An in-kiln conveying line applied to a mixed firing kiln

CN224740199UActive Publication Date: 2026-09-11CHONGQING DONGPENG SMART HOME CO LTD +3
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Patent Information

Application Number
CN202522339197.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-11-04
Publication Date
2026-09-11
Estimated Expiration
2035-11-04

AI Technical Summary

Technical Problem

[0004]本实用新型的目的在于提出一种应用于混烧窑的入窑运输线,解决现有技术中的入窑运输线通常采用固定输送路径,难以灵活应对施釉与烧制环节间的产能波动,导致容易出现砖料堵塞现象或空窑现象的问题

Benefits of technology

通过第一输送组件、第二输送组件、第三输送组件、第四输送组件、第五输送组件、第六输送组件、第一换向组件、第二换向组件、第三换向组件、第四换向组件和储砖组件,当施釉加工效率大于入窑烧制效率时,不仅能够将部分砖料自动分流至储砖组件临时储存,有效避免前端积压和堵塞,当施釉加工效率小于入窑烧制效率时,而且还能自动从储砖组件中提取砖料补充入窑,有效防止空窑现象,确保了混烧窑的连续和稳定运行,从而提升了整体生产效率。

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Abstract

A kiln feed conveyor line for a mixed-firing kiln includes a first conveying assembly, a second conveying assembly, a third conveying assembly, a fourth conveying assembly, a fifth conveying assembly, a sixth conveying assembly, a first reversing assembly, a second reversing assembly, a third reversing assembly, a fourth reversing assembly, and a brick storage assembly. The first conveying assembly is connected to one end of the fourth conveying assembly and one end of the second conveying assembly via the first reversing assembly. The third conveying assembly is connected to one end of the sixth conveying assembly and the other end of the second conveying assembly via the second reversing assembly. The other end of the fourth conveying assembly is connected to the brick storage assembly and the fifth conveying assembly via the third reversing assembly. This invention provides a kiln feed conveyor line for a mixed-firing kiln, solving the problem that existing kiln feed conveyor lines typically use fixed conveying paths, making it difficult to flexibly respond to capacity fluctuations between glazing and firing stages, leading to brick blockage or empty kiln phenomena.
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Description

Technical Field

[0001] This utility model relates to the field of ceramic tile production technology, and in particular to a kiln feed conveyor line applied to a co-firing kiln. Background Technology

[0002] In today's industrial production field, co-firing kilns, as key thermal equipment, occupy a pivotal position. They are widely used in many industries such as ceramics, glass, refractory materials, and metallurgy, and are the core equipment for achieving high-temperature material treatment and product firing.

[0003] In the production of architectural ceramics, glazed brick blanks need to be fired at high temperature in a mixed-firing kiln. Traditional kiln transport lines usually use fixed transport paths, which makes it difficult to flexibly cope with the capacity fluctuations between the glazing and firing stages. For example, when the glazing efficiency is higher than the kiln firing efficiency, it is easy to cause brick materials to accumulate and block in front of the kiln, affecting continuous production; conversely, insufficient material supply may cause empty kilns, reducing equipment utilization and energy efficiency. Utility Model Content

[0004] The purpose of this invention is to propose a kiln feeder transport line for use in mixed-firing kilns, which solves the problem that existing kiln feeder transport lines usually use fixed transport paths, making it difficult to flexibly cope with the capacity fluctuations between the glazing and firing stages, resulting in brick blockage or empty kiln phenomena.

[0005] To achieve this objective, the present invention adopts the following technical solution: A kiln feed conveyor line for a co-firing kiln includes a first conveying assembly, a second conveying assembly, a third conveying assembly, a fourth conveying assembly, a fifth conveying assembly, a sixth conveying assembly, a first reversing assembly, a second reversing assembly, a third reversing assembly, a fourth reversing assembly, and a brick storage assembly; The first conveying component, the second conveying component, the third conveying component, the fourth conveying component, the fifth conveying component, and the sixth conveying component are respectively used to convey bricks; the first reversing component, the second reversing component, the third reversing component, and the fourth reversing component are respectively used to reverse and convey bricks; and the brick storage component is used to store bricks or replenish bricks. The first conveying component is connected to one end of the fourth conveying component and one end of the second conveying component through the first reversing component. The third conveying component is connected to one end of the sixth conveying component and the other end of the second conveying component through the second reversing component. The other end of the fourth conveying component is connected to one end of the brick storage component and one end of the fifth conveying component through the third reversing component. The other end of the sixth conveying component is connected to the other end of the fifth conveying component through the fourth reversing component.

[0006] Furthermore, the first conveying assembly includes a conveying frame, a bearing housing, a rotating rod, a pulley, a conveyor belt, a support bar, a support frame, and a first drive unit; The bearing housing is mounted on the conveyor frame, and the two ends of the rotating rod are rotatably mounted on the two bearing housings respectively. The rotating rod is equipped with the pulley, which is located inside the bearing housing. The two ends of the conveyor belt are respectively mounted on the two pulleys. The first driving unit is used to drive the rotating rod to rotate. The support frame is mounted on the conveyor frame, and the support frame is equipped with the support bar, which is used to support the conveyor belt.

[0007] Specifically, the first reversing assembly includes a base frame, a second drive unit, a third drive unit, a rotating plate, a mounting plate, a first roller frame, a first conveying roller, and a fourth drive unit; The second drive unit is mounted on the top surface of the base frame, and the output end of the second drive unit is connected to the rotating plate. The second drive unit is used to drive the rotating plate to rotate. The third drive unit is mounted on the rotating plate, and the output end of the third drive unit is mounted on the mounting plate. The third drive unit is used to drive the mounting plate to move up and down. The first roller frame is mounted on the mounting plate, and a plurality of the first conveying rollers are rotatably mounted on the first roller frame. The fourth drive unit is used to drive the plurality of the first conveying rollers to rotate.

[0008] Preferably, the first reversing assembly further includes a guide rod and a buffer pad; The buffer pad is installed on the mounting plate, one end of the guide rod is installed on the rotating plate, the other end of the guide rod is slidably installed with the mounting plate, and the other end of the guide rod is provided with a limiting block, which can abut against the buffer pad.

[0009] In some embodiments, the brick storage assembly includes a fixed frame, a lifting platform, a movable frame, a second roller frame, a second conveying roller, a sixth drive unit, a seventh drive unit, and an eighth drive unit; The lifting platform is movable up and down on the fixed frame, and the movable frame is movable forward and backward on the lifting platform. The sixth drive unit is used to drive the lifting platform to rise and fall, and the seventh drive unit is used to drive the movable frame to move forward and backward. The movable frame is equipped with a plurality of second roller frames, each second roller frame is equipped with a plurality of second conveying rollers, and each second roller frame is equipped with the eighth drive unit, which is used to drive the second conveying rollers to rotate.

[0010] Furthermore, the sixth drive unit includes a sixth slide rail, a sixth slider, a sixth gear rail, a sixth gear, and a sixth motor; The fixed frame is equipped with the sixth slider, the sixth slide rail and the sixth gear rail are respectively installed on the lifting platform, the sixth slide rail is slidably installed on the sixth slider, the sixth motor is installed on the fixed frame, and the output end of the sixth motor is equipped with the sixth gear, which meshes with the sixth gear rail.

[0011] Specifically, the seventh drive unit includes a seventh slide rail, a seventh gear rail, a seventh gear, and a seventh motor; The seventh slide rail is installed on the inner top surface and inner bottom surface of the lifting platform, the seventh gear is installed on the inner bottom surface of the lifting platform, the seventh motor is installed on the moving frame, and the seventh gear is installed on the output end of the seventh motor, the seventh gear meshing with the seventh gear.

[0012] Compared with the prior art, one of the above technical solutions has the following beneficial effects: Through the first conveying component, second conveying component, third conveying component, fourth conveying component, fifth conveying component, sixth conveying component, first reversing component, second reversing component, third reversing component, fourth reversing component, and brick storage component, when the glazing processing efficiency is greater than the kiln firing efficiency, not only can some brick material be automatically diverted to the brick storage component for temporary storage, effectively avoiding front-end accumulation and blockage, but when the glazing processing efficiency is less than the kiln firing efficiency, brick material can also be automatically extracted from the brick storage component to supplement the kiln, effectively preventing the empty kiln phenomenon, ensuring the continuous and stable operation of the mixed-firing kiln, thereby improving the overall production efficiency. Attached Figure Description

[0013] Figure 1 This is a schematic diagram of the structure of the infeed conveyor line applied to a co-firing kiln according to one embodiment of the present invention; Figure 2 This is a schematic diagram of the structure of the first conveying component according to one embodiment of the present invention; Figure 3 This is a schematic diagram of the structure of the first commutation component according to one embodiment of the present invention; Figure 4 This is a schematic diagram of the structure of the buffer pad according to one embodiment of the present invention; Figure 5 This is a schematic diagram of the structure of a brick storage assembly according to one embodiment of the present invention; Figure 6 This is a schematic diagram of the structure of the sixth drive unit according to one embodiment of the present invention; Figure 7 This is a schematic diagram of the structure of the seventh drive unit according to one embodiment of the present invention; The components include: first conveying assembly 11, second conveying assembly 12, third conveying assembly 13, fourth conveying assembly 14, fifth conveying assembly 15, sixth conveying assembly 16, first reversing assembly 21, second reversing assembly 22, third reversing assembly 23, fourth reversing assembly 24, brick storage assembly 3, fixed frame 31, lifting platform 32, moving frame 33, second roller frame 34, second conveying roller 35, sixth drive unit 36, sixth slide rail 361, and sixth slider 362. Sixth gear rail 363, seventh drive unit 37, seventh slide rail 371, seventh gear rail 373, eighth drive unit 38, conveyor frame 41, bearing seat 42, rotating rod 43, pulley 44, conveyor belt 45, support bar 46, support frame 47, base frame 51, second drive unit 52, third drive unit 53, rotating plate 54, mounting plate 55, first roller frame 56, first conveying roller 57, fourth drive unit 58, guide rod 591, buffer pad 592, limit block 593. Detailed Implementation

[0014] The embodiments of this utility model are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this utility model, and should not be construed as limiting this utility model.

[0015] In the description of this utility model, it should be understood that the terms "center," "longitudinal," "transverse," "length," "width," "thickness," "upper," "lower," "left," "right," "front," "rear," "vertical," "horizontal," "top," "bottom," "inner," "outer," "inner side," "outer side," "inner end," "outer end," "axial," "radial," and "circumferential," etc., indicating the orientation or positional relationship shown in the accompanying drawings, are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model. Furthermore, features defined with "first" and "second" may explicitly or implicitly include one or more of these features, used to distinguish descriptive features, without any order or emphasis. In the description of this utility model, unless otherwise stated, "multiple" means two or more.

[0016] In one embodiment of this utility model, such as Figure 1-7As shown, a kiln feed conveyor line for a co-firing kiln includes a first conveying assembly 11, a second conveying assembly 12, a third conveying assembly 13, a fourth conveying assembly 14, a fifth conveying assembly 15, a sixth conveying assembly 16, a first reversing assembly 21, a second reversing assembly 22, a third reversing assembly 23, a fourth reversing assembly 24, and a brick storage assembly 3. The first conveying assembly 11, the second conveying assembly 12, the third conveying assembly 13, the fourth conveying assembly 14, the fifth conveying assembly 15, and the sixth conveying assembly 16 are respectively used for conveying bricks. The first reversing assembly 21, the second reversing assembly 22, the third reversing assembly 23, and the fourth reversing assembly 24 can respectively... The brick storage component 3 is used for reversing and conveying bricks, and is used for storing or replenishing bricks. The first conveying component 11 is connected to one end of the fourth conveying component 14 and one end of the second conveying component 12 through the first reversing component 21. The third conveying component 13 is connected to one end of the sixth conveying component 16 and the other end of the second conveying component 12 through the second reversing component 22. The other end of the fourth conveying component 14 is connected to one end of the brick storage component 3 and one end of the fifth conveying component 15 through the third reversing component 23. The other end of the sixth conveying component 16 is connected to the other end of the fifth conveying component 15 through the fourth reversing component 24.In this embodiment, the first conveying component 11, the second conveying component 12, the third conveying component 13, the fourth conveying component 14, the fifth conveying component 15, and the sixth conveying component 16 have the same structure. The first reversing component 21, the second reversing component 22, the third reversing component 23, and the fourth reversing component 24 also have the same structure. Two second conveying components 12 are provided between the first reversing component 21 and the second reversing component 22, and two fifth conveying components 15 are provided between the third reversing component 23 and the fourth reversing component 24. In practice, multiple second conveying components 12 and multiple fifth conveying components 15 can be set according to production needs. It should be noted that during operation, the first conveying component 11 conveys the glazed bricks to the second conveying component 12 via the first reversing component 21. The second conveying component 12 then conveys the bricks to the third conveying component 13 via the second reversing component 22. The third conveying component 13 then conveys the bricks into the co-firing kiln. Furthermore, if the glazing efficiency is greater than the firing efficiency, after the first conveying component 11 conveys the glazed bricks to the first reversing component 21, the first reversing component 21 lifts the bricks, rotates them 90°, and then lowers them back to their original position. At this time, the conveying direction of the first reversing component 21 faces the fourth conveying component 14. Then, the first reversing component 21 conveys the bricks to... The fourth conveying component 14 conveys bricks to the brick storage component 3 for temporary storage via the third reversing component 23. This prevents brick blockage caused by the glazing process efficiency exceeding the kiln firing efficiency. If the glazing process efficiency is less than the kiln firing efficiency, the brick storage component 3 conveys the temporarily stored bricks to the third reversing component 23, which then conveys them to the fifth conveying component 15. The fifth conveying component 15 conveys the bricks to the sixth conveying component 16 via the fourth reversing component 24. The sixth conveying component 16 then conveys the bricks into the mixed-firing kiln via the second reversing component 22, thus preventing the glazing process efficiency from being less than the kiln firing efficiency. This invention addresses the issue of empty kilns caused by the use of a first conveying assembly 11, a second conveying assembly 12, a third conveying assembly 13, a fourth conveying assembly 14, a fifth conveying assembly 15, a sixth conveying assembly 16, a first reversing assembly 21, a second reversing assembly 22, a third reversing assembly 23, a fourth reversing assembly 24, and a brick storage assembly 3. When the glazing efficiency exceeds the kiln firing efficiency, it automatically diverts some brick material to the brick storage assembly for temporary storage, effectively preventing accumulation and blockage at the front end. Furthermore, when the glazing efficiency is lower than the kiln firing efficiency, it automatically extracts brick material from the brick storage assembly to replenish the kiln, effectively preventing empty kilns, ensuring the continuous and stable operation of the mixed-firing kiln, and thus improving overall production efficiency.

[0017] like Figure 1-2As shown, the first conveying assembly 11 includes a conveying frame 41, a bearing seat 42, a rotating rod 43, a pulley 44, a conveyor belt 45, a support bar 46, a support frame 47, and a first driving unit. The bearing seat 42 is mounted on the conveying frame 41. The two ends of the rotating rod 43 are rotatably mounted on the two bearing seats 42 respectively. The pulley 44 is mounted on the rotating rod 43 and is located inside the bearing seat 42. The two ends of the conveyor belt 45 are mounted on the two pulleys 44 respectively. The first driving unit is used to drive the rotating rod 43 to rotate. The support frame 47 is mounted on the conveying frame 41 and the support bar 46 is mounted on the support frame 47. The support bar 46 is used to support the conveyor belt 45. In this embodiment, there are four bearing seats 42 and four pulleys 44, and two rotating rods 43, two conveyor belts 45, and two support bars 46. Each rotating rod 43 is mounted on the conveyor frame 41 via the bearing seats 42 at both ends. Each conveyor belt 45 is arranged along the conveying direction, and both ends of the conveyor belt 45 are wound around two pulleys 44. The two support bars 46 are mounted on the conveyor frame 41 via three support frames 47. The support bars 46 abut against the inner top surface of the conveyor belt 45, thus providing support. The first drive unit is a motor reduction gearbox structure. The first drive unit is mounted on the conveyor frame 41, and its output end is connected to one of the rotating rods 43. During operation, the first drive unit drives the rotating rod 43 to rotate, thereby causing the pulleys 44 to drive the conveyor belt 45 and move the bricks, which is convenient and fast.

[0018] like Figure 1 and Figure 3-4 As shown, the first reversing assembly 21 includes a base frame 51, a second drive unit 52, a third drive unit 53, a rotating plate 54, a mounting plate 55, a first roller frame 56, a first conveying roller 57, and a fourth drive unit 58. The second drive unit 52 is mounted on the top surface of the base frame 51, and its output end is connected to the rotating plate 54. The second drive unit 52 is used to drive the rotating plate 54 to rotate. The third drive unit 53 is mounted on the rotating plate 54, and its output end is mounted on the mounting plate 55. The third drive unit 53 is used to drive the mounting plate 55 to move up and down. The first roller frame 56 is mounted on the mounting plate 55, and a plurality of first conveying rollers 57 are rotatably mounted on the first roller frame 56. The fourth drive unit 58 is used to drive the plurality of first conveying rollers 57 to rotate. In this embodiment, the second drive unit 52 is a rotary cylinder, the third drive unit 53 is a telescopic cylinder, and the fourth drive unit 58 is installed on the first roller frame 56. The fourth drive unit 58 is a prior art technology, specifically a motor drive belt structure. The transmission mechanism of the fourth drive unit 58 is located inside the first roller frame 56. During operation, the fourth drive unit 58 drives multiple first conveying rollers 57 to rotate, thereby achieving the purpose of conveying bricks. Furthermore, if it is necessary to change the conveying direction, the output end of the third drive unit 53 extends, causing the mounting plate 55 to drive the first roller frame 56 to move upward and lift the bricks, ensuring sufficient clearance during subsequent rotation to prevent damage to the bricks. After the mounting plate 55 rises to the set height, the second drive unit 52 drives the rotating plate 54 to rotate 90°. After the rotation is in place, the output end of the third drive unit 53 retracts, causing the mounting plate 55 to descend and reset, and convey bricks, thereby achieving the purpose of changing direction, which is convenient and quick.

[0019] like Figure 3-4 As shown, the first reversing assembly 21 further includes a guide rod 591 and a buffer pad 592; the buffer pad 592 is mounted on the mounting plate 55, one end of the guide rod 591 is mounted on the rotating plate 54, the other end of the guide rod 591 is slidably mounted with the mounting plate 55, and the other end of the guide rod 591 is provided with a limiting block 593, which can abut against the buffer pad 592. In this embodiment, there are two guide rods 591 and two buffer pads 592. The two buffer pads 592 are respectively installed on the top surface of the mounting plate 55, and the bottom of the two guide rods 591 are installed on the rotating plate 54. The top of the two guide rods 591 are slidably installed with the mounting plate 55. Specifically, the top of the guide rod 591 passes through the mounting plate 55 and the buffer pad 592. During operation, when the third drive unit 53 drives the mounting plate 55 to rise and fall, the two guide rods 591 can play a guiding role to ensure the stability and reliability of the rise and fall and prevent the rise and fall from deviating. Furthermore, a limiting block 593 is provided on the top of the guide rod 591 so that the limiting block 593 can abut against the buffer pad 592 to play a limiting role. The buffer pad 592 is made of rubber, which can not only buffer and reduce shock, but also prevent the limiting block 593 from directly colliding rigidly with the mounting plate 55.

[0020] like Figure 1 and Figure 5-7As shown, the brick storage assembly 3 includes a fixed frame 31, a lifting platform 32, a movable frame 33, a second roller frame 34, a second conveying roller 35, a sixth drive unit 36, a seventh drive unit 37, and an eighth drive unit 38. The lifting platform 32 is movable up and down on the fixed frame 31, and the movable frame 33 is movable forward and backward on the lifting platform 32. The sixth drive unit 36 ​​is used to drive the lifting platform 32 to rise and fall, and the seventh drive unit 37 is used to drive the movable frame 33 to move forward and backward. The movable frame 33 is equipped with a plurality of second roller frames 34, each second roller frame 34 is equipped with a plurality of second conveying rollers 35, and each second roller frame 34 is equipped with the eighth drive unit 38, which is used to drive the second conveying rollers 35 to rotate. In this embodiment, the fixed frame 31 is fixedly installed on the ground, and a sufficient lifting space is excavated below the lifting platform 32. Ten second roller frames 34 are installed along the height of the movable frame 33. Each second roller frame 34 is equipped with ten second conveying rollers 35 and an eighth drive unit 38. The eighth drive unit 38 is existing technology, specifically a motor-driven belt structure. When bricks need to be stored, the sixth drive unit 36 ​​drives the lifting platform 32 to rise and fall, so that the empty second roller frames 34 are directly opposite the third reversing assembly 23. Then, the seventh drive unit 37 drives the movable frame 33 to move closer to the third reversing assembly 23. After moving to the set position, the third reversing assembly 23... The bricks are conveyed, and the eighth drive unit 38 drives the second conveying roller 35 to rotate, so that the bricks are conveyed into the interior of the moving frame 33, thereby achieving the purpose of storing bricks. Conversely, if bricks need to be replenished, the sixth drive unit 36 ​​drives the lifting platform 32 to move, so that the second roller frame 34 containing bricks is facing the third reversing component 23. Then the eighth drive unit 38 conveys the bricks in the reverse direction to the third reversing component 23, which is convenient and quick. Furthermore, if there is no need to store or retrieve bricks, the seventh drive unit 37 drives the moving frame 33 to move backward, providing sufficient clearance for the third reversing component 23 in front of it, and preventing interference during the lifting and reversing process of the third reversing component 23.

[0021] like Figure 5-7As shown, the sixth drive unit 36 ​​includes a sixth slide rail 361, a sixth slider 362, a sixth gear 363, a sixth gear, and a sixth motor; the sixth slider 362 is mounted on the fixed frame 31, the sixth slide rail 361 and the sixth gear 363 are respectively mounted on the lifting platform 32, the sixth slide rail 361 is slidably mounted on the sixth slider 362, the sixth motor is mounted on the fixed frame 31, and the sixth gear is mounted on the output end of the sixth motor, the sixth gear meshing with the sixth gear 363. In this embodiment, there are four sixth slide rails 361, eight sixth sliders 362, and two sixth motors, two sixth gears, and two sixth geared rails 363. The two sixth motors are respectively installed on the left and right sides of the fixed frame 31. Two sixth slide rails 361 are respectively installed on the left and right sides of the lifting platform 32. Each sixth slide rail 361 is slidably connected to the fixed frame 31 through two sixth sliders 362. During operation, the two sixth motors drive the sixth gears at their output ends to rotate. Under the meshing action of the sixth gears and the sixth geared rails 363, the lifting platform 32 moves up and down, which is convenient and quick.

[0022] like Figure 5-7 As shown, the seventh drive unit 37 includes a seventh slide rail 371, a seventh gear rail 373, a seventh gear, and a seventh motor; The lifting platform 32 has a seventh slide rail 371 installed on its inner top and bottom surfaces, a seventh gear 373 installed on its inner bottom surface, a seventh motor installed on its movable frame 33, and a seventh gear installed at its output end, which meshes with the seventh gear 373. In this embodiment, there are four seventh slide rails 371. Two seventh slide rails 371 are installed on the inner top and bottom surfaces of the lifting platform 32, and the seventh motor is installed on the inner bottom surface of the movable frame 33. During operation, the seventh motor drives the seventh gear at its output end to rotate, and under the meshing action of the seventh gear and the seventh gear 373, the movable frame 33 moves back and forth along the length direction of the seventh slide rail 371, which is convenient and quick.

[0023] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "illustrative embodiment," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.

[0024] Although embodiments of the present invention have been shown and described, those skilled in the art will understand that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the claims and their equivalents.

Claims

1. A kiln feed conveyor line for use in a co-firing kiln, characterized in that: It includes a first conveying assembly, a second conveying assembly, a third conveying assembly, a fourth conveying assembly, a fifth conveying assembly, a sixth conveying assembly, a first reversing assembly, a second reversing assembly, a third reversing assembly, a fourth reversing assembly, and a brick storage assembly; The first conveying component, the second conveying component, the third conveying component, the fourth conveying component, the fifth conveying component, and the sixth conveying component are respectively used to convey bricks; the first reversing component, the second reversing component, the third reversing component, and the fourth reversing component are respectively used to reverse and convey bricks; and the brick storage component is used to store bricks or replenish bricks. The first conveying component is connected to one end of the fourth conveying component and one end of the second conveying component through the first reversing component. The third conveying component is connected to one end of the sixth conveying component and the other end of the second conveying component through the second reversing component. The other end of the fourth conveying component is connected to one end of the brick storage component and one end of the fifth conveying component through the third reversing component. The other end of the sixth conveying component is connected to the other end of the fifth conveying component through the fourth reversing component.

2. The infeed conveyor line for a co-firing kiln according to claim 1, characterized in that: The first conveying assembly includes a conveying frame, a bearing housing, a rotating rod, a pulley, a conveyor belt, a support bar, a support frame, and a first drive unit; The bearing housing is mounted on the conveyor frame, and the two ends of the rotating rod are rotatably mounted on the two bearing housings respectively. The rotating rod is equipped with the pulley, which is located inside the bearing housing. The two ends of the conveyor belt are respectively mounted on the two pulleys. The first driving unit is used to drive the rotating rod to rotate. The support frame is mounted on the conveyor frame, and the support frame is equipped with the support bar, which is used to support the conveyor belt.

3. The infeed conveyor line for a co-firing kiln according to claim 1, characterized in that: The first reversing assembly includes a base frame, a second drive unit, a third drive unit, a rotating plate, a mounting plate, a first roller frame, a first conveying roller, and a fourth drive unit; The second drive unit is mounted on the top surface of the base frame, and the output end of the second drive unit is connected to the rotating plate. The second drive unit is used to drive the rotating plate to rotate. The third drive unit is mounted on the rotating plate, and the output end of the third drive unit is mounted on the mounting plate. The third drive unit is used to drive the mounting plate to move up and down. The first roller frame is mounted on the mounting plate, and a plurality of the first conveying rollers are rotatably mounted on the first roller frame. The fourth drive unit is used to drive the plurality of the first conveying rollers to rotate.

4. The infeed conveyor line for a co-firing kiln according to claim 3, characterized in that: The first reversing assembly also includes a guide rod and a buffer pad; The buffer pad is installed on the mounting plate, one end of the guide rod is installed on the rotating plate, the other end of the guide rod is slidably installed with the mounting plate, and the other end of the guide rod is provided with a limiting block, which can abut against the buffer pad.

5. The kiln feed conveyor line for a co-firing kiln according to claim 1, characterized in that: The brick storage assembly includes a fixed frame, a lifting platform, a movable frame, a second roller frame, a second conveying roller, a sixth drive unit, a seventh drive unit, and an eighth drive unit; The lifting platform is movable up and down on the fixed frame, and the movable frame is movable forward and backward on the lifting platform. The sixth drive unit is used to drive the lifting platform to rise and fall, and the seventh drive unit is used to drive the movable frame to move forward and backward. The movable frame is equipped with a plurality of second roller frames, each second roller frame is equipped with a plurality of second conveying rollers, and each second roller frame is equipped with the eighth drive unit, which is used to drive the second conveying rollers to rotate.

6. The infeed conveyor line for a co-firing kiln according to claim 5, characterized in that: The sixth drive unit includes a sixth slide rail, a sixth slider, a sixth gear rail, a sixth gear, and a sixth motor; The fixed frame is equipped with the sixth slider, the sixth slide rail and the sixth gear rail are respectively installed on the lifting platform, the sixth slide rail is slidably installed on the sixth slider, the sixth motor is installed on the fixed frame, and the output end of the sixth motor is equipped with the sixth gear, which meshes with the sixth gear rail.

7. The infeed conveyor line for a co-firing kiln according to claim 5, characterized in that: The seventh drive unit includes a seventh slide rail, a seventh gear rail, a seventh gear, and a seventh motor; The seventh slide rail is installed on the inner top surface and inner bottom surface of the lifting platform, the seventh gear is installed on the inner bottom surface of the lifting platform, the seventh motor is installed on the moving frame, and the seventh gear is installed on the output end of the seventh motor, the seventh gear meshing with the seventh gear.