High-efficiency heating, drying and regenerating radiating fin with multi-layer structure

By employing a multi-layered heating disc and heat dissipation baffle design in the dehumidifier, the problem of low heat conduction efficiency in traditional dehumidifiers is solved, achieving uniform heating of silica gel particles and consistent regeneration effect, while reducing energy consumption.

CN224054625UActive Publication Date: 2026-03-27SHENZHEN MINGZHENGHONG ELECTRONIC TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-25
Publication Date
2026-03-27

AI Technical Summary

Technical Problem

In traditional desiccant regeneration methods, the heat transfer efficiency between the heating rod and the heat dissipation fins is low, resulting in heat not being transferred to the silica gel particles quickly and evenly, causing energy waste and inconsistent regeneration effects.

Method used

The heating chamber is formed by a multi-layered heating disk and heat dissipation baffle. Silica gel particles are arranged in a layered axial array along the inner cavity of the barrel. The heat dissipation baffle, composed of aluminum alloy and heating wire, improves heat conduction efficiency, and the heat distribution is optimized through the air inlet and outlet pipes.

Benefits of technology

It significantly improves heat transfer efficiency and uniformity, reduces energy consumption, and ensures uniform heating and consistent regeneration of silica gel particles.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a multi-layer structure radiating fin capable of efficiently heating, drying and regenerating, which relates to the field of moisture absorbers and comprises a barrel seat, a barrel body is arranged in an inner cavity of the barrel seat, a support is arranged in an inner cavity of the barrel body, a heating disc is sleeved on the surface of the support, a radiating partition plate is arranged above the heating disc, and the radiating partition plate is arranged above the barrel body. A heating cavity is formed between the heating disc and the heat dissipation partition plate. According to the utility model, the heating cavity is formed between the heating disc and the heat dissipation partition plate, so that the loss of heat in the transfer process can be greatly reduced, the heat conduction efficiency is improved, the heat can be quickly and uniformly transferred to silica gel particles, the energy consumption can be obviously reduced, and the consistency of the regeneration effect is ensured; the heating discs and the heat dissipation partition plates are arranged along the inner cavity of the barrel seat in a layered axial array mode, so that each layer of silica gel particles can be uniformly heated, and the problem of non-uniform heating of the silica gel particles caused by difference of heat conduction efficiency in a traditional heating mode is solved.
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Description

TECHNICAL FIELD

[0001] The utility model belongs to the field of moisture absorber, concretely is a kind of high-efficiency heating drying regeneration multilayer structure's fin. BACKGROUND

[0002] Double-barrelled maintenance-free moisture absorber as a kind of common humidity control equipment is widely used in the place needing to maintain specific humidity environment, such as electronic equipment machine room, storage room, laboratory etc., this kind of moisture absorber usually absorbs the humidity in environment by built-in moisture absorbing material (such as silica gel particles) to keep the dryness of space, however, moisture absorbing material will gradually saturate after absorbing humidity, loses the moisture absorbing capacity, thus needs to be regenerated to recover its moisture absorbing performance.

[0003] Traditional regeneration method is to heat the heat dissipation fin in moisture absorber by built-in heating rod, and then heat conduction is carried out to silica gel particles, so that the moisture in it evaporates, to achieve the purpose of regeneration, however, in actual use, the heat conduction efficiency between heating rod and heat dissipation fin is limited, which leads to that heat cannot be rapidly and uniformly transferred to silica gel particles, and in the process of heat conduction, part of heat will be lost to the surrounding environment, not only causing energy waste, but also the heating temperature of silica gel particles will be different, which affects the regeneration effect.

[0004] Therefore, the utility model provides a kind of high-efficiency heating drying regeneration multilayer structure's fin to solve above-mentioned problems. UTILITY MODEL CONTENTS

[0005] To solve the above technical problems, the utility model provides the following technical scheme:

[0006] A kind of high-efficiency heating drying regeneration multilayer structure's fin, including barrel seat, the inner chamber of the barrel seat is provided with barrel body, the inner chamber of the barrel body is provided with support, the surface of the support is equipped with heating disc, and the upper portion of heating disc is provided with heat dissipation baffle, heating cavity is formed between the heating disc and heat dissipation baffle, and the inner chamber of heating cavity is filled with silica gel particles, the heating disc and heat dissipation baffle are arranged in layered axial array along the inner chamber of barrel seat.

[0007] Further, in the utility model, the bottom of barrel body extends to the inner chamber of barrel seat, and is screw-threaded with the inner chamber of barrel seat, the bottom of support is fixedly connected with the bottom of barrel seat inner chamber.

[0008] Further, in the utility model, the top of heating disc and heat dissipation baffle is all equipped with hole, and the top and bottom of support are all equipped with through hole.

[0009] Further, in the utility model, the front surface of the barrel seat is communicated with an air inlet pipe, the top of the barrel body is communicated with an air outlet pipe, and the air inlet pipe and the air outlet pipe are connected with external transmission pipelines.

[0010] Further, in the utility model, the heating disc and the heat dissipation baffle are circular in design, the heat dissipation baffle is composed of an aluminum alloy material, an electric heating wire and an insulating film, the aluminum alloy material is a base body, and the electric heating wire and the insulating film are arranged in the inner cavity of the base body.

[0011] Beneficial effects, the utility model has following beneficial effects:

[0012] The utility model discloses a heating cavity formed between the heating disc and the heat dissipation baffle can greatly reduce the heat loss in the transmission process, improve the heat conduction efficiency, make the heat rapidly and uniformly transmit to silica gel particles, can significantly reduce energy consumption, ensure the consistency of regeneration effect, and the heating disc and the heat dissipation baffle are arranged in a layered axial array along the inner cavity of the barrel seat, and the layout mode makes each layer of silica gel particles obtain uniform heating, avoiding the problem of uneven heating of silica gel particles caused by the difference of heat conduction efficiency in the traditional heating mode. BRIEF DESCRIPTION OF DRAWINGS

[0013] Fig. 1 It is the structure schematic diagram of the utility model;

[0014] Fig. 2 It is the barrel body cut state structure schematic diagram of the utility model;

[0015] Fig. 3 It is the structure schematic diagram of the utility model heating disc and heat dissipation baffle separation state.

[0016] In the drawing:

[0017] 1, barrel seat;2, barrel body;3, support;4, heating disc;5, heat dissipation baffle. SPECIFIC EMBODIMENT

[0018] In order to more understand the technical content of the utility model, specific embodiment is raised and the following is described with the attached drawing.The aspects of the utility model are described in the disclosure with reference to the attached drawings, and many illustrated embodiments are shown in the drawings.The embodiments of the disclosure are not necessarily defined in all aspects including the utility model.It should be understood that the above-mentioned various concepts and embodiments, and those concepts and implementation modes described in more detail below can be implemented in any one of many ways, because the concepts and embodiments disclosed by the utility model are not limited to any implementation mode.In addition, some aspects of the utility model can be used alone, or used in any suitable combination with other aspects of the utility model.

[0019] Embodiment 1

[0020] As Figs. 1-3 shown, the first embodiment of the utility model provides a kind of high-efficiency heating drying regeneration multilayer structure's radiating fin, including barrel seat 1, the inner cavity of barrel seat 1 is provided with barrel 2, the inner cavity of barrel 2 is provided with support 3, the surface of support 3 is equipped with heating disc 4, and the upper portion of heating disc 4 is provided with heat dissipation baffle 5, heating cavity is formed between heating disc 4 and heat dissipation baffle 5, and the inner cavity of heating cavity is filled with silica gel particles, and heating disc 4 and heat dissipation baffle 5 are arranged in layered axial array along the inner cavity of barrel seat 1.

[0021] As Figs. 1-3 shown, support 3 can support heating disc 4 and heat dissipation baffle 5, and the heating cavity formed between heating disc 4 and heat dissipation baffle 5 by silica gel shell, so that heat loss in heat transfer process can be greatly reduced during later heating drying regeneration, heat conduction efficiency is improved, heat can be quickly and uniformly transferred to silica gel particles, energy consumption can be significantly reduced, the consistency of regeneration effect is ensured, and heating disc 4 and heat dissipation baffle 5 are arranged in layered axial array along the inner cavity of barrel seat 1, so that each layer of silica gel particles can be uniformly heated, and the problem of uneven heating of silica gel particles caused by difference in heat conduction efficiency in traditional heating mode is avoided.

[0022] Embodiment 2

[0023] Referring to Figs. 1-3 , the second embodiment of the utility model is based on the previous embodiment.

[0024] In this embodiment, the bottom of barrel 2 extends to the inner cavity of barrel seat 1, and is threadedly connected with the inner cavity of barrel seat 1, and the bottom of support 3 is fixedly connected with the bottom of the inner cavity of barrel seat 1.

[0025] The top of heating disc 4 and heat dissipation baffle 5 is provided with a hole, and the top and bottom of support 3 are provided with through holes.

[0026] As Figs. 1-3 shown, barrel 2 is threadedly connected with the inner cavity of barrel seat 1, so that barrel 2 can be conveniently disassembled, and the interior can be conveniently cleaned and maintained, and the silica gel particles can also be conveniently replaced, the bottom of support 3 is fixedly connected with the bottom of the inner cavity of barrel seat 1, since support 3 provides stable support for heating disc 4 and heat dissipation baffle 5, it is ensured that they will not shake or displace during operation, so that the stability of heating and regeneration effect is ensured, and the holes and through holes are provided, which is helpful for the circulation of gas in the heating cavity, so that silica gel particles can more fully contact hot air generated by heating, so that more uniform heating and regeneration effect is achieved.

[0027] Embodiment 3

[0028] Referring to Figs. 1-3 For the third embodiment of the present application, the embodiment is based on the previous two embodiments.

[0029] In the embodiment, the front of the barrel seat 1 is communicated with an air inlet pipe, the top of the barrel body 2 is communicated with an air outlet pipe, and the air inlet pipe and the air outlet pipe are connected with external transmission pipelines.

[0030] The heating disc 4 and the heat dissipation baffle 5 are both circular in design, the heat dissipation baffle 5 is composed of an aluminum alloy material, an electric heating wire and an insulating film, the aluminum alloy material is a base body, and the electric heating wire and the insulating film are arranged in the inner cavity of the base body.

[0031] As Fig. 3 shown, the external moisture can enter through the air inlet pipe, the moisture can be removed in the later stage, the air after absorbing moisture can be discharged through the air outlet pipe, the circular design is helpful for uniform distribution and transmission of heat, the heating efficiency is improved, the aluminum alloy material has good heat conduction performance, the heat generated by the electric heating wire can be quickly transmitted to the silica gel particles, the arrangement of the insulating film ensures the electrical isolation between the electric heating wire and the aluminum alloy base body, the safety and reliability of the equipment are improved, and the combination design makes the multi-layer heat dissipation fins realize efficient heating and regeneration functions.

[0032] In use, first, the external moisture enters the inner cavity of the barrel seat 1 through the air inlet pipe, since the barrel seat 1 and the barrel body 2 are communicated, the moisture will enter the inner cavity of the barrel body 1, then the silica gel particles between the heating disc 4 and the heat dissipation baffle 5 will absorb the moisture, keeping the space dry, when the silica gel particles need to be dried and regenerated after a long time of moisture absorption, the heating disc 4 is operated, the electric heating wire in the heating disc 4 will generate heat after being electrified, the heat will be transmitted to the surface of the heating disc 4, the heat on the surface of the heating disc 4 is radiated upward to the heating cavity between the heating disc 4 and the heat dissipation baffle 5, so that the heat is effectively transmitted to the silica gel particles in the cavity, after the silica gel particles absorb the heat, the water in the silica gel particles begins to evaporate to form water vapor, the water vapor is discharged upward through the holes in the top of the heating disc 4 and the heat dissipation baffle 5 and the through hole of the support 3, and finally discharged to the outside of the moisture absorber through the air outlet pipe, realizing uniform heating and regeneration of the silica gel particles, in the heating, drying and regeneration process, the excess heat will continue to be radiated upward from the holes to the next heating cavity, so that the use rate of heat energy is improved, realizing the heating and regeneration process from bottom to top, thereby realizing uniform heating and regeneration and improving the heating efficiency.

[0033] The standard parts used in the application file can be purchased from the market, and can be ordered according to the description and drawings, and the specific connection mode of each part adopts the conventional means such as bolt, rivet and welding in the prior art, the mechanical, part and equipment adopt the conventional type in the prior art, the control mode is automatically controlled through the controller, the control circuit of the controller can be realized through simple programming of the person skilled in the art, which belongs to the common knowledge in the art, and the application is mainly used to protect the mechanical device, so the control mode and circuit connection are not explained in detail.

[0034] Although the utility model has disclosed as above with preferable embodiment, it is not used to limit the utility model. Those who have ordinary knowledge in the technical field to which the utility model belongs can make various changes and decorations without departing from the spirit and scope of the utility model. Therefore, the protection scope of the utility model shall be subject to the definition of the claims.

Claims

1. A high efficiency heating dry regeneration multi-layer structure of the fin, including the barrel seat (1), its characterized in that: The inner cavity of the barrel seat (1) is provided with a barrel body (2), the inner cavity of the barrel body (2) is provided with a support (3), the surface of the support (3) is sleeved with a heating disc (4), the upper portion of the heating disc (4) is provided with a heat dissipation baffle (5), a heating cavity is formed between the heating disc (4) and the heat dissipation baffle (5), the inner cavity of the heating cavity is filled with silica gel particles, and the heating disc (4) and the heat dissipation baffle (5) are arranged in a layered axial array along the inner cavity of the barrel seat (1).

2. The high efficiency heating, drying and regenerative multi-layered structure of the heat sink as claimed in claim 1, wherein: The bottom of the barrel body (2) extends to the inner cavity of the barrel seat (1) and is threadedly connected with the inner cavity of the barrel seat (1), and the bottom of the support (3) is fixedly connected with the bottom of the inner cavity of the barrel seat (1).

3. The high efficiency heating, drying and regenerative multi-layered structure of the heat sink as claimed in claim 1, wherein: The top of the heating disc (4) and the heat dissipation baffle (5) is provided with a hole, and the top and the bottom of the support (3) are provided with through holes.

4. The high efficiency heating, drying and regenerative multi-layered structure of the heat sink as claimed in claim 1, wherein: The front of the barrel seat (1) is communicated with an air inlet pipe, the top of the barrel body (2) is communicated with an air outlet pipe, and the air inlet pipe and the air outlet pipe are connected with external transmission pipelines.

5. The multi-layer heat sink with high-efficiency heating, drying, and regeneration as described in claim 1, characterized in that: The heating disc (4) and the heat dissipation baffle (5) are circular in design, the heat dissipation baffle (5) is composed of an aluminum alloy material, an electric heating wire and an insulating film, the aluminum alloy material is a base body, and the electric heating wire and the insulating film are arranged in the inner cavity of the base body.