A high-efficiency continuous waste incineration power generation system

By introducing flip-flop and collecting components into the waste incineration power generation system, combining continuous feed and oxygen supply control, the problem of incomplete waste incineration is solved, the thoroughness of incineration and power generation efficiency is improved, and the system safety and energy utilization are ensured.

CN114963192BActive Publication Date: 2025-09-05WUHAN SHENGTAI ENVIRONMENTAL PROTECTION EQUIP MFG CO LTD
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Patent Information

Application Number
CN202210567760.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-05-23
Publication Date
2025-09-05
Estimated Expiration
2042-05-23

AI Technical Summary

Technical Problem

The lack of automatic turning structure in the existing waste incineration power generation system leads to incomplete incineration and the additional driving structure increases equipment energy consumption.

Method used

The material turning assembly and material collection assembly are designed to realize automatic material turning and stable material collection of garbage through a linkage structure, combining continuous feed assembly and oxygen supply control to ensure the thoroughness and efficiency of waste incineration.

Benefits of technology

It has achieved thorough waste incineration and improved power generation efficiency, avoided feed blockage and oxygen waste, and improved the safety and energy utilization of the system.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a high-efficiency continuous waste incineration power generation technology field, comprising an incinerator, a feed port fixedly installed on the top of the incinerator, a top cover provided on the feed port, a feed door installed on the side wall of the incinerator by a hinge, an exhaust pipe fixedly installed on the outer wall of the other side of the incinerator, a waste heat boiler provided on one side of the incinerator, a steam turbine generator set provided on one side of the waste heat boiler, the side wall of the incinerator and the bottom of the waste heat boiler are connected by a flue gas duct, and the side wall of the incinerator and the top of the waste heat boiler are connected by a steam return pipe; in the present invention, by arranging a turning component and a material receiving component, through a linkage structure design, synchronous turning processing of waste filling and incineration process can be achieved, thereby stably improving the thoroughness and effectiveness of waste incineration, obtaining more energy for power generation, and ensuring the power generation efficiency of the overall system.
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Description

Technical Field

[0001] The present invention relates to the technical field of waste incineration power generation, and in particular to a high-efficiency continuous waste incineration power generation system. Background Art

[0002] Garbage is some waste and waste materials generated in people's daily life and production. Garbage contains many things. In densely populated cities, garbage disposal is a headache. The common practice for large amounts of garbage is to collect them and send them to landfills for landfill disposal. Although the garbage can be processed, it contains a large amount of non-degradable substances. These non-degradable substances cannot be decomposed in the soil, which can cause irreversible damage to the soil and damage the environment. Therefore, in order to protect the environment and to be able to deal with garbage, many places now use garbage incineration to deal with garbage. Garbage incineration can not only process garbage, but also be used to generate electricity and supplement energy.

[0003] The prior art discloses some invention patents in the field of vacuum coating technology, among which the invention patent with application number CN108167028A discloses a waste incineration power generation system, including a waste incinerator, a waste heat boiler and a steam turbine connected in sequence by pipelines, the exhaust outlet of the steam turbine is connected to the water inlet of the waste heat boiler through a steam-water circulation pipeline, and a main condenser, a condensate pump, a condensate heating mechanism, a deaerator and a water supply pump are arranged in sequence on the steam-water circulation pipeline along the condensate flow direction, and also includes a bypass condensation pipeline, one end of the bypass condensation pipeline is connected to the connecting pipeline between the waste heat boiler and the steam turbine and the other end is connected to the deaerator, and a temperature and pressure reducer and a bypass condenser are arranged in sequence on the bypass condensation pipeline along the condensate flow direction.

[0004] In the existing technology, there is no automatic garbage turning structure in the waste incineration power generation system. When the waste is incinerated, the waste cannot be automatically turned according to the waste incineration stage, and the completeness of the waste incineration cannot be guaranteed. Some systems are equipped with this structure, but the structure requires additional drive, which increases the energy consumption of the overall equipment.

[0005] Based on this, the present invention designs a high-efficiency continuous waste incineration power generation system to solve the above problems. Summary of the Invention

[0006] The purpose of the present invention is to provide a high-efficiency continuous waste incineration power generation system to solve the problem that in the prior art proposed in the above background technology, there is no automatic garbage turning structure in the waste incineration power generation system. When the waste is incinerated, the garbage cannot be automatically turned according to the garbage incineration stage, and the completeness of the garbage incineration cannot be guaranteed. Some systems are equipped with this structure, but the structure requires additional drive to use, which increases the energy consumption of the overall equipment.

[0007] To achieve the above-mentioned object, the present invention provides the following technical solutions: an efficient continuous waste incineration power generation system, comprising an incinerator, a feed port fixedly mounted on the top of the incinerator, a top cover provided on the feed port, a feed door installed on the side wall of the incinerator via a hinge, an exhaust pipe fixedly mounted on the outer wall of the other side of the incinerator, a waste heat boiler provided on one side of the incinerator, a steam turbine generator set provided on one side of the waste heat boiler, the side wall of the incinerator and the bottom of the waste heat boiler being connected via a flue gas duct, The side wall of the incinerator is connected to the top of the waste heat boiler through a steam return pipe, and an air control valve is provided on the outside of the steam return pipe. A flue gas filter pipe is fixedly installed on the other side wall of the waste heat boiler. The waste heat boiler and the steam turbine generator set are connected through a steam conduit. An incinerator is fixedly installed on the inner wall of the bottom surface of the feed port. A material collecting assembly is provided inside the incinerator, and the material collecting assembly is used for stably collecting garbage. A material turning assembly is rotatably installed on the inner wall of the incinerator, and the material turning assembly is used for stably turning over the garbage.

[0008] As a further solution of the present invention, the material receiving assembly includes a receiving frame, a bottom groove is provided on the bottom surface of the receiving frame, a combustion mesh plate is fixedly installed inside the bottom groove, and a special supporting spring rod is fixedly installed on the bottom of the receiving frame.

[0009] As a further solution of the present invention, the bottom end of the supporting special spring rod is fixedly connected to the inner wall of the bottom surface of the feed port, and side grooves are provided on both sides of the receiving frame, and meshing teeth are fixedly installed on the outer surface of the side grooves.

[0010] As a further solution of the present invention, two longitudinal studs are fixedly mounted on the top of the receiving frame in the longitudinal direction, and side tooth plates are fixedly mounted on the side walls of the longitudinal studs via connecting rods.

[0011] As a further solution of the present invention, the turning assembly includes a mounting shaft, which is laterally rotatably mounted on the inner wall of the incinerator, and the outside of the mounting shaft is fixedly mounted with a torsion spring, an engaging gear and a mounting roller from left to right.

[0012] As a further solution of the present invention, one end of the torsion spring is fixedly connected to the inner wall of the incinerator, a turning plate is fixedly installed on the outer wall of the mounting roller, and the meshing gear and the meshing teeth are meshed with each other.

[0013] As a further solution of the present invention, a continuous feeding assembly is provided inside the feed port for stable, continuous and anti-blocking feeding in the feed port, and the continuous feeding assembly includes a mounting shaft bracket.

[0014] As a further solution of the present invention, the mounting shaft bracket is fixedly installed inside the feed port, an internal threaded sleeve is rotatably installed inside the mounting shaft bracket, and a spiral feeding blade is fixedly installed outside the internal threaded sleeve.

[0015] As a further solution of the present invention, a mounting side panel is fixedly installed on the outer wall of the incinerator, an oxygen supply bottle is fixedly installed on the mounting side panel, the oxygen supply bottle is connected to the incinerator through an oxygen conduit, a control box is provided on the side wall of the oxygen supply bottle, and a control component is provided in the control box for automatically controlling the oxygen amount in the oxygen supply bottle.

[0016] As a further solution of the present invention, the control component includes a control knob, which is rotatably installed in a control box. An external gear is fixedly installed on the outside of the control knob. The control knob and the control box are connected by a wire, and the external gear and the side gear plate are meshed with each other.

[0017] Compared with the prior art, the present invention has the following beneficial effects:

[0018] 1. In the present invention, a turning assembly and a receiving assembly are provided in the incinerator. When the garbage is incinerated, the garbage is loaded into the incinerator through the feed port, and the garbage will fall into the receiving assembly in the incinerator. As the amount of garbage carried on the receiving assembly gradually increases, the pressure on the supporting special spring rod will increase. When the pressure on the supporting special spring rod exceeds its own supporting force, the receiving assembly will slowly descend, and the receiving frame will move down. The meshing teeth can drive the installation shaft with the meshing gear to rotate, so that the installation roller and the turning plate on the installation shaft rotate. The turning plate can realize automatic turning of the loaded garbage, making the garbage as loose as possible. When burning, the burner is turned on to burn. As the garbage continues to burn, the garbage slowly turns into slag. The weight of the garbage after slag formation will be less than before, and the pressure on the receiving assembly will also be reduced. When the bearing pressure is less than the elastic force of the supporting special spring rod, the supporting special spring rod can reset the receiving frame. When the receiving frame is reset, the flipping plate can also rotate in the opposite direction synchronously to further flip the garbage, so that the center stack of the garbage can be turned out, and the thoroughness of garbage incineration can be steadily improved. Through the linkage structure design, the synchronous flipping processing of garbage filling and incineration process can be achieved, thereby steadily improving the thoroughness and effectiveness of garbage incineration, obtaining more energy for power generation, and ensuring the power generation efficiency of the overall system.

[0019] 2. In the present invention, a continuous feeding assembly is provided in the feed port. When garbage is added, the receiving assembly is displaced, which can synchronously drive the longitudinal stud to move downward. When the longitudinal stud moves downward, it can drive the internal threaded sleeve threadedly connected to it to rotate, and the spiral feeding blades outside the internal threaded sleeve will also rotate synchronously. When the spiral feeding blades rotate, the garbage in the feed port can be stably fed downward in a spiral manner until the garbage addition is completed. Through the linkage structure design, continuity and stability of garbage feeding can be achieved, and at the same time, garbage blockage in the feed port can be effectively avoided.

[0020] 3. In the present invention, an oxygen supply bottle is provided on the outside and a control component is provided in the control box. When garbage is added, the material receiving component moves downward and the side gear plate moves downward synchronously. The control knob can be driven to rotate counterclockwise through the meshing action with the external gear to control the oxygen supply of the oxygen supply bottle, thereby providing sufficient oxygen for the subsequent garbage incineration. When the garbage has been incinerated for a period of time and the material receiving component moves upward to a certain extent, the control knob rotates counterclockwise to automatically reduce the oxygen supply and avoid waste of oxygen. The control effect is good and the garbage incineration effect is effectively guaranteed.

[0021] 4. In the present invention, a steam return pipe is further provided on the external waste heat boiler. After each garbage incineration is completed, the gas control valve can be directly opened, and a portion of the water vapor in the waste heat boiler can be guided back to the incinerator through the steam return pipe. The guided-back water vapor can dissolve some harmful gases remaining in the incinerator after the previous incineration or drive them out through the exhaust pipe, thereby avoiding the residual harmful gases and the occurrence of injuries to the staff. A portion of the high-temperature flue gas is used to heat the water vapor generated in the waste heat boiler, thereby greatly improving the overall safety of the system. BRIEF DESCRIPTION OF THE DRAWINGS

[0022] Figure 1 It is a schematic diagram of the overall structure of the present invention;

[0023] Figure 2 Schematic diagram of the explosion three-dimensional structure of the incinerator in the present invention;

[0024] Figure 3 It is an enlarged three-dimensional structural schematic diagram of the continuous feeding assembly in the present invention;

[0025] Figure 4 This is an enlarged exploded three-dimensional structural diagram of the material receiving assembly in the present invention;

[0026] Figure 5 It is an enlarged three-dimensional structural diagram of the material turning component in the present invention;

[0027] Figure 6 It is a schematic diagram of the enlarged structure of point A in the present invention;

[0028] Figure 7 It is a schematic diagram of the enlarged structure of point B in the present invention;

[0029] Figure 8 It is an enlarged three-dimensional structural diagram of the control component in the present invention.

[0030] In the accompanying drawings, the components represented by the reference numerals are as follows:

[0031] 1. Top cover; 2. Feed inlet; 3. Incinerator; 4. Exhaust pipe; 5. Oxygen supply bottle; 6. Mounting side panel; 7. Flue gas duct; 8. Air control valve; 9. Steam return pipe; 10. Flue gas filter duct; 11. Waste heat boiler; 12. Steam duct; 13. Steam turbine generator set; 14. Feed door; 15. Continuous feed assembly; 151. Mounting shaft bracket; 152. Internal threaded sleeve; 153. Spiral feed blade; 16. Turning assembly; 1 61. Flipping plate; 162. Mounting roller; 163. Meshing gear; 164. Torsion spring; 165. Mounting shaft; 17. Material receiving assembly; 171. Longitudinal stud; 172. Side tooth plate; 173. Bottom groove; 174. Meshing gear; 175. Side groove; 176. Receiving frame; 177. Combustion mesh plate; 178. Support special spring rod; 18. Control assembly; 181. Wire; 182. External gear; 183. Control knob. DETAILED DESCRIPTION

[0032] See also Figure 1-8 The present invention provides a technical solution: a high-efficiency continuous waste incineration power generation system, comprising an incinerator 3, a feed port 2 is fixedly installed on the top of the incinerator 3, a top cover 1 is provided on the feed port 2, a feed door 14 is installed on the side wall of the incinerator 3 through a hinge, an exhaust pipe 4 is fixedly installed on the outer wall of the other side of the incinerator 3, a waste heat boiler 11 is provided on one side of the incinerator 3, a steam turbine generator set 13 is provided on one side of the waste heat boiler 11, the side wall of the incinerator 3 is connected to the bottom of the waste heat boiler 11 through a flue gas duct 7, the incinerator 3 The side wall is connected to the top of the waste heat boiler 11 through a steam return pipe 9, and an air control valve 8 is provided on the outside of the steam return pipe 9. A flue gas filter pipe 10 is fixedly installed on the other side wall of the waste heat boiler 11. The waste heat boiler 11 and the steam turbine generator set 13 are connected through a steam conduit 12. An incinerator is fixedly installed on the inner wall of the bottom surface of the feed port 2. A material receiving assembly 17 is provided inside the incinerator 3, and the material receiving assembly 17 is used for stable collection of garbage. A material turning assembly 16 is installed on the inner wall of the incinerator 3, and the material turning assembly 16 is used for stable turning of garbage.

[0033] The specific implementation method is as follows: after each garbage incineration is completed, the gas control valve 8 can be directly opened, and a part of the water vapor in the waste heat boiler 11 can be guided back to the incinerator 3 through the steam return pipe 9. The guided-back water vapor can dissolve some harmful gases remaining in the incinerator 3 after the previous incineration or drive them out through the exhaust pipe 4, thereby avoiding the residual harmful gases and the occurrence of injuries to the staff. A part of the high-temperature flue gas is used to heat the water vapor generated in the waste heat boiler 11, which greatly improves the overall safety of the system.

[0034] The material receiving assembly 17 includes a receiving frame 176, a bottom groove 173 is provided on the bottom surface of the receiving frame 176, a combustion mesh plate 177 is fixedly installed inside the bottom groove 173, and a special supporting spring rod 178 is fixedly installed on the bottom of the receiving frame 176. The bottom end of the special supporting spring rod 178 is fixedly connected to the inner wall of the bottom surface of the feed port 2, and side grooves 175 are provided on both sides of the receiving frame 176. Engaging teeth 174 are fixedly installed on the outer surface of the side grooves 175. Two longitudinal studs 171 are fixedly installed on the top of the receiving frame 176, and side tooth plates 172 are fixedly installed on the side walls of the longitudinal studs 171 through connecting rods.

[0035] The turning assembly 16 includes a mounting shaft 165, which is laterally rotatably mounted on the inner wall of the incinerator 3. A torsion spring 164, a meshing gear 163 and a mounting roller 162 are fixedly mounted on the outside of the mounting shaft 165 from left to right. One end of the torsion spring 164 is fixedly connected to the inner wall of the incinerator 3, and a turning plate 161 is fixedly mounted on the outer wall of the mounting roller 162. The meshing gear 163 and the meshing teeth 174 are meshed with each other.

[0036] The specific implementation method is as follows: when the garbage is incinerated, the garbage is loaded into the incinerator 3 through the feed port 2, and the garbage will fall into the receiving assembly 17 in the incinerator 3. As the amount of garbage carried on the receiving assembly 17 gradually increases, the pressure on the supporting special spring rod 178 will increase. When the pressure on the supporting special spring rod 178 exceeds its own supporting force, the receiving assembly 17 will slowly fall, and the receiving frame 176 will move down. The meshing teeth 174 can drive the installation shaft 165 with the meshing gear 163 to rotate, so that the installation roller 162 on the installation shaft 165 and the turning plate 161 rotate, turning the material. Plate 161 can realize automatic turning over of the loaded garbage, making the garbage as loose as possible. When burning, turn on the burner to burn. As the garbage continues to burn, the garbage slowly becomes slag. The weight of the garbage after slag will be less than before, and the pressure on the receiving component 17 will also be reduced. When the bearing pressure is less than the elastic force of the supporting special spring rod 178, the supporting special spring rod 178 can reset the receiving frame 176. When the receiving frame 176 is reset, the turning plate 161 can also rotate in the opposite direction synchronously to further turn over the garbage, turn out the center stack of the garbage, and steadily improve the thoroughness of garbage incineration.

[0037] By providing the turning component 16 and the collecting component 17 and adopting the linkage structure design, the synchronous turning processing of the garbage filling and the incineration process can be realized, thereby stably improving the thoroughness and effectiveness of the garbage incineration, obtaining more energy for power generation, and ensuring the power generation efficiency of the overall system.

[0038] A continuous feeding assembly 15 is provided inside the feed port 2 for stable, continuous and anti-clogging feeding inside the feed port 2. The continuous feeding assembly 15 includes a mounting shaft frame 151, which is fixedly installed inside the feed port 2. An internal threaded sleeve 152 is rotatably installed inside the mounting shaft frame 151, and a spiral feeding blade 153 is fixedly installed outside the internal threaded sleeve 152.

[0039] The specific implementation method is as follows: when adding garbage, the material receiving component 17 is displaced, which can synchronously drive the longitudinal stud 171 to move downward. When the longitudinal stud 171 moves downward, it can drive the internal threaded sleeve 152 threadedly connected to it to rotate, and the spiral feeding blade 153 outside the internal threaded sleeve 152 will also rotate synchronously. When the spiral feeding blade 153 rotates, the garbage in the feed port 2 can be stably spirally fed downward until the garbage adding is completed.

[0040] By providing the continuous feeding assembly 15 and adopting the linkage structure design, the continuity and stability of the garbage feeding can be achieved, and at the same time, the garbage blockage in the feeding port 2 can be effectively avoided.

[0041] A mounting side panel 6 is fixedly mounted on the outer wall of the incinerator 3, an oxygen supply bottle 5 is fixedly mounted on the mounting side panel 6, the oxygen supply bottle 5 is connected to the incinerator 3 via an oxygen conduit, a control box is provided on the side wall of the oxygen supply bottle 5, and a control component 18 is provided in the control box for automatically controlling the amount of oxygen in the oxygen supply bottle 5.

[0042] The control assembly 18 includes a control knob 183, which is rotatably mounted in the control box. An external gear 182 is fixedly mounted on the outside of the control knob 183. The control knob 183 is connected to the control box via a wire 181, and the external gear 182 is meshed with the side gear plate 172.

[0043] The specific implementation method is as follows: when adding garbage, the material receiving assembly 17 moves downward, and the side gear plate 172 moves downward synchronously. It can drive the control knob 183 to rotate counterclockwise through the meshing action with the external gear 182 to control the oxygen supply of the oxygen supply bottle 5, thereby providing sufficient oxygen for the subsequent garbage incineration. When the garbage has been incinerated for a period of time, the material receiving assembly 17 moves upward to a certain extent, and the control knob 183 rotates clockwise in the opposite direction, thereby automatically reducing the oxygen supply.

[0044] By setting the control component 18, the automatic control of the oxygen supply during incineration can be effectively achieved, the control effect is good, and the incineration effect of the garbage is effectively guaranteed.

[0045] Working principle: When incinerating garbage, the garbage is loaded into the incinerator 3 through the feed port 2, and the garbage will fall into the receiving assembly 17 in the incinerator 3. As the amount of garbage carried on the receiving assembly 17 gradually increases, the pressure on the supporting special spring rod 178 will increase. When the pressure on the supporting special spring rod 178 exceeds its own supporting force, the receiving assembly 17 will slowly drop, and the receiving frame 176 moves down. The meshing teeth 174 can drive the installation shaft 165 with the meshing gear 163 to rotate, so that the installation roller 162 and the turning plate 161 on the installation shaft 165 rotate. The turning plate 161 can realize automatic turning of the loaded garbage to make the garbage as loose as possible. When burning, the burner is turned on to burn, and as the garbage With the continuous combustion, the garbage slowly becomes slag. The weight of the garbage after becoming slag will be less than before, and the pressure on the receiving assembly 17 will also be reduced. When the bearing pressure is less than the elastic force of the supporting special spring rod 178, the supporting special spring rod 178 can reset the receiving frame 176. When the receiving frame 176 is reset, the turning plate 161 can also rotate in the opposite direction synchronously to further turn the garbage over, so that the center stack of the garbage is turned out, and the thoroughness of garbage incineration is stably improved. When adding garbage, the receiving assembly 17 is displaced, which can synchronously drive the longitudinal stud 171 to move downward synchronously. When the longitudinal stud 171 moves downward, it can drive the internal threaded sleeve 152 threadedly connected thereto to rotate, and the spiral feeding blade 153 outside the internal threaded sleeve 152 The spiral feeding blades 153 will also rotate synchronously. When the spiral feeding blades 153 rotate, the garbage in the feed port 2 can be spirally fed downward in a stable manner until the garbage is added. When the garbage is added, the receiving component 17 moves downward, and the side tooth plate 172 moves downward synchronously. It can drive the control knob 183 to rotate counterclockwise through the meshing action with the external gear 182 to control the oxygen supply of the oxygen supply bottle 5, thereby providing sufficient oxygen for the subsequent garbage incineration. After a period of garbage incineration, when the receiving component 17 moves upward to a certain extent, the control knob 183 rotates clockwise in the opposite direction, thereby automatically reducing the oxygen supply. The high-temperature flue gas generated by the combustion of garbage can be introduced into the waste heat boiler 11 through the flue gas duct 7, which is used for the water in the waste heat boiler 11. The heated water generates a large amount of water vapor, which can be introduced into the steam turbine generator set 13 through the steam conduit 12 to generate electricity. At the same time, the high-temperature flue gas can be filtered through the flue gas filter pipe 10 and guided into the flue gas purification system. After each garbage incineration is completed, the air control valve 8 can be directly opened, and a part of the water vapor in the waste heat boiler 11 can be guided back to the incinerator 3 through the steam return pipe 9. The guided-back water vapor can dissolve some harmful gases remaining in the incinerator 3 after the previous incineration or drive them out through the exhaust pipe 4, avoiding the residual harmful gases and the occurrence of injuries to the staff. A part of the high-temperature flue gas is used to heat the water vapor generated in the waste heat boiler 11, which greatly improves the safety of the overall use of the system.

Claims

1. A high-efficiency continuous waste incineration power generation system, comprising an incinerator (3), a feed port (2) fixedly mounted on the top of the incinerator (3), a top cover (1) provided on the feed port (2), a feed door (14) mounted on a side wall of the incinerator (3) via a hinge, and an exhaust pipe (4) fixedly mounted on the other side outer wall of the incinerator (3), characterized in that: A waste heat boiler (11) is provided on one side of the incinerator (3), a steam turbine generator set (13) is provided on one side of the waste heat boiler (11), a side wall of the incinerator (3) and the bottom of the waste heat boiler (11) are connected via a flue gas duct (7), a side wall of the incinerator (3) and the top of the waste heat boiler (11) are connected via a steam return pipe (9), an air control valve (8) is provided on the outside of the steam return pipe (9), and a gas control valve (8) is provided on the other side wall of the waste heat boiler (11). A flue gas filtering pipe (10) is fixedly installed, the waste heat boiler (11) and the steam turbine generator set (13) are connected via a steam conduit (12), an incinerator is fixedly installed on the inner wall of the bottom surface of the feed port (2), a material collecting assembly (17) is provided inside the incinerator (3), and the material collecting assembly (17) is used for stably collecting garbage, and a material turning assembly (16) is installed on the inner wall of the incinerator (3), and the material turning assembly (16) is used for stably turning the garbage; The receiving assembly (17) includes a receiving frame (176), a bottom groove (173) is provided on the bottom surface of the receiving frame (176), a combustion mesh plate (177) is fixedly installed inside the bottom groove (173), and a supporting special spring rod (178) is fixedly installed at the bottom of the receiving frame (176); The bottom end of the supporting special spring rod (178) is fixedly connected to the inner wall of the bottom surface of the feed port (2), and the receiving frame (176) is provided with side grooves (175) on both sides, and the outer surface of the side groove (175) is fixedly mounted with meshing teeth (174); The top of the receiving frame (176) is longitudinally fixedly mounted with two longitudinal studs (171), and the side walls of the longitudinal studs (171) are fixedly mounted with side tooth plates (172) via connecting rods; The turning assembly (16) includes a mounting shaft (165), which is laterally rotatably mounted on the inner wall of the incinerator (3), and a torsion spring (164), a meshing gear (163) and a mounting roller (162) are fixedly mounted on the outside of the mounting shaft (165) from left to right. One end of the torsion spring (164) is fixedly connected to the inner wall of the incinerator (3), a turning plate (161) is fixedly installed on the outer wall of the mounting roller (162), and the meshing gear (163) and the meshing teeth (174) are meshed with each other.

2. The high-efficiency continuous waste incineration power generation system according to claim 1, characterized in that: A continuous feeding assembly (15) is provided inside the feed port (2) for stable, continuous, and anti-blocking feeding in the feed port (2). The continuous feeding assembly (15) includes a mounting shaft frame (151).

3. The high-efficiency continuous waste incineration power generation system according to claim 2, characterized in that: The mounting shaft frame (151) is fixedly mounted inside the feed port (2); an internal threaded sleeve (152) is rotatably mounted inside the mounting shaft frame (151); and a spiral feeding blade (153) is fixedly mounted outside the internal threaded sleeve (152).

4. The high-efficiency continuous waste incineration power generation system according to claim 1, characterized in that: A mounting side plate (6) is fixedly mounted on the outer wall of the incinerator (3), an oxygen supply bottle (5) is fixedly mounted on the mounting side plate (6), the oxygen supply bottle (5) is connected to the incinerator (3) via an oxygen conduit, a control box is provided on the side wall of the oxygen supply bottle (5), and a control component (18) is provided in the control box for automatically controlling the amount of oxygen in the oxygen supply bottle (5).

5. The high-efficiency continuous waste incineration power generation system according to claim 4, characterized in that: The control assembly (18) includes a control knob (183) which is rotatably mounted in a control box. An external gear (182) is fixedly mounted on the outside of the control knob (183). The control knob (183) is connected to the control box via a wire (181), and the external gear (182) is meshed with the side gear plate (172).

Citation Information

Patent Citations

  • Garbage incineration power generation system

    CN108167028A

  • Efficient burning furnace with rotary fluidization grate

    CN101532667A

  • Combustion-supporting device of garbage incinerator

    CN113464960A