A waste power generation incineration device
By integrating the main body of the waste drum screen with the discharge cylinder, along with permanent magnet blocks and a linkage mechanism, the problem of bulky structure in waste-to-energy incineration devices is solved, improving the efficiency of magnetic metal sorting and overall efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-12-02
- Publication Date
- 2026-03-31
AI Technical Summary
In existing waste-to-energy incineration plants, the waste sorting system uses a split structure, which results in a bulky overall structure that occupies a large amount of space.
The main body of the garbage drum screen is integrated with the discharge cylinder. It uses permanent magnet blocks for pre-separation of magnetic metals and a linkage mechanism to realize the rotation of the main body of the garbage drum screen and the reciprocating motion of the garbage bearing plate, thereby improving the sorting efficiency of magnetic metals.
It reduces the space occupied by pre-processing, improves the efficiency of magnetic metal sorting, reduces the problem of slow movement caused by waste accumulation, and improves overall efficiency.
Smart Images

Figure CN121229919B_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of power generation and incineration technology, and specifically relates to a waste-to-energy incineration device. Background Technology
[0002] Waste-to-energy incineration is a waste treatment and resource utilization technology that generates heat energy by burning municipal solid waste at high temperatures, and then converts the heat energy into electrical energy (or heat energy). Its core objective is to achieve "waste reduction, harmlessness, and resource recovery," and it is one of the mainstream methods for treating municipal solid waste globally. Collected municipal solid waste is first transported to a "waste storage pit," where it undergoes 3-7 days of fermentation and draining (removing some moisture and increasing calorific value). Then, the waste is evenly fed into the incinerator using a grab bucket; this step improves incineration efficiency and reduces the moisture content in the flue gas.
[0003] Before entering the incinerator, the waste needs to be pre-treated to remove large pieces of waste and metal waste. Generally, a rotary screen is used to remove large pieces of waste by rotating and tumbling, so that small pieces of waste that meet the standards can be separated from the screen holes. Then, an iron remover is placed above the conveyor to separate the magnetic metals.
[0004] The sorting structure mentioned above usually adopts a split design, separating waste and magnetic metals one after the other, which occupies a large internal area and makes the internal structure rather bulky.
[0005] Therefore, we propose a waste-to-energy incineration device to solve the above problems. Summary of the Invention
[0006] This invention overcomes the shortcomings of the prior art and proposes a waste-to-energy incineration device; it solves the problem that the current waste-to-energy incineration devices use a split structure for waste sorting, resulting in a bulky overall structure.
[0007] To achieve the above objectives, the present invention is implemented through the following technical solution.
[0008] A waste-to-energy incineration device includes a supporting base plate. A waste drum screen body is rotatably mounted on the supporting base plate via multiple sets of driving components. A supporting sleeve plate is fixedly mounted on the upper side of one end of the supporting base plate. The front end of the waste drum screen body is rotatably inserted into the supporting sleeve plate. A feeding conveyor is provided outside the front inlet of the waste drum screen body. A discharge front base plate is rotatably mounted at the outlet end behind the feeding conveyor. A waste carrying plate is slidably mounted on the upper end of the discharge front base plate in the left-right direction. The front inlet of the waste drum screen body is connected to the discharge front base plate and the waste carrying plate through a linkage mechanism. When the waste drum screen body rotates, the linkage mechanism drives the discharge front base plate and the waste carrying plate to swing up and down, and simultaneously drives the waste carrying plate to slide left and right on the upper end of the discharge front base plate. A ring-shaped permanent magnet block is fixedly mounted inside the front inlet of the waste drum screen body. A fixed magnetic shielding cover is mounted inside the supporting sleeve plate and near the top of the waste drum screen body.
[0009] Furthermore, the main body of the garbage drum screen is a cylindrical structure with a high front and low rear slope. A discharge cylinder is fixedly installed at the rear outlet of the main body of the garbage drum screen, and a ring of discharge holes is provided on the side wall of the discharge cylinder. A discharge port is provided on the support base plate, and the discharge port is located below the discharge holes.
[0010] Furthermore, two sets of driving components are provided on the front side of the upper end face of the support base plate, and two sets of driving components are provided on the rear side of the upper end face of the support base plate. The two sets of driving components on the front side support the main body of the garbage drum screen and drive it to rotate, while the two sets of driving components on the rear side support the discharge cylinder and drive it to rotate.
[0011] Furthermore, a discharge tray is provided inside the front inlet of the main body of the garbage drum screen. The discharge tray is located above the garbage bearing plate and below the highest point of the permanent magnet block. The front end of the discharge tray is inclined downward and extends to the outside of the front opening of the main body of the garbage drum screen. The discharge tray is fixedly connected to the support sleeve through an external bracket. A downwardly inclined output plate is fixedly provided on one side of the front end of the discharge tray.
[0012] Furthermore, a discharge front base plate is rotatably installed at the rear end of the feeding conveyor via a rotating connector. The rear end of the discharge front base plate is inclined downward. Multiple top sliders are fixedly installed on the upper surface of the discharge front base plate. Multiple horizontal sliding grooves extending to the left and right are provided on the waste bearing plate. The multiple top sliders are slidably installed inside the multiple horizontal sliding grooves respectively.
[0013] Furthermore, a baffle is fixedly installed on each of the left and right sides of the waste support plate.
[0014] Furthermore, the linkage mechanism includes a drive gear, a first transmission gear, a second transmission gear, a first actuating gear, a second actuating gear, and a rotating sleeve. A drive gear is fixedly installed on the outer side of the front inlet of the main body of the garbage drum screen. A first transmission gear is rotatably installed on the lower side of the front end face of the support sleeve. The first transmission gear includes a first helical tooth portion on the front side and a first straight tooth portion on the rear side. The first straight tooth portion of the first transmission gear meshes with the drive gear. A horizontal mounting plate is fixedly installed on the lower side of the front end face of the support sleeve. A second transmission gear, a first actuating gear, and a second actuating gear are rotatably installed on the upper surface of the mounting plate. The second transmission gear includes a second helical tooth portion on the upper side and a second straight tooth portion on the lower side. The first helical tooth portion of the first transmission gear meshes with the second helical tooth portion of the second transmission gear. Both the first actuating gear and the second actuating gear mesh with the second straight tooth portion of the second transmission gear. A rotating sleeve is rotatably installed at the outer edge of the upper end face of both the first actuating gear and the second actuating gear via a universal joint.
[0015] Furthermore, the linkage mechanism also includes a guide slider, a push rod, a toggle push rod, and a toggle bending rod; a bottom plate guide groove is provided in the middle of the lower end face of the bottom plate before discharge, and a guide slider is slidably arranged inside the bottom plate guide groove; a push rod is rotatably arranged at one end of the guide slider located outside the bottom plate guide groove, and a toggle push rod is fixedly arranged at the end of the push rod away from the guide slider; a toggle bending rod is slidably inserted inside the toggle push rod, and the end of the toggle bending rod away from the toggle push rod is slidably inserted into the rotating sleeve at the upper end of the first action gear.
[0016] Furthermore, the linkage mechanism also includes a positioning function plate, a push side rod, and a toggle auxiliary rod; a positioning function plate is fixedly installed at the front end face of the support sleeve, and an arc-shaped groove is provided on the positioning function plate. A horizontal push side rod is slidably inserted into the arc-shaped groove, and one end of the push side rod is fixedly connected to the end face of the waste bearing plate; a toggle auxiliary rod is slidably inserted into the push side rod, and the end of the toggle auxiliary rod away from the push side rod is slidably inserted into the rotating sleeve at the upper end of the second action gear.
[0017] The beneficial effects of this invention compared to the prior art are as follows:
[0018] This invention involves fixing a ring of permanent magnets inside the front inlet of the main body of a garbage drum screen. During the process of feeding garbage into the drum screen via a feeding conveyor, magnetic metals in the garbage are pre-separated. Furthermore, by integrating the discharge cylinder with the main body of the garbage drum screen, the entire drum screen rotates as the discharge cylinder rotates, causing the permanent magnets inside the drum screen to also rotate, thus continuously pre-separating magnetic metals from the garbage. Integrating the main body of the garbage drum screen with the discharge cylinder significantly reduces the space required for garbage pre-treatment, making the functions more centralized.
[0019] When the main body of the waste drum screen in this invention rotates, the main body drives the waste carrying plate to not only swing up and down but also slide left and right through the linkage mechanism. When the waste falls down the waste carrying plate, the up-and-down swinging motion evenly throws the waste along the surface of the waste carrying plate towards the area around the permanent magnet block. The thrown waste is more evenly distributed on the inner wall of the permanent magnet block over a larger area, thereby improving the sorting efficiency of magnetic metals. At the same time, it can reduce the situation where magnetic metals are not sorted due to waste accumulation to a certain extent. The left-and-right sliding motion shakes the waste along the surface of the waste carrying plate, making the waste throw faster. This can greatly reduce the problem of waste congestion causing slow movement and reduced efficiency, and can also further improve the lateral distribution range of waste. Attached Figure Description
[0020] The present invention will now be described in further detail with reference to the accompanying drawings:
[0021] Figure 1 This is a three-dimensional schematic diagram of the entire invention. Figure 1 ;
[0022] Figure 2 This is a three-dimensional schematic diagram of the entire invention. Figure 2 ;
[0023] Figure 3 This is a three-dimensional schematic diagram of the entire invention. Figure 3 ;
[0024] Figure 4 This is a partially enlarged schematic diagram of the linkage mechanism of the present invention. Figure 1 ;
[0025] Figure 5 This is a partially enlarged schematic diagram of the linkage mechanism of the present invention. Figure 2 ;
[0026] Figure 6 This is a schematic diagram showing the connection between the bottom plate before material discharge and the guide slider, push rod, bending rod, and push rod.
[0027] Figure 7This is a schematic diagram showing the connection between the positioning function plate, the push side rod, and the actuation sub-rod.
[0028] Figure 8 This is a schematic diagram showing the connection between the discharge front bottom plate, the waste bearing plate, the positioning function plate, the push side rod, and the actuating auxiliary rod;
[0029] Figure 9 This is a partial structural diagram of the feeding conveyor and the discharge tray of the present invention;
[0030] Figure 10 It is an exploded view of the rotating connector, the bottom plate before discharge, and the waste bearing plate;
[0031] Figure 11 This is a schematic diagram showing the connection of the discharge tray, the main body of the garbage drum screen, the support sleeve, and the magnetic shielding cover after being cut apart.
[0032] Among them, 1 is the main body of the garbage drum screen, 2 is the discharge cylinder, 3 is the driving component, 4 is the supporting base plate, 5 is the supporting sleeve plate, 6 is the permanent magnet block, 7 is the driving gear, 8 is the first straight tooth, 9 is the first helical tooth, 10 is the second transmission gear, 11 is the first action gear, 12 is the rotating sleeve, 13 is the actuating bending rod, 14 is the actuating push rod, 15 is the feeding conveyor, 16 is the rotating connector, 17 is the discharge front base plate, 18 is the base plate guide groove, 19 is the guide slider, 20 is the push support rod, 21 is the second action gear, 22 is the actuating auxiliary rod, 23 is the positioning function plate, 24 is the arc groove, 25 is the push side rod, 26 is the garbage bearing plate, 27 is the top slider, 28 is the discharge tray, and 29 is the magnetic shield. Detailed Implementation
[0033] To make the technical problems to be solved, the technical solutions, and the beneficial effects of this invention clearer, the invention will be further described in detail with reference to the embodiments and accompanying drawings. It should be understood that the specific embodiments described herein are merely illustrative of the invention and are not intended to limit the invention. The technical solutions of this invention are described in detail below with reference to the embodiments and accompanying drawings, but the scope of protection is not limited thereto.
[0034] like Figure 1As shown in Figure 11, this invention provides a waste-to-energy incineration device, including a supporting base plate 4. A waste drum screen body 1 is rotatably mounted on the supporting base plate 4 via multiple sets of driving components 3. A supporting sleeve plate 5 is fixedly mounted on the upper side of one end of the supporting base plate 4. The front end of the waste drum screen body 1 is rotatably inserted into the supporting sleeve plate 5. A feeding conveyor 15 is provided on the outer side of the front inlet of the waste drum screen body 1. A discharge front base plate 17 is rotatably mounted on the outlet end of the feeding conveyor 15. A waste bearing plate 2 is slidably mounted on the upper end of the discharge front base plate 17 along the left-right direction. 6. The front inlet of the garbage drum screen body 1 is connected to the discharge front bottom plate 17 and the garbage bearing plate 26 through a linkage mechanism. When the garbage drum screen body 1 rotates, the linkage mechanism drives the discharge front bottom plate 17 and the garbage bearing plate 26 to swing up and down, and at the same time drives the garbage bearing plate 26 to slide left and right on the upper end of the discharge front bottom plate 17. A ring-shaped permanent magnet block 6 is fixedly installed inside the front inlet of the garbage drum screen body 1. A fixed magnetic shielding cover 29 is installed inside the support sleeve plate 5 and near the top of the garbage drum screen body 1.
[0035] The main body 1 of the waste drum screen is a cylindrical structure with a higher front and lower rear, inclined at the rear. A discharge cylinder 2 is fixedly installed at the rear outlet of the main body 1, and the discharge cylinder 2 rotates synchronously with the main body 1. The discharge cylinder 2 is a cylindrical structure with openings at both ends, and the axis of the discharge cylinder 2 coincides with the axis of the main body 1. A ring of discharge holes is provided on the side wall of the discharge cylinder 2. A discharge port is provided on the supporting base plate 4, located below the discharge holes. Two sets of driving components 3 are provided on the front side of the upper end face of the supporting base plate 4, and two sets of driving components 3 are provided on the rear side of the upper end face of the supporting base plate 4. The two sets of driving components 3 on the front side support the waste drum screen 1 and drive it to rotate, while the two sets of driving components 3 on the rear side support the discharge cylinder 2 and drive it to rotate.
[0036] An annular groove is provided inside the front inlet of the garbage drum screen body 1. Multiple sets of permanent magnet blocks 6 are fixedly embedded inside the annular groove, forming a circular plate-like structure. When the garbage drum screen body 1 rotates, it drives the permanent magnet blocks 6 to rotate synchronously inside the garbage drum screen body 1.
[0037] The magnetic shielding cover 29 adopts an arc-shaped design. The inner arc surface of the magnetic shielding cover 29 maintains a very small and uniform gap with the outer wall of the garbage drum screen body 1, which can achieve the shielding effect.
[0038] A discharge plate 28 is provided inside the front inlet of the main body 1 of the garbage drum screen. The discharge plate 28 is located above the garbage bearing plate 26 and below the highest point of the permanent magnet block 6. The front end of the discharge plate 28 is inclined downward and extends to the outside of the front opening of the main body 1 of the garbage drum screen. The discharge plate 28 is fixedly connected to the support sleeve 5 through an external bracket. A downwardly inclined output plate is fixedly provided on one side of the front end of the discharge plate 28.
[0039] The discharge front base plate 17 and the waste carrying plate 26 both extend into the front inlet of the waste drum screen body 1. The discharge front base plate 17 is rotatably mounted at the rear end of the feeding conveyor 15 via a rotating connector 16. The rear end of the discharge front base plate 17 is inclined downwards, and the rotation axis of the rotating connector 16 is horizontally arranged along the left-right direction, allowing the discharge front base plate 17 to rotate up and down. Multiple top sliders 27 are fixedly mounted on the upper surface of the discharge front base plate 17, and multiple horizontally extending grooves are provided on the waste carrying plate 26. The top sliders 27 are slidably mounted inside the horizontal grooves. Through the cooperation of the top sliders 27 and the horizontal grooves, the waste carrying plate 26 can not only rotate up and down synchronously with the discharge front base plate 17, but also slide horizontally left and right on the upper end of the discharge front base plate 17. A baffle is fixedly mounted on each of the left and right sides of the waste carrying plate 26 to ensure that waste can smoothly pass through the waste carrying plate 26 and enter the waste drum screen body 1.
[0040] The linkage mechanism includes a drive gear 7, a first transmission gear, a second transmission gear 10, a first actuating gear 11, a second actuating gear 21, a rotating sleeve 12, a prying bending rod 13, a prying push rod 14, a guide slider 19, a pushing support rod 20, a prying auxiliary rod 22, a positioning function plate 23, a pushing side rod 25, and a top slider 27.
[0041] A drive gear 7 is fixedly installed on the outer side of the front inlet of the main body 1 of the garbage drum screen. A first transmission gear is rotatably installed on the lower side of the front end face of the support sleeve 5. The axis of the first transmission gear is horizontally arranged along the front-rear direction. The first transmission gear includes a first helical tooth 9 on the front side and a first straight tooth 8 on the rear side. The first straight tooth 8 of the first transmission gear meshes with the drive gear 7. A horizontal mounting plate is fixedly installed on the lower side of the front end face of the support sleeve 5. A second transmission gear 10, a first actuating gear 11, and a second actuating gear 21 are rotatably installed on the upper surface of the mounting plate. The axes of the second transmission gear 10, the first actuating gear 11, and the second actuating gear 21 are all kept vertical. The second transmission gear 10 includes a second helical tooth on the upper side and a second straight tooth on the lower side. The first helical tooth 9 of the first transmission gear meshes with the second helical tooth of the second transmission gear 10. The first actuating gear 11 and the second actuating gear 21 both mesh with the second straight tooth of the second transmission gear 10. A rotating sleeve 12 is rotatably provided at the outer edge of the upper end face of both the first actuating gear 11 and the second actuating gear 21 via a universal joint.
[0042] A bottom plate guide groove 18 is provided in the middle of the lower end face of the bottom plate 17 before discharge, and the extension direction of the bottom plate guide groove 18 coincides with the extension direction of the bottom plate 17 before discharge. The bottom plate guide groove 18 is a T-shaped groove structure, and a guide slider 19 is slidably arranged inside the bottom plate guide groove 18. A push rod 20 is rotatably arranged at one end of the guide slider 19 located on the outside of the bottom plate guide groove 18. A toggle push rod 14 is fixedly arranged at the end of the push rod 20 away from the guide slider 19. A toggle bending rod 13 is slidably inserted into the toggle push rod 14, and the axis of the part of the toggle bending rod 13 inserted into the toggle push rod 14 is perpendicular to the axis of the toggle push rod 14. The end of the toggle bending rod 13 away from the toggle push rod 14 is slidably inserted into the rotating sleeve 12 at the upper end of the first actuating gear 11.
[0043] A positioning function plate 23 is fixedly installed at the front end face of the support sleeve 5, and the positioning function plate 23 is located in a vertical plane in the front-back direction. An arc-shaped groove 24 is provided on the positioning function plate 23, and the axis of the arc-shaped groove 24 coincides with the rotation axis of the discharge front bottom plate 17. A horizontally sliding push rod 25 is slidably inserted into the arc-shaped groove 24, and one end of the push rod 25 is fixedly connected to the end face of the waste bearing plate 26. A toggle rod 22 is slidably inserted into the push rod 25, and the axis of the part of the toggle rod 22 inserted into the push rod 25 is perpendicular to the axis of the push rod 25. The end of the toggle rod 22 away from the push rod 25 is slidably inserted into the rotating sleeve 12 at the upper end of the second action gear 21.
[0044] The working principle of this invention is as follows:
[0045] The two sets of drive components 3 on the front and the two sets of drive components 3 on the rear jointly drive the main body 1 of the garbage drum screen and the discharge cylinder 2 to rotate synchronously. Garbage is discharged from above the feeding conveyor 15. The garbage inside the feeding conveyor 15 enters the main body 1 of the garbage drum screen along the garbage bearing plate 26. Since the main body 1 of the garbage drum screen is inclined, the garbage inside the main body 1 enters the discharge cylinder 2. As the discharge cylinder 2 and the main body 1 of the garbage drum screen rotate synchronously, smaller garbage is discharged downward from the discharge hole on the discharge cylinder 2 and falls into the discharge port on the support base plate 4, entering the next fine sorting process, where it is finely sorted by the air separator and the eddy current separator; while larger garbage is discharged outward from the rear opening of the discharge cylinder 2, thereby achieving pre-sorting of garbage by size.
[0046] When the main body 1 of the waste drum screen rotates, it drives the drive gear 7 to rotate synchronously. Since the first spur tooth 8 of the first transmission gear meshes with the drive gear 7, the drive gear 7 drives the first transmission gear to rotate. Since the first helical tooth 9 of the first transmission gear meshes with the second helical tooth of the second transmission gear 10, the first transmission gear drives the second transmission gear 10 to rotate. Since the second spur tooth of the second transmission gear 10 meshes with both the first actuating gear 11 and the second actuating gear 21, the second transmission gear 10 simultaneously drives both the first actuating gear 11 and the second actuating gear 21 to rotate.
[0047] When the first actuating gear 11 rotates, the rotating sleeve 12 at its upper end drives the lower end of the actuating bending rod 13 to rotate around the axis of the first actuating gear 11. During the rotation, the actuating bending rod 13 drives the actuating push rod 14 to move back and forth, and the actuating push rod 14 drives the pushing support rod 20 to move back and forth as well. The pushing support rod 20 drives the guide slider 19 to slide back and forth inside the bottom plate guide groove 18 on the bottom plate 17 before discharge, thereby causing the bottom plate 17 before discharge to swing up and down. The bottom plate 17 before discharge causes the waste carrying plate 26 to swing up and down as well. During this process, the actuating bending rod 13 slides inside the actuating push rod 14. When the waste carrying plate 26 swings up and down, the pushing side rod 25 fixed on one side of the waste carrying plate 26 slides back and forth along the arc groove 24 on the positioning function plate 23.
[0048] When the second actuating gear 21 rotates, it drives the actuating auxiliary rod 22 to rotate around its axis via the rotating sleeve 12 at its upper end. During rotation, the actuating auxiliary rod 22 drives the pushing side rod 25 to move back and forth in the left and right direction. The pushing side rod 25 drives the waste bearing plate 26 to slide back and forth in the left and right direction on the upper end of the discharge front bottom plate 17. During this process, the actuating auxiliary rod 22 slides inside the pushing side rod 25.
[0049] Therefore, when the main body 1 of the waste drum screen rotates, the main body 1 drives the waste carrying plate 26 to not only swing up and down but also slide left and right through the linkage mechanism. When the waste falls down the waste carrying plate 26, the up-and-down swinging motion evenly throws the waste along the surface of the waste carrying plate 26 towards the permanent magnet block 6, thus making the distribution of waste in the main body 1 more uniform; the left-and-right sliding motion shakes the waste along the surface of the waste carrying plate 26, making the waste throw faster, which can greatly reduce the problem of slow movement and reduced efficiency caused by waste congestion, and can also further improve the lateral distribution range of waste.
[0050] When waste enters the main body 1 of the waste drum screen, the permanent magnet block 6 attracts the magnetic metal in the waste as it falls. The rotation of the permanent magnet block 6 continues to attract the magnetic metal from the falling waste. When the permanent magnet block 6, now carrying the magnetic metal, rotates into the area covered by the magnetic shield 29, the highly permeable magnetic shield 29 provides a shortcut for the magnetic field. The magnetic field lines are drawn into the shield 29 and cannot effectively penetrate into the main body 1 of the waste drum screen. The magnetic field strength inside the main body 1 drops sharply, and the magnetic force becomes less than the weight and centrifugal force of the magnetic metal, causing it to detach. The detached magnetic metal falls into the discharge tray 28 and slides down the inclined tray to the front end, finally being discharged outwards along the output plate. This allows for the separate recovery of magnetic metal from the waste.
[0051] It will be apparent 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 invention can be implemented in other specific forms without departing from its spirit or essential characteristics. Therefore, the embodiments should be considered in all respects as exemplary and non-limiting, and the scope of the invention is defined by the appended claims rather than the foregoing description. Thus, all variations falling within the meaning and scope of equivalents of the claims are intended to be included within the present invention. No reference numerals in the claims should be construed as limiting the scope of the claims.
Claims
1. A waste-to-energy incineration apparatus, characterized by: The utility model provides a garbage drum screen body (1) is rotatoryly arranged on the support base plate (4) through a plurality of groups of driving elements (3), and the front end of garbage drum screen body (1) is rotatoryly inserted in the inside of support sleeve plate (5) on the one end upper side of support base plate (4), and the front end inlet of garbage drum screen body (1) is connected with the discharge front plate (17) and the garbage carrying plate (26) through linkage mechanism when garbage drum screen body (1) rotates, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is reciprocated on the upper end of discharge front plate (17) left and right reciprocating sliding simultaneously, and the garbage carrying plate (26) is The linkage mechanism further comprises a guide sliding block (19), a pushing support rod (20), a pushing push rod (14), and a pushing bent rod (13); a bottom plate guide groove (18) is arranged in the middle of the lower end surface of the pre-discharge bottom plate (17), and the guide sliding block (19) is slidably arranged in the bottom plate guide groove (18); the guide sliding block (19) is rotatably arranged with the pushing support rod (20) at one end outside the bottom plate guide groove (18), the pushing push rod (14) is fixedly arranged at one end of the pushing support rod (20) away from the guide sliding block (19), and the pushing bent rod (13) is slidably inserted into the rotating sleeve (12) at the upper end of the first action gear (11).
2. The waste-to-energy incinerator according to claim 1, wherein: The garbage drum sieve body (1) is a cylindrical structure with a front high and rear low inclination design, a discharge cylinder (2) is fixedly arranged at the rear end outlet of the garbage drum sieve body (1), and a row of discharge holes are arranged on the side wall of the discharge cylinder (2); a discharge port is arranged on the support bottom plate (4), and the discharge port is located below the discharge holes.
3. A waste-to-energy incineration device according to claim 2, wherein: Two groups of driving members (3) are arranged on the front side of the upper end surface of the support bottom plate (4), and two groups of driving members (3) are arranged on the rear side of the upper end surface of the support bottom plate (4), the two groups of driving members (3) on the front side support and drive the garbage drum sieve body (1) to rotate, and the two groups of driving members (3) on the rear side support and drive the discharge cylinder (2) to rotate.
4. The waste-to-energy incinerator of claim 1, wherein: A discharge supporting plate (28) is arranged in the front end inlet of the garbage drum sieve body (1), the discharge supporting plate (28) is located above the garbage bearing plate (26) and below the highest point of the permanent magnet block (6); the front end of the discharge supporting plate (28) is downwardly inclined and extends to the outside of the front end opening of the garbage drum sieve body (1), the discharge supporting plate (28) is fixedly connected with the support sleeve plate (5) through an external support, and a downwardly inclined output plate is fixedly arranged on one side of the front end of the discharge supporting plate (28).
5. The waste-to-energy incinerator of claim 1, wherein: The pre-discharge bottom plate (17) is rotatably arranged at the rear end of the feeding conveying member (15) through a rotating connecting member (16), the rear end of the pre-discharge bottom plate (17) is downwardly inclined, a plurality of top sliding blocks (27) are fixedly arranged on the upper end surface of the pre-discharge bottom plate (17), a plurality of leftward and rightward extending transverse sliding grooves are arranged on the garbage bearing plate (26), and the plurality of top sliding blocks (27) are respectively slidably arranged in the plurality of transverse sliding grooves.
6. The waste-to-energy incinerator of claim 1, wherein: A baffle is fixedly arranged on each of the left and right sides of the garbage bearing plate (26).
7. The waste-to-energy incinerator of claim 1, wherein: The linkage mechanism further comprises a positioning function plate (23), a pushing side rod (25) and a pushing secondary rod (22); a positioning function plate (23) is fixedly arranged at the front end face of the support sleeve plate (5), an arc-shaped slot (24) is arranged on the positioning function plate (23), a left-right horizontal pushing side rod (25) is slidingly inserted into the arc-shaped slot (24), and one end of the pushing side rod (25) is fixedly connected with the end face of a garbage bearing plate (26); a pushing secondary rod (22) is slidingly inserted into the pushing side rod (25), and one end of the pushing secondary rod (22), which is away from the pushing side rod (25), is slidingly inserted into the rotating sleeve (12) at the upper end of the second action gear (21).
Citation Information
Patent Citations
Rotary screen for garbage treatment
CN215277915U