the belt and fall on the ground below the belt during transportation, causing material leakage and increasing people's cleaning labor. Therefore, a continuous train loading equipment with material weighing and verification that can reduce material residue on the conveyor belt is needed to solve this problem. Summary of the invention
[0007] One purpose of the present application is to provide a continuous train loading equipment with material weighing and verification, which can solve the technical problems raised in the prior art.
[0008] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: a continuous train loading equipment with material weighing and verification, comprising a frame body 1, a plate body 1 and a conveying frame, the front of the frame body 1 is equipped with the plate body 1, the back of the plate body 1 is equipped with the plate body 2, one side of the plate body 2 is equipped with a controller component, the bottom of the frame body 1 is symmetrically equipped with connecting plates, the bottom of the connecting plates is equipped with a conveying frame, and the bottom inner wall of the conveying frame is provided with a weighing mechanism; A right-angle plate component three is installed at the bottom of the conveying frame, and a plurality of pressure sensor components two are symmetrically installed on the top of the right-angle plate component three. A frame component four is installed at the top input end of the pressure sensor component two, and a plurality of rotating rods are movably installed through the inner side of the frame component four. A plurality of motor components three are installed on one side of the frame component four, and the output end of the motor component three is connected to one end of the rotating rod. A conveyor belt two is installed on the outer side of the rotating rod, and the pressure sensor component two and the motor component three are respectively connected to the controller component electrical signal.
[0009] Preferably, a frame component 1 is installed on the front side of the plate body 1, a rotating wheel 1 is movably installed on the inner side of the frame component 1, a conveyor belt 1 is installed on the outer side of the rotating wheel 1, and multiple material blocking plate components 1 are installed on the outer side of the conveyor belt 1, a motor component 1 is installed on the front side of the frame component 1, the motor component 1 is electrically connected to the controller component, and the output end of the motor component 1 is connected to one end of the rotating wheel 1, a frame component 2 is installed on the front side of the frame body 1, a rotating wheel 2 is movably installed on the inner side of the frame component 2, and the outer side of the rotating wheel 2 contacts the inner wall of one end of the conveyor belt 1, a plate body 4 is installed on one side of the frame body 2, a hydraulic cylinder component 5 is installed on the front side of the plate body 4, and the hydraulic cylinder component 5 is electrically connected to the controller component, a piston rod is installed on the output end of the hydraulic cylinder component 5, a brush is installed on the outer side of the piston rod, and the brush is located on one side of the conveyor belt 1, a bolt 1 is installed on the top of the brush, and a guide hopper is installed on one side of the frame body component 2.
[0010] Preferably, a plate body three is installed on the top of the conveying frame, a hydraulic cylinder component two is installed on the back of the plate body three, and the hydraulic cylinder component two is electrically connected to the controller component by signals, a movable plate component one is installed on the output end of the hydraulic cylinder component two, an electric telescopic rod component one is installed on the top of the movable plate component one, and the electric telescopic rod component one is electrically connected to the controller component by signals, and a scraper rod is installed on the output end of the electric telescopic rod component one.
[0011] Preferably, a hydraulic cylinder component seven is symmetrically installed at the bottom of the frame component four, a block is installed at the output end of the hydraulic cylinder component seven, a rotating hopper is movably installed through the inner side of the block, plate bodies five are symmetrically installed on both sides of the frame component four, a hydraulic cylinder component eight is installed at the bottom of the plate body five, a moving rod body is installed at the output end of the hydraulic cylinder component eight, an electric telescopic rod component three is installed on one side of the moving rod body, a support rod is installed at the output end of the electric telescopic rod component three, and the hydraulic cylinder component seven, the hydraulic cylinder component eight and the electric telescopic rod component three are respectively connected to the controller component electrical signals.
[0012] Preferably, the weighing mechanism includes a pressure sensor component and a weighing plate, a plurality of pressure sensor components are symmetrically installed on the bottom inner wall of the conveying frame, and the pressure sensor component is electrically connected to the controller component, and a weighing plate is installed at the top input end of the pressure sensor component.
[0013] Preferably, hydraulic cylinder component 1 is symmetrically installed on both sides of the conveying frame, hydraulic cylinder component 1 is electrically connected to the controller component, a lifting rod 1 is installed on the output end of the hydraulic cylinder component 1, a material baffle plate component 2 is installed at the bottom of the lifting rod 1, and the material baffle plate component 2 is located on the inner side of the conveying frame, a hydraulic cylinder component 3 is installed on the back side of the conveying frame, hydraulic cylinder component 3 is electrically connected to the controller component, a push plate 1 is installed on the output end of the hydraulic cylinder component 3, and the push plate 1 is located on the inner side of the conveying frame, and a plurality of camera components are installed at the bottom of the conveying frame, and the camera components are electrically connected to the controller component.
[0014] Preferably, a right-angle plate component 2 is installed on the back of the conveying frame, a hydraulic cylinder component 4 is symmetrically installed on the back of the right-angle plate component 2, and the hydraulic cylinder component 4 is electrically connected to the controller component by signal, a moving plate 2 is installed on the output end of the hydraulic cylinder component 4, and the moving plate 2 is located in front of the right-angle plate component 2, a motor component 2 is symmetrically installed on the top of the moving plate 2, and the motor component 2 is electrically connected to the controller component by signal, a threaded rod is installed on the output end of the motor component 2, and one end of the threaded rod passes through the bottom of the moving plate 2, a lifting push plate 2 is installed on the outer side of the threaded rod, a guide plate is installed on the bottom of the moving plate 2, and the bottom of the guide plate passes through the top of the lifting push plate 2.
[0015] Preferably, a plurality of hydraulic cylinder components six are symmetrically installed at the bottom of the conveying frame, and the hydraulic cylinder component six is electrically connected to the controller component by signal, a movable plate three is installed at the output end of the hydraulic cylinder component six, an electric telescopic rod component two is installed on the top of the movable plate three, the electric telescopic rod component two is electrically connected to the controller component by signal, a frame component three is installed at the output end of the electric telescopic rod component two, and the frame component three is located below the movable plate three, a material baffle plate component three is installed on the inner side of the frame component three, a plurality of bolts two are installed through one side of the frame component three, and one end of the bolt two passes through an inner wall of one side of the frame component three.
[0016] Preferably, the method for using the continuous train loading equipment with material weighing and verification is as follows: S1, the material moves to the top of the conveyor frame through the conveyor belt, and then falls into the conveyor frame; S2, pressure sensor component 1 detects the weight of the material inside the conveyor frame. When the weight of the material inside the conveyor frame reaches the set value, the conveyor belt 1 stops working, the conveyor frame moves to the left above the train carriage, and then the push plate 1 pushes the material forward out of the conveyor frame, and the material then falls on the conveyor belt 2; S3, the pressure sensor component 2 weighs the material on the conveyor belt 2 again, and then the rotating hopper moves forward or backward, and then the support rod supports the rotating hopper backward or forward to keep it tilted, so that the rotating hopper can tilt the material conveyed forward by the conveyor belt 2 to the front train carriage or the adjacent rear train carriage; S4, the baffle plate component three moves down, and then the baffle plate component three moves close to the train carriage, and then the motor component two drives the lifting and pushing plate two to move down to the inside of the train carriage, and then the lifting and pushing plate two moves forward or backward to push the accumulated materials flat.
[0017] Preferably, the step S1 further includes the following steps: S11, the scraper rod moves downward, and then moves forward and backward to scrape the materials accumulated on the inner side of the conveying frame, and at the same time, the brush moves forward and backward to brush the materials adhered to the surface of the conveyor belt and drop them into the conveying frame.
[0018] Compared with the prior art, the present invention has the following beneficial effects: 1. The present invention weighs the material inside the conveyor frame by means of pressure sensor component one, and then pressure sensor component two weighs the material on conveyor belt two again, so that the material weighing structure is more accurate, and then the rotary hopper moves forward or backward, and then the support rod supports the rotary hopper backward or forward to keep it tilted, so that the rotary hopper can tilt the material conveyed forward by conveyor belt two to the front train car or the adjacent rear train car, thereby realizing rapid loading of the adjacent front and rear carriages of the train car, and the loading efficiency is higher.
[0019] 2. The present invention moves the conveying frame to the right below the conveyor belt 1, and then the material moves to the top of the conveying frame through the conveyor belt 1, and then falls into the conveying frame, and then the scraper rod moves down, and then the scraper rod moves forward and backward to flatten the material accumulated inside the conveying frame to prevent the material from being too high in the conveying frame and sliding out of the conveying frame. When the material inside the conveying frame falls into the train carriage, the motor component 2 then drives the lifting and pushing plate 2 to move down to the inside of the train carriage, and then the lifting and pushing plate 2 moves forward or backward to flatten the accumulated material to prevent the material from being too high in the train carriage and causing the material to slide out of the train carriage.
[0020] 3. In the present invention, when the lifting push plate 2 pushes the material inside the train carriage flat, the material baffle plate component 3 moves down, and then the material baffle plate component 3 moves close to the train carriage, thereby preventing the material from accidentally leaking from the edge of the train carriage when the lifting push plate 2 pushes the material inside the train carriage flat.
[0021] 4. When the conveyor belt 1 is conveying materials to the inside of the conveyor frame, the brush moves back and forth to brush the materials adhered to the surface of the conveyor belt 1 and drop them into the conveyor frame, thereby avoiding the situation where the materials continue to adhere to the conveyor belt 1 and making the conveyor belt 1 difficult to clean, and at the same time reducing the amount of materials on the conveyor belt 1 falling to the ground below the conveyor belt 1. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] Figure 1 A perspective view of the present invention; Figure 2 It is a structural schematic diagram of a frame of the present invention; Figure 3 It is a schematic diagram of the structure of the conveying frame of the present invention; Figure 4 It is a side sectional view of the conveying frame of the present invention; Figure 5 It is a structural schematic diagram of the second right-angle plate component of the present invention; Figure 6 It is a schematic diagram of the third structure of the movable plate of the present invention; Figure 7 It is a schematic diagram of the structure of the frame component three of the present invention; Figure 8 It is a schematic diagram of the structure of A of the present invention; Fig. 9 It is a schematic diagram of the fourth structure of the plate body of the present invention; Fig.10 It is a schematic diagram of the fourth structure of the plate body of the present invention; Fig.11 The figure is a flow chart of the method for using the present invention.
[0023] In the figure: 1. Frame one; 2. Plate one; 3. Plate two; 4. Controller component; 5. Frame component one; 6. Rotating wheel one; 7. Motor component one; 8. Conveyor belt one; 9. Baffle component one; 12. Connecting plate; 15. Conveyor frame; 16. Pressure sensor component one; 17. Weighing plate; 18. Hydraulic cylinder component one; 19. Lifting rod one; 20. Baffle component two; 21. Plate three; 22. Hydraulic cylinder component two; 23. Moving plate one; 24. Electric telescopic rod component one; 25. Scraping rod; 26. Hydraulic cylinder component three; 27. Pushing plate one; 28. Right-angle plate component two; 29. Hydraulic cylinder component four; 30. Moving plate two; 31. Motor component two; 32. Threaded rod; 33. Lifting and pushing plate two; 34. Guide plate; 37. Frame component two; 38. Rotating wheel two; 39. Plate four; 40. Hydraulic cylinder component five; 41. Piston rod; 42. Brush; 43. Bolt one; 44. Camera component; 45. Hydraulic cylinder component six; 46. Moving plate three; 47. Electric telescopic rod component two; 48. Frame component three; 49. Baffle component three; 50. Bolt two; 51. Feeding hopper; 52. Right-angle plate component three; 53. Pressure sensor component two; 54. Frame component four; 55. Rotating rod; 56. Motor component three; 57. Conveyor belt two; 58. Hydraulic cylinder component seven; 59. Block; 60. Rotating hopper; 61. Plate five; 62. Hydraulic cylinder component eight; 63. Moving rod body; 64. Electric telescopic rod component three; 65. Support rod. Detailed implementation manners
[0024] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0025] In the description of the present invention, it should be noted that the orientation or positional relationship indicated by the terms "upper", "lower", "inner", "outer", "front end", "rear end", "both ends", "one end", "the other end", etc. is based on the orientation or positional relationship shown in the accompanying drawings. It is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation of the present invention. In addition, the terms "first" and "second" are only used for descriptive purposes and cannot be understood as indicating or implying relative importance.
[0026] In the description of the present invention, it should be noted that, unless otherwise clearly specified and limited, the terms "installed", "provided with", "connected", etc. should be understood in a broad sense. For example, "connected" can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection, or it can be an indirect connection through an intermediate medium, or it can be the internal communication of two components. For ordinary technicians in this field, the specific meanings of the above terms in the present invention can be understood according to specific circumstances.
[0027] See also Figure 1 , Figure 2 , Figure 3 and Figure 4 , an embodiment provided by the present invention: a continuous train loading equipment with material weighing and verification; It includes a frame body 1, a plate body 2 and a conveying frame 15, wherein the plate body 2 is installed on the front of the frame body 1, the plate body 3 is installed on the back of the plate body 2, a controller component 4 is installed on one side of the plate body 3, a connecting plate 12 is symmetrically installed on the bottom of the frame body 1, a conveying frame 15 is installed on the bottom of the connecting plate 12, a weighing mechanism is arranged on the bottom inner wall of the conveying frame 15, the weighing mechanism includes a pressure sensor component 16 and a weighing plate 17, a plurality of pressure sensor components 16 are symmetrically installed on the bottom inner wall of the conveying frame 15, and the pressure sensor component 16 is connected with the controller component 4 by electrical signals, a weighing plate 17 is installed on the top input end of the pressure sensor component 16, the frame body 1 can provide an installation position for other components of the device, so that other components of the device have a position for installation, the plate body 2 can provide an installation position for the plate body 3 and the frame component 5, the plate The body 23 can provide an installation position for the controller component 4, and the controller component 4 can receive signals from the pressure sensor component 16, the pressure sensor component 2 53 and the camera component 44, and can control the motor component 1 7, the hydraulic cylinder component 1 18, the hydraulic cylinder component 2 22, the electric telescopic rod component 1 24, the hydraulic cylinder component 3 26, the hydraulic cylinder component 4 29, the motor component 2 31, the hydraulic cylinder component 5 40, the hydraulic cylinder component 6 45, the electric telescopic rod component 2 47, the motor component 3 56, the hydraulic cylinder component 7 58, the hydraulic cylinder component 8 62 and the electric telescopic rod component 3 64. The connecting plate 12 can provide an installation position for the conveying frame 15, and the conveying frame 15 can store materials and drive the materials to move left and right at the same time. The pressure sensor component 16 can detect the weight of the materials above the weighing plate 17, and the weighing plate 17 can carry materials.
[0028] See also Figure 1 , Figure 2 , Figure 3 and Figure 4 , an embodiment provided by the present invention: a continuous train loading equipment with material weighing and verification; It includes a plate body three 21, a plate body three 21 is installed on the top of the conveying frame 15, a hydraulic cylinder component two 22 is installed on the back of the plate body three 21, and the hydraulic cylinder component two 22 is electrically connected to the controller component 4, a moving plate component one 23 is installed on the output end of the hydraulic cylinder component two 22, an electric telescopic rod component one 24 is installed on the top of the moving plate component one 23, and the electric telescopic rod component one 24 is electrically connected to the controller component 4, a scraper rod 25 is installed on the output end of the electric telescopic rod component one 24, the plate body three 21 can provide an installation position for the hydraulic cylinder component two 22, the hydraulic cylinder component two 22 can convert hydraulic energy into kinetic energy, thereby driving the moving plate component one 23 to move back and forth, the moving plate component one 23 can drive the electric telescopic rod component one 24 and the scraper rod 25 to move back and forth by moving back and forth, the electric telescopic rod component one 24 can convert electrical energy into kinetic energy, thereby driving the scraper rod 25 to move back and forth, and the scraper rod 25 can scrape the materials accumulated inside the conveying frame 15 flat by moving back and forth.
[0029] See also Figure 1 , Figure 8 and Fig. 9 , an embodiment provided by the present invention: a continuous train loading equipment with material weighing and verification; The frame body 1 includes a frame body component 15, a frame body component 15 is installed on the front of the plate body 12, a rotating wheel 6 is installed on the inner side of the frame body component 15, a conveyor belt 18 is installed on the outer side of the rotating wheel 6, and a plurality of baffle plate components 19 are installed on the outer side of the conveyor belt 8. A motor component 7 is installed on the front of the frame body component 15, the motor component 7 is connected to the controller component 4 by electrical signals, and the output end of the motor component 7 is connected to one end of the rotating wheel 6. A frame body component 2 37 is installed on the front of the frame body 1, and a rotating wheel 6 is installed on the inner side of the frame body component 2 37. The frame body 2 is provided with a plate body 439 on one side of the frame body 2, and a hydraulic cylinder component 540 is installed on the front of the plate body 439, and the hydraulic cylinder component 540 is connected with the controller component 4 by electrical signals, and a piston rod 41 is installed on the output end of the hydraulic cylinder component 540, and a brush 42 is installed on the outer side of the piston rod 41, and the brush 42 is located on one side of the conveyor belt 8, and a bolt 43 is installed through the top of the brush 42, and a guide hopper 51 is installed on one side of the frame body 2. A mounting position can be provided for the rotating wheel 6, the rotating wheel 6 can drive the conveyor belt 8 to move by rotating, and the conveyor belt 8 can transport the materials upward by moving, the material blocking plate component 9 can prevent the materials on the conveyor belt 8 from sliding downward, the motor component 7 can convert electrical energy into kinetic energy, thereby driving the rotating wheel 6 to rotate, the frame component 2 37 can provide a mounting position for the rotating wheel 2 38, the rotating wheel 2 38 can provide a rotatable support position for one end of the conveyor belt 8, and the plate body 4 39 can provide a mounting position for the hydraulic cylinder component 5 40 The hydraulic cylinder component 40 can convert hydraulic energy into kinetic energy, thereby driving the piston rod 41 to move forward and backward. The piston rod 41 can drive the brush 42 to move forward and backward by moving forward and backward. The brush 42 can clean the adhered materials on the surface of the conveyor belt 8 by moving forward and backward, so that the adhered materials on the surface of the conveyor belt 8 fall into the conveying frame 15. The bolt 43 can squeeze the piston rod 41 by rotating, thereby ensuring the stability of the brush 42 on the outside of the piston rod 41. The guide hopper 51 can provide guidance for the materials on the conveyor belt 8 to enter the conveying frame 15.
[0030] See also Figure 1 , Figure 2 , Figure 3 and Figure 4 , an embodiment provided by the present invention: a continuous train loading equipment with material weighing and verification; The conveying frame 15 includes a hydraulic cylinder component 18, which is symmetrically mounted on both sides of the conveying frame 15. The hydraulic cylinder component 18 is electrically connected to the controller component 4. A lifting rod 19 is mounted on the output end of the hydraulic cylinder component 18. A baffle plate component 20 is mounted on the bottom of the lifting rod 19, and the baffle plate component 20 is located on the inner side of the conveying frame 15. A hydraulic cylinder component 3 26 is mounted on the back of the conveying frame 15. The hydraulic cylinder component 3 26 is electrically connected to the controller component 4. A push plate 27 is mounted on the output end of the hydraulic cylinder component 3 26, and the push plate 27 is located on the inner side of the conveying frame 15. A plurality of camera components 44 are mounted on the bottom of the conveying frame 15, and the camera components 44 are mounted on the bottom of the conveying frame 15. The head component 44 is connected to the controller component 4 by electrical signals. The hydraulic cylinder component 18 can convert hydraulic energy into kinetic energy, thereby driving the lifting rod 19 to move up and down. The lifting rod 19 can drive the baffle plate component 20 to move up and down by moving up and down. The baffle plate component 20 can block the material inside the conveying frame 15 by moving downward to prevent the material from sliding forward. The hydraulic cylinder component 3 26 can convert hydraulic energy into kinetic energy, thereby driving the push plate 1 27 to move forward and backward. The push plate 1 27 can push the material inside the conveying frame 15 forward by moving forward. The camera component 44 can record and shoot the interior of the train car below the conveying frame 15.
[0031] See also Figure 1 , Figure 3 , Figure 4 and Figure 5 , an embodiment provided by the present invention: a continuous train loading equipment with material weighing and verification; It includes a right-angle plate component 28, a right-angle plate component 28 is installed on the back of the conveying frame 15, a hydraulic cylinder component 4 29 is symmetrically installed on the back of the right-angle plate component 28, and the hydraulic cylinder component 4 29 is connected to the controller component 4 by electrical signals, a moving plate 2 30 is installed on the output end of the hydraulic cylinder component 4, and the moving plate 2 30 is located in front of the right-angle plate component 28, a motor component 2 31 is symmetrically installed on the top of the moving plate 2 30, and the motor component 2 31 is connected to the controller component 4 by electrical signals, a threaded rod 32 is installed on the output end of the motor component 2 31, and one end of the threaded rod 32 passes through the bottom of the moving plate 2 30, a lifting push plate 2 33 is installed on the outer side of the threaded rod 32, a guide plate 34 is installed on the bottom of the moving plate 2 30, and the bottom of the guide plate 34 passes through the top of the lifting push plate 2 33, the right-angle plate Component 2 28 can provide an installation position for hydraulic cylinder component 4 29. Hydraulic cylinder component 4 29 can convert hydraulic energy into kinetic energy, thereby driving movable plate 2 30 to move forward and backward. By moving forward and backward, movable plate 2 30 can drive motor component 2 31 and lifting push plate 2 33 to move forward and backward. Motor component 2 31 can convert electrical energy into kinetic energy, thereby driving threaded rod 32 to rotate. Threaded rod 32 can drive lifting push plate 2 33 to move up and down by rotating. Lifting push plate 2 33 enters the interior of the train compartment by moving downward, and then can flatten the accumulated materials inside the train compartment by moving forward and backward to prevent the materials from piling up too high. Guide plate 34 can provide guidance for lifting push plate 2 33, and at the same time can provide support for lifting push plate 2 33 to prevent lifting push plate 2 33 from bending forward or backward when pushing materials.
[0032] See also Figure 1 , Figure 2 , Figure 3 , Figure 6 and Figure 7 , an embodiment provided by the present invention: a continuous train loading equipment with material weighing and verification; The conveying frame 15 comprises a hydraulic cylinder component 6 45, a plurality of hydraulic cylinder components 6 45 are symmetrically installed at the bottom of the conveying frame 15, and the hydraulic cylinder component 6 45 is connected to the controller component 4 by electrical signals, a moving plate 3 46 is installed at the output end of the hydraulic cylinder component 6 45, an electric telescopic rod component 2 47 is installed on the top of the moving plate 3 46, the electric telescopic rod component 2 47 is connected to the controller component 4 by electrical signals, a frame component 3 48 is installed at the output end of the electric telescopic rod component 2 47, and the frame component 3 48 is located below the moving plate 3 46, a baffle plate component 3 49 is installed on the inner side of the frame component 3 48, and a plurality of bolts 2 50 are installed through one side of the frame component 3 48, and the bolts 2 50 are One end penetrates the inner wall of one side of the frame component three 48, and the hydraulic cylinder component six 45 can convert the hydraulic energy into kinetic energy, thereby driving the movable plate component three 46 to move left and right. The movable plate component three 46 can drive the baffle plate component three 49 to move left and right by moving left and right. The electric telescopic rod component two 47 can convert the hydraulic energy into kinetic energy, thereby driving the frame component three 48 to move left and right. The frame component three 48 can drive the baffle plate component three 49 to move left and right by moving left and right. The baffle plate component three 49 can prevent the material inside the train car from piling up too high and sliding from the inside of the train car to the outside by approaching the train car. The bolt two 50 can fix the baffle plate component three 49.
[0033] See also Figure 1 , Figure 2 , Figure 3 , Figure 4 and Fig.10 , an embodiment provided by the present invention: a continuous train loading equipment with material weighing and verification; It includes a right-angle plate component 3 52, a right-angle plate component 3 52 is installed at the bottom of the conveying frame 15, a plurality of pressure sensor components 2 53 are symmetrically installed on the top of the right-angle plate component 3 52, a frame component 4 54 is installed at the top input end of the pressure sensor component 2 53, a plurality of rotating rods 55 are movably installed through the inner side of the frame component 4 54, a plurality of motor components 3 56 are installed on one side of the frame component 4 54, the output end of the motor component 3 56 is connected to one end of the rotating rod 55, a conveyor belt 2 57 is installed on the outer side of the rotating rod 55, and the pressure sensor component 2 53 and the motor component 3 56 are respectively connected to the controller component 4 by electrical signals, a hydraulic cylinder component 7 58 is symmetrically installed at the bottom of the frame component 4 54, and a plurality of rotating rods 55 are installed at the output end of the hydraulic cylinder component 7 58 The block 59 has a rotating hopper 60 movably installed on the inner side of the block 59, and the plate 5 61 is symmetrically installed on both sides of the frame part 4 54. The bottom of the plate 5 61 is installed with a hydraulic cylinder part 8 62, and the output end of the hydraulic cylinder part 8 62 is installed with a moving rod body 63, and one side of the moving rod body 63 is installed with an electric telescopic rod part 3 64, and the output end of the electric telescopic rod part 3 64 is installed with a support rod 65, and the hydraulic cylinder part 7 58, the hydraulic cylinder part 8 62 and the electric telescopic rod part 3 64 are respectively connected with the controller part 4 by electrical signals, and the right-angle plate part 3 52 can provide an installation position for the pressure sensor part 2 53, and the pressure sensor part 2 53 can measure the weight of the material on the conveyor belt 2 57, and the frame part 4 54 can be a rotating rod 55. Provide an installation position, the rotating rod 55 can drive the conveyor belt 2 57 to move by rotating, the motor component 3 56 can convert electrical energy into kinetic energy, thereby driving the rotating rod 55 to rotate, the conveyor belt 2 57 can drive the material to move forward by moving forward, the hydraulic cylinder component 7 58 can convert hydraulic energy into kinetic energy, thereby driving the block 59 to move forward and backward, and the block 59 can drive the rotating hopper 60 to move forward and backward by moving forward and backward. When the rotating hopper 60 moves forward, it is convenient to guide the material on the conveyor belt 2 57 to the rear of the rotating hopper 60, and then the material can be guided to the next train car. When the rotating hopper 60 moves backward, it is convenient to guide the material on the conveyor belt 2 57 to the front of the rotating hopper 60, and then the material can be guided to the adjacent previous car. The plate body five 61 can provide an installation position for the hydraulic cylinder component eight 62, and the hydraulic cylinder component eight 62 can convert hydraulic energy into kinetic energy, thereby driving the movable rod body 63 and the support rod 65 to move forward and backward. The movable rod body 63 can drive the support rod 65 to move forward and backward by moving forward and backward. The electric telescopic rod component three 64 can convert electrical energy into kinetic energy, thereby driving the support rod 65 to move left and right. The support rod 65 can be easily moved to the front or rear of the rotating hopper 60 by moving left and right, so that the support rod 65 can then push the rotating hopper 60 to tilt forward or backward by moving forward or backward, so that the rotating hopper 60 can easily guide the material on the conveyor belt two 57 to the previous train car or the adjacent rear train car.
[0034] The method of using the continuous train loading equipment with material weighing and verification is as follows: S1, the material moves to the top of the conveying frame 15 through the conveyor belt 8, and then falls into the conveying frame 15; S2, the pressure sensor component 16 detects the weight of the material inside the conveying frame 15. When the weight of the material inside the conveying frame 15 reaches the set value, the conveyor belt 8 stops working, the conveying frame 15 moves to the left above the train carriage, and then the push plate 27 pushes the material forward from the conveying frame 15, and the material then falls into the inside of the train carriage; S3, the pressure sensor component 2 53 weighs the material on the conveyor belt 2 57 again, and then the rotating hopper 60 moves forward or backward, and then the support rod 65 supports the rotating hopper 60 backward or forward to keep it tilted, so that the rotating hopper 60 can tilt the material conveyed forward by the conveyor belt 2 57 to the front train carriage or the adjacent rear train carriage; S4, the material baffle plate component 3 49 moves down, and then the material baffle plate component 3 49 moves close to the train compartment, and then the motor component 2 31 drives the lifting push plate 2 33 to move down to the inside of the train compartment, and then the lifting push plate 2 33 moves forward or backward to flatten the accumulated materials.
[0035] S1 also includes the following steps: S11, the scraper rod 25 moves downward, and then the scraper rod 25 moves forward and backward to scrape the materials accumulated inside the conveying frame 15 flat, and at the same time the brush 42 moves forward and backward to brush the materials adhered to the surface of the conveyor belt 8 off and drop them into the interior of the conveying frame 15.
[0036] Working principle: Before using the continuous train loading equipment with material scale recheck, you should first check whether there are any problems that affect the use of the continuous train loading equipment with material scale recheck. The material moves to the top of the conveying frame 15 through the conveyor belt 8, and then falls into the inside of the conveying frame 15. The scraper rod 25 moves down, and then the scraper rod 25 moves back and forth to scrape the material accumulated on the inside of the conveying frame 15. At the same time, the brush 42 moves back and forth to brush the material adhered to the surface of the conveyor belt 8 and drop it into the conveying frame 15. The pressure sensor component 16 detects the weight of the material inside the conveying frame 15. After the weight of the material inside the conveying frame 15 reaches the set value, the conveyor belt 8 stops working, the conveying frame 15 moves to the left above the train car, and then the push plate 1 27 pushes the material forward out of the conveying frame 15, and the material then falls into the interior of the train car. The pressure sensor component 2 53 weighs the material on the conveyor belt 2 57 again, and then the rotating hopper 60 moves forward or backward, and then the support rod 65 supports the rotating hopper 60 backward or forward to keep it tilted, so that the rotating hopper 60 can tilt the material conveyed forward by the conveyor belt 2 57 to the interior of the front train car or the adjacent rear train car, the baffle plate component 3 49 moves down, and then the baffle plate component 3 49 approaches and presses against the train car, and then the motor component 2 31 drives the lifting push plate 2 33 to move down to the interior of the train car, and then the lifting push plate 2 33 moves forward or backward to flatten the accumulated materials.
[0037] It is obvious to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above, and that the present invention can be implemented in other specific forms without departing from the spirit or essential features of the present invention. Therefore, from all points of view, the embodiments should be regarded as exemplary and non-restrictive, and the scope of the present invention is defined by the appended claims rather than the above description, and it is intended that all changes falling within the meaning and scope of the equivalent elements of the claims are included in the present invention, and any reference signs in the claims should not be regarded as limiting the rights involved.
Claims
1. A continuous train loading equipment with material weighing and verification, characterized in that: It comprises a frame body 1 (1), a plate body 1 (2) and a conveying frame (15), wherein the plate body 1 (2) is mounted on the front of the frame body 1 (1), the plate body 2 (3) is mounted on the back of the plate body 1 (2), a controller component (4) is mounted on one side of the plate body 2 (3), a connecting plate (12) is symmetrically mounted on the bottom of the frame body 1 (1), the conveying frame (15) is mounted on the bottom of the connecting plate (12), and a weighing mechanism is arranged on the inner wall of the bottom of the conveying frame (15); A right angle plate component three (52) is installed at the bottom of the conveying frame (15), a plurality of pressure sensor components two (53) are symmetrically installed on the top of the right angle plate component three (52), a frame component four (54) is installed at the top input end of the pressure sensor component two (53), a plurality of rotating rods (55) are movably installed through the inner side of the frame component four (54), a plurality of motor components three (56) are installed on one side of the frame component four (54), an output end of the motor component three (56) is connected to one end of the rotating rod (55), a conveying belt two (57) is installed on the outer side of the rotating rod (55), and the pressure sensor component two (53) and the motor component three (56) are respectively connected to the controller component (4) for electrical signals.
2. The continuous train loading equipment with material weighing and verification according to claim 1 is characterized by: The plate body 1 (2) is provided with a frame body component 1 (5) on the front side, a rotating wheel 1 (6) is movably installed on the inner side of the frame body component 1 (5), a conveyor belt 1 (8) is installed on the outer side of the rotating wheel 1 (6), and a plurality of baffle plate components 1 (9) are installed on the outer side of the conveyor belt 1 (8), a motor component 1 (7) is installed on the front side of the frame body component 1 (5), the motor component 1 (7) is connected to the controller component (4) by electrical signals, and the output end of the motor component 1 (7) is connected to one end of the rotating wheel 1 (6), a frame body component 2 (37) is installed on the front side of the frame body 1 (1), a rotating wheel 2 (37) is movably installed on the inner side of the frame body component 2 (37), and a conveyor belt 1 (8) is installed on the outer side of the rotating wheel 1 (6). 38), and the outer side of the rotating wheel 2 (38) contacts the inner wall of one end of the conveyor belt 1 (8), a plate body 4 (39) is installed on one side of the frame body part 2 (37), a hydraulic cylinder part 5 (40) is installed on the front of the plate body 4 (39), and the hydraulic cylinder part 5 (40) is connected to the controller part (4) by electrical signals, a piston rod (41) is installed on the output end of the hydraulic cylinder part 5 (40), a brush (42) is installed on the outer side of the piston rod (41), and the brush (42) is located on one side of the conveyor belt 1 (8), and a bolt 1 (43) is installed through the top of the brush (42), and a guide hopper (51) is installed on one side of the frame body part 2 (37).
3. The continuous train loading equipment with material weighing and verification according to claim 1 is characterized by: A plate body three (21) is installed on the top of the conveying frame (15), a hydraulic cylinder component two (22) is installed on the back of the plate body three (21), and the hydraulic cylinder component two (22) is connected to the controller component (4) by electrical signals, a moving plate component one (23) is installed on the output end of the hydraulic cylinder component two (22), an electric telescopic rod component one (24) is installed on the top of the moving plate component one (23), and the electric telescopic rod component one (24) is connected to the controller component (4) by electrical signals, and a scraper rod (25) is installed on the output end of the electric telescopic rod component one (24).
4. The continuous train loading equipment with material weighing and verification according to claim 1 is characterized by: A hydraulic cylinder component seven (58) is symmetrically mounted on the bottom of the frame component four (54); a block body (59) is mounted on the output end of the hydraulic cylinder component seven (58); a rotating hopper (60) is movably mounted on the inner side of the block body (59); a plate body five (61) is symmetrically mounted on both sides of the frame component four (54); a hydraulic cylinder component eight (62) is mounted on the bottom of the plate body five (61); a moving rod body (63) is mounted on the output end of the hydraulic cylinder component eight (62); an electric telescopic rod component three (64) is mounted on one side of the moving rod body (63); a support rod (65) is mounted on the output end of the electric telescopic rod component three (64); and the hydraulic cylinder component seven (58), the hydraulic cylinder component eight (62) and the electric telescopic rod component three (64) are respectively connected to the controller component (4) by electrical signals.
5. The continuous train loading equipment with material weighing and verification according to claim 1 is characterized by: The weighing mechanism comprises a pressure sensor component (16) and a weighing plate (17); a plurality of pressure sensor components (16) are symmetrically mounted on the bottom inner wall of the conveying frame (15); the pressure sensor component (16) is electrically connected to the controller component (4); and the weighing plate (17) is mounted on the top input end of the pressure sensor component (16).
6. The continuous train loading equipment with material weighing and verification according to claim 1 is characterized by: The conveying frame (15) is symmetrically provided with a hydraulic cylinder component (18) on both sides thereof, the hydraulic cylinder component (18) being electrically connected to the controller component (4), a lifting rod (19) being provided at the output end thereof, a material blocking plate component (20) being provided at the bottom of the lifting rod (19), and the material blocking plate component (20) being located at the inner side of the conveying frame (15), a hydraulic cylinder component (26) being provided at the back side thereof, the hydraulic cylinder component (26) being electrically connected to the controller component (4), a push plate (27) being provided at the output end thereof, and the push plate (27) being located at the inner side of the conveying frame (15), and a plurality of camera components (44) being provided at the bottom of the conveying frame (15), and the camera components (44) being electrically connected to the controller component (4).
7. The continuous train loading equipment with material weighing and verification according to claim 1 is characterized by: A right angle plate component 2 (28) is mounted on the back of the conveying frame (15), a hydraulic cylinder component 4 (29) is symmetrically mounted on the back of the right angle plate component 2 (28), and the hydraulic cylinder component 4 (29) is electrically connected to the controller component (4), a moving plate component 2 (30) is mounted on the output end of the hydraulic cylinder component 4 (29), and the moving plate component 2 (30) is located in front of the right angle plate component 2 (28), a motor component 2 (31) is symmetrically mounted on the top of the moving plate component 2 (30), and the motor component 2 (31) is electrically connected to the controller component (4), a threaded rod (32) is mounted on the output end of the motor component 2 (31), and one end of the threaded rod (32) passes through the bottom of the moving plate component 2 (30), a lifting push plate 2 (33) is mounted on the outer side of the threaded rod (32), a guide plate (34) is mounted on the bottom of the moving plate component 2 (30), and the bottom of the guide plate (34) passes through the top of the lifting push plate 2 (33).
8. The continuous train loading equipment with material weighing and verification according to claim 1 is characterized by: A plurality of hydraulic cylinder components six (45) are symmetrically mounted at the bottom of the conveying frame (15), and the hydraulic cylinder component six (45) is electrically connected to the controller component (4); a movable plate component three (46) is mounted at the output end of the hydraulic cylinder component six (45); an electric telescopic rod component two (47) is mounted on the top of the movable plate component three (46); the electric telescopic rod component two (47) is electrically connected to the controller component (4); a frame component three (48) is mounted at the output end of the electric telescopic rod component two (47), and the frame component three (48) is located below the movable plate component three (46); a material blocking plate component three (49) is mounted on the inner side of the frame component three (48); a plurality of bolts two (50) are mounted through one side of the frame component three (48), and one end of the bolt two (50) penetrates the inner wall of one side of the frame component three (48).
9. A method for using a continuous train loading equipment with material weighing and verification according to any one of claims 1 to 8, characterized in that: The method of using the continuous train loading equipment with material weighing and verification is as follows: S1, the material moves to the top of the conveying frame (15) via the conveyor belt 1 (8), and then falls into the conveying frame (15); S2, the pressure sensor component 1 (16) detects the weight of the material inside the conveying frame (15). When the weight of the material inside the conveying frame (15) reaches the set value, the conveyor belt 1 (8) stops working, the conveying frame (15) moves to the left above the train carriage, and then the push plate 1 (27) pushes the material forward out of the conveying frame (15), and the material then falls onto the conveyor belt 2 (57); S3, the pressure sensor component 2 (53) weighs the material on the conveyor belt 2 (57) again, and then the rotating hopper (60) moves forward or backward, and then the support rod (65) supports the rotating hopper (60) backward or forward to keep it tilted, so that the rotating hopper (60) can tilt the material conveyed forward by the conveyor belt 2 (57) to the front train carriage or the adjacent rear train carriage; S4, the material blocking plate component three (49) moves downward, and then the material blocking plate component three (49) moves close to the train carriage, and then the motor component two (31) drives the lifting and pushing plate two (33) to move downward to the inside of the train carriage, and then the lifting and pushing plate two (33) moves forward or backward to push the accumulated materials flat.
10. The method for using the continuous train loading equipment with material weighing and verification according to claim 9, characterized in that: The S1 also includes the following steps: S11, the scraper rod (25) moves downward, and then the scraper rod (25) moves forward and backward to scrape the material accumulated inside the conveying frame (15), and at the same time, the brush (42) moves forward and backward to brush the material adhered to the surface of the conveyor belt (8) and drop it into the conveying frame (15).
Citation Information
Patent Citations
Easy-open cover
JP1988000053A
Belt conveyer conveying equipment
JP2016175726A
belt conveyor equipment
JP5963183B1
Belt conveyor equipment
US8708138B2
Automatic train clamping system
CN116281258A