Conveying mechanism of high-temperature mesh belt furnace

By designing the conveying mechanism of the high-temperature mesh belt furnace, the uniform dispersion of parts is achieved by using the feeding component and transmission mechanism, which solves the problem of dense stacking caused by manual feeding and improves the heat treatment quality and conveying stability.

CN223512482UActive Publication Date: 2025-11-04ZHONGSHAN HENGFA METAL HEAT TREATMENT CO LTD
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Patent Information

Application Number
CN202423076506.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-12
Publication Date
2025-11-04
Estimated Expiration
2034-12-12

AI Technical Summary

Technical Problem

Existing mesh belt furnaces require manual feeding, resulting in dense stacking of parts and affecting the quality of product heat treatment.

Method used

Design a conveying mechanism for a high-temperature mesh belt furnace, including a material feeding component and a transmission mechanism. The material feeding component is driven by a power mechanism to move back and forth to disperse the material and ensure that it enters the high-temperature mesh belt furnace evenly.

Benefits of technology

It achieves uniform conveying of parts, improves the quality of product heat treatment, and enhances conveying stability through energy saving and consumption reduction.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a conveying mechanism of a high-temperature mesh belt furnace, which comprises a mesh belt conveyor and the high-temperature mesh belt furnace, one end of the high-temperature mesh belt furnace is provided with a feed port, the other end of the high-temperature mesh belt furnace is provided with a discharge port, and the mesh belt conveyor comprises a mesh belt and a power mechanism for driving the mesh belt to rotate. A material stirring assembly is arranged on the mesh belt conveyor and located in front of the feeding port, the material stirring assembly can move left and right so that materials on the mesh belt can be stirred aside and dispersed, and a transmission mechanism is connected between the material stirring assembly and the power mechanism. The transmission mechanism can provide power through a power mechanism so as to drive the material stirring assembly to reciprocate left and right. When product parts are conveyed by the mesh belt conveyor, the shifting assembly can be driven by the transmission mechanism to reciprocate left and right, so that the product parts on a mesh belt are shifted and dispersed, the product parts uniformly enter a high-temperature mesh belt furnace for heat treatment, and the production quality of the product parts is ensured.
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Description

Technical Field

[0001] This utility model relates to the field of mesh belt furnace technology, and in particular to a conveying mechanism for a high-temperature mesh belt furnace. Background Technology

[0002] Currently, mesh belt furnaces are heating furnaces that use high-temperature resistant mesh belts to feed materials to be heated into a furnace body wrapped with insulation material, achieving continuous conveying within the furnace. The complete set of equipment consists of three main parts: the furnace body, the mesh belt drive system, and the temperature control system. The furnace body consists of a feeding section, a pre-calcination section, a roasting section, a slow cooling section, and a discharge section; the mesh belt drive system consists of a high-temperature resistant mesh belt, a drive device, etc.

[0003] Existing mesh belt furnaces generally require manual feeding, which involves manually pouring a whole basket of parts directly onto the mesh belt. This causes the parts to pile up densely, which is not conducive to the heat treatment of the parts and can easily affect the production quality of the products. Utility Model Content

[0004] The present invention aims to at least partially solve one of the problems existing in the prior art. To this end, the present invention proposes a conveying mechanism for a high-temperature mesh belt furnace.

[0005] To achieve the above objectives, this utility model provides the following technical solution:

[0006] A conveying mechanism for a high-temperature mesh belt furnace includes a mesh belt conveyor and a high-temperature mesh belt furnace. One end of the high-temperature mesh belt furnace has a feed inlet, and the other end has a discharge outlet. The mesh belt conveyor includes a mesh belt and a power mechanism for driving the mesh belt to rotate. A material-dispersing component is disposed on the mesh belt conveyor and in front of the feed inlet. The material-dispersing component can move left and right to disperse the material on the mesh belt. A transmission mechanism is connected between the material-dispersing component and the power mechanism. The transmission mechanism can provide power through the power mechanism to drive the material-dispersing component to reciprocate left and right.

[0007] In some embodiments, the material feeding assembly includes first support plates disposed on the left and right sides of the mesh belt conveyor, a sliding rod sliding between the two first support plates, a fixed seat disposed on the sliding rod, and a plurality of material feeding rods disposed on the fixed seat.

[0008] In some embodiments, a plurality of through holes are spaced apart along the left-right direction on the fixed base, and the feeding rod is inserted into the through holes.

[0009] In some embodiments, the through hole is a threaded hole, and the feed rod is a screw that can be threadedly connected to the threaded hole.

[0010] In some embodiments, the cross-section of the sliding rod is rectangular.

[0011] In some embodiments, the power mechanism includes at least a motor and a rotating shaft disposed on the output shaft of the motor. The transmission mechanism includes a second support plate disposed on one side of the mesh belt conveyor. A transmission shaft is rotatably mounted on the second support plate. A first pulley is disposed on the rotating shaft. A second pulley is disposed on the transmission shaft. A belt is connected between the first pulley and the second pulley. A cylinder is also disposed at one end of the transmission shaft. A reciprocating guide groove is wound around the outer wall of the cylinder. A guide rod is disposed on one side of the sliding rod. One end of the guide rod is disposed in the reciprocating guide groove.

[0012] In some embodiments, baffles are provided on both the left and right sides of the mesh belt conveyor.

[0013] Compared with the prior art, the beneficial effects of this utility model are: when the mesh belt conveyor is conveying product parts, the transmission mechanism can drive the material feeding component to move back and forth, thereby dispersing the product parts on the mesh belt and allowing them to enter the high-temperature mesh belt furnace for heat treatment more evenly, thus ensuring the production quality of the product parts. Attached Figure Description

[0014] Figure 1 This is a front view schematic diagram of the present invention;

[0015] Figure 2 This is a three-dimensional schematic diagram of the present invention;

[0016] Figure 3 This utility model Figure 2 Enlarged view of point A;

[0017] Figure 4 This is a partial structural schematic diagram of the feeding assembly and transmission mechanism of this utility model. Detailed Implementation

[0018] The following detailed description provides various embodiments or examples for implementing this utility model. Of course, these are merely embodiments or examples and are not intended to be limiting. Additionally, repeated reference numerals, such as repeated numbers and / or letters, may be used in different embodiments. These repetitions are for the purpose of simple and clear description of this utility model and do not represent a specific relationship between the different embodiments and / or structures discussed.

[0019] like Figures 1-4The conveying mechanism of a high-temperature mesh belt furnace shown includes a mesh belt conveyor 1 and a high-temperature mesh belt furnace 2. One end of the high-temperature mesh belt furnace 2 is provided with a feed inlet 3 and the other end is provided with a discharge outlet 4. The mesh belt conveyor 1 includes a mesh belt 5 and a power mechanism for driving the mesh belt 5 to rotate. A material-dispersing component is provided on the mesh belt conveyor 1 and in front of the feed inlet 3. The material-dispersing component can move left and right to disperse the material on the mesh belt 5. A transmission mechanism is connected between the material-dispersing component and the power mechanism. The transmission mechanism can provide power through the power mechanism to drive the material-dispersing component to move back and forth left and right.

[0020] According to the above structure, when conveying product parts, the mesh belt conveyor 1 can drive the material feeding assembly to move back and forth left and right through the transmission mechanism, thereby dispersing the product parts on the mesh belt 5 and allowing them to enter the high-temperature mesh belt furnace 2 for heat treatment in a more uniform manner, thus ensuring the production quality of the product parts.

[0021] It is worth mentioning that the left and right reciprocating movement of the feeding component is powered by the power mechanism, thereby achieving energy saving and consumption reduction.

[0022] Furthermore, baffles 71 are provided on both the left and right sides of the mesh belt 5 on the mesh belt conveyor 1, so as to prevent parts from falling off the sides of the mesh belt 5 and improve the stability of the mesh belt conveyor 1 during conveying.

[0023] See Figure 3 , Figure 4 As shown, the material feeding assembly includes first support plates 21 disposed on the left and right sides of the mesh belt conveyor 1, a sliding rod 22 sliding between the two first support plates 21, a fixed seat 23 disposed on the sliding rod 22, and a plurality of material feeding rods 24 disposed on the fixed seat 23.

[0024] Furthermore, the fixed base 23 has several through holes 31 spaced apart in the left-right direction, and the feeding rod 24 is inserted into the through holes 31.

[0025] Furthermore, the through hole 31 is a threaded hole, and the feed rod 24 is a screw that can be threadedly connected to the threaded hole.

[0026] Therefore, the number of material-pulling rods 24 can be selectively installed as needed, and the length of the downward extension of the material-pulling rods 24 can also be adjusted.

[0027] See Figure 4 As shown, the cross-section of the sliding rod 22 is rectangular, so the sliding rod 22 can only slide left and right, and cannot rotate.

[0028] See Figure 3 , Figure 4 As shown, the power mechanism includes at least a motor 61 and a rotating shaft 62 disposed on the output shaft of the motor 61. The transmission mechanism includes a second support plate 63 disposed on one side of the mesh belt conveyor 1. A transmission shaft 64 is rotatably mounted on the second support plate 63. A first pulley 65 is disposed on the rotating shaft 62. A second pulley 66 is disposed on the transmission shaft 64. A belt 67 is connected between the first pulley 65 and the second pulley 66. A cylinder 68 is also disposed at one end of the transmission shaft 64. A reciprocating guide groove 69 is wound around the outer wall of the cylinder 68. A guide rod 610 is disposed on one side of the sliding rod 22. One end of the guide rod 610 is disposed in the reciprocating guide groove 69.

[0029] The working principle of the transmission mechanism is as follows: the motor 61 drives the rotating shaft 62 to rotate, and then through the transmission of the first pulley 65, the second pulley 66 and the belt 67, the transmission shaft 64 is driven to rotate. The transmission shaft 64 drives the cylinder 68 to rotate, and then, with the cooperation of the reciprocating guide groove 69 and the guide rod 610, the sliding rod 22 is driven to move back and forth, and finally the material-picking rod 24 moves back and forth to disperse the parts.

[0030] Based on the accompanying drawings and the foregoing display and description of the basic principles, main features, and advantages of this utility model, those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claims. The scope of protection of this utility model is defined by the appended claims and their equivalents.

Claims

1. A conveying mechanism for a high-temperature mesh belt furnace, comprising a mesh belt conveyor (1) and a high-temperature mesh belt furnace (2), wherein one end of the high-temperature mesh belt furnace (2) is provided with a feed inlet (3) and the other end is provided with a discharge outlet (4), and the mesh belt conveyor (1) comprises a mesh belt (5) and a power mechanism for driving the mesh belt (5) to rotate, characterized in that: A material-pushing component is provided on the mesh belt conveyor (1) and in front of the feed inlet (3). The material-pushing component can move left and right to disperse the material on the mesh belt (5). A transmission mechanism is connected between the material-pushing component and the power mechanism. The transmission mechanism can provide power through the power mechanism to drive the material-pushing component to move left and right back and forth.

2. The conveying mechanism of a high-temperature mesh belt furnace according to claim 1, characterized in that: The material feeding assembly includes a first support plate (21) disposed on the left and right sides of the mesh belt conveyor (1), a sliding rod (22) sliding between the two first support plates (21), a fixed seat (23) disposed on the sliding rod (22), and a plurality of material feeding rods (24) disposed on the fixed seat (23).

3. The conveying mechanism of a high-temperature mesh belt furnace according to claim 2, characterized in that: The fixed base (23) has several through holes (31) spaced apart along the left and right direction, and the feeding rod (24) is inserted into the through holes (31).

4. The conveying mechanism of a high-temperature mesh belt furnace according to claim 3, characterized in that: The through hole (31) is a threaded hole, and the feed rod (24) is a screw that can be threadedly connected to the threaded hole.

5. The conveying mechanism of a high-temperature mesh belt furnace according to claim 2, characterized in that: The cross-section of the sliding rod (22) is rectangular.

6. The conveying mechanism of a high-temperature mesh belt furnace according to claim 2, characterized in that: The power mechanism includes at least a motor (61) and a rotating shaft (62) on the output shaft of the motor (61). The transmission mechanism includes a second support plate (63) on one side of the mesh belt conveyor (1). A transmission shaft (64) is rotatably mounted on the second support plate (63). A first pulley (65) is provided on the rotating shaft (62). A second pulley (66) is provided on the transmission shaft (64). A belt (67) is connected between the first pulley (65) and the second pulley (66). A cylinder (68) is also provided at one end of the transmission shaft (64). A reciprocating guide groove (69) is wound around the outer wall of the cylinder (68). A guide rod (610) is provided on one side of the sliding rod (22). One end of the guide rod (610) is located in the reciprocating guide groove (69).

7. The conveying mechanism of a high-temperature mesh belt furnace according to claim 1, characterized in that: Baffles (71) are provided on both the left and right sides of the mesh belt (5) on the mesh belt conveyor (1).