Energy-saving flatting mill for recycling renewable resources
By using a combination of hydraulic rods and hydraulic plates in the flattening machine for recycling of renewable resources, combined with the cooperation of spring plates and power rods, automatic flattening and discharge of renewable resources is achieved, solving the problem of filtration of unqualified materials, and enhancing the filtration effect and equipment stability.
Patent Information
- Application Number
- CN202510596393.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-09
- Publication Date
- 2025-06-20
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
In the existing flatter for recycling of recycling resources, unqualified materials will remain on the filter plate, hindering the work of the filter plate, and there are problems in the processing of unqualified materials.
A flattening machine for energy-saving recycling of renewable resources is designed. It adopts a combination of hydraulic rods and hydraulic plates to achieve flattening and automatic discharge of renewable resources through contact and disengagement of hydraulic plates with triangular blocks. At the same time, the cooperation of the spring plate and the power rod is used to drive the slider and the pressure rod to move, and the baffle ejects and blocks the deflector to prevent material from rolling and stacking.
Automatic flattening and discharge of renewable resources is realized, manual cleaning is avoided, labor costs are reduced, and filtration effect and equipment are enhanced through vibration collection mechanisms and restricted feed mechanisms, and material accumulation and pollution are prevented.
Smart Images

Figure CN120169468A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of resource recovery, and specifically to a flattening machine for energy-saving recycling of renewable resources. Background Art
[0002] The resources available to humans can be divided into two categories: one is non-renewable resources, and the other is renewable resources. Renewable resources are a type of renewable resources, that is, substances that can be repeatedly recycled and processed after being exploited and scrapped once. It includes steel, non-ferrous metals, rare metals, alloys, inorganic non-metals, plastics, rubber, fibers, paper, etc. produced from minerals as raw materials, all of which are called renewable resources. The patent with the patent announcement number CN216172734U relates to a flattening machine for recycling renewable resources, including a feeding frame. Two groups of fixed plates are respectively arranged on both sides of the feeding frame. A support column is arranged at the lower end of the fixed plate, and a self-locking universal wheel is arranged at the lower end of the support column. A crushing component is arranged in the feeding frame. The lower end of the feeding frame is fixed with a conveying frame by bolts. A filtering component is arranged in the conveying frame. Filtering holes are formed on the periphery of the conveying frame. One end of the conveying frame is provided with a discharge port. A compression box is fixed on the discharge port by bolts. A flattening component is arranged in the compression box. The two crushing rollers are driven by a motor to rotate to crush the recycled items, which is convenient for subsequent compression. The second belt wheel is driven by electricity to rotate. The second belt wheel drives the first belt wheel to rotate through a belt. The rotation of the first belt wheel drives the rotation of the rotating shaft and the spiral blade. The rotation of the spiral blade pushes the items in the feeding frame to move, so that the impurities mixed in the items fall out from multiple filtering holes, improving the practicability of the device.
[0003] In the above patent, the second belt wheel can be driven by electricity to rotate. The second belt wheel drives the first belt wheel to rotate through a belt. The rotation of the first belt wheel drives the rotation of the rotating shaft and the spiral blade. The rotation of the spiral blade pushes the items in the feeding frame to move, so that the impurities mixed in the items fall out from multiple filtering holes, improving the practicability of the device. However, the unqualified materials on the filter plate will remain on the filter plate, hindering the filter plate and affecting the subsequent work of the device. At the same time, the treatment of unqualified materials is also a problem. Summary of the Invention
[0004] Aiming at the deficiencies of the prior art, the present invention provides a flattening machine for energy-saving recycling of renewable resources, which solves the problems raised in the above background art.
[0005] To achieve the above object, the present invention is realized through the following technical solutions: A flattening machine for energy-saving recycling of renewable resources, including a housing, wherein a crushing wheel is provided at the upper end inside the housing, a discharging and material-limiting mechanism is provided at the bottom end inside the housing, a spring plate is provided at the bottom end inside the housing, a vibrating material-collecting mechanism is provided in the middle inside the housing, a filter plate is provided in the middle inside the housing, and a feeding-limiting mechanism is provided at the upper end inside the housing; Among them, the discharging mechanism includes a hydraulic rod, a blocking rod, a hydraulic plate, a triangular block, a discharging plate, a power rod, a connecting rod, a slider, a pressing rod, a baffle plate, a flattening chamber and a diversion plate. The hydraulic rod is fixedly installed at the lower end inside the housing, the flattening chamber is fixedly installed at the lower end inside the housing, the hydraulic plate is fixedly installed at the top end of the hydraulic rod, the blocking rod is fixedly installed at the left end of the flattening chamber, the discharging plate is slidably installed at the bottom end of the flattening chamber, a vertical groove is opened at the top end of the discharging plate, the triangular block is slidably installed in the vertical groove, the spring plate is slidably installed inside the flattening chamber, the power rod is fixedly installed at the top end of the spring plate, a chute is opened at the bottom end inside the housing, the slider is slidably installed in the chute, the pressing rod is fixedly installed at the bottom end of the slider, the diversion plate is fixedly installed at the bottom end inside the housing, a vertical groove is opened at the top of the diversion plate, the baffle plate is slidably installed in the vertical groove at the top end of the diversion plate, the connecting rod fixedly penetrates the slider, and when the slider slides to the right, it drives the pressing rod to slide to the right, and the pressing rod slides to the right to disengage from the contact with the baffle plate, and the baffle plate pops out to block the recycled resources processed on the diversion plate.
[0006] According to the above technical solution, the spring plate is on the movement track of the hydraulic plate, and the hydraulic plate provides power for the spring plate. The hydraulic plate is set in an L shape with the upper end being a free end, and the upper end of the hydraulic plate is used to block the upper materials during operation.
[0007] According to the above technical solution, the baffle plate is on the movement track of the pressing rod, and the pressing rod provides pressure for the baffle plate. Multiple groups of the baffle plate, the slider and the pressing rod are provided to make the blocking of the recycled resources on the diversion plate more comprehensive. When in the original state, the pressing rod is at the upper end of the baffle plate, so that the baffle plate is in a contracted state in the original state.
[0008] According to the above technical solution, the vibration material receiving mechanism includes a bump, a vibration block, a sliding block, a fixed rod, a fixed table, a rotating shaft, a pushing plate, a sliding plate, a material receiving box and a power inclined rod. The bump is fixedly installed at the top end of the slider. The vibration block is fixedly installed at the bottom end of the filter plate. The sliding block is slidably installed at the bottom end of the filter plate. The fixed table is fixedly installed at the bottom end of the filter plate. One end of the fixed rod is fixedly installed at the right end of the fixed table, and the other end of the fixed rod is fixedly installed at the left end of the sliding block. The rotating shaft is rotatably installed at the top end of the housing. The pushing plate is fixedly installed on the circumferential surface of the rotating shaft. The material receiving box is fixedly installed at the right end of the housing. The sliding plate is slidably installed inside the material receiving box. The power inclined rod slidably penetrates the filter plate. When the power inclined rod moves upward, it pushes the inclined plate, and the inclined plate rotates around the rotating shaft. The rotation of the rotating shaft drives the pushing plate to swing, and the pushing plate pushes the sliding plate to move inside the material receiving box.
[0009] According to the above technical solution, the vibration block is on the movement track of the sliding block, and the sliding block provides power for the vibration block. A spring is arranged between the sliding block and the fixed table, and the spring provides power for the sliding block.
[0010] According to the above technical solution, the power inclined rod is on the movement track of the power rod, and the power rod provides power for the power inclined rod. A material receiving port is opened at the right end of the material receiving box to discharge the waste materials in the material receiving box.
[0011] According to the above technical solution, the feeding limiting mechanism includes an inclined plate, a convex block, a contact rod, a moving block, a poking rod, a fixed table, an inclined plane block and a pushing plate. The inclined plate is fixedly installed on the circumferential surface of the rotating shaft. The convex block is fixedly installed on the circumferential surface of the rotating shaft. The pushing plate is slidably installed inside the material receiving box. The contact rod is slidably installed at the front end of the pushing plate. The moving block is slidably installed at the front end of the pushing plate. The poking rod is fixedly installed at the top end of the moving block. The fixed table is fixedly installed at the front end of the pushing plate. A groove is opened on the pushing plate. The inclined plane block is slidably installed in the groove on the pushing plate. When the contact rod moves upward, the contact rod hits the convex block upward, and the convex block rotates upward to make the rotating shaft rotate. The rotation of the rotating shaft makes the inclined plate rotate to a horizontal state.
[0012] According to the above technical solution, the inclined plane block is on the movement track of the poking rod, and the poking rod provides power for the inclined plane rod. The convex block is on the movement track of the contact rod, and the contact rod provides power for the convex block.
[0013] The present invention provides a flattening machine for energy-saving recycling of renewable resources, having the following beneficial effects: (1)In this invention, when the renewable resources enter the flattening chamber, the hydraulic rod moves to the right, driving the hydraulic plate to move to the right to perform the flattening operation on the renewable resources. When the hydraulic plate touches the triangular block, the triangular block moves downward, and the hydraulic plate continues to move to the right for the flattening operation. When the hydraulic plate disengages from the triangular block, the triangular block resets. When the flattening operation is completed and the hydraulic plate resets, the hydraulic plate contacts the right-angle side of the triangular block, and the hydraulic plate drives the triangular block to move to the left. The triangular block moving to the left drives the discharge plate to move to the left, opening the discharge plate, and the flattened renewable resources are automatically discharged, avoiding manual cleaning and collection, greatly reducing the labor cost, and enabling the flattening machine to work continuously. At the same time, when the hydraulic plate moves to the right and contacts the spring plate, the spring plate is compressed and moves to the right. The spring plate moving to the right drives the power rod to move to the right. The power rod moving to the right drives the connecting rod to move to the right. The connecting rod moving to the right drives the slider to slide to the right. The slider sliding to the right drives the pressure rod to slide to the right, and the pressure rod sliding to the right disengages from the contact with the baffle. The baffle pops out to block the processed renewable resources on the diversion plate, preventing the materials on the diversion plate from continuing to roll down and accumulate above the flattening chamber or enter the flattening chamber during the flattening operation, which affects the flattening effect.
[0014] (2)In this invention, when the spring plate moves to the right, the spring plate moving to the right drives the power rod to move to the right. The power rod moving to the right drives the connecting rod to move to the right. The connecting rod moving to the right drives the slider to slide to the right. The slider moving to the right drives the convex block to move to the right. The convex block moving to the right pushes the sliding block to move to the right, and the spring is compressed. When the spring compression is completed, the convex block contacts the inclined surface of the sliding block, and the sliding block slides upward. When the convex block disengages from the sliding block, the spring resets, and the sliding block impacts the vibrating block, causing the filter plate to vibrate, strengthening the filtering effect while preventing the processed renewable resources from clogging the gaps of the filter plate and reducing the filtering effect. At the same time, the power rod moving to the right contacts the power inclined rod, and the power inclined rod moves upward. The power inclined rod moving upward pushes the inclined plate, and the inclined plate rotates around the rotating shaft. The rotating shaft rotation drives the pushing plate to swing, and the pushing plate pushes the sliding plate to move in the receiving box, pushing the unqualified waste to the right, compressing the waste in the receiving box, and increasing the accommodation capacity of the receiving box.
[0015] (3) In this invention, when the power plate contacts the power inclined rod, the power inclined rod moves upward. The upward movement of the power inclined rod pushes the inclined plate, and the inclined plate rotates around the rotating shaft to the horizontal state, hindering the downward movement of the renewable resources, so that the renewable resources enter the device intermittently, preventing excessive one-time feeding from causing insufficient crushing efficiency of the crushing wheel and filtering efficiency of the filter plate of the device, resulting in material accumulation. At the same time, when there is too much waste in the receiving box, the waste squeezes the sliding plate, causing the sliding plate to move to the right. The movement of the sliding plate to the right drives the moving block to move to the right, and the movement of the moving block to the right drives the poking rod to move to the right. The poking rod moving to the right contacts the inclined plane block and pushes the inclined plane block to move backward. The backward movement of the inclined plane block contacts the limit of the contact rod, and the spring between the contact rod and the fixed platform resets. The contact rod moves upward, and the upward movement of the contact rod impacts the convex block. The convex block rotates upward to make the rotating shaft rotate, and the rotation of the rotating shaft makes the inclined plate rotate to the horizontal state, preventing continuous feeding at the feeding port when there is too much waste in the receiving box, resulting in the overflow of waste in the receiving box, polluting the ground, and requiring manual cleaning, which increases the labor cost. Description of the Drawings
[0016] Figure 1 Schematic diagram of the overall structure of the present invention; Figure 2 Schematic cross-sectional view of the overall structure of the present invention; Figure 3 Schematic diagram of the partial structure of the discharging mechanism of the present invention; Figure 4 Schematic diagram of the overall structure of the discharging mechanism of the present invention; Figure 5 Schematic diagram of the vibration structure in the vibration receiving mechanism of the present invention; Figure 6 For the present invention Figure 5 Enlarged schematic diagram of the structure of part A in; Figure 7 Schematic diagram of the receiving structure in the vibration receiving mechanism of the present invention; Figure 8 Schematic diagram of the structure of the feeding limiting mechanism of the present invention; Figure 9 Schematic diagram of the positional relationship between the inclined plate and the rotating shaft of the present invention; Figure 10 Schematic diagram of the partial structure of the feeding limiting mechanism of the present invention; Figure 11 For the present invention Figure 10 Enlarged schematic diagram of the structure of part B in.
[0017] In the figure: 1. shell; 2. crushing wheel; 301. hydraulic rod; 302. blocking rod; 303. hydraulic plate; 304. triangular block; 305. discharge plate; 306. power rod; 307. connecting rod; 308. slider; 309. pressure rod; 310. baffle; 311. flattening chamber; 312. guide plate; 4. spring plate; 501. convex block; 502. vibration block; 503. sliding block; 504. fixed rod; 505. fixed table; 506. rotating shaft; 507. pushing plate; 508. sliding plate; 509. collecting box; 510. power inclined rod; 601. inclined plate; 602. convex block; 603. contact rod; 604. moving block; 605. poking rod; 606. fixed table; 607. inclined block; 608. pushing plate; 7. filter plate. DETAILED DESCRIPTION
[0018] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0019] See also Figures 1-11 , an energy-saving flattening machine for recycling renewable resources, comprising a shell 1, a crushing wheel 2 is arranged at the upper end of the shell 1, a discharging and limiting mechanism is arranged at the bottom end of the shell 1, a spring plate 4 is arranged at the bottom end of the shell 1, a vibrating material receiving mechanism is arranged at the middle end of the shell 1, a filter plate 7 is arranged at the middle end of the shell 1, and a limiting feeding mechanism is arranged at the upper end of the shell 1; Among them, the discharging mechanism includes a hydraulic rod 301, a blocking rod 302, a hydraulic plate 303, a triangular block 304, a discharging plate 305, a power rod 306, a connecting rod 307, a slider 308, a pressing rod 309, a baffle 310, a flattening chamber 311 and a guiding plate 312. The hydraulic rod 301 is fixedly installed at the lower end inside the housing 1, the flattening chamber 311 is fixedly installed at the lower end inside the housing 1, the hydraulic plate 303 is fixedly installed at the top of the hydraulic rod 301, the blocking rod 302 is fixedly installed at the left end of the flattening chamber 311, the discharging plate 305 is slidably installed at the bottom end of the flattening chamber 311. A vertical groove is formed at the top end of the discharging plate 305, and the triangular block 304 is slidably installed in the vertical groove. The spring plate 4 is slidably installed inside the flattening chamber 311, the power rod 306 is fixedly installed at the top of the spring plate 4. A chute is formed at the bottom end inside the housing 1, and the slider 308 is slidably installed in the chute. The pressing rod 309 is fixedly installed at the bottom end of the slider 308, the guiding plate 312 is fixedly installed at the bottom end inside the housing 1. A vertical groove is formed at the top of the guiding plate 312, and the baffle 310 is slidably installed in the vertical groove at the top end of the guiding plate 312. The connecting rod 307 fixedly penetrates through the slider 308 to prevent the materials on the guiding plate 312 from continuing to roll down and accumulate above the flattening chamber 311 or enter the flattening chamber 311 during the flattening operation, which affects the flattening effect.
[0020] The spring plate 4 is on the movement track of the hydraulic plate 303, and the hydraulic plate 303 provides power for the spring plate 4. The hydraulic plate 303 is set in an L shape with the upper end being a free end, and the upper end of the hydraulic plate 303 is used to block the upper materials during work.
[0021] The baffle 310 is on the movement track of the pressing rod 309, and the pressing rod 309 provides pressure for the baffle 310. Multiple groups of the baffle 310, the slider 308 and the pressing rod 309 are provided to make the blocking of the renewable resources on the guiding plate 312 more comprehensive. When in the original state, the pressing rod 309 is at the upper end of the baffle 310, so that the baffle 310 is in a contracted state in the original state.
[0022] The vibration material receiving mechanism includes a bump 501, a vibration block 502, a sliding block 503, a fixed rod 504, a fixed platform 505, a rotating shaft 506, a pushing plate 507, a sliding plate 508, a material receiving box 509, and a power inclined rod 510. The bump 501 is fixedly installed at the top end of the slider 308. The vibration block 502 is fixedly installed at the bottom end of the filter plate 7. The sliding block 503 is slidably installed at the bottom end of the filter plate 7. The fixed platform 505 is fixedly installed at the bottom end of the filter plate 7. One end of the fixed rod 504 is fixedly installed at the right end of the fixed platform 505, and the other end of the fixed rod 504 is fixedly installed at the left end of the sliding block 503. The rotating shaft 506 is rotatably installed at the top end of the housing 1. The pushing plate 507 is fixedly installed on the circumferential surface of the rotating shaft 506. The material receiving box 509 is fixedly installed at the right end of the housing 1. The sliding plate 508 is slidably installed inside the material receiving box 509. The power inclined rod 510 slidably penetrates the filter plate 7 to push the unqualified waste to the right, compress the waste in the material receiving box 509, and increase the accommodating capacity of the material receiving box 509.
[0023] The vibration block 502 is on the movement track of the sliding block 503. The sliding block 503 provides power for the vibration block 502. A spring is arranged between the sliding block 503 and the fixed platform 505, and the spring provides power for the sliding block 503.
[0024] The power inclined rod 510 is on the movement track of the power rod 306. The power rod 306 provides power for the power inclined rod 510. A material receiving opening is formed at the right end of the material receiving box 509 to discharge the waste in the material receiving box 509.
[0025] The feeding limiting mechanism includes an inclined plate 601, a convex block 602, a contact rod 603, a moving block 604, a punching rod 605, a fixed platform 606, an inclined plane block 607, and a pushing plate 608. The inclined plate 601 is fixedly installed on the circumferential surface of the rotating shaft 506. The convex block 602 is fixedly installed on the circumferential surface of the rotating shaft 506. The pushing plate 608 is slidably installed inside the material receiving box 509. The contact rod 603 is slidably installed at the front end of the pushing plate 608. The moving block 604 is slidably installed at the front end of the pushing plate 608. The punching rod 605 is fixedly installed at the top end of the moving block 604. The fixed platform 606 is fixedly installed at the front end of the pushing plate 608. A groove is formed on the pushing plate 608, and the inclined plane block 607 is slidably installed in the groove on the pushing plate 608 to prevent the feeding port from continuing to feed when there is too much waste in the material receiving box 509, resulting in the overflow of the waste in the material receiving box 509, polluting the ground, and requiring manual cleaning, which increases the labor cost.
[0026] The inclined plane block 607 is on the movement track of the punching rod 605. The punching rod 605 provides power for the inclined plane block 607. The convex block 602 is on the movement track of the contact rod 603, and the contact rod 603 provides power for the convex block 602.
[0027] During operation: When the renewable resources enter the flattening chamber 311, the hydraulic pump drives the hydraulic rod 301 to move to the right. The movement of the hydraulic rod 301 to the right drives the hydraulic plate 303 to move to the right, and the hydraulic plate 303 flattens the renewable resources. When the hydraulic plate 303 touches the triangular block 304, the triangular block 304 moves downward, and the hydraulic plate 303 continues to move to the right for flattening operation. When the hydraulic plate 303 disengages from the triangular block 304, the triangular block 304 resets upward through the spring arranged inside. When the flattening operation is completed and the hydraulic rod 301 resets to the left, driving the hydraulic plate 303 to reset to the left, the hydraulic plate 303 contacts the right-angle side of the triangular block 304. The leftward reset of the hydraulic plate 303 drives the triangular block 304 to move to the left, and the leftward movement of the triangular block 304 drives the discharge plate 305 to move to the left, opening the discharge plate 305. The flattened renewable resources are automatically discharged, avoiding manual cleaning and collection, greatly reducing the labor cost, and enabling the flattening machine to work continuously. At the same time, when the hydraulic plate 303 moves to the right and contacts the spring plate 4, the spring plate 4 is compressed and moves to the right. The rightward movement of the spring plate 4 drives the power rod 306 to move to the right, the rightward movement of the power rod 306 drives the connecting rod 307 to move to the right, the rightward movement of the connecting rod 307 drives the slider 308 to slide to the right, and the rightward sliding of the slider 308 drives the pressure rod 309 to slide to the right. The pressure rod 309 slides to the right and disengages from the contact with the baffle 310, and the baffle 310 pops out to block the processed renewable resources on the deflector 312, preventing the materials on the deflector 312 from continuing to roll down and accumulate above the flattening chamber 311 or enter the flattening chamber 311 during the flattening operation, which affects the flattening effect.
[0028] When the spring plate 4 moves to the right, the movement of the spring plate 4 to the right drives the power rod 306 to move to the right. The movement of the power rod 306 to the right drives the connecting rod 307 to move to the right. The movement of the connecting rod 307 to the right drives the slider 308 to slide to the right. The movement of the slider 308 to the right drives the convex block 501 to move to the right. The movement of the convex block 501 to the right pushes the sliding block 503 to move to the right, compressing the spring. When the spring compression is completed, the convex block 501 contacts the inclined surface of the sliding block 503, and the sliding block 503 slides upward. When the convex block 501 disengages from the sliding block 503, the spring resets to the left, and the sliding block 503 impacts the vibration block 502, causing the vibration block 502 to vibrate, making the filter plate 7 vibrate. While enhancing the filtering effect, it prevents the processed renewable resources from clogging the gaps of the filter plate 7, reducing the filtering effect. At the same time, when the power rod 306 moves to the right and contacts the power inclined rod 510, the power rod 306 pushes the power inclined rod 510 upward. The upward movement of the power inclined rod 510 pushes the inclined plate 601, causing the inclined plate 601 to rotate around the rotating shaft 506. The rotation of the rotating shaft 506 drives the pushing plate 507 to swing. The pushing plate 507 pushes the sliding plate 508 to move within the material receiving box 509, pushing the unqualified waste to the right, compressing the waste in the material receiving box 509, and increasing the capacity of the material receiving box 509.
[0029] When the power rod 306 contacts the power inclined rod 510, the power inclined rod 510 moves upward. The upward movement of the power inclined rod 510 pushes the inclined plate 601, and the inclined plate 601 rotates around the rotating shaft 506 to the horizontal state, hindering the downward movement of the renewable resources, making the renewable resources enter the device intermittently, preventing excessive one-time feeding from causing insufficient crushing efficiency of the crushing wheel 2 and filtering efficiency of the filter plate 7 of the device, resulting in material accumulation. At the same time, when there is too much waste in the material receiving box 509, the waste squeezes the sliding plate 508, causing the sliding plate 508 to move to the right. The movement of the sliding plate 508 to the right drives the moving block 604 to move to the right. The movement of the moving block 604 to the right drives the punching rod 605 to move to the right. The movement of the punching rod 605 to the right contacts the inclined surface block 607 and pushes the inclined surface block 607 to move backward. The backward movement of the inclined surface block 607 releases the limit on the contact rod 603. The spring between the contact rod 603 and the fixed platform 606 resets, and the contact rod 603 moves upward. The upward movement of the contact rod 603 impacts the convex block 602, causing the convex block 602 to rotate upward, making the rotating shaft 506 rotate. The rotation of the rotating shaft 506 causes the inclined plate 601 to rotate to the horizontal state, preventing continuous feeding at the feeding port when there is too much waste in the material receiving box 509, resulting in the overflow of the waste in the material receiving box 509, polluting the ground, and requiring manual cleaning, increasing the labor cost.
[0030] Although embodiments of the present invention have been shown and described, it will be understood by those of ordinary skill in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. An energy-saving flattening machine for recycling renewable resources, comprising a housing (1), characterized in that: A crushing wheel (2) is arranged at the upper end of the shell (1), a material discharging and limiting mechanism is arranged at the lower end of the shell (1), a spring plate (4) is arranged at the lower end of the shell (1), a vibrating material collecting mechanism is arranged at the middle end of the shell (1), a filter plate (7) is arranged at the middle end of the shell (1), and a material limiting feeding mechanism is arranged at the upper end of the shell (1); The discharging mechanism comprises a hydraulic rod (301), a blocking rod (302), a hydraulic plate (303), a triangular block (304), a discharging plate (305), a power rod (306), a connecting rod (307), a sliding block (308), a pressure rod (309), a baffle (310), a flattening chamber (311) and a guide plate (312); the hydraulic rod (301) is fixedly mounted on the lower end of the inner part of the housing (1); the flattening chamber (311) is fixedly mounted on the lower end of the inner part of the housing (1); the hydraulic plate (303) is fixedly mounted on the top end of the hydraulic rod (301); the blocking rod (302) is fixedly mounted on the left end of the flattening chamber (311); and the discharging plate (305) is slidably mounted on the bottom of the flattening chamber (311). The discharge plate (305) is provided with a vertical groove at the top end, the triangular block (304) is slidably mounted in the vertical groove, the spring plate (4) is slidably mounted inside the flattening chamber (311), the power rod (306) is fixedly mounted on the top end of the spring plate (4), the inner bottom end of the housing (1) is provided with a slide groove, the slider (308) is slidably mounted in the slide groove, the pressure rod (309) is fixedly mounted on the bottom end of the slider (308), the guide plate (312) is fixedly mounted on the inner bottom end of the housing (1), the top of the guide plate (312) is provided with a vertical groove, the baffle (310) is slidably mounted in the vertical groove at the top end of the guide plate (312), and the connecting rod (307) is fixedly penetrated through the slider (308).
2. The energy-saving flattening machine for recycling renewable resources according to claim 1, characterized in that: The spring plate (4) is located on the movement track of the hydraulic plate (303), and the hydraulic plate (303) is arranged in an L shape with the upper end being a free end.
3. The energy-saving flattening machine for recycling renewable resources according to claim 2, characterized in that: The baffle plate (310) is located on the movement track of the pressure rod (309), and multiple groups of the baffle plate (310), the slider (308) and the pressure rod (309) are provided.
4. The energy-saving flattening machine for recycling renewable resources according to claim 3 is characterized in that: The vibrating material collecting mechanism comprises a protrusion (501), a vibrating block (502), a sliding block (503), a fixed rod (504), a fixed platform (505), a rotating shaft (506), a pushing plate (507), a sliding plate (508), a material collecting box (509) and a power inclined rod (510), wherein the protrusion (501) is fixedly mounted on the top of the sliding block (308), the vibrating block (502) is fixedly mounted on the bottom of the filter plate (7), the sliding block (503) is slidably mounted on the bottom of the filter plate (7), and the fixed platform (505) is fixedly mounted on the filter plate (7), one end of the fixed rod (504) is fixedly mounted on the right end of the fixed platform (505), the other end of the fixed rod (504) is fixedly mounted on the left end of the sliding block (503), the rotating shaft (506) is rotatably mounted on the top end of the housing (1), the pushing plate (507) is fixedly mounted on the circumferential surface of the rotating shaft (506), the material receiving box (509) is fixedly mounted on the right end of the housing (1), the sliding plate (508) is slidably mounted inside the material receiving box (509), and the power inclined rod (510) slides through the filter plate (7).
5. The energy-saving flattening machine for recycling renewable resources according to claim 4, characterized in that: The vibration block (502) is located on the motion track of the sliding block (503), and a spring is provided between the sliding block (503) and the fixed platform (505).
6. The energy-saving flattening machine for recycling renewable resources according to claim 5, characterized in that: The power inclined rod (510) is located on the movement track of the power rod (306), and a material receiving opening is provided at the right end of the material receiving box (509).
7. The energy-saving flattening machine for recycling renewable resources according to claim 6, characterized in that: The feeding limiting mechanism comprises an inclined plate (601), a convex block (602), a contact rod (603), a moving block (604), a poking rod (605), a fixing platform (606), an inclined surface block (607) and a push plate (608), wherein the inclined plate (601) is fixedly mounted on the circumferential surface of the rotating shaft (506), the convex block (602) is fixedly mounted on the circumferential surface of the rotating shaft (506), the push plate (608) is slidably mounted inside the material receiving box (509), the contact rod (603) is slidably mounted on the front end of the push plate (608), the moving block (604) is slidably mounted on the front end of the push plate (608), the poking rod (605) is fixedly mounted on the top end of the moving block (604), the fixing platform (606) is fixedly mounted on the front end of the push plate (608), a groove is provided on the push plate (608), and the inclined surface block (607) is slidably mounted in the groove on the push plate (608).
8. The energy-saving flattening machine for recycling renewable resources according to claim 7, characterized in that: The inclined surface block (607) is located on the motion track of the poking rod (605), and the convex block (602) is located on the motion track of the contact rod (603).
Citation Information
Patent Citations
Flattening mill for recycling renewable resources
CN216172734U