Bridge type single-arm material taking machine

By using a combination of walking trolley and multi-stage telescopic cylinder scraper in the bridge single-arm feeder, the existing bridge double-arm feeder blind spots and high cost problems are solved, and efficient material collection in the entire area of ​​the material pool is achieved.

CN120057608AActive Publication Date: 2025-05-30ZIBO JIEDA MASCH CO LTD
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Patent Information

Application Number
CN202510554502.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-29
Publication Date
2025-05-30
Estimated Expiration
2045-04-29

AI Technical Summary

Technical Problem

The existing bridge-type double-arm feeder has problems such as blind spots in material collection, large equipment weight, high cost and large maintenance workload.

Method used

The bridge-type single-arm feeder is adopted, and the walking car moves on the upper part of the bridge-type driving, so that the single-arm feeder mechanism can collect the particulate materials in the material pool. Combined with the scraper plate of the multi-stage telescopic cylinder, the material in the area where the single-arm feeder mechanism cannot be retrieved to the material retrieval area, so as to realize the material withdrawal of the entire area in the material pool.

Benefits of technology

It reduces the blind spots of material collection, reduces equipment costs and subsequent maintenance workloads, and improves material collection efficiency and equipment use flexibility.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of material pool material taking equipment, in particular to a bridge type single-arm material taking machine. The structural layout is simpler, particle materials in the material pool can be taken in the whole area through the single material taking arm, material taking dead angles are further reduced, the equipment cost is effectively saved, and the follow-up overhaul and maintenance workload is reduced; comprising a material pool, a bridge type traveling crane movably installed at the top of the material pool, a traveling trolley movably installed on the bridge type traveling crane, a single-arm material taking mechanism and a material scraping mechanism, the single-arm material taking mechanism and the material scraping mechanism are both installed on the traveling trolley, the material taking end of the single-arm material taking mechanism extends into the material pool, and the discharging end of the single-arm material taking mechanism is located on the upper portion of the traveling trolley. The scraping mechanism comprises two multi-stage telescopic cylinders and scraping plates mounted at the output ends of the multi-stage telescopic cylinders; the single-arm material taking mechanism comprises a first conveyor and a material taking device installed at the feeding end of the first conveyor, and the material taking device comprises a material shoveling assembly and an adjustable material raking assembly.
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Description

Technical Field

[0001] The present invention relates to the technical field of material pool reclaiming equipment, and particularly to a bridge-type single-arm reclaiming machine. Background Art

[0002] As is well known, a large amount of storage of granular materials such as grain or ore mostly adopts a material pool, and when the granular materials need to be discharged from the bin, it is completed by a reclaiming machine.

[0003] For example, the Chinese utility model patent CN218667699U discloses a bridge-type double-arm reclaiming machine. It includes a main frame, which is erected above the material pool and reciprocates along the material pool. A traveling vehicle is arranged on the surface of the main frame, and the moving direction of the traveling vehicle is perpendicular to the moving direction of the main frame. A reclaiming boom is arranged on the traveling vehicle, and the feeding end of the reclaiming boom extends from the traveling vehicle into the material pool. At least one reclaiming boom is arranged on each side of the traveling vehicle in the moving direction. It eliminates the reclaiming dead angle in the material pool and improves the reclaiming efficiency.

[0004] However, when using two reclaiming booms with different orientations for reclaiming, although the reclaiming dead angle can be reduced to a certain extent, due to the occupation of the reclaiming booms themselves, there are still some reclaiming dead angles in the material pool (please refer to Figure 13 ); the cost of the reclaiming boom is high and the structure is complex. Using two reclaiming booms not only increases the self-weight of the equipment and the upfront investment cost, but also doubles the subsequent maintenance workload, and there are certain limitations in use. Summary of the Invention

[0005] Aiming at the deficiencies of the prior art, the present invention provides a bridge-type single-arm reclaiming machine with a simpler structural layout. By using a single reclaiming arm, it can realize the full-area reclaiming of granular materials in the material pool, further reduce the reclaiming dead angle, effectively save the equipment cost and reduce the subsequent maintenance workload.

[0006] To achieve the above object, the present invention provides the following technical solution: A bridge-type single-arm reclaiming machine includes a material pool, a bridge-type traveling crane movably installed on the top of the material pool, a traveling trolley movably installed on the bridge-type traveling crane, a single-arm reclaiming mechanism and a scraping mechanism. The single-arm reclaiming mechanism and the scraping mechanism are both installed on the traveling trolley. The reclaiming end of the single-arm reclaiming mechanism extends into the material pool, and the discharging end of the single-arm reclaiming mechanism is located above the traveling trolley. The scraping mechanism includes two multi-stage telescopic cylinders and a scraping plate installed at the output end of the multi-stage telescopic cylinder. Further, the moving tracks of the bridge-type traveling crane and the traveling trolley are perpendicular to each other; both the bridge-type traveling crane and the traveling trolley are equipped with their own traveling drive components; the scraping plate is flush with the end face of the traveling trolley away from the single-arm reclaiming mechanism to ensure that the scraping plate can be in close contact with the inner wall of an adjacent parallel material pool.

[0007] Preferably, the single-arm material taking mechanism includes a first conveyor and a material taker installed at the feeding end of the first conveyor. The material taker includes a material shoveling assembly and an adjustable material scraping assembly. The material shoveling assembly includes a shovel frame fixedly connected to the first conveyor and a shovel plate installed on the shovel frame. There are edge guards extending towards the shovel plate on both sides of the first conveyor; the adjustable material scraping assembly includes a frame body hingedly installed on the first conveyor, a first driving cylinder, an elastic material scraping member hingedly installed on the frame body, and a second driving cylinder. The first driving cylinder provides power for the rotation of the frame body, and the second driving cylinder provides power for the rotation of the elastic material scraping member.

[0008] Preferably, the elastic material scraping member includes a U-shaped frame hingedly installed on the frame body, a blocking scraping plate slidably installed on the U-shaped frame, and an elastic support member. The blocking scraping plate is elastically connected to the U-shaped frame through the elastic support member. Further, the first conveyor is a belt conveyor.

[0009] Furthermore, the belt conveyor can be a patterned belt conveyor, a deep trough belt conveyor, a corrugated sidewall belt conveyor, a pressure belt conveyor, etc., and the corresponding belt conveyor can be selected according to the properties of the transported materials.

[0010] The shovel plate is arranged parallel to the feeding direction of the first conveyor. One end of the shovel plate close to the first conveyor is tangent to the upper part of the conveyor belt on the first conveyor, and the other end of the shovel plate extends away from the first conveyor.

[0011] One end of the first driving cylinder is hinged to the first conveyor, and the other end of the first driving cylinder is hinged to the frame body; one end of the second driving cylinder is hinged to the frame body, and the other end of the second driving cylinder is hinged to the U-shaped frame; there is a chute on the U-shaped frame, and the blocking scraping plate is slidably installed in the chute.

[0012] The elastic support member is preferably a guide rod and a spring.

[0013] The guide rod is fixedly installed on the blocking scraping plate. The spring is sleeved on the guide rod. The guide rod is slidably installed on the U-shaped frame. One end of the spring abuts against the U-shaped frame, and the other end of the spring abuts against the blocking scraping plate; the elastic support member can also be a spring alone or other elastic members with equivalent elastic effects; when taking materials from the material pool, a feeding channel is enclosed among the shovel plate, the edge guard, and the blocking scraping plate. By adjusting the elongation of the output end of the first driving cylinder, the angle of the frame body is adjusted, so as to adjust the included angle and the distance between the blocking scraping plate and the shovel plate, and adaptively adjust the size of the feeding channel.

[0014] Preferably, the single-arm material fetching mechanism further includes two third driving cylinders installed on the shovel frame. The shovel plate includes two plate bodies slidably installed on the shovel frame, and the two third driving cylinders respectively provide power for the sliding of the two plate bodies. Further, a slide rail is provided on the shovel frame, the plate bodies are slidably installed on the slide rail, the third driving cylinders are symmetrically installed on both sides of the shovel plate, and the output ends of the third driving cylinders are fixedly connected to the plate bodies; the two third driving cylinders can drive the two plate bodies to synchronously move away from the center of the shovel plate.

[0015] Preferably, the single-arm material fetching mechanism further includes a rotating frame hingedly installed on the walking trolley and a fourth driving cylinder that provides power for the rotation of the rotating frame. The fourth driving cylinder is hingedly installed on the walking trolley, the output end of the fourth driving cylinder is hinged to the rotating frame, and the first conveyor is installed on the rotating frame.

[0016] Preferably, the first conveyor is slidably installed on the rotating frame up and down, and a lifting driver for providing power for the up and down sliding of the first conveyor is installed on the rotating frame. Further, the lifting driver is preferably a braking stepping motor, a gear and a rack. The rack is fixedly installed below the first conveyor, the braking stepping motor is fixedly installed on the rotating frame, the gear is fixedly installed at the output end of the braking stepping motor, and the gear meshes with the rack; the lifting driver can also adopt other equivalent components such as a telescopic cylinder that can drive the first conveyor to move up and down along the rotating frame; a clamping wheel is installed on the first conveyor, and the clamping wheel is slidably installed on the rotating frame up and down.

[0017] Preferably, it further includes a second conveyor installed on the bridge crane. The second conveyor is arranged parallel to the bridge crane. A guide hopper is installed at the discharge end of the first conveyor, and the discharge end of the guide hopper is located above the second conveyor. The discharge end of the second conveyor extends outside the material pool. Further, the second conveyor is perpendicular to the traveling direction of the bridge crane; the second conveyor adopts a belt conveyor. Further still, the belt conveyor can adopt a pattern belt conveyor, a deep groove belt conveyor, a corrugated side belt conveyor, a pressure belt conveyor, etc.

[0018] Preferably, a scraper and a brush that contact the bottom of the conveyor belt on the first conveyor are installed on the guide hopper.

[0019] Preferably, a first track extending outward from the material pool is provided at the top of the material pool. The bridge crane is movably installed on the first track. A second track is provided at the top of the bridge crane. The walking trolley is movably installed on the second track. The first track and the second track are perpendicularly arranged, and the bottom of the bridge crane is higher than the top of the material pool.

[0020] Preferably, cutting edges are provided on both the scraping plate and the baffle plate.

[0021] Beneficial effects Compared with the prior art, the present invention provides a bridge-type single-arm reclaimer, which has the following beneficial effects: the bridge-type single-arm reclaimer moves the walking trolley on the upper part of the bridge-type crane, so that the single-arm reclaiming mechanism reclaims the granular materials in the bunker. At the same time, the output end of the multi-stage telescopic cylinder extends, and the scraping plate is inserted into the granular materials in the bunker. During the movement of the walking trolley, the scraping plate is driven to move synchronously. The scraping plate scrapes the materials in the area that the single-arm reclaiming mechanism cannot reclaim to the reclaiming area that the single-arm reclaiming mechanism can reach. And during the transverse movement of the bridge-type crane on the top of the bunker, the single-arm reclaiming mechanism can be driven to move synchronously. The single-arm reclaiming mechanism can approach the inner wall of the bunker perpendicular to the traveling direction of the bridge-type crane. The single-arm reclaiming mechanism can be used to realize the full-area reclaiming of the granular materials in the bunker, further reducing the reclaiming dead angle; the scraping mechanism is simpler in structure than the reclaiming arm, effectively saving the equipment cost and reducing the subsequent maintenance workload. BRIEF DESCRIPTION OF THE DRAWINGS

[0022] Figure 1 is the three-dimensional structure schematic diagram of the present invention.

[0023] Figure 2 is the top-plan structure schematic diagram of the present invention.

[0024] Figure 3 is the Figure 2 cross-sectional structure schematic diagram at A-A in the present invention.

[0025] Figure 4 is the three-dimensional structure schematic diagram at the scraping mechanism and the single-arm reclaiming mechanism of the present invention.

[0026] Figure 5 is the bottom-plan structure schematic diagram at the scraping mechanism and the single-arm reclaiming mechanism of the present invention.

[0027] Figure 6 is the Figure 1 local enlarged structure schematic diagram at B in the present invention.

[0028] Figure 7 is the Figure 1 local enlarged structure schematic diagram at C in the present invention.

[0029] Figure 8 is the Figure 2 local enlarged structure schematic diagram at D in the present invention.

[0030] Figure 9 is the Figure 3 local enlarged structure schematic diagram at E in the present invention.

[0031] Figure 10 is the Figure 3 local enlarged structure schematic diagram at F in the present invention.

[0032] Figure 11 is of the present invention Figure 3 Partial enlarged structural schematic diagram at position G in

[0033] Figure 12 is of the present invention Figure 4 Partial enlarged structural schematic diagram at position H in

[0034] Figure 13 is the top - view plane structural schematic diagram of a prior - art bridge - type double - arm reclaimer

[0035] Figure 14 is the front - view structural schematic diagram of a prior - art bridge - type double - arm reclaimer

[0036] Reference signs in the drawings: 1, material pool; 2, bridge crane; 3, traveling trolley; 4, multi - stage telescopic cylinder; 5, scraping plate; 6, first conveyor; 7, shovel frame; 8, retaining edge; 9, frame body; 10, first driving cylinder; 11, second driving cylinder; 12, U - shaped frame; 13, retaining scraper; 14, elastic support; 15, third driving cylinder; 16, plate body; 17, rotating frame; 18, fourth driving cylinder; 19, lifting driver; 20, second conveyor; 21, feeding hopper; 22, scraper; 23, brush; 24, first track; 25, second track; 26, blade part; 27, bridge - type double - arm reclaimer; 28, reclaiming boom; 29, reclaimable area of single - arm reclaiming mechanism; 30, non - reclaimable area of single - arm reclaiming mechanism; 31, reclaiming dead angle Detailed implementation manners

[0037] In order to enable those skilled in the art to better understand the solution of the present invention, the technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to 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 of 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

[0038] It should be noted that, without conflict, the embodiments and the features and technical solutions in the embodiments of the present invention can be combined with each other

[0039] It should be noted that similar reference numerals and letters denote similar items in the following drawings. Therefore, once an item is defined in one drawing, it does not need to be further defined and explained in subsequent drawings

[0040] Embodiment 1 Please refer to Figures 1-6, a bridge-type single-arm reclaimer, which includes a material pool 1, a bridge crane 2 movably installed on the top of the material pool 1, a traveling trolley 3 movably installed on the bridge crane 2, a single-arm reclaiming mechanism and a scraping mechanism. The single-arm reclaiming mechanism and the scraping mechanism are both installed on the traveling trolley 3. The reclaiming end of the single-arm reclaiming mechanism extends into the material pool 1, and the discharging end of the single-arm reclaiming mechanism is located above the traveling trolley 3. The scraping mechanism includes two multi-stage telescopic cylinders 4 and a scraping plate 5 installed at the output end of the multi-stage telescopic cylinder 4. Further, the moving tracks of the bridge crane 2 and the traveling trolley 3 are perpendicular to each other; both the bridge crane 2 and the traveling trolley 3 are equipped with their own traveling drive components; the scraping plate 5 is flush with the end face of the traveling trolley 3 away from the single-arm reclaiming mechanism to ensure that the scraping plate 5 can be in close contact with the inner wall of an adjacent parallel material pool 1.

[0041] Specifically, please refer to Figures 3-5 and Figures 7-9 , the single-arm reclaiming mechanism includes a first conveyor 6 and a reclaimer installed at the feeding end of the first conveyor 6. The reclaimer includes a material shoveling assembly and an adjustable material raking assembly. The material shoveling assembly includes a shovel frame 7 fixedly connected to the first conveyor 6 and a shovel plate installed on the shovel frame 7. There are retaining edges 8 extending towards the shovel plate on both sides of the first conveyor 6; the adjustable material raking assembly includes a frame body 9 hingedly installed on the first conveyor 6, a first driving cylinder 10, an elastic material raking member hingedly installed on the frame body 9, and a second driving cylinder 11. The first driving cylinder 10 provides power for the rotation of the frame body 9, and the second driving cylinder 11 provides power for the rotation of the elastic material raking member. The elastic material raking member includes a U-shaped frame 12 hingedly installed on the frame body 9, a retaining raking plate 13 slidably installed on the U-shaped frame 12, and an elastic support member 14. The retaining raking plate 13 is elastically connected to the U-shaped frame 12 through the elastic support member 14.

[0042] Further, the first conveyor 6 is a belt conveyor. More specifically, the belt conveyor can be a patterned belt conveyor, a deep trough belt conveyor, a corrugated side belt conveyor, a pressure belt conveyor, etc., and the corresponding belt conveyor can be selected according to the properties of the transported materials; the shovel plate is arranged parallel to the feeding direction of the first conveyor 6. The end of the shovel plate close to the first conveyor 6 is tangent to the upper part of the conveyor belt on the first conveyor 6, and the other end of the shovel plate extends away from the first conveyor 6; one end of the first driving cylinder 10 is hinged to the first conveyor 6, and the other end of the first driving cylinder 10 is hinged to the frame body 9; one end of the second driving cylinder 11 is hinged to the frame body 9, and the other end of the second driving cylinder 11 is hinged to the U-shaped frame 12; there is a chute on the U-shaped frame 12, and the retaining raking plate 13 is slidably installed in the chute.

[0043] The elastic support member 14 preferably includes a guide rod and a spring. The guide rod is fixedly installed on the baffle plate 13, the spring is sleeved on the guide rod, the guide rod is slidably installed on the U-shaped frame 12, one end of the spring abuts against the U-shaped frame 12, and the other end of the spring abuts against the baffle plate 13. The elastic support member 14 can also be a single spring or other elastic members with equivalent elastic effects.

[0044] Specifically, please refer to Figure 2 and Figure 3 It further includes a second conveyor 20 installed on the bridge crane 2. The second conveyor 20 is arranged parallel to the bridge crane 2. A feed hopper 21 is installed at the discharge end of the first conveyor 6. The discharge end of the feed hopper 21 is located above the second conveyor 20, and the discharge end of the second conveyor 20 extends outside the material pool 1. Further, the second conveyor 20 is perpendicular to the traveling direction of the bridge crane 2. The second conveyor 20 adopts a belt conveyor. Further still, the belt conveyor can be a patterned belt conveyor, a deep trough belt conveyor, a corrugated side belt conveyor, a pressure belt conveyor, etc.

[0045] Specifically, please refer to Figure 3 and Figure 11 A scraper 22 and a brush 23 that contact the bottom of the conveyor belt on the first conveyor 6 are installed on the feed hopper 21.

[0046] Specifically, please refer to Figure 1 or Figure 2 On the top of the material pool 1, there is a first track 24 extending outward from the outside of the material pool 1. The bridge crane 2 is movably installed on the first track 24. A second track 25 is provided on the top of the bridge crane 2. The traveling trolley 3 is movably installed on the second track 25. The first track 24 and the second track 25 are perpendicularly arranged, and the bottom of the bridge crane 2 is higher than the top of the material pool 1. Further, the width of the scraping plate 5 is the same as the width of the single-arm material taking mechanism, so as to ensure that both ends of the scraping plate 5 can respectively contact the two inner walls at the bottom inner wall of the material pool 1 and in the direction perpendicular to the traveling direction of the bridge crane 2.

[0047] Specifically, please refer to Figure 3 and Figure 9 Blade parts 26 are provided on both the scraping plate 5 and the baffle plate 13.

[0048] See Figures 13-14, regardless of whether the belt conveyor or the scraper conveyor is adopted for the material fetching boom 28 on the existing bridge-type double-arm material fetching machine 27, there is still a material fetching dead corner 31 between the material fetching end of the material fetching boom 28 and the inner bottom wall corner of the material pool 1. The inner bottom corner of the material pool 1 is extremely prone to moisture, and the material will be consolidated or deteriorated after being not cleaned for a long time, thus affecting the normal storage of the next batch of materials; when the single-arm material fetching mechanism fetches materials, due to the large amount of materials gathering towards the material fetching end of the single-arm material fetching mechanism, it is easy to cause the first conveyor 6 to get stuck or overload and stop; by driving the scraping plate 5 to move through the bridge crane 2 and the walking trolley 3 in this case, the consolidated materials at one corner parallel to the traveling direction of the bridge crane 2 on the inner bottom wall of the material pool 1 and at the two corners perpendicular to the traveling direction of the bridge crane 2 (the corners of the non-material fetching area 30 of the single-arm material fetching mechanism) can be cleaned; and the material fetching device can clean the consolidated materials at the other corner.

[0049] The specific working principle of the material fetching device is as follows: When the material fetching device reaches the corner where materials are to be fetched, in the initial state, the output end of the first driving cylinder 10 is in a shortened state, the shovel plate shovels into the corresponding corner of the consolidated materials, the output end of the first driving cylinder 10 extends, the frame body 9 rotates around the hinge point, the baffle scraper 13 rotates synchronously with the frame body 9 and breaks the consolidated materials at the corner from top to bottom. Subsequently, the output end of the second driving cylinder 11 extends, the U-shaped frame 12 drives the baffle scraper 13 to move synchronously, the bottom of the baffle scraper 13 always contacts the shovel plate and gradually moves up along the shovel plate, and the elastic support member 14 gradually contracts until the baffle scraper 13 scrapes the broken materials to the material fetching end of the first conveyor 6, realizing the material fetching of the consolidated materials at this corner.

[0050] In this way, the residue of the consolidated materials at the inner bottom wall corner of the material pool 1 can be greatly reduced, and the material fetching dead corner 31 of this material fetching machine in the material pool 1 can be further reduced.

[0051] When the single-arm material fetching mechanism fetches materials during the process of traveling in the material pool 1 following the walking trolley 3, the elongation amount of the output end of the first driving cylinder 10 can be adjusted to adaptively adjust the included angle and the spacing between the shovel plate and the baffle scraper 13; a feeding channel is enclosed among the shovel plate, the baffle 8 and the baffle scraper 13 to adaptively adjust the size of the feeding channel, so as to adaptively adjust the amount of materials entering the material fetching end of the first conveyor 6, effectively reducing the incidence rate of the first conveyor 6 getting stuck or overloading and stopping caused by the concentrated accumulation of materials towards the material fetching end of the first conveyor 6 and ensuring the smooth progress of the material fetching operation.

[0052] The materials conveyed by the single-arm material fetching mechanism enter the material guiding hopper 21, and the materials fall to the second conveyor 20 through the material guiding hopper 21. The second conveyor 20 conveys the materials to the outside of the material pool 1. The materials can be received by an external belt conveyor or a transfer device below the discharge end of the second conveyor 20 outside the material pool 1, so as to realize taking out the materials in the material pool 1.

[0053] During the movement of the conveyor belt on the first conveyor 6, its bottom contacts the scraper 22 and the brush 23. The scraper 22 can scrape the materials attached to the conveyor belt into the material guiding hopper 21, and the brush 23 can further brush the materials at the conveyor belt to reduce the adhesion of the materials at the conveyor belt, avoiding the influence on the conveying effect of the materials due to too thick adhesion of the materials at the conveyor belt.

[0054] The first track 24 extends outside the material pool 1, so that the single-arm material taking mechanism and the scraping plate 5 can approach the two inner walls of the material pool 1 perpendicular to the traveling direction of the bridge crane 2 infinitely, thereby further reducing the material taking dead angle 31 of the single-arm material taking mechanism in the material pool 1, and the solidified materials at the corresponding corners can also be scraped off by the scraping plate 5.

[0055] The aged materials at the corners can be scraped off or chiseled off more smoothly through the blade part 26, improving the cleaning smoothness, cleaning efficiency and effect of the solidified materials at the corners, and reducing the residue of the solidified materials at the bottom corners of the material pool 1.

[0056] Embodiment 2 The bridge-type single-arm material taking machine provided in Embodiment 1 is further optimized. Specifically, please refer to Figure 5 , Figure 8 and Figure 12 , and further includes two third driving cylinders 15 installed on the shovel frame 7. The shovel plate includes two plate bodies 16 slidably installed on the shovel frame 7, and the two third driving cylinders 15 respectively provide power for the sliding of the two plate bodies 16; further, a slide rail is provided on the shovel frame 7, the plate body 16 is slidably installed on the slide rail, the third driving cylinders 15 are symmetrically installed on both sides of the shovel plate, and the output ends of the third driving cylinders 15 are fixedly connected to the plate body 16; the two third driving cylinders 15 can drive the two plate bodies 16 to synchronously move away from the center of the shovel plate.

[0057] Specifically, please refer to Figure 3 , and further includes a rotating frame 17 hinged to the traveling trolley 3 and a fourth driving cylinder 18 for providing power for the rotation of the rotating frame 17. The fourth driving cylinder 18 is hinged to the traveling trolley 3, the output end of the fourth driving cylinder 18 is hinged to the rotating frame 17, and the first conveyor 6 is installed on the rotating frame 17.

[0058] Specifically, please refer to Figure 3 and Figure 10, the first conveyor 6 is slidably mounted on the rotary frame 17, and a lifting drive 19 for providing power for the up and down sliding of the first conveyor 6 is mounted on the rotary frame 17; further, the lifting drive 19 preferably includes a braking stepper motor, a gear and a rack. The rack is fixedly mounted below the first conveyor 6, the braking stepper motor is fixedly mounted on the rotary frame 17, and the gear is fixedly mounted on the output end of the braking stepper motor. The gear meshes with the rack; the lifting drive 19 can also adopt other equivalent components such as a telescopic cylinder that can drive the first conveyor 6 to move up and down along the rotary frame 17; a clamping wheel is mounted on the first conveyor 6, and the clamping wheel is slidably mounted on the rotary frame 17.

[0059] When the walking trolley 3 moves along the bridge crane 2 towards the inner wall of the material pool 1 near the scraping plate 5 in this embodiment, the material in the material pool 1 cannot enter the feeding end of the first conveyor 6, and the single-arm feeding mechanism cannot perform the feeding operation; by starting the third driving cylinder 15, the output end of the third driving cylinder 15 shortens, and the two plate bodies 16 move away from each other to form an opening. The material enters the material channel formed by the shovel plate, the baffle 8 and the scraping baffle 13 through the opening. Then start the second driving cylinder 11, the output end of the second driving cylinder 11 extends, and the U-shaped frame 12 drives the scraping baffle 13 to move synchronously. The scraping baffle 13 scrapes the material to the feeding end of the first conveyor 6. In this way, the feeding during the backward movement of the walking trolley 3 along the bridge crane 2 can be realized, so that the single-arm feeding mechanism can continuously feed whether it is in the forward or backward state, greatly improving the feeding efficiency of the material in the material pool 1.

[0060] By adjusting the elongation of the output end of the fourth driving cylinder 18, the inclination angle of the rotary frame 17 can be adjusted, so as to adaptively adjust the inclination angle of the first conveyor 6. The inclination angle of the first conveyor 6 can increase the gravitational force of the material during the conveying process, making the material flow more easily, thereby improving the conveying capacity of the material. Especially for materials with high viscosity, increasing the inclination angle of the first conveyor 6 can effectively reduce the viscous resistance of the material, improve the conveying efficiency, and meet the conveying requirements of different materials.

[0061] By starting the braking stepper motor, the braking stepper motor drives the gear to rotate. After being transmitted by the rack, the first conveyor 6 can move downward along the rotary frame 17, so that the feeding end of the first conveyor 6 can gradually move deeper into the material pool 1 to gradually feed the material in the material pool 1 from top to bottom.

[0062] The use process of the bridge-type single-arm feeding machine provided by the present invention is as follows: Figure 2As a reference to the direction, the trolley 3 drives the single-arm reclaiming mechanism to move back and forth left and right along the first track 24 on the bridge crane 2, and the reclaimer cooperates with the action (the working principle of the reclaimer refers to the above), so that the single-arm reclaiming mechanism continuously and uninterruptedly reclaims the granular materials in the reclaimable area 29 of the single-arm reclaiming mechanism in the material pool 1; at the same time, the output end of the multi-stage telescopic cylinder 4 extends, and the scraper plate 5 is inserted into the granular materials in the area 30 of the material pool 1 where the single-arm reclaiming mechanism cannot reclaim materials, and the trolley 3 drives the scraper plate 5 during the movement. Moving synchronously, the scraper plate 5 scrapes the material in the area where the single-arm feeding mechanism cannot take materials to the feeding area that the single-arm feeding mechanism can reach, and the bridge crane 2 can drive the single-arm feeding mechanism to move forward and backward synchronously during the transverse movement at the first track 24 on the top of the material pool 1, so that the single-arm feeding mechanism can move in the material pool 1. Full coverage of the single-arm feeding mechanism can take materials in the material pool 1. Grabbing the granular material in the entire area; the principle and process of taking materials at the corners of the bottom wall of the material pool 1 can be found in Example 1, and no further details will be given here.

[0063] In the present invention, unless otherwise clearly specified and limited, the terms "installed", "connected", "connected", "fixed" and the like should be understood in a broad sense, for example, it can be a fixed connection, a detachable connection, or an integral one; it can be a mechanical connection, an electrical connection, or communication with each other; it can be a direct connection, or an indirect connection through an intermediate medium, it can be the internal connection of two elements or the interaction relationship between two elements, unless otherwise clearly defined. For ordinary technicians in this field, the specific meanings of the above terms in the present invention can be understood according to specific circumstances.

Claims

1. A bridge-type single-arm reclaimer, characterized in that: The invention comprises a material pool (1), a bridge crane (2) movably mounted on the top of the material pool (1), a trolley (3) movably mounted on the bridge crane (2), a single-arm material taking mechanism and a scraping mechanism, wherein the single-arm material taking mechanism and the scraping mechanism are both mounted on the trolley (3), the material taking end of the single-arm material taking mechanism extends into the material pool (1), the material discharging end of the single-arm material taking mechanism is located on the upper part of the trolley (3), and the scraping mechanism comprises two multi-stage telescopic cylinders (4) and a scraping plate (5) mounted on the output end of the multi-stage telescopic cylinder (4).

2. The bridge-type single-arm reclaimer according to claim 1, characterized in that: The single-arm material picking mechanism comprises a first conveyor (6) and a material picker mounted on a feeding end of the first conveyor (6), the material picker comprising a shoveling assembly and an adjustable material scraping assembly, the shoveling assembly comprising a shovel frame (7) fixedly connected to the first conveyor (6) and a shovel plate mounted on the shovel frame (7), and both sides of the first conveyor (6) are provided with retaining edges (8) extending toward the shovel plate; the adjustable material scraping assembly comprises a frame body (9) hingedly mounted on the first conveyor (6), a first driving cylinder (10), an elastic material scraping member hingedly mounted on the frame body (9), and a second driving cylinder (11), the first driving cylinder (10) providing power for the rotation of the frame body (9), and the second driving cylinder (11) providing power for the rotation of the elastic material scraping member.

3. The bridge-type single-arm reclaimer according to claim 2, characterized in that: The elastic material scraping member comprises a U-shaped frame (12) hingedly mounted on the frame body (9), a scraping baffle plate (13) slidably mounted on the U-shaped frame (12), and an elastic support member (14), wherein the scraping baffle plate (13) is elastically connected to the U-shaped frame (12) via the elastic support member (14).

4. The bridge-type single-arm reclaimer according to claim 2, characterized in that: The single-arm material taking mechanism further comprises two third driving cylinders (15) mounted on the shovel frame (7); the shovel plate comprises two plate bodies (16) slidably mounted on the shovel frame (7); the two third driving cylinders (15) respectively provide power for the sliding of the two plate bodies (16).

5. The bridge-type single-arm reclaimer according to claim 4, characterized in that: The single-arm material-retrieving mechanism further comprises a rotating frame (17) hingedly mounted on the traveling trolley (3) and a fourth drive cylinder (18) providing power for the rotation of the rotating frame (17); the fourth drive cylinder (18) is hingedly mounted on the traveling trolley (3); an output end of the fourth drive cylinder (18) is hingedly mounted on the rotating frame (17); and the first conveyor (6) is mounted on the rotating frame (17).

6. The bridge-type single-arm reclaimer according to claim 5, characterized in that: The first conveyor (6) is mounted on a rotating frame (17) so as to slide up and down, and a lifting drive (19) is mounted on the rotating frame (17) to provide power for the first conveyor (6) to slide up and down.

7. The bridge-type single-arm reclaimer according to claim 1, characterized in that: It also includes a second conveyor (20) mounted on the bridge crane (2), the second conveyor (20) being arranged in parallel with the bridge crane (2), a material guide hopper (21) being installed at the discharge end of the first conveyor (6), the discharge end of the material guide hopper (21) being located above the second conveyor (20), and the discharge end of the second conveyor (20) extending out of the material pool (1).

8. The bridge-type single-arm reclaimer according to claim 7, characterized in that: The guide hopper (21) is provided with a scraper (22) and a brush (23) which are in contact with the bottom of the conveyor belt on the first conveyor (6).

9. The bridge-type single-arm reclaimer according to claim 1, characterized in that: A first track (24) extending toward the outside of the material pool (1) is provided on the top of the material pool (1); the bridge crane (2) is movably mounted on the first track (24); a second track (25) is provided on the top of the bridge crane (2); the traveling trolley (3) is movably mounted on the second track (25); the first track (24) and the second track (25) are arranged vertically; and the bottom of the bridge crane (2) is higher than the top of the material pool (1).

10. The bridge-type single-arm reclaimer according to claim 1, characterized in that: The scraper plate (5) and the baffle plate (13) are both provided with a blade portion (26).

Citation Information

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