Rotary cage drying equipment capable of automatically controlling temperature and humidity

By designing automatic temperature and humidity control functions, filter structures and air intake pore belts in the cage drying equipment, the problems of waste gas treatment and feed port blockage in traditional equipment are solved, and more efficient drying and more uniform material treatment are achieved.

CN222865438UActive Publication Date: 2025-05-13ANHUI JINZHAI XIANZHILING BIOTECHNOLOGY CO LTD
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Patent Information

Application Number
CN202421724642.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-19
Publication Date
2025-05-13
Estimated Expiration
2034-07-19

AI Technical Summary

Technical Problem

Traditional cage drying equipment generates a large amount of waste gas during the drying process, resulting in energy waste and environmental pollution. At the same time, the inlet is prone to clogging, affecting the equipment operation efficiency and material quality.

Method used

A cage drying equipment with automatic temperature and humidity control is designed, using a filter structure and a fan to extract and filter waste gas. Through the design of the air inlet port belt and feed plate, the exhaust gas is achieved to achieve full contact between the waste gas and the material and the uniform distribution of hot air to prevent material blockage.

Benefits of technology

It effectively reduces dust in the exhaust gas, improves material drying efficiency, prevents materials from burning or deteriorating due to excessive temperature, extends the service life of the equipment, and reduces production costs.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model discloses rotating cage drying equipment capable of automatically controlling temperature and humidity, and relates to the technical field of drying equipment. A rotating cage assembly is fixedly connected to the middle of the upper end of the bottom plate, a waste gas conveying assembly is arranged on one side of the rotating cage body and used for extracting waste gas in an inner cavity of the rotating cage body, the waste gas conveying assembly comprises a second connecting block, and the second connecting block is rotationally connected with the adjacent first connecting block; the side, away from the rotating cage body, of the filtering structure is fixedly connected with the filtering structure, and the output end of the filtering structure is fixedly connected with a fan. Waste gas in the inner cavity of the rotating cage body can be extracted through the fan, and then the waste gas is conveyed into the inner cavity of the feeding pipe through the first gas pipe, so that materials conveyed into the inner cavity of the feeding pipe can be blown into the inner cavity of the rotating cage body through the waste gas, and the materials can be prevented from blocking the inner cavity of the feeding pipe; therefore, not only is the problem of blockage of the feeding hole of the device solved, but also the utilization of waste gas is improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of drying equipment, in particular to a rotary cage drying equipment with automatic temperature and humidity control. Background Art

[0002] Rotary cage drying equipment is a kind of equipment that uses a rotating cage for low-temperature drying. It is usually called an airflow rotary dryer or a drum dryer. It is mainly composed of an air inlet fan, an air heater, a rotating cage, a discharging device and a dust removal device. The working principle of the rotary cage dryer is to heat the air with hot air and put the material into the dry hot air by rotating the cylinder. The material quickly evaporates water under the action of the dry hot air, thereby achieving the purpose of rapid drying.

[0003] During the operation of rotary cage drying equipment, waste gas treatment has always been a key environmental and energy efficiency issue. Traditional rotary cage drying equipment will produce a large amount of waste gas during the drying process. These waste gases are often directly discharged into the atmosphere, which not only causes energy waste, but also causes certain pollution to the environment. At the same time, the blockage problem of the feed port is also a major challenge faced by traditional rotary cage drying equipment. It not only affects the operating efficiency of the equipment, but may also cause equipment damage and material waste. Utility Model Content

[0004] The utility model aims to provide a rotary drying device with automatic temperature and humidity control to solve the problems raised in the above background technology.

[0005] In order to solve the above technical problems, the technical solution adopted by the utility model is:

[0006] A rotary cage drying device with automatic temperature and humidity control comprises a bottom plate; an air heater is fixedly connected to one side of the upper end of the bottom plate, a rotary cage assembly is fixedly connected to the middle of the upper end of the bottom plate, the rotary cage assembly comprises a rotary cage body and two connecting blocks 1, the two connecting blocks 1 are fixedly connected to the rotary cage body, a material shifting plate is fixedly connected to the inner cavity of the rotary cage body, an exhaust gas conveying assembly is arranged on one side of the rotary cage body, the exhaust gas conveying assembly is used to extract the exhaust gas in the inner cavity of the rotary cage body, the exhaust gas conveying assembly comprises a connecting block 2, the connecting block 2 is rotatably connected to the adjacent connecting block 1, a filtering structure is fixedly connected to the side of the connecting block 2 away from the rotary cage body, a fan is fixedly connected to the output end of the filtering structure, and an air pipe 1 is fixedly connected to the output end of the fan;

[0007] A funnel is provided on one side of the rotating cage body away from the exhaust gas conveying component. The funnel is used for feeding. A connecting block three is fixedly connected to the lower part of the funnel. The connecting block three is rotatably connected to the adjacent connecting block one. A feeding pipe is fixedly connected to the lower end of the funnel. An output end of an air pipe passes through the outer surface of the connecting block three and the outer surface of the feeding pipe in sequence and extends to the inner cavity of the feeding pipe. Two gas conveying components are rotatably connected to the outer surface of the rotating cage body, two supporting components are fixedly connected to the upper end of the bottom plate, a driving component is fixedly connected to the middle part of the upper end of the bottom plate, and two temperature measuring components are fixedly connected to one side of the rotating cage body.

[0008] A further improvement of the technical solution of the utility model is that two air inlet bands are arranged in the middle of the outer surface of the cage body and penetrate through the outer surface of the cage body and extend to the inner cavity of the cage body.

[0009] The above technical solution is adopted, in which a plurality of air inlet belts are provided, so that the air heater can transport the heated air into the inner cavity of the rotating cage body through the air inlet belts, thereby drying the material in the inner cavity of the rotating cage body.

[0010] A further improvement of the technical solution of the utility model is that a plurality of flow holes are provided on the material-diverting plate.

[0011] The above technical solution is adopted, in which a number of flow holes are opened on the material stripping plate to facilitate the flow of exhaust gas transported to the inner cavity of the cage body, so that the exhaust gas can fully contact with the material, accelerate the evaporation rate of water in the material, and thus improve the drying efficiency. In addition, the exhaust gas can take away part of the heat during the flow process to prevent the material from being burned or deteriorated due to excessive temperature. The flow of exhaust gas in the inner cavity of the cage body makes the air flow in the cage body more uniform, thereby ensuring that the material can be evenly dried at every location in the inner cavity of the cage body, which helps to avoid problems such as agglomeration and discoloration of the material due to uneven drying, and improves the quality and consistency of the product.

[0012] A further improvement of the technical solution of the utility model is that the filtering structure includes a connecting pipe and a dust collecting box, a filtering mesh pipe is fixedly connected to the middle of the connecting pipe, and the lower end of the filtering mesh pipe is connected to the upper end of the dust collecting box by bolts.

[0013] The above-mentioned technical scheme is adopted, in which the exhaust gas generated in the inner cavity of the cage body can be filtered through the filter mesh tube, and the dust and the like in the exhaust gas can be intercepted. Then, when the exhaust gas is utilized, the amount of dust and the like entering the inner cavity of the cage body can be reduced, thereby reducing the impact of dust and the like on the material. The dust collecting box and the filter mesh tube are connected by bolts, so that it is convenient to separate the dust collecting box from the filter mesh tube, and then the dust and other impurities collected in the inner cavity of the dust collecting box can be processed.

[0014] A further improvement of the technical solution of the utility model is that the gas transmission component includes air pipe 2, and an air collection bin is arranged on the outer side of the air inlet hole, the air collection bin is rotatably connected to the rotating cage body, the input end of the air collection bin is fixedly connected to the output end of air pipe 2, and the input end of air pipe 2 is fixedly connected to the output end of the air heater.

[0015] The above-mentioned technical scheme is adopted, in which the air heater is fixedly connected with the air pipe 2, so that the air heater can transport the heated gas to the inner cavity of the air collection bin through the air pipe 2, and then through the cooperation of the air inlet hole belt and the air collection bin, the heated gas can be transported to the inner cavity of the rotating cage body through the air inlet hole belt, and then the material in the inner cavity of the rotating cage body is dried.

[0016] A further improvement of the technical solution of the utility model is that: the support component includes a connecting ring block and a support plate, a lower end of the support plate is fixedly connected to the upper end of the bottom plate, an inner cavity of the connecting ring block is fixedly connected to the outer surface of the rotating cage body, an upper end of the support plate is symmetrically fixedly connected to the support block, the upper part of the support block is rotatably connected to a roller, and the outer surface of the roller is in contact with the outer surface of the connecting ring block.

[0017] The above technical solution is adopted, in which the connecting ring block 1 is fixedly connected to the rotating cage body, and then the outer surface of the roller contacts the outer surface of the connecting ring block 1, so that the connecting ring block 1 can be driven to rotate when the rotating cage body rotates, and then the rotation position of the connecting ring block 1 is limited by the roller, and the connecting ring block 1 can be supported by the roller.

[0018] A further improvement of the technical solution of the utility model is that: the driving component includes a connecting ring block 2 and a support plate 2, the lower end of the support plate 2 is fixedly connected to the upper end of the bottom plate, the inner cavity of the connecting ring block 2 is fixedly connected to the outer surface of the rotating cage body, one side of the upper end of the support plate 2 is fixedly connected to a support platform, the upper end of the support platform is fixedly connected to a motor, the side of the upper end of the support plate 2 away from the support platform is fixedly connected to a support block 2, the upper part of the support block 2 is rotatably connected to a gear, the output end of the motor is fixedly connected to the gear, and the outer surface of the gear is meshingly connected to the outer surface of the connecting ring block 2.

[0019] The above technical solution is adopted, in which the gear is driven to rotate by the output end of the motor, and the gear is meshed and connected with the connecting ring block 2, so that when the gear rotates, it can drive the connecting ring block 2 to rotate together. Since the connecting ring block 2 is fixedly connected to the rotating cage body, when the connecting ring block 2 rotates, the rotating cage body can be driven to rotate, and then the material in the inner cavity of the rotating cage body can be driven to roll, so that its surface can be more evenly exposed to the hot air, thereby accelerating the evaporation rate of water and improving the drying efficiency.

[0020] A further improvement of the technical solution of the utility model is that the temperature measuring component includes a temperature sensor, the detection end of the temperature sensor penetrates the outer surface of the rotating cage body and extends to the inner cavity of the rotating cage body, a support frame is fixedly connected to the side of the temperature sensor close to the rotating cage body, the support frame is fixedly connected to the outer surface of the rotating cage body, a controller is fixedly connected to one side of the temperature sensor, and the controller is fixedly connected to the rotating cage body.

[0021] By adopting the above technical scheme, the temperature in the inner cavity of the rotating cage body can be monitored in real time through a temperature sensor, and then the data monitored by the temperature sensor can be analyzed through a controller, and the operation of the air heater can be controlled by the controller. According to the temperature and humidity in the inner cavity of the rotating cage body, the temperature and flow rate of the hot air delivered to the inner cavity of the rotating cage body by the air heater are regulated.

[0022] Due to the adoption of the above technical solution, the utility model has achieved the following technical progress compared with the prior art:

[0023] 1. The utility model provides a rotary drying device with automatic temperature and humidity control. The temperature and humidity in the inner cavity of the rotary cage body can be monitored by a temperature measuring component, and the operation of the air heater can be controlled by the temperature measuring component. The air heater can adjust the temperature and flow rate of the hot air delivered to the inner cavity of the rotary cage body by the air heater according to the temperature and humidity in the inner cavity of the rotary cage body. The exhaust gas in the inner cavity of the rotary cage body can be extracted by a fan, and then the exhaust gas is delivered to the inner cavity of the feed pipe by an air pipe, so that the material delivered to the inner cavity of the feed pipe can be blown into the inner cavity of the rotary cage body by the exhaust gas, so that the material in the inner cavity of the feed pipe can be prevented from being blocked, which not only solves the problem of blockage of the feed port of the device, but also improves the utilization of the exhaust gas, thereby reducing the production cost and improving the practicability of the device.

[0024] 2. The utility model provides a rotary cage drying device with automatic temperature and humidity control. The exhaust gas generated in the inner cavity of the rotary cage body can be filtered through the filter mesh tube, and the dust and the like in the exhaust gas can be intercepted. Then, when the exhaust gas is utilized, the amount of dust and the like entering the inner cavity of the rotary cage body can be reduced. A plurality of flow holes are provided on the material-dispensing plate, thereby facilitating the flow of the exhaust gas transported to the inner cavity of the rotary cage body, so that the exhaust gas can fully contact with the material, accelerating the evaporation rate of the water in the material, thereby improving the drying efficiency. Moreover, the exhaust gas can take away part of the heat during the flow process, preventing the material from being scorched or deteriorated due to excessive temperature. BRIEF DESCRIPTION OF THE DRAWINGS

[0025] The utility model will be further described below in conjunction with the accompanying drawings.

[0026] Figure 1 It is a front view of the overall structure of the utility model;

[0027] Figure 2 This is a rear view of the overall structure of the utility model;

[0028] Figure 3 It is a partial structural front view of the utility model;

[0029] Figure 4 It is a side view of the local structure of the utility model;

[0030] Figure 5 It is a schematic diagram of the exhaust gas conveying component of the utility model;

[0031] Figure 6 This is a schematic diagram of the rotating cage body of the utility model;

[0032] Figure 7 It is a schematic diagram of the filtering mechanism of the utility model;

[0033] Figure 8 This is a schematic diagram of a connection block of the utility model;

[0034] Fig. 9 This is a schematic diagram of the gas delivery component of the utility model;

[0035] Fig.10 It is a schematic diagram of the support assembly of the utility model;

[0036] Fig.11 It is a schematic diagram of the drive assembly of the utility model;

[0037] Fig.12 This is a schematic diagram of a temperature measurement component of the utility model;

[0038] In the figure: 1, bottom plate; 2, air heater; 3, cage assembly; 31, cage body; 311, air inlet belt; 32, connecting block 1; 33, material plate; 331, flow hole; 4, exhaust gas conveying assembly; 41, connecting block 2; 42, filtering structure; 421, connecting pipe; 422, filter mesh pipe; 423, dust box; 43, fan; 44, air pipe 1; 5, funnel; 51, connecting block 3; 52, air inlet Material pipe; 6. Gas transmission component; 61. Gas collection bin; 62. Gas pipe 2; 7. Support component; 71. Connecting ring block 1; 72. Support plate 1; 73. Support block 1; 74. Roller; 8. Drive component; 81. Connecting ring block 2; 82. Support plate 2; 83. Support platform; 84. Support block 2; 85. Gear; 86. Motor; 9. Temperature measurement component; 91. Temperature sensor; 92. Controller; 93. Support frame. DETAILED DESCRIPTION

[0039] The present invention is further described in detail below in conjunction with the embodiments:

[0040] Example 1

[0041] like Figure 1-12 As shown, the utility model provides a rotary cage drying device with automatic temperature and humidity control, including a bottom plate 1; an air heater 2 is fixedly connected to one side of the upper end of the bottom plate 1, a rotary cage assembly 3 is fixedly connected to the middle part of the upper end of the bottom plate 1, the rotary cage assembly 3 includes a rotary cage body 31 and two connecting blocks 1 32, the two connecting blocks 1 32 are fixedly connected to the rotary cage body 31, a material-pickup plate 33 is fixedly connected to the inner cavity of the rotary cage body 31, an exhaust gas conveying assembly 4 is arranged on one side of the rotary cage body 31, the exhaust gas conveying assembly 4 is used to extract the exhaust gas in the inner cavity of the rotary cage body 31, the exhaust gas conveying assembly 4 includes a connecting block 2 41, the connecting block 2 41 is rotatably connected to the adjacent connecting block 1 32, a filter structure 42 is fixedly connected to the side of the connecting block 2 41 away from the rotary cage body 31, a fan 43 is fixedly connected to the output end of the filter structure 42, and an air pipe 1 44 is fixedly connected to the output end of the fan 43;

[0042] A funnel 5 is provided on one side of the rotating cage body 31 away from the exhaust gas conveying component 4. The funnel 5 is used for feeding. A connecting block three 51 is fixedly connected to the lower part of the funnel 5. The connecting block three 51 is rotatably connected to the adjacent connecting block one 32. A feeding pipe 52 is fixedly connected to the lower end of the funnel 5. The output end of the air pipe one 44 sequentially penetrates the outer surface of the connecting block three 51 and the outer surface of the feeding pipe 52 and extends to the inner cavity of the feeding pipe 52. Two gas conveying components 6 are rotatably connected to the outer surface of the rotating cage body 31. Two supporting components 7 are fixedly connected to the upper end of the bottom plate 1. A driving component 8 is fixedly connected to the middle part of the upper end of the bottom plate 1. Two temperature measuring components 9 are fixedly connected to one side of the rotating cage body 31.

[0043] In this embodiment, the entire device can be supported and connected by the bottom plate 1, the air can be heated by the air heater 2, the material can be driven to rotate by the rotating cage assembly 3, the material in the inner cavity of the rotating cage body 31 can be stirred by the material prying plate 33, so that the material can be heated more evenly in the inner cavity of the rotating cage body 31, and the connecting block 2 41 is rotatably connected with the connecting block 1 32, so that when the connecting block 2 41 supports the rotating cage assembly 3, it will not affect the rotation of the rotating cage assembly 3, the exhaust gas extracted by the fan 43 can be filtered by the filtering structure 42, and the dust in the exhaust gas can be reduced, so that when the exhaust gas is reused, the influence of dust on the material can be reduced, the exhaust gas in the inner cavity of the rotating cage body 31 can be extracted and transported by the fan 43, and the filtered exhaust gas can be transported to the feed pipe 52 through the air pipe 1 44, and then the material transported to the inner cavity of the feed pipe 52 is blown into the inner cavity of the rotating cage body 31 by the exhaust gas, so as to prevent the material from entering the inner cavity of the rotating cage body 31. The material is blocked at the feed pipe 52, and the funnel 5 is used to facilitate the material to be transported to the inner cavity of the feed pipe 52. The funnel 5 can be supported and connected by the connecting block 3 51, and the material can be transported to the inner cavity of the cage body 31 through the feed pipe 52. The air heated by the air heater 2 can be transported to the inner cavity of the cage body 31 through the air supply component 6, so that the material in the inner cavity of the cage body 31 can be dried. The support component 7 can support and limit the cage body 31 when the cage body 31 rotates. The driving component 8 can drive the cage body 31 to rotate, and then the cage body 31 is used to drive the material to roll, so that the material in the inner cavity of the cage body 31 can be heated more evenly. The temperature and humidity in the inner cavity of the cage body 31 can be monitored in real time by the temperature measuring component 9, so that the heating of the air by the air heater 2 and the air flow rate transported to the air supply component 6 can be controlled according to the temperature and humidity in the inner cavity of the cage body 31.

[0044] Example 2

[0045] like Figure 2 , Figure 6 , Fig. 9 , Fig.12 As shown, on the basis of Example 1, the utility model provides a technical solution: preferably, two air inlet bands 311 are provided in the middle of the outer surface of the cage body 31, which penetrate the outer surface of the cage body 31 and extend to the inner cavity of the cage body 31, and the gas delivery component 6 includes a second air pipe 62, and an air collection bin 61 is arranged on the outer side of the air inlet band 311, and the air collection bin 61 is rotatably connected to the cage body 31, and the input end of the air collection bin 61 is fixedly connected to the output end of the second air pipe 62, and the input end of the second air pipe 62 is fixedly connected to the output end of the air heater 2;

[0046] The temperature measuring component 9 includes a temperature sensor 91. The detection end of the temperature sensor 91 passes through the outer surface of the rotating cage body 31 and extends to the inner cavity of the rotating cage body 31. A support frame 93 is fixedly connected to the side of the temperature sensor 91 close to the rotating cage body 31. The support frame 93 is fixedly connected to the outer surface of the rotating cage body 31. A controller 92 is fixedly connected to one side of the temperature sensor 91, and the controller 92 is fixedly connected to the rotating cage body 31.

[0047] In this embodiment, the air heater 2 is first operated, and the surrounding air is extracted and heated by the air heater 2. The heated air is then delivered to the inner cavity of the air pipe 2 62 through the output end of the air heater 2. The hot air can be delivered to the inner cavity of the air collection bin 61 through the air pipe 2 62. Then, the hot air delivered to the inner cavity of the air collection bin 61 can be delivered to the inner cavity of the cage body 31 through the air inlet band 311, so that the temperature of the gas in the inner cavity of the cage body 31 can be increased. The temperature in the inner cavity of the cage body 31 can be monitored in real time through the detection end of the temperature sensor 91. Then, the data monitored by the temperature sensor 91 can be analyzed through the controller 92. In addition, the heating of the air by the air heater 2 and the flow rate of the gas delivered to the inner cavity of the air pipe 2 62 can be controlled according to the temperature in the inner cavity of the cage body 31 through the controller 92.

[0048] Example 3

[0049] like Figure 5 , Figure 7 As shown, based on Example 2, the utility model provides a technical solution: preferably, the material plate 33 is provided with a plurality of flow holes 331, the filtering structure 42 includes a connecting pipe 421 and a dust collecting box 423, a filter mesh tube 422 is fixedly connected to the middle part of the connecting pipe 421, and the lower end of the filter mesh tube 422 is connected to the upper end of the dust collecting box 423 by bolts.

[0050] In this embodiment, when the temperature in the inner cavity of the rotating cage body 31 rises to a suitable temperature, the fan 43 is operated to extract and transport the exhaust gas in the inner cavity of the rotating cage body 31. The exhaust gas extracted by the fan 43 can be filtered through the filter mesh tube 422, and impurities such as dust in the exhaust gas can be intercepted. The intercepted dust and the like will fall into the inner cavity of the dust collecting box 423, and will be collected by the dust collecting box 423. Then, under the action of the fan 43, the filtered exhaust gas will be transported to the inner cavity of the air pipe 44, and then the filtered exhaust gas will be transported to the inner cavity of the feed pipe 52 through the air pipe 44. Then, the staff will pass through the Pour the material into the inner cavity of the funnel 5, and then the material will fall into the inner cavity of the feed pipe 52. Under the blowing of the filtered exhaust gas, these materials will be transported to the inner cavity of the cage body 31, which can prevent a large amount of material from accumulating at the entrance of the feed pipe 52, thereby causing blockage at the entrance of the feed pipe 52. At the same time, these filtered exhaust gases can flow in the inner cavity of the cage body 31 under the action of the flow holes 331, thereby driving the hot air transported to the inner cavity of the cage body 31 to diffuse rapidly in the inner cavity of the cage body 31, which can avoid the temperature in some local positions in the inner cavity of the cage body 31 being too high or too low, thereby forming a temperature difference, thereby affecting the drying of the material.

[0051] Example 4

[0052] like Fig.10 , Fig.11 As shown, on the basis of Example 3, the utility model provides a technical solution: preferably, the support assembly 7 includes a connecting ring block 71 and a support plate 72, the lower end of the support plate 72 is fixedly connected to the upper end of the bottom plate 1, the inner cavity of the connecting ring block 71 is fixedly connected to the outer surface of the cage body 31, the upper end of the support plate 72 is symmetrically fixedly connected with a support block 73, the upper part of the support block 73 is rotatably connected with a roller 74, the outer surface of the roller 74 is in contact with the outer surface of the connecting ring block 71, and the driving assembly 8 includes a connecting ring block 81 and a support plate 72. Support plate 2 82, the lower end of support plate 2 82 is fixedly connected to the upper end of bottom plate 1, the inner cavity of connecting ring block 2 81 is fixedly connected to the outer surface of rotating cage body 31, one side of the upper end of support plate 2 82 is fixedly connected to support platform 83, the upper end of support platform 83 is fixedly connected to motor 86, the side of the upper end of support plate 2 82 away from support platform 83 is fixedly connected to support block 2 84, the upper part of support block 2 84 is rotatably connected to gear 85, the output end of motor 86 is fixedly connected to gear 85, and the outer surface of gear 85 is meshingly connected to the outer surface of connecting ring block 2 81.

[0053] In this embodiment, the motor 86 is then operated, and the output end of the motor 86 is used to drive the gear 85 to rotate, thereby driving the gear 85 to mesh with the adjacent temperature sensor 91, and driving the connecting ring block 81 to rotate. Since the connecting ring block 81 is fixedly connected to the cage body 31, when the connecting ring block 81 rotates, it will drive the cage body 31 to rotate, and then it can drive the material in the inner cavity of the cage body 31 to turn over, so that the material can be heated more evenly. At the same time, when the cage body 31 rotates, it will drive the connecting ring block 81 to rotate. The ring block 1 71 rotates, and then the connecting ring block 1 71 applies a force to the adjacent roller 74, thereby driving the roller 74 to rotate, and then the cooperation of the two rollers 74 can support and limit the connecting ring block 1 71, thereby improving the rotation stability of the entire rotating cage assembly 3, and the dried material will be transported to the inner cavity of the connecting block 2 41 under the action of the material stripping plate 33, and then through the outlet at the bottom of the connecting block 2 41, the dried material can be transported into the device, so that the dried material can be collected.

[0054] The following is a detailed description of the working principle of the automatic temperature and humidity control tumble drying equipment.

[0055] like Figure 1-12 As shown, when the material needs to be dried, firstly, the air heater 2 is operated, and the surrounding air is extracted and heated by the air heater 2, and then the heated air is transported to the inner cavity of the air pipe 2 62 through the output end of the air heater 2, and the hot air can be transported to the inner cavity of the air collection bin 61 through the air pipe 2 62, and then the hot air transported to the inner cavity of the air collection bin 61 can be transported to the inner cavity of the cage body 31 through the air inlet belt 311, so that the temperature of the gas in the inner cavity of the cage body 31 can be increased, and the temperature in the inner cavity of the cage body 31 can be monitored in real time through the detection end of the temperature sensor 91, and then the data monitored by the temperature sensor 91 can be analyzed through the controller 92, and the heating of the air by the air heater 2 and the flow rate of the gas transported to the inner cavity of the air pipe 2 62 can be controlled according to the temperature in the inner cavity of the cage body 31 through the controller 92;

[0056] When the temperature in the inner cavity of the rotating cage body 31 rises to a suitable temperature, the fan 43 is operated to extract and transport the exhaust gas in the inner cavity of the rotating cage body 31. The exhaust gas extracted by the fan 43 can be filtered through the filter mesh tube 422, and dust and other impurities in the exhaust gas can be intercepted. Then, the intercepted dust and the like will fall into the inner cavity of the dust collecting box 423, and will be collected by the dust collecting box 423. Then, under the action of the fan 43, the filtered exhaust gas will be transported to the inner cavity of the air pipe 44, and then the filtered exhaust gas will be transported to the inner cavity of the feed pipe 52 through the air pipe 44. Then, the staff will pass through the funnel 5 to collect the dust. The material is poured into the cavity, and then the material falls into the inner cavity of the feed pipe 52. Under the blowing of the filtered exhaust gas, the material is transported to the inner cavity of the cage body 31, which can prevent a large amount of material from accumulating at the entrance of the feed pipe 52, thereby causing the entrance of the feed pipe 52 to be blocked. At the same time, the filtered exhaust gas can flow in the inner cavity of the cage body 31 under the action of the flow hole 331, thereby driving the hot air transported to the inner cavity of the cage body 31 to diffuse rapidly in the inner cavity of the cage body 31, which can prevent the temperature of a local position in the inner cavity of the cage body 31 from being too high or too low, thereby forming a temperature difference, thereby affecting the drying of the material;

[0057] Then, by running the motor 86, the output end of the motor 86 drives the gear 85 to rotate, thereby driving the gear 85 to mesh with the adjacent temperature sensor 91, and driving the connecting ring block 81 to rotate. Since the connecting ring block 81 is fixedly connected to the cage body 31, when the connecting ring block 81 rotates, it will drive the cage body 31 to rotate, and then it can drive the material in the inner cavity of the cage body 31 to turn over, so that the material can be heated more evenly. At the same time, when the cage body 31 rotates, it will drive the connecting ring block 81 to rotate. 71 rotates, and then the connecting ring block 1 71 applies a force to the adjacent roller 74, thereby driving the roller 74 to rotate, and then the cooperation of the two rollers 74 can support and limit the connecting ring block 1 71, thereby improving the rotation stability of the entire rotating cage assembly 3, and the dried material will be transported to the inner cavity of the connecting block 2 41 under the action of the material stripping plate 33, and then through the outlet at the bottom of the connecting block 2 41, the dried material can be transported into the device, so that the dried material can be collected.

[0058] The above generally describes the present invention in detail, but it is obvious to a person skilled in the art that some modifications or improvements can be made to the present invention. Therefore, modifications or improvements that do not deviate from the spirit of the present invention are within the scope of protection of the present invention.

Claims

1. A rotary drying device with automatic temperature and humidity control, comprising a bottom plate (1); characterized in that: An air heater (2) is fixedly connected to one side of the upper end of the bottom plate (1), a cage assembly (3) is fixedly connected to the middle of the upper end of the bottom plate (1), the cage assembly (3) comprises a cage body (31) and two connecting blocks (32), the two connecting blocks (32) are fixedly connected to the cage body (31), a material shifting plate (33) is fixedly connected to the inner cavity of the cage body (31), an exhaust gas conveying assembly (4) is arranged on one side of the cage body (31), and the exhaust gas The conveying assembly (4) is used to extract the waste gas in the inner cavity of the rotating cage body (31), and the waste gas conveying assembly (4) comprises a second connecting block (41), the second connecting block (41) is rotatably connected to the adjacent first connecting block (32), a filtering structure (42) is fixedly connected to the side of the second connecting block (41) away from the rotating cage body (31), the output end of the filtering structure (42) is fixedly connected to a fan (43), and the output end of the fan (43) is fixedly connected to an air pipe (44); A funnel (5) is provided on the side of the rotating cage body (31) away from the exhaust gas conveying component (4), and the funnel (5) is used for feeding. A connecting block three (51) is fixedly connected to the lower part of the funnel (5), and the connecting block three (51) is rotatably connected to the adjacent connecting block one (32). A feeding pipe (52) is fixedly connected to the lower end of the funnel (5), and the output end of the air pipe one (44) sequentially passes through the outer surface of the connecting block three (51) and the outer surface of the feeding pipe (52) and extends to the inner cavity of the feeding pipe (52). Two gas conveying components (6) are rotatably connected to the outer surface of the rotating cage body (31), two supporting components (7) are fixedly connected to the upper end of the bottom plate (1), and a driving component (8) is fixedly connected to the middle part of the upper end of the bottom plate (1). Two temperature measuring components (9) are fixedly connected to one side of the rotating cage body (31).

2. The automatic temperature and humidity control tumble drying device according to claim 1, characterized in that: Two air inlet bands (311) are provided in the middle of the outer surface of the rotating cage body (31) and penetrate through the outer surface of the rotating cage body (31) and extend to the inner cavity of the rotating cage body (31).

3. The automatic temperature and humidity control tumble drying device according to claim 1, characterized in that: The material-shifting plate (33) is provided with a plurality of flow holes (331).

4. The automatic temperature and humidity control tumble drying device according to claim 1, characterized in that: The filtering structure (42) comprises a connecting pipe (421) and a dust collecting box (423); a filtering mesh pipe (422) is fixedly connected to the middle of the connecting pipe (421); and the lower end of the filtering mesh pipe (422) is connected to the upper end of the dust collecting box (423) by bolts.

5. The automatic temperature and humidity control tumble drying device according to claim 2, characterized in that: The gas delivery assembly (6) comprises a second gas pipe (62), and a gas collection bin (61) is arranged outside the gas inlet hole belt (311), the gas collection bin (61) is rotatably connected to the rotating cage body (31), the input end of the gas collection bin (61) is fixedly connected to the output end of the second gas pipe (62), and the input end of the second gas pipe (62) is fixedly connected to the output end of the air heater (2).

6. The automatic temperature and humidity control tumble drying device according to claim 2, characterized in that: The support assembly (7) comprises a connecting ring block (71) and a supporting plate (72); the lower end of the supporting plate (72) is fixedly connected to the upper end of the bottom plate (1); the inner cavity of the connecting ring block (71) is fixedly connected to the outer surface of the rotating cage body (31); the upper end of the supporting plate (72) is symmetrically fixedly connected to a supporting block (73); the upper part of the supporting block (73) is rotatably connected to a roller (74); the outer surface of the roller (74) is in contact with the outer surface of the connecting ring block (71).

7. The automatic temperature and humidity control tumble drying device according to claim 2, characterized in that: The driving assembly (8) comprises a second connecting ring block (81) and a second supporting plate (82); the lower end of the second supporting plate (82) is fixedly connected to the upper end of the bottom plate (1); the inner cavity of the second connecting ring block (81) is fixedly connected to the outer surface of the rotating cage body (31); one side of the upper end of the second supporting plate (82) is fixedly connected to a supporting platform (83); the upper end of the supporting platform (83) is fixedly connected to a motor (86); the side of the upper end of the second supporting plate (82) away from the supporting platform (83) is fixedly connected to a second supporting block (84); the upper part of the second supporting block (84) is rotatably connected to a gear (85); the output end of the motor (86) is fixedly connected to the gear (85); the outer surface of the gear (85) is meshingly connected to the outer surface of the second connecting ring block (81).

8. The automatic temperature and humidity control tumble drying device according to claim 2, characterized in that: The temperature measuring component (9) comprises a temperature sensor (91), a detection end of the temperature sensor (91) passes through the outer surface of the rotating cage body (31) and extends to the inner cavity of the rotating cage body (31), a support frame (93) is fixedly connected to a side of the temperature sensor (91) close to the rotating cage body (31), the support frame (93) is fixedly connected to the outer surface of the rotating cage body (31), and a controller (92) is fixedly connected to one side of the temperature sensor (91), and the controller (92) is fixedly connected to the rotating cage body (31).