Foldable graphene warmer convenient to transport
By designing a foldable stainless steel shell and independent heating mechanism, the high cost and large space occupation problems of graphene heaters are solved, and the transportation cost reduction and efficient heat diffusion are achieved.
Patent Information
- Application Number
- CN202422372664.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-28
- Publication Date
- 2025-07-25
- Estimated Expiration
- 2034-09-28
AI Technical Summary
The housing of the existing graphene heater cannot be folded, resulting in high packaging costs and large space occupancy during transportation, which increases transportation costs.
The foldable stainless steel rear shell and the stainless steel front shell are designed. Both face each other with inclined bent grooves. Combined with the bottom plate and support feet, the folding of the shell is achieved through the bent grooves, and an independent heating mechanism is used to reduce packaging material and space occupation.
It greatly reduces transportation costs, while efficient heat diffusion is achieved through independent heating structures and combined shells, reducing packaging materials and space occupation.
Smart Images

Figure CN223153638U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of heaters, and more specifically, to a foldable graphene heater that is convenient for transportation. Background Technique
[0002] A graphene heater is a heating device made using graphene technology. Graphene is a two-dimensional material composed of carbon atoms, with excellent thermal conductivity, electrical conductivity, and strength. These properties give graphene heaters many advantages in the heating field.
[0003] Firstly, graphene heaters are characterized by high energy efficiency. Due to their excellent thermal conductivity, graphene heaters can quickly convert electrical energy into heat energy and evenly distribute the heat throughout the space, thereby improving the heating efficiency and reducing energy consumption.
[0004] Secondly, graphene heaters have the ability to heat up quickly. Due to the extremely good thermal conductivity of graphene, the heater can rapidly increase the temperature within a short period of time, providing instant warmth for users.
[0005] However, for the graphene heaters in the prior art, their surface shells are mostly integrally processed to accommodate the internal heating structure. During transportation, the shell cannot be folded, resulting in a large amount of packaging materials required for packaging before transportation. This not only increases the transportation packaging cost but also occupies a large amount of space, which is not conducive to reducing the transportation cost. In view of this, we propose a foldable graphene heater that is convenient for transportation. Summary of the Utility Model
[0006] The purpose of the utility model is to overcome the deficiencies of the prior art, meet the actual needs, and provide a foldable graphene heater that is convenient for transportation, so as to solve the technical problem that the shell of the current graphene heater cannot be folded, resulting in a large amount of packaging materials required for packaging before transportation, increasing the transportation packaging cost and occupying a large amount of space, which is not conducive to reducing the transportation cost.
[0007] To solve the above technical problems, the utility model provides the following technical solution: A foldable graphene heater that is convenient for transportation, including a stainless steel rear shell, a stainless steel front shell detachably connected to the stainless steel rear shell, and a heating mechanism installed on one side inside the stainless steel front shell for generating heat;
[0008] The opposite surfaces of the stainless steel rear shell and the stainless steel front shell are both provided with inclined bending grooves, and a bottom plate is connected to the inner bottom end of the stainless steel rear shell. The bottom plate abuts against the stainless steel front shell, and a plurality of threaded holes are equidistantly opened at the bottom end of the bottom plate, and support feet are threadedly installed in the plurality of threaded holes.
[0009] A through groove is formed at the center of the side of the stainless steel front housing away from the stainless steel rear housing, and a heating mechanism is fixedly arranged in the through groove. A cavity for accommodating the heating mechanism is jointly formed at the top ends of the stainless steel rear housing and the stainless steel front housing.
[0010] The utility model packages the stainless steel rear housing with prefabricated bending grooves, the stainless steel front housing, the bottom plate and the independent heating mechanism, so as to reduce the occupation of packaging materials and space during transportation. During use, the stainless steel rear housing and the stainless steel front housing are bent according to the bending grooves, and the bending of the bottom plate and the installation of the heating mechanism are completed, then the assembly of the device can be realized, which is beneficial to reducing the transportation cost.
[0011] Preferably, the heating mechanism includes a heating shell fixed in the through groove. A connecting seat is connected to the top of the heating shell, and an air outlet hopper arranged in the cavity is connected to the top of the connecting seat.
[0012] Preferably, a plurality of graphene heating plates are equidistantly arranged in the heating shell. An inspection opening is formed on one side in the heating shell, and an inspection baffle is arranged on one side in the inspection opening.
[0013] Preferably, an axial flow fan is fixedly arranged at the top inside the connecting seat. An air inlet is formed at the center of the bottom end of the heating shell, and a ventilation opening matching the air inlet is formed at the center of the bottom end of the bottom plate.
[0014] Preferably, two hanging seats are symmetrically formed on the side of the stainless steel front housing facing the stainless steel rear housing, and a positioning key and a limiting key are symmetrically formed on one side of the hanging seat.
[0015] Preferably, positioning grooves and limiting grooves are symmetrically formed on both sides of the stainless steel rear housing. The positioning key is inserted into the positioning groove, and the limiting key is hung in the limiting groove.
[0016] Compared with the prior art, the beneficial effects of the utility model are as follows:
[0017] 1. The utility model protects the heating mechanism by designing the bendable stainless steel rear housing, the stainless steel front housing, the bottom plate and the supporting feet. By bending the stainless steel rear housing and the stainless steel front housing along the preset bending grooves on the stainless steel rear housing and the stainless steel front housing, and carrying out the hanging connection of the stainless steel rear housing and the stainless steel front housing, and then bending the bottom plate to seal the bottom ends of the stainless steel rear housing and the stainless steel front housing, so as to complete the installation of the heating mechanism. During transportation, the foldable stainless steel rear housing and the stainless steel front housing can greatly reduce the packaging materials and transportation space required during packaging, which is greatly beneficial to reducing the transportation cost.
[0018] 2. The present utility model also realizes efficient heat diffusion by arranging multiple graphene heating plates in the heating shell and discharging the air heated by the multiple graphene heating plates through an axial flow fan. With an independent heating structure and a combined shell, the problem of low independent heat diffusion efficiency is effectively solved. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 is a schematic diagram of the overall structure of the present utility model;
[0020] Figure 2 is a disassembled schematic diagram of the present utility model in the rear view state;
[0021] Figure 3 is a disassembled schematic diagram of the present utility model in the upward view state;
[0022] Figure 4 is a cross-sectional view of the heating mechanism of the present utility model.
[0023] Description of the reference numerals in the drawings:
[0024] 1. Stainless steel rear shell; 101. Positioning groove; 102. Limiting groove; 2. Stainless steel front shell; 3. Heating mechanism; 301. Heating shell; 302. Connecting seat; 303. Air outlet hopper; 304. Graphene heating plate; 305. Maintenance baffle; 306. Axial flow fan; 307. Air inlet; 4. Bottom plate; 401. Ventilation opening; 5. Support feet; 6. Hanging seat; 7. Positioning key; 8. Limiting key. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0025] As Figure 1 shown, a foldable and conveniently transportable graphene heater related to the present utility model includes a stainless steel rear shell 1, a stainless steel front shell 2 detachably connected to the stainless steel rear shell 1, and a heating mechanism 3 installed on one side inside the stainless steel front shell 2 for generating heat;
[0026] As Figure 1 , Figure 2 , Figure 3As shown, in the embodiment of the present utility model, in order to optimize the structure of the heater to reduce the transportation cost, inclined bending grooves are provided on the facing surfaces of the stainless steel rear housing 1 and the stainless steel front housing 2. A bottom plate 4 is connected to the inner bottom end of the stainless steel rear housing 1. The bottom plate 4 abuts against the stainless steel front housing 2. A plurality of threaded holes are equidistantly provided at the bottom end of the bottom plate 4, and support feet 5 are threadedly installed in the plurality of threaded holes. A through groove is provided at the center of the side of the stainless steel front housing 2 away from the stainless steel rear housing 1, and a heating mechanism 3 is fixedly arranged in the through groove. A cavity for accommodating the heating mechanism 3 is formed jointly by the tops of the stainless steel rear housing 1 and the stainless steel front housing 2. The stainless steel rear housing 1, the stainless steel front housing 2, the bottom plate 4 and the independent heating mechanism 3 with prefabricated bending grooves are packaged, so as to reduce the occupation of packaging materials and space during transportation. During use, the stainless steel rear housing 1 and the stainless steel front housing 2 are bent according to the bending grooves, and the bending of the bottom plate 4 and the installation of the heating mechanism 3 are completed, so that the assembly of the device can be realized, which is beneficial to reducing the transportation cost.
[0027] As Figure 1 , Figure 3 , Figure 4 As shown, in the embodiment of the present utility model, in order to achieve efficient heat diffusion, the heating mechanism 3 includes a heating shell 301 fixed in the through groove. A connecting seat 302 is connected to the top of the heating shell 301, and an air outlet hopper 303 arranged in the cavity is connected to the top of the connecting seat 302. A plurality of graphene heating plates 304 are equidistantly arranged in the heating shell 301. An inspection opening is provided on one side of the heating shell 301, and an inspection baffle 305 is arranged on one side in the inspection opening. An axial flow fan 306 is fixedly arranged at the top of the inner part of the connecting seat 302. An air inlet 307 is provided at the center of the bottom end of the heating shell 301. A ventilation opening 401 matching the air inlet 307 is provided at the center of the bottom end of the bottom plate 4. Through the arrangement of a plurality of graphene heating plates 304 in the heating shell 301, the air heated by the plurality of graphene heating plates 304 is discharged by cooperating with the axial flow fan 306, realizing efficient heat diffusion. The independent heating structure is combined with the combined shell, effectively solving the problem of low independent heating and diffusion efficiency.
[0028] As Figure 1 , Figure 2As shown, in the embodiment of the present utility model, in order to achieve the hanging connection between the stainless-steel front housing 2 and the stainless-steel rear housing 1, two hanging seats 6 are symmetrically configured on one side of the stainless-steel front housing 2 facing the stainless-steel rear housing 1, and a positioning key 7 and a limiting key 8 are symmetrically configured on one side of the hanging seat 6. Positioning grooves 101 and limiting grooves 102 are symmetrically opened on both sides of the stainless-steel rear housing 1. The positioning key 7 is inserted into the positioning groove 101, and the limiting key 8 is hung in the limiting groove 102. By inserting the positioning key 7 and the limiting key 8 provided on the hanging seat 6 into the positioning groove 101 and the limiting groove 102 on the stainless-steel rear housing 1 respectively, the hanging connection between the stainless-steel front housing 2 and the stainless-steel rear housing 1 is realized by the cooperation of the positioning key 7 and the limiting key 8.
[0029] Working principle: This embodiment provides a foldable graphene heater that is convenient for transportation. By folding the stainless-steel rear housing 1 and the stainless-steel front housing 2 along the prefabricated bending grooves, then folding the bottom plate 4 into the stainless-steel rear housing 1, and then installing the stainless-steel front housing 2 on one side of the stainless-steel rear housing 1, the positioning key 7 and the limiting key 8 provided on the hanging seat 6 are respectively inserted into the positioning groove 101 and the limiting groove 102 on the stainless-steel rear housing 1, completing the connection between the stainless-steel rear housing 1 and the stainless-steel front housing 2, and blocking the lower parts of the stainless-steel rear housing 1 and the stainless-steel front housing 2 by the bottom plate 4, thus completing the assembly of the heater. The unfolded stainless-steel rear housing 1, the stainless-steel front housing 2 and the independent heating mechanism 3 can reduce the packaging materials and the occupied area during packaging, thereby reducing the transportation cost;
[0030] And during use, multiple graphene heating plates 304 can be started to heat the air inside the heating shell 301 and the air passing through the heating shell 301, and the hot air is discharged by the axial-flow fan 306 through the connection seat 302 and the air outlet hopper 303, realizing the efficient diffusion of the hot air.
[0031] The embodiments disclosed in the present utility model are the preferred embodiments, but not limited thereto. Those of ordinary skill in the art can easily understand the spirit of the present utility model based on the above embodiments and make different extensions and changes. However, as long as they do not depart from the spirit of the present utility model, they are within the protection scope of the present utility model.
Claims
1. A foldable graphene heater that is convenient for transportation, characterized in that, It includes a stainless-steel rear housing (1), a stainless-steel front housing (2) detachably connected to the stainless-steel rear housing (1), and a heating mechanism (3) installed on one side inside the stainless-steel front housing (2) for generating heat; Both the opposing surfaces of the stainless-steel rear housing (1) and the stainless-steel front housing (2) are provided with inclined bending grooves. And a bottom plate (4) is connected to the inner bottom end of the stainless-steel rear housing (1). The bottom plate (4) abuts against the stainless-steel front housing (2). A plurality of threaded holes are equidistantly opened at the bottom end of the bottom plate (4), and support feet (5) are threadedly installed in the plurality of threaded holes; A through groove is opened at the center of the side of the stainless-steel front housing (2) away from the stainless-steel rear housing (1). And the heating mechanism (3) is fixedly arranged in the through groove. And a cavity for accommodating the heating mechanism (3) is jointly formed at the top of the stainless-steel rear housing (1) and the stainless-steel front housing (2).
2. The foldable graphene heater for convenient transportation according to claim 1, wherein The heating mechanism (3) includes a heating shell (301) fixed in the through groove. A connecting seat (302) is connected to the top of the heating shell (301). And an air outlet hopper (303) arranged in the cavity is connected to the top of the connecting seat (302).
3. The foldable graphene heater convenient for transportation according to claim 2, wherein A plurality of graphene heating plates (304) are equidistantly arranged in the heating shell (301). And an inspection opening is opened on one side inside the heating shell (301). An inspection baffle (305) is arranged on one side inside the inspection opening.
4. The foldable graphene heater for convenient transportation according to claim 3, wherein An axial flow fan (306) is fixedly arranged at the top inside the connecting seat (302). And an air inlet (307) is opened at the center of the bottom end of the heating shell (301). A ventilation opening (401) for cooperating with the air inlet (307) is opened at the center of the bottom end of the bottom plate (4).
5. The foldable graphene heater convenient for transportation according to claim 1, wherein Two hanging seats (6) are symmetrically configured on the side of the stainless-steel front housing (2) facing the stainless-steel rear housing (1). And a positioning key (7) and a limiting key (8) are symmetrically configured on one side of the hanging seat (6).
6. The foldable graphene heater for convenient transportation according to claim 5, wherein, Positioning grooves (101) and limiting grooves (102) are symmetrically opened on both sides of the stainless-steel rear housing (1). The positioning key (7) is inserted into the positioning groove (101). And the limiting key (8) is hung in the limiting groove (102).