A tabletop stove

CN224801706UActive Publication Date: 2026-09-25CHANT HEAT ENERGY SCI & TECH (ZHONGSHAN) CO LTD
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Patent Information

Application Number
CN202522272513.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-28
Publication Date
2026-09-25
Estimated Expiration
2035-10-28

AI Technical Summary

Technical Problem

[0003]相关技术中,此类产品通常炉架设计较为简单,对于使用方面没有限制,可以使用直径超出适用范围的锅具,导致使用时存在安全隐患;并且在使用锅具时难以保证支撑可靠性,整体安全性较低

Benefits of technology

[0015]通过上述技术方案,在使用本申请的桌面炉时,将使用的锅具放置于炉架上,炉架能够将锅具支撑于炉头上方,即可正常使用桌面炉,底座和支撑件共同对锅具进行支撑,保证支撑的可靠性。在使用直径超出适用范围的锅具时,锅具的底部会覆盖到限位部和倾斜部,由于限位部向远离炉体的方向凸起设置,且倾斜部向靠近炉体的方向倾斜设置,锅具无法平稳的放置于炉架上,即使勉强将锅具放置于炉架上,锅具也会由于支撑不稳定而晃动,致使无法正常使用,从而限制桌面炉的使用,防止使用直径超出适用范围的锅具,造成安全隐患,提高本申请的可靠性、安全性。

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Abstract

The application provides a tabletop stove, and relates to the technical field of tabletop stoves. The tabletop stove comprises a stove body and a stove rack. A stove head is arranged on the stove body. The stove rack is placed on the stove body and is used for supporting a pot above the stove head. The stove rack comprises a base and a support. The base is mounted on the stove body around the stove head. The support is mounted on the base. The support is symmetrically arranged around the center of the stove head and comprises at least two. One end of the support is provided with a limiting part. The limiting part extends away from the stove body. One end of the support away from the limiting part is provided with an inclined part. The inclined part extends towards the stove body. The application can limit the use of pots exceeding the specification limit, thereby improving the safety of the application.
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Description

Technical Field

[0001] This application relates to the field of desktop oven technology, and more specifically, to a desktop oven. Background Technology

[0002] A desktop oven typically refers to a small, compact, portable heating or cooking appliance. It is not a single product, but a general term for a class of devices, whose core characteristics are portability and desktop applicability.

[0003] In related technologies, such products typically have a simple stove rack design, with no restrictions on usage. They can use cookware with diameters exceeding the applicable range, leading to safety hazards during use. Furthermore, it is difficult to guarantee the reliability of support when using cookware, resulting in low overall safety. Utility Model Content

[0004] To address the issues of unrestricted use and low safety levels mentioned in related technologies, this application provides a desktop stove.

[0005] To achieve the above objectives, this application provides a tabletop stove, including a stove body and a stove frame. A burner head is disposed on the stove body. The stove frame is placed on the stove body and is used to support cookware above the burner head; the stove frame includes a base and support members, the base being mounted on the stove body around the burner head, and the support members being mounted on the base. At least two support members are symmetrically arranged around the center of the burner head; one end of each support member has a limiting portion extending away from the stove body, and the end of each support member away from the limiting portion has an inclined portion extending towards the stove body.

[0006] Furthermore, the furnace body is provided with a recessed portion, and the burner head is disposed within the recessed portion. The base is configured as a closed rotating structure, and when the base is engaged within the recessed portion, the burner head is located at the center of the base.

[0007] Furthermore, the base includes a first plate for supporting the cookware; two first plates are arranged opposite each other with the burner head as the center, and the two first plates abut against the edge of the recess.

[0008] Furthermore, the base also includes a second plate disposed between the two supporting members. Two second plates are arranged opposite each other with the burner head as the center, and the first and second plates are staggered along the circumference of the burner head.

[0009] Furthermore, the second plate is curved and recessed in a direction away from the burner head.

[0010] Furthermore, the base is provided with an installation groove, which is located between the first plate and the second plate, and the support member is snapped into the installation groove.

[0011] Furthermore, a support portion is provided on the support member at a position inside the base, and the support portion and the second plate body together form a windbreak portion.

[0012] Furthermore, a switch is provided on the furnace body, the switch is located on one side of the furnace head, and an anti-scalding plate is provided between the switch and the furnace head.

[0013] Furthermore, the switch is configured as a knob, which is rotated and mounted on the gas passage of the furnace body, cooperating with the valve to control the firepower at the burner head. A piezoelectric igniter is installed at the knob; rotating the knob activates the piezoelectric igniter for ignition at the burner head.

[0014] Furthermore, a furnace foot is hinged to the side of the furnace body away from the furnace head. When the furnace foot is in a first state, the end of the furnace foot away from the furnace body rests on the ground to support the furnace body. When the furnace foot is in a second state, the furnace foot is attached to the furnace body and is relatively fixed to the furnace body.

[0015] With the above technical solution, when using the desktop stove of this application, the cookware is placed on the stove rack, which supports the cookware above the burner head, allowing the desktop stove to be used normally. The base and support components work together to support the cookware, ensuring reliable support. When using cookware with a diameter exceeding the applicable range, the bottom of the cookware will cover the limiting part and the tilting part. Because the limiting part protrudes away from the stove body and the tilting part tilts towards the stove body, the cookware cannot be placed stably on the stove rack. Even if the cookware is forcibly placed on the stove rack, it will wobble due to unstable support, making it unusable. This limits the use of the desktop stove, prevents the use of cookware with a diameter exceeding the applicable range, avoids safety hazards, and improves the reliability and safety of this application.

[0016] Other features and advantages of this application will be described in detail in the following detailed description section. Attached Figure Description

[0017] To more clearly illustrate the technical solutions of the embodiments of this application, the accompanying drawings used in the embodiments will be briefly introduced below. It should be understood that the following drawings only show some embodiments of this application and should not be regarded as a limitation of the scope. For those skilled in the art, other related drawings can be obtained based on these drawings without creative effort.

[0018] Figure 1 This is a schematic diagram of the desktop oven provided in an embodiment of this application from one perspective. Figure 2 This is a structural schematic diagram of the desktop stove provided in an embodiment of this application from another perspective.

[0019] icon: 100-Furnace body; 110-Furnace head; 120-Recessed part; 130-Switch; 131-Anti-scalding plate; 140-Furnace foot; 150-Storage part; 200-Furnace frame; 210-Base; 211-First plate; 212-Second plate; 220-Supporting part; 221-Limiting part; 222-Inclined part. Detailed Implementation

[0020] To make the objectives, technical solutions, and advantages of the embodiments of this application clearer, the technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. The components of the embodiments of this application described and shown in the accompanying drawings can generally be arranged and designed in various different configurations.

[0021] In the description of this application, it should be noted that the terms "inner" and "outer," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, or the orientation or positional relationship commonly used when the product is in use. They are used only for the convenience of describing this application and for simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this application. Furthermore, the terms "first," "second," etc., are used only to distinguish descriptions and should not be construed as indicating or implying relative importance.

[0022] In the description of this application, it should also be noted that, unless otherwise expressly specified and limited, the terms "setup" and "connection" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this application based on the specific circumstances.

[0023] This embodiment provides a desktop stove to address the safety hazards caused by the lack of restrictions on the cookware used in related technologies.

[0024] Please see Figure 1 , Figure 2The tabletop stove of this embodiment includes a stove body 100 and a stove rack 200. A burner head 110 is provided on the stove body 100. The stove rack 200 is placed on the stove body 100 to support cookware above the burner head 110. The stove rack 200 includes a base 210 and support members 220. The base 210 is mounted on the stove body 100 around the burner head 110, and the support members 220 are mounted on the base 210. At least two support members 220 are symmetrically arranged around the center of the burner head 110. One end of the support member 220 is provided with a limiting portion 221, which extends away from the stove body 100. The end of the support member 220 away from the limiting portion 221 is provided with an inclined portion 222, which extends towards the stove body 100.

[0025] Specifically, when using the tabletop stove of this embodiment, the base 210 of the stove rack 200 is fitted and stably installed on the stove body 100, ensuring that the center of the stove rack 200 is aligned with the burner head 110 on the stove body 100. Check that the multiple support members 220 of the stove rack 200 are evenly distributed and securely installed. Take a pot with a bottom diameter within the design range and place it stably on the stove rack 200. At this time, the bottom edge of the pot will completely rest on the load-bearing area of ​​the support member 220 and the base 210. The weight of the pot is transferred to the stove body 100 through the support member 220 and the base 210, forming a stable and reliable support structure. Ignite the burner head 110 to begin heating and cooking. Throughout the process, the pot remains stable without shaking, and its center of gravity is within the support area, ensuring safe use.

[0026] If an attempt is made to use a large cookware with a bottom diameter significantly exceeding the design specifications, its bottom edge will first contact the limiting portion 221 of the support member 220 of the stove rack 200 when the large cookware is placed downwards. Since the limiting portion 221 protrudes away from the stove body 100, it forms a protrusion that prevents the cookware from being placed further downwards. Even if the user applies external force to forcibly press the cookware down past the limiting portion 221, the other edge of the cookware will rest on the inclined portion 222. Because the inclined portion 222 is inclined towards the stove body 100, its surface is sloped rather than flat. The edge of the cookware cannot obtain stable planar support on it and will slide or wobble violently due to gravity. This causes the large cookware to be unable to maintain balance on the stove rack 200; it either cannot be placed at all or will tip over with the slightest touch, thus forcing the user to abandon the use of the incompatible cookware. This restricts improper user behavior and improves the safety of this embodiment.

[0027] In one embodiment, exemplarily, such as Figure 1 , Figure 2As shown, a recessed portion 120 is provided on the stove body 100, and the burner head 110 is disposed within the recessed portion 120. The base 210 is configured as a closed rotating structure. When the base 210 is engaged within the recessed portion 120, the burner head 110 is located at the center of the base 210. Traditional tabletop stove racks 200 are often simply placed on top of the stove body 100, maintaining their position solely through gravity and friction. When cookware is placed on them or when subjected to external impact, the rack 200 is prone to wobbling, shifting, or even tipping over, posing a safety hazard. In this embodiment, the engagement structure between the recessed portion 120 and the closed base 210 effectively provides the rack 200 with a positioning groove and a limiting step. The base 210 embeds into the recessed portion 120, forming a dual constraint in both radial and axial directions, effectively preventing the rack 200 from sliding or rotating horizontally during use. The overall rigidity and anti-tipping ability of the stove rack 200 have been enhanced, so that the stove rack 200 can remain stable even if the cookware is heavy or subjected to a slight impact, thus improving the safety of use.

[0028] The recessed portion 120 is equivalent to adding reinforcing ribs or bosses to the furnace body 100, improving the mechanical strength and rigidity of the top of the furnace body 100. The enclosed rotating base 210 is itself a high-rigidity structure, which can effectively resist deformation. After the two are engaged, they form a stable connection, which can better bear the weight of the cookware and various stresses during use, extending the service life of the product.

[0029] In one embodiment, exemplarily, such as Figure 1 , Figure 2 As shown, the base 210 includes a first plate 211 for supporting the cookware; two first plates 211 are arranged opposite each other with the burner head 110 as the center, and the two first plates 211 abut against the edge of the recess 120. The annular base 210 provides a basic, continuous annular support surface, evenly distributing the pressure on the bottom of the cookware and preventing local stress concentration. The two first plates 211 act as reinforcing ribs or main load-bearing beams, directly transferring the critical load of the cookware to the sturdy edge of the recess 120 through the shortest path. The composite support mode of annular dispersion and double beam concentration enables the burner frame 200 to withstand greater weight and more complex mechanical loads, such as the torque during stirring, significantly improving the overall structural strength and resistance to deformation.

[0030] The weight of the cookware and the dynamic loads during use are preferentially transferred to the edge of the recess 120 through the two more rigid first plates 211. The annular base 210 serves as an auxiliary support, bearing the remaining load and maintaining the overall structural integrity. This avoids the bending stress and fatigue that might result from relying entirely on the annular structure to transfer the load, making the stress distribution of the entire base 210 more reasonable and extending its service life.

[0031] In one embodiment, exemplarily, such as Figure 1 , Figure 2 As shown, the base 210 also includes a second plate 212, which is disposed between the two support members 220. Two second plates 212 are arranged opposite each other with the burner head 110 as the center, and the first plates 211 and second plates 212 are staggered along the circumference of the burner head 110. A single beam or plate is prone to bending deformation under stress, while a closed frame structure composed of multiple rods has extremely high bending and torsional stiffness, which can efficiently distribute concentrated loads throughout the structure, reducing deformation. In this embodiment, the two first plates 211 and the two second plates 212 are staggered along the circumference, together forming an approximately rectangular or square support frame, providing four main support points for the cookware. When the cookware is placed on it, the weight is shared by these four symmetrical plates, resulting in a shorter and more direct load path, effectively avoiding the problems of "excessive span and sag in the middle" that may exist in traditional ring supports.

[0032] The rectangular frame exhibits significantly stronger bending resistance in any direction compared to a single beam or ring structure. Regardless of the pot's center of gravity, at least one plate will always be in an optimal stress-bearing position to resist bending, significantly reducing the overall deflection of the base 210. Furthermore, when the user stirs the food in the pot, a torque is generated, attempting to rotate the cooker grates 200 along with the pot. Traditional ring or double-beam structures have weak torsional resistance, while the near-quadrilateral frame structure in this embodiment forms an effective torsional-resistant enclosure, effectively resisting torsional forces from any direction, preventing the cooker grates 200 from wobbling during use, and improving operational stability and safety.

[0033] Furthermore, the four plates evenly distribute the weight and dynamic load of the cookware, preventing excessive stress concentration on one or two components. This balanced stress distribution reduces fatigue damage to individual components, resulting in a longer lifespan and higher reliability for the entire stove frame 200.

[0034] In one embodiment, exemplarily, such as Figure 1 , Figure 2 As shown, the second plate 212 is curved and recessed towards the direction away from the burner head 110. Bending a flat plate into a "U", "C" shape, or arc-shaped groove is a method used in engineering to enhance the stiffness of thin plates. This shape changes the cross-sectional properties of the material, significantly increasing the moment of inertia of the section, thereby greatly enhancing its resistance to bending deformation. When the weight of the cookware is applied to the burner frame 200, the curved second plate 212 can more effectively distribute the load along its arc-shaped path, reducing plate sagging and deformation, and ensuring the long-term stability of the support. In addition, the groove-shaped structure formed by the recess itself has a certain torsional stiffness, which can better resist the torsional force generated when stirring the cookware, improving the load-bearing capacity and structural integrity of the entire frame.

[0035] When a tabletop stove is used outdoors or in a well-ventilated indoor environment, crosswinds are a major factor affecting combustion stability. Strong winds can cause the flame to be blown off course or extinguished, or the flame to overflow. The curved and inwardly recessed second plate 212, with its arc-shaped outer edge, forms a continuous arc-shaped windbreak around the burner head 110, deflecting or weakening the crosswinds and preventing them from directly impacting the flame at the burner head 110. Especially when the two curved second plates 212 and the two first plates 211 together form an approximately rectangular frame, their arc-shaped edges work together to form a circumferential and partially enclosed windproof ring around the burner head 110. This reduces wind interference with the flame, improving combustion stability and safety, with particularly significant effects when used outdoors.

[0036] In one embodiment, exemplarily, such as Figure 1 , Figure 2 As shown, a mounting groove is provided on the base 210, located between the first plate 211 and the second plate 212. The support member 220 is snapped into the mounting groove. Traditionally, the support member 220 may be welded, riveted, or simply overlapped onto the base 210, resulting in problems such as large positional deviations, weak connections, and easy loosening. In this embodiment, the mounting groove serves as a positioning reference, providing a clear installation position and orientation for the support member 220. The support member 220 is snapped into the mounting groove, achieving fast and precise assembly without screws. This effectively prevents the support member 220 from lateral movement, rotation, or detachment during use, ensuring its long-term positional stability and reliability.

[0037] Understandably, in actual use, a straight groove can also be made on the corresponding position of the support 220 to cooperate with the mounting groove, so as to improve the connection reliability and positioning accuracy between the support 220 and the base 210.

[0038] It should also be noted that in this embodiment, the ability to restrict the use of oversized cookware is achieved through the limiting portion 221 and the tilting portion 222 at the end of the support member 220. The effectiveness of the safety function is highly dependent on the precise position of the support member 220. If the support member 220 is installed crookedly or misaligned, the geometric relationship between the limiting portion 221 and the tilting portion 222 will change, potentially causing the safety mechanism to fail. The snap-fit ​​connection via the mounting slot ensures that the installation angle, depth, and relative position of the support member 220 are completely consistent. This ensures that the safety boundary formed by the limiting portion 221 and the tilting portion 222 on all support members 220 is symmetrical, uniform, and predictable, thereby reliably executing its foolproof and usage-restricting functions.

[0039] In one embodiment, exemplarily, such as Figure 1 , Figure 2As shown, a support portion is provided on the support member 220 within the base 210, and the support portion and the second plate 212 together form a windbreak. The weight of the cookware is no longer solely borne by the first plate 211 and the second plate 212. The support portion provides an additional, near-central support point inside the base 210. When the load of the cookware is transmitted through the support member 220, a portion of the force is pre-loaded by the support portion near the burner head 110 and directly transmitted to the frame of the base 210. This shortens the force transmission path and reduces the bending stress on the cantilevered portion of the support member 220. The support portion, together with the first body and the second plate 212, acts as a reinforcing rib inside the stove frame 200, making the entire base 210 and support member 220 system a more complete and rigid spatial frame structure, significantly improving its resistance to deformation.

[0040] Furthermore, in the above embodiments, although the curved and recessed second plate 212 already possesses a certain windproof capability, the windbreak it forms is discontinuous, and wind can still blow in through the gap between the first plate 211 or the support member 220, affecting flame stability. In this embodiment, the support and the second plate 212 enclose the burner head 110, effectively connecting the originally discontinuous windproof structure to form a closed, continuous windbreak wall. In the area where the second plate 212 is located, its own curved and recessed structure provides the main windproof function; in the area where the first plate 211 and the support member 220 are located, the windbreak formed by the support and the second plate 212 fills the windproof gap. This effectively deflects and weakens lateral winds from all directions, stabilizes the airflow field around the burner head 110, prevents the flame from being blown off course or extinguished, reduces combustion interference, ensures complete and stable combustion of the flame, and improves thermal efficiency and safety.

[0041] In one embodiment, exemplarily, such as Figure 1 As shown, a switch 130 is provided on the furnace body 100, located on one side of the burner head 110, and an anti-scalding plate 131 is provided between the switch 130 and the burner head 110. The burner head 110 generates a large amount of heat during operation, which is dissipated not only through radiation but also through heat conduction via the metal material of the furnace body 100. If the switch 130 is installed directly near the burner head 110 without any protection, heat will be continuously conducted to the switch 130 and its surrounding area, causing the switch 130 itself to overheat and feel hot to the touch. Alternatively, internal electronic components, such as the igniter and thermostat, may age faster or fail due to overheating.

[0042] The anti-scalding plate 131, acting as a thermal barrier, is positioned between the burner head 110 and the switch element 130, directly cutting off the main path of heat conduction along the transverse direction of the furnace body 100. In practical use, the anti-scalding plate 131 can be supported by materials with low thermal conductivity, such as thin stainless steel plates, engineering plastics, or composite insulation materials, depending on actual needs. This effectively reflects or absorbs heat, preventing it from diffusing towards the switch element 130. This ensures that even if the burner head 110 operates for extended periods, the temperature around the switch element 130 remains within a safe and comfortable range, allowing users to operate with peace of mind.

[0043] The switch 130 is clearly positioned on one side of the burner head 110, and is visually and physically separated from the "high-temperature cooking zone" and the "safe operating zone" by a heat shield 131. Users can ignite and adjust the burner without having to put their hands above or in front of the burner head 110, making operation more convenient and safer. Of course, the heat shield 131 also serves as a warning, reminding users to be aware of the high-temperature danger zone.

[0044] In one embodiment, for example, the switch 130 is a knob mounted on the gas passage of the furnace body 100, which, in conjunction with a valve, controls the flame intensity at the burner head 110. A piezoelectric igniter is located at the knob; rotating the knob activates the igniter for ignition at the burner head 110. In use, the user simply rotates the knob to complete the entire process of opening the gas valve, automatic ignition, and adjusting the flame intensity, without needing to press an ignition button or perform any complex operations.

[0045] The rotation of the knob mechanically links to the piezoelectric igniter, ensuring perfect synchronization between the generation of the ignition spark and the release of gas. Typically, in the initial stage of knob rotation, such as when the rotation angle is between 10° and 30°, gas begins to be released, and at the same time, the igniter is triggered, with the spark igniting the gas precisely, avoiding situations where gas is released before ignition or ignition precedes gas release.

[0046] The piezoelectric igniter uses mechanical energy to generate high voltage electricity, eliminating the need for batteries or external power sources and avoiding the hassle of charging or replacing batteries. It is particularly suitable for the desktop stove in this embodiment.

[0047] It is understood that in this embodiment, the specific structures of the knob, piezoelectric igniter, and gas valve are not limited, and can be set to any existing structure as long as it meets the requirements of this embodiment. For example, the knob is set to a plastic or metal knob with a cam or paddle at the bottom. The valve is set to a rotary gas valve core, such as a ceramic or metal valve core, installed in the gas passage of the furnace body 100 to control the gas on / off and flow rate. The piezoelectric igniter is set to a built-in piezoelectric ignition module, typically a single component including piezoelectric ceramic, spring, hammer, and high-voltage wire. During installation, the knob is fitted onto the valve stem of the gas valve core via a spline or square hole, rotating synchronously. The piezoelectric ignition module is fixed inside the furnace body 100, and its trigger rod is located on the movement trajectory of the knob cam. When the user rotates the knob counterclockwise, the valve stem drives the valve core to rotate, gradually opening the gas passage. In the initial stage of rotation, the cam on the knob pushes the trigger rod of the piezoelectric igniter, compressing and releasing the spring, striking the piezoelectric ceramic to generate a spark. The high-voltage wire leads the spark to the discharge electrode near the burner head 110, which enables the desktop furnace in this embodiment to ignite normally.

[0048] In one embodiment, exemplarily, such as Figure 2 As shown, a stove foot 140 is hinged to the side of the stove body 100 away from the burner head 110. In the first state, the end of the stove foot 140 away from the stove body 100 rests on the ground, supporting the stove body 100. In the second state, the stove foot 140 is fitted against the stove body 100 and relatively fixed to it. When the stove foot 140 is in the second state, it is completely fitted and fixed to the side of the stove body 100, forming a compact and flat whole. The folding storage mode reduces the overall size and floor space of the product. Users can easily put the stove into a backpack, storage box, or kitchen drawer, greatly improving portability and storage convenience.

[0049] In one embodiment, exemplarily, such as Figure 2 As shown, the stove body 100 also features a storage unit 150 for storing the needle valve gas hose assembly. The needle valve gas hose assembly is a crucial component for the operation of the portable gas stove, but it is small and exists independently. Users often inadvertently leave it behind somewhere—at a campsite, in a vehicle, or at home—after outdoor use, rendering it unusable the next time. The dedicated storage unit 150, such as a groove, clip, winding post, or sealed compartment, provides a fixed storage location for the needle valve gas hose assembly. Before storing the stove, users simply need to neatly place or wrap the gas hose assembly into the storage unit 150 and secure it. This ensures that the stove body 100 and the gas hose assembly are always stored together, fundamentally eliminating the risk of lost parts and guaranteeing the product's immediate availability.

[0050] It should be noted that, where there is no conflict, the features in the embodiments of this application can be combined with each other.

[0051] The above description is merely a preferred embodiment of this application and is not intended to limit this application. Various modifications and variations can be made to this application by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this application should be included within the protection scope of this application.

Claims

1. A desktop stove, characterized in that, include: A furnace body (100) is provided with a furnace head (110). A stove rack (200) is placed on the stove body (100) to support cookware above the burner head (110); the stove rack (200) includes a base (210) and a support member (220), the base (210) is mounted on the stove body (100) around the burner head (110), and the support member (220) is mounted on the base (210); At least two support members (220) are symmetrically arranged around the center of the furnace head (110); one end of the support member (220) is provided with a limiting part (221), and the limiting part (221) extends away from the furnace body (100); the end of the support member (220) away from the limiting part (221) is provided with an inclined part (222), and the inclined part (222) extends towards the furnace body (100).

2. The desktop stove according to claim 1, characterized in that, The furnace body (100) is provided with a recess (120), and the furnace head (110) is disposed in the recess (120); The base (210) is configured as a closed rotating body structure. When the base (210) is engaged in the recess (120), the burner head (110) is located at the center of the base (210).

3. The desktop stove according to claim 2, characterized in that, The base (210) includes a first plate (211) for supporting the cookware; there are two first plates (211) arranged opposite each other with the burner (110) as the center, and the two first plates (211) abut against the edge of the recess (120).

4. The desktop stove according to claim 3, characterized in that, The base (210) further includes a second plate (212), which is disposed between the two support members (220); There are two second plates (212) arranged opposite each other with the burner head (110) as the center, and the first plate (211) and the second plate (212) are staggered along the circumference of the burner head (110).

5. The desktop stove according to claim 4, characterized in that, The second plate (212) is bent and recessed in a direction away from the burner head (110).

6. The desktop stove according to claim 4, characterized in that, The base (210) has an installation groove, which is located between the first plate (211) and the second plate (212), and the support member (220) is engaged in the installation groove.

7. The desktop stove according to claim 6, characterized in that, The support member (220) is provided with a support part located inside the base (210), and the support part and the second plate (212) together form a windproof part.

8. The desktop stove according to claim 1, characterized in that, A switch (130) is provided on the furnace body (100), the switch (130) is located on one side of the furnace head (110), and an anti-scalding plate (131) is provided between the switch (130) and the furnace head (110).

9. The desktop stove according to claim 8, characterized in that, The switch (130) is configured as a knob, which is rotatably installed on the gas passage of the furnace body (100) and cooperates with the valve to control the firepower at the burner head (110); A piezoelectric igniter is provided at the knob. When the knob is turned, the piezoelectric igniter can be activated for ignition at the burner head (110).

10. The desktop stove according to claim 1, characterized in that, A furnace foot (140) is hinged to the side of the furnace body (100) away from the furnace head (110). When the furnace foot (140) is in the first state, the end of the furnace foot (140) away from the furnace body (100) abuts against the ground to support the furnace body (100). When the furnace foot (140) is in the second state, the furnace foot (140) is attached to the furnace body (100), and the furnace foot (140) is relatively fixed to the furnace body (100).