A solid waste incineration and hot melting treatment device

By designing hot melt mesh plates and feeding systems in solid incineration hot melt treatment equipment, uniformly dispersing and first hot melting treatment of solids, the problem of slow melting speed caused by solid accumulation is solved, and the hot melt efficiency and product quality are improved.

CN119844771BActive Publication Date: 2025-06-24CHANGZHOU TIANXING ENVIRONMENTAL TECH CO LTD
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Patent Information

Application Number
CN202510324974.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-03-19
Publication Date
2025-06-24
Estimated Expiration
2045-03-19

AI Technical Summary

Technical Problem

Existing solid hot melt treatment equipment is prone to pile up when feeding, resulting in slow melting speed and affecting hot melting efficiency and product quality.

Method used

A solid incineration hot melt treatment equipment is designed, including a furnace body, a melt chamber and a material separation chamber. A hot melt mesh plate is provided in the material separation chamber, and a feeding drum and a feeding head are used to uniformly disperse the solids, and the first hot melt treatment is carried out through the hot melt mesh plate.

Benefits of technology

By evenly dispersing the solids and performing the first hot melt treatment, the hot melt efficiency is improved, solids are accumulated, and product quality is improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the technical field of hot-melt treatment, and specifically to a solid incineration hot-melt treatment device, including a furnace body. A melting cavity and a material distribution cavity are provided inside the furnace body. A hot-melt mesh plate is provided in the material distribution cavity; a feeding roller one and a feeding roller two, a feeding head, an adjusting assembly, a driving assembly one, a driving assembly two, and a feeding roller are provided above the hot-melt mesh plate. The feeding roller is rotatably arranged inside the feeding roller two. A number of material conveying members are provided on the outer wall of the feeding roller, and the material conveying members convey solids towards one end. The beneficial effect of the present invention is that the feeding roller one and the feeding roller can evenly disperse the solids on the hot-melt mesh plate, avoiding the accumulation of solids, and the efficiency of the solids that have been hot-melted once by the hot-melt mesh plate falling into the melting cavity for hot-melt is also improved. Moreover, when dispersing the solids, they will be broken again, facilitating subsequent hot-melt treatment.
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Description

Technical Field

[0001] The present invention relates to the technical field of hot melt treatment, and specifically to a solid incineration hot melt treatment device. Background Art

[0002] Currently, the technology of solid incineration hot melt treatment is gradually emerging. This technology is to send the pretreated solid into the combustion chamber and burn it at high temperature. During the combustion process, the organic substances in the solid are oxidized and converted into carbon dioxide, water vapor and ashes. Complete combustion can remove the organic substances in the solid. Using high temperature to melt the treated solid into a liquid state can achieve harmless treatment or resource utilization. For example, after the recycled glass is crushed and melted at high temperature and subsequent process treatment, glass wool can be formed to realize resource recycling.

[0003] However, the existing solid hot melt treatment equipment still has some problems. For example, when feeding, a certain volume of solid is directly put into the incinerator, which will cause the solid to accumulate in the furnace, resulting in a slow melting speed and affecting the hot melt efficiency and product quality. Summary of the Invention

[0004] The purpose of the present invention is to provide a solid incineration hot melt treatment device to solve the problems raised in the prior art.

[0005] To achieve the above purpose, the present invention provides the following technical solution: A solid incineration hot melt treatment device, including a furnace body, a melting cavity and a material distribution cavity are arranged inside the furnace body, and a hot melt mesh plate is arranged in the material distribution cavity;

[0006] And a feeding roller one and a feeding roller two arranged above the hot melt mesh plate, the feeding roller one is slidably connected with the feeding roller two, the interiors of both the feeding roller one and the feeding roller two are hollow structures, and the hollow structure of the feeding roller one coincides with the hollow structure of the feeding roller two;

[0007] And a feeding head, both the feeding roller one and the feeding roller two are rotatably connected with the feeding head, one end of the feeding head extends to the outside of the furnace body, and the feeding head is slidably connected with the furnace body through a sliding member;

[0008] And an adjusting component, the adjusting component is used to adjust the feeding speed of the feeding roller one and the feeding roller two;

[0009] And a driving component one, the driving component one is used to control the displacement of the feeding roller one;

[0010] And a driving component two, the driving component two is used to control the rotation of the feeding roller;

[0011] and a feeding roller rotatably arranged inside the second feeding drum. A plurality of feeding members are provided on the outer wall of the feeding roller, and the feeding members convey solid materials towards one end.

[0012] Further, the second feeding drum is located inside the hollow structure of the first feeding drum, and the centers of the first feeding drum and the second feeding drum are on the same horizontal line. A plurality of first discharge ports are provided on the side wall of the first feeding drum, and a plurality of second discharge ports are provided on the side wall of the second feeding drum. The first discharge ports coincide with the second discharge ports, and the first feeding drum is slidably connected to the second feeding drum.

[0013] Further, the feeding head includes a first sleeve and a second sleeve. The first sleeve is rotatably connected to the first feeding drum, and the second sleeve is rotatably connected to the second feeding drum. A first feeding port is provided on the side wall of the first sleeve, and a second feeding port is provided on the side wall of the second sleeve. The second feeding port coincides with the first feeding port, and the diameter of the second feeding port is larger than that of the first feeding port. A first feeding pipe is provided on the outer wall of the first feeding port. One end of the first feeding pipe extends outside the furnace body to be provided with a second feeding pipe, and one end of the second feeding pipe is connected to a feeding hopper, and the second feeding pipe is a flexible pipe.

[0014] Further, the sliding member includes a first slider sleeved on the outer wall of the first feeding pipe. A first sliding groove matching the first slider is formed on the furnace body. Shielding cloths are provided at both ends of the first slider, and one end of each shielding cloth extends to be connected to a winding wheel for winding the shielding cloth.

[0015] Further, the adjusting assembly includes a connecting rod rotatably connected to the second sleeve. A cross bar penetrates through the inner wall of the connecting rod, and the connecting rod is slidably connected to the cross bar. A connecting frame with a sliding connection is provided on the outer wall of the furnace body. Both ends of the connecting frame extend into the furnace body to be connected to both ends of the cross bar. An electric telescopic rod is provided on the outer wall of the furnace body, and the telescopic end of the electric telescopic rod is connected to the connecting frame.

[0016] Further, the first driving assembly includes a collar rotatably sleeved on the outer wall of the first feeding drum. A second slider is provided on the outer wall of the collar, and a second sliding groove matching the second slider is formed on the side wall of the furnace body;

[0017] A storage chamber is provided on the top of the furnace body. A connecting belt, a first automatic winding machine for winding the connecting belt, and a second automatic winding machine for winding the connecting belt are provided in the storage chamber. Connecting belts are provided on both the first automatic winding machine and the second automatic winding machine. One end of the connecting belt extends into the furnace body to be connected to the collar, and the two connecting belts are symmetrically distributed.

[0018] Further, the first driving assembly further includes a first annular gear and a first rack. The first annular gear is sleeved on the outer wall of the first feeding roller, the first rack is arranged inside the furnace body, and the first annular gear meshes with the first rack.

[0019] Further, the second driving assembly includes a second annular gear and a second rack. The second rack is fixedly arranged on the side wall of the furnace body. The second annular gear is sleeved on the outer wall of one end of the feeding roller, and the second annular gear meshes with the second rack. The tooth length of the second rack is greater than the tooth length of the second annular gear.

[0020] Further, the feeding member includes a conical cylinder and a spiral blade. The spiral blade is sleeved on the outer wall of the feeding roller, the conical cylinder is sleeved outside the spiral blade, and the radius of the conical cylinder gradually decreases along the feeding direction of the spiral blade. The minimum radius of the conical cylinder is greater than the radius of the feeding roller. A plurality of conical spikes are arranged inside the conical cylinder.

[0021] Further, heating wires are arranged on the hot-melting mesh plate, and blanking holes are arranged on the hot-melting mesh plate. A discharge port is arranged at the bottom of the melting cavity.

[0022] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0023] 1. The first feeding roller and the feeding roller can evenly disperse solid substances on the hot-melting mesh plate, avoiding the accumulation of solid substances. Moreover, the efficiency of the solid substances that have been hot-melted once by the hot-melting mesh plate falling into the melting cavity for hot-melting is also improved. Moreover, when dispersing the solid substances, they will be broken again, which is convenient for subsequent hot-melting treatment. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] Figure 1 is a three-dimensional structural schematic diagram of the whole of the present invention;

[0025] Figure 2 is a side-sectional structural schematic diagram of the whole of the present invention;

[0026] Figure 3 is a front-sectional structural schematic diagram of the whole of the present invention;

[0027] Figure 4 is of the present invention Figure 3 an enlarged structural schematic diagram of part A;

[0028] Figure 5 is a front-sectional structural schematic diagram of the first feeding roller of the present invention;

[0029] Figure 6 is a structural schematic diagram of the adjusting assembly of the present invention;

[0030] Figure 7 Structural schematic diagram of driving component 1 of the present invention;

[0031] Figure 8 For the present invention Figure 7 Enlarged structural schematic diagram at position B in;

[0032] Figure 9 Side view sectional structural schematic diagram of sleeve 1 of the present invention;

[0033] Figure 10 Structural schematic diagram of the coincidence of discharge port 1 and discharge port 2 of the present invention;

[0034] In the figure: 1. Furnace body; 2. Melting cavity; 3. Material distribution cavity; 4. Heat melting mesh plate; 5. Feeding roller 1; 51. Discharge port 1; 6. Feeding roller 2; 61. Discharge port 2; 7. Feeding head; 71. Sleeve 1; 72. Sleeve 2; 73. Feeding port 1; 74. Feeding port 2; 75. Feeding pipe 1; 76. Feeding pipe 2; 77. Feeding hopper; 8. Sliding member; 81. Slide block 1; 82. Slide groove 1; 83. Shading cloth; 84. Winding wheel; 9. Adjusting component; 91. Connecting rod; 92. Cross bar; 93. Connecting frame; 94. Electric telescopic rod; 10. Driving component 1; 101. Collar; 102. Slide block 2; 103. Slide groove 2; 104. Storage chamber; 105. Connecting belt; 106. Automatic winder 1; 107. Automatic winder 2; 108. Ring gear 1; 109. Rack 1; 11. Driving component 2; 111. Ring gear 2; 112. Rack 2; 12. Feeding roller; 13. Material conveying member; 131. Conical cylinder; 132. Spiral blade; 133. Conical thorn head; 14. Discharge port. Specific embodiments

[0035] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0036] Embodiment: As Figures 1 - 10 shown, the present invention provides a solid incineration heat melting treatment device, including a furnace body 1, a melting cavity 2 and a material distribution cavity 3 are provided inside the furnace body 1, and a heat melting mesh plate 4 is provided in the material distribution cavity 3;

[0037] and a first feeding roller 5 and a second feeding roller 6 disposed above the hot melt mesh plate 4, the first feeding roller 5 is slidably connected to the second feeding roller 6, the interiors of both the first feeding roller 5 and the second feeding roller 6 are hollow structures, and the hollow structure of the first feeding roller 5 coincides with the hollow structure of the second feeding roller 6;

[0038] The second feeding roller 6 is located inside the hollow structure of the first feeding roller 5, and the centers of the first feeding roller 5 and the second feeding roller 6 are on the same horizontal line. A plurality of first discharge ports 51 are provided on the side wall of the first feeding roller 5, and a plurality of second discharge ports 61 are provided on the side wall of the second feeding roller 6. The first discharge ports 51 coincide with the second discharge ports 61, and the first feeding roller 5 is slidably connected to the second feeding roller 6. Specifically, by changing the overlapping range of the first discharge ports 51 and the second discharge ports 61, the discharge speed of the first feeding roller 5 and the second feeding roller 6 is adjusted. The adjustment process is as follows: Move the second feeding roller, and the position of the first feeding roller does not move, so that the relative position between the second feeding roller and the first feeding roller changes, and thus the overlapping range of the first discharge ports 51 and the second discharge ports 61 can be changed.

[0039] and a feeding head 7. Both the first feeding roller 5 and the second feeding roller 6 are rotatably connected to the feeding head 7. One end of the feeding head 7 extends outside the furnace body 1, and the feeding head 7 is slidably connected to the furnace body 1 through a sliding member 8;

[0040] The feeding head 7 includes a first sleeve 71 and a second sleeve 72. The first sleeve 71 is rotatably connected to the first feeding roller 5, and the second sleeve 72 is rotatably connected to the second feeding roller 6. A first feeding port 73 is provided on the side wall of the first sleeve 71, and a second feeding port 74 is provided on the side wall of the second sleeve 72. The second feeding port 74 coincides with the first feeding port 73, and the diameter of the second feeding port 74 is larger than the diameter of the first feeding port 73. This is to ensure that when adjusting the overlapping range of the first discharge ports 51 and the second discharge ports 61, the first feeding port 73 and the second feeding port 74 can be used normally, and ensure that solid substances can pass through the first feeding port 73 and the second feeding port 74 and enter the second feeding roller 6. A first feeding pipe 75 is provided on the outer wall of the first feeding port 73. One end of the first feeding pipe 75 extends outside the furnace body 1 and is provided with a second feeding pipe 76. One end of the second feeding pipe 76 is connected to a feeding hopper 77, and the second feeding pipe 76 is a flexible pipe.

[0041] The sliding member 8 includes a first slider 81 sleeved on the outer wall of the first feed pipe 75. A first chute 82 matching the first slider 81 is formed on the furnace body 1. Shielding cloths 83 are provided at both ends of the first slider 81. One end of each shielding cloth 83 extends to be connected to a winding wheel 84 for winding the shielding cloth 83. The function of the shielding cloth 83 is to reduce the overflow of high-temperature gas from the furnace body 1. When the first slider 81 slides, the winding wheels 84 on both sides will automatically wind up the shielding cloth 83, keeping the shielding cloth 83 always in a taut state, preventing the shielding cloth 83 from being in a redundant state and maintaining tidiness and beauty.

[0042] The using process of the feeding head 7 is as follows: Solids fall into the second feed pipe 76 from the feed hopper 77, are conveyed along the second feed pipe 76 to the first feed pipe 75, and finally fall into the second feed roller. During feeding, if the first feed roller 5 and the second feed roller move horizontally, they will drive the first feed pipe 75 to move horizontally at this time. The first feed pipe 75 moves along the track of the first chute 82 through the first slider 81. Since the second feed pipe 76 is a flexible pipe, it is not affected. When the first feed roller and the second feed roller rotate, since they are rotatably connected to the first sleeve 71 and the second sleeve 72, it will not affect the use of the first feed pipe 75 either.

[0043] And an adjusting assembly 9 for adjusting the feeding speeds of the first feed roller 5 and the second feed roller 6;

[0044] And a feed roller 12 rotatably arranged inside the second feed roller 6. A plurality of feeding members 13 are provided on the outer wall of the feed roller 12 for feeding solids to one end. The adjusting assembly 9 includes a connecting rod 91 rotatably connected to the second sleeve 72. A cross bar 92 penetrates through the inner wall of the connecting rod 91, and the connecting rod 91 is slidably connected to the cross bar 92. A connecting frame 93 slidably connected to the outer wall of the furnace body 1 is provided on the outer wall of the furnace body 1. Both ends of the connecting frame 93 extend into the furnace body 1 and are connected to both ends of the cross bar 92. An electric telescopic rod 94 is provided on the outer wall of the furnace body 1, and the telescopic end of the electric telescopic rod 94 is connected to the connecting frame 93.

[0045] The usage process of the adjusting component 9 is as follows: Start the electric telescopic rod 94. The electric telescopic rod 94 will drive the connecting frame 93 to move. The connecting frame 93 will drive the cross bar 92 to move. The cross bar 92 will drive the connecting rod 91 to move. And the connecting rod 91 will push the second sleeve 72 to move. At this time, the second sleeve 72 only pushes the second feeding roller 6 to move, causing a relative displacement between the second feeding roller 6 and the first feeding roller 5, and adjusting the overlapping range of the first discharge port 51 and the second discharge port 61. The larger the overlapping range, the faster the discharge. The smaller the overlapping range, the slower the discharge. And during the horizontal movement of the second sleeve 72, it will move along the track of the cross bar 92 through the connecting rod 91.

[0046] and a first driving component 10, where the first driving component 10 is used to control the displacement of the first feeding roller 5;

[0047] The first driving component 10 includes a collar 101 which is rotatably sleeved on the outer wall of the first feeding roller 5. A second slider 102 is provided on the outer wall of the collar 101. A second sliding groove 103 matching the second slider 102 is formed on the side wall of the furnace body 1. When the collar 101 moves, it will move along the track of the second sliding groove 103 through the second slider 102.

[0048] A storage chamber 104 is provided at the top of the furnace body 1. A connecting belt 105, an automatic winder one 106 and an automatic winder two 107 for winding the connecting belt 105 are provided in the storage chamber 104. The automatic winder one 106 and the automatic winder two 107 are both provided with the connecting belt 105. One end of the connecting belt 105 extends into the furnace body 1 and is connected to the collar 101, and the two connecting belts 105 are symmetrically distributed.

[0049] The first driving component 10 further includes a first annular gear 108 and a first rack 109. The first annular gear 108 is sleeved on the outer wall of the first feeding roller 5. The first rack 109 is provided inside the furnace body 1, and the first annular gear 108 and the first rack 109 are meshed with each other.

[0050] The usage process of the first driving component 10 is as follows: Start the automatic winder one 106 or the automatic winder two 107 for winding. Only one of them can be used for winding at the same time, and the other is for unwinding. Since winding will generate a pulling force on the connecting belt 105 to drive the collar 101 to move, the first feeding roller 5 will also be pulled to one side to make it move. And during the movement of the first feeding roller 5, the first annular gear 108 on its outer wall meshes with the first rack 109 and rotates, thereby driving the first feeding roller 5 to rotate. By controlling the automatic winder one 106 and the automatic winder two 107 to wind alternately, the first feeding roller 5 can perform a reciprocating motion.

[0051] and a second driving component 11 for controlling the rotation of the feeding roller 12.

[0052] The second driving component 11 includes a second annular gear 111 and a second rack 112. The second rack 112 is fixedly arranged on the side wall of the furnace body 1. The second annular gear 111 is sleeved on the outer wall of one end of the feeding roller 12, and the second annular gear 111 meshes with the second rack 112. The tooth length of the second rack 112 is greater than the tooth length of the second annular gear 111, so as to ensure that when the position of the first feeding roller 5 is adjusted horizontally, the second annular gear 111 on the outer wall of the feeding roller 12 is always meshed with the second rack 112.

[0053] The using process of the second driving component 11 is as follows: when the first feeding roller 5 moves, it will drive the second feeding roller 6 to move synchronously. At this time, the second feeding roller 6 will drive the feeding roller 12 to move. During the movement of the feeding roller 12, the second annular gear 111 on its outer wall will mesh with the second rack 112, so that the feeding roller 12 will rotate self - clockwise.

[0054] The feeding member 13 includes a conical cylinder 131 and a spiral blade 132. The spiral blade 132 is sleeved on the outer wall of the feeding roller 12. The conical cylinder 131 is sleeved outside the spiral blade 132, and the radius of the conical cylinder 131 gradually decreases along the feeding direction of the spiral blade 132. The minimum radius of the conical cylinder 131 is greater than the radius of the feeding roller 12. A number of conical spikes 133 are arranged inside the conical cylinder 131.

[0055] The using process of the feeding member 13 is as follows: when the feeding roller 12 rotates self - clockwise, the spiral blade 132 on its outer wall will convey the solid material and convey it into the conical cylinder 131. Since the diameter of the conical cylinder 131 gradually becomes smaller, the solid material will be gradually squeezed. And because there are conical spikes 133 inside the conical cylinder 131, the solid material particles that are not completely dispersed will be dispersed again, avoiding blocking the hot - melt mesh plate 4 and also improving the hot - melt efficiency.

[0056] The hot - melt mesh plate 4 is provided with heating wires, and the hot - melt mesh plate 4 is provided with material - dropping holes. A discharge port 14 is arranged at the bottom of the melting cavity 2.

[0057] Working principle of the present invention: Solid materials enter the second feeding roller 6 from the feeding head 7. Through the conveying members on the feeding roller 12, the solid materials can be evenly dispersed. Then, the automatic rewinder drives the first feeding roller 5 to reciprocate. During the reciprocating movement, the solid materials fall onto the hot-melt mesh plate 4 through the first discharge port 51 and the second discharge port 61, and are evenly distributed, avoiding the accumulation of solid materials. Finally, the solid materials on the hot-melt mesh plate 4 fall into the melting cavity 2 for hot melting. Since the solid materials are evenly distributed and undergo primary hot melting, the hot-melting efficiency will be improved. When dispersing the solid materials, they will also be crushed again to facilitate subsequent hot-melting treatment.

[0058] For those skilled in the art, it is obvious that the present invention is not limited to the details of the above exemplary embodiments, and without departing from the spirit or basic characteristics of the present invention, the present invention can be implemented in other specific forms. Therefore, from any point of view, the embodiments should be regarded as exemplary and non-restrictive. The scope of the present invention is defined by the appended claims rather than the above description. Therefore, all changes falling within the meaning and scope of the equivalent elements of the claims are intended to be included in the present invention. Any reference signs in the claims should not be regarded as limiting the claims involved.

Claims

1. A solid matter incineration hot melting treatment equipment, characterized in that: It comprises a furnace body (1), wherein a melting chamber (2) and a material distribution chamber (3) are provided inside the furnace body (1), and a hot-melt mesh plate (4) is provided inside the material distribution chamber (3); and a feeding roller 1 (5) and a feeding roller 2 (6) arranged above the hot melt screen plate (4), wherein the feeding roller 1 (5) is slidably connected to the feeding roller 2 (6), the interiors of the feeding roller 1 (5) and the feeding roller 2 (6) are both hollow structures, and the hollow structure of the feeding roller 1 (5) overlaps with the hollow structure of the feeding roller 2 (6); and a feeding head (7), wherein the first feeding roller (5) and the second feeding roller (6) are both rotatably connected to the feeding head (7), one end of the feeding head (7) extends to the outside of the furnace body (1), and the feeding head (7) and the furnace body (1) are slidably connected via a sliding member (8); and an adjusting component (9), wherein the adjusting component (9) is used to adjust the feeding speed of the feeding roller 1 (5) and the feeding roller 2 (6); and a feeding roller (12), the feeding roller (12) being rotatably disposed inside the second feeding roller (6), the outer wall of the feeding roller (12) being provided with a plurality of feeding members (13), the feeding members (13) conveying solid matter to one end; The feeding member (13) comprises a conical tube (131) and a spiral blade (132), wherein the spiral blade (132) is sleeved on the outer wall of the feeding roller (12), and the conical tube (131) is sleeved on the outer side of the spiral blade (132), and the radius of the conical tube (131) gradually decreases along the feeding direction of the spiral blade (132), and the minimum radius of the conical tube (131) is greater than the radius of the feeding roller (12), and a plurality of conical spikes (133) are provided inside the conical tube (131); and a driving assembly 1 (10), wherein the driving assembly 1 (10) is used to control the displacement of the feeding roller 1 (5); and a second drive component (11), wherein the second drive component (11) is used to control the rotation of the feed roller (12); The second feeding roller (6) is located inside the hollow structure of the first feeding roller (5), and the centers of the first feeding roller (5) and the second feeding roller (6) are located on the same horizontal line. The side wall of the first feeding roller (5) is provided with a plurality of first discharge ports (51), and the side wall of the second feeding roller (6) is provided with a plurality of second discharge ports (61). The first discharge port (51) overlaps with the second discharge port (61), and the first feeding roller (5) is slidably connected to the second feeding roller (6).

2. The solid matter incineration and hot melting treatment equipment according to claim 1 is characterized in that: The feeding head (7) comprises a sleeve 1 (71) and a sleeve 2 (72), wherein the sleeve 1 (71) is rotatably connected to the feeding roller 1 (5), and the sleeve 2 (72) is rotatably connected to the feeding roller 2 (6). A feed port 1 (73) is provided on the side wall of the sleeve 1 (71), and a feed port 2 (74) is provided on the side wall of the sleeve 2 (72). The feed port 2 (74) coincides with the feed port 1 (73), and the diameter of the feed port 2 (74) is larger than the diameter of the feed port 1 (73). A feed pipe 1 (75) is provided on the outer wall of the feed port 1 (73), and one end of the feed pipe 1 (75) extends to the outside of the furnace body (1) and is provided with a feed pipe 2 (76), and one end of the feed pipe 2 (76) is connected to a feed hopper (77), and the feed pipe 2 (76) is a flexible pipe.

3. The solid matter incineration and hot melting treatment equipment according to claim 2 is characterized in that: The sliding member (8) comprises a slider (81), wherein the slider (81) is sleeved on the outer wall of the feed pipe (75), and a slide groove (82) matching the slider (81) is provided on the furnace body (1), and shielding cloth (83) is provided at both ends of the slider (81), and one end of the shielding cloth (83) extends to be connected to a winding wheel (84), and the winding wheel (84) is used to wind up the shielding cloth (83).

4. The solid matter incineration and hot melting treatment equipment according to claim 2, characterized in that: The adjustment assembly (9) comprises a connecting rod (91), the connecting rod (91) being rotatably connected to the second sleeve (72), a cross bar (92) penetrating the inner wall of the connecting rod (91), the connecting rod (91) being slidably connected to the cross bar (92), the outer wall of the furnace body (1) being provided with a connecting frame (93) being slidably connected, the two ends of the connecting frame (93) extending into the interior of the furnace body (1) and being connected to the two ends of the cross bar (92), the outer wall of the furnace body (1) being provided with an electric telescopic rod (94), the telescopic end of the electric telescopic rod (94) being connected to the connecting frame (93).

5. The solid matter incineration and hot melting treatment equipment according to claim 1 is characterized in that: The driving assembly 1 (10) comprises a sleeve (101), the sleeve (101) being rotatably sleeved on the outer wall of the feeding roller 1 (5), the outer wall of the sleeve (101) being provided with a slider 2 (102), and the side wall of the furnace body (1) being provided with a slide groove 2 (103) matching the slider 2 (102); A storage chamber (104) is provided on the top of the furnace body (1), and a connecting belt (105) and an automatic winder 1 (106) and an automatic winder 2 (107) for winding up the connecting belt (105) are provided in the storage chamber (104), and the automatic winder 1 (106) and the automatic winder 2 (107) are both provided with a connecting belt (105), one end of the connecting belt (105) extends into the furnace body (1) to be connected to the sleeve (101), and the two connecting belts (105) are symmetrically distributed.

6. The solid matter incineration and hot melting treatment equipment according to claim 1, characterized in that: The driving assembly 1 (10) further comprises a ring gear 1 (108) and a rack 1 (109), wherein the ring gear 1 (108) is sleeved on the outer wall of the feeding roller 1 (5), and the rack 1 (109) is arranged inside the furnace body (1), and the ring gear 1 (108) and the rack 1 (109) are meshed with each other.

7. The solid matter incineration and hot melting treatment equipment according to claim 1, characterized in that: The driving assembly 2 (11) comprises a ring gear 2 (111) and a rack 2 (112), wherein the rack 2 (112) is fixedly mounted on the side wall of the furnace body (1), the ring gear 2 (111) is sleeved on the outer wall of one end of the feeding roller (12), and the ring gear 2 (111) is meshed with the rack 2 (112), and the tooth length of the rack 2 (112) is greater than the tooth length of the ring gear 2 (111).

8. The solid matter incineration and hot melting treatment equipment according to claim 1, characterized in that: The hot melt screen (4) is provided with a heating wire, and the hot melt screen (4) is provided with a material discharge hole, and the bottom of the melting cavity (2) is provided with a material discharge port (14).

Citation Information

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