A fan component, gas stove and control method
By integrating fan components and intelligent control methods on the gas stove, the problem of traditional gas stoves being unable to adjust kitchen temperature is solved, cooking comfort and efficiency are improved, and the economic and space burden of additional equipment is reduced.
Patent Information
- Application Number
- CN202411881104.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-19
- Publication Date
- 2025-10-10
- Estimated Expiration
- 2044-12-19
AI Technical Summary
Traditional gas stoves have a single function and cannot effectively adjust the temperature of the kitchen environment, resulting in low comfort and efficiency during the cooking process. Additional equipment increases the economic burden and space occupation.
The fan components are integrated into the gas stove, including the shell, fan assembly, air inlet, air outlet and air guide assembly. Temperature regulation is achieved through different air inlet and outlet combinations. Combined with intelligent control methods, the airflow direction and temperature are adjusted according to the season and user needs.
It realizes effective regulation of kitchen temperature, improves comfort and efficiency during cooking, reduces space occupied by equipment, and improves the versatility and practicality of the equipment.
Smart Images

Figure CN119687013B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of kitchen appliances, in particular to a fan component, a gas stove and a control method. BACKGROUND
[0002] In modern home life, as the core equipment of the kitchen, the traditional design of the gas stove mainly focuses on providing basic food heating functions such as cooking and cooking. However, with the increasing demand for comfort in the kitchen environment, the functional limitations of traditional gas stoves have gradually emerged, especially in terms of adjusting the temperature of the kitchen environment. In hot summer, the heat generated during cooking often makes the kitchen a high-temperature "steamer", and in cold winter, the kitchen may be cold due to the lack of effective insulation measures. These problems not only affect the comfort experience of the cook, but also may limit the cooking efficiency to some extent.
[0003] To solve the problem of unsuitable temperature in the kitchen environment, the common method in the current market is to install additional fan or air conditioner and other auxiliary equipment. Although these methods can alleviate the problem of kitchen temperature to some extent, they also bring new problems: first, the additional purchase of these devices increases the economic burden of users; second, these devices occupy valuable kitchen space, especially in the current situation that most kitchen spaces are compact and limited in area. The limitation of kitchen space makes users face a dilemma between functionality and comfort.
[0004] In-depth analysis of the above problems, the core root is that the functional design of the gas stove product is too single, and the demand for multifunctionality and integration of the modern kitchen environment is not fully considered. The traditional design of the gas stove is closely related to the core function of food heating, ignoring the potential demand for multiple functions such as temperature regulation in the kitchen as a whole space. SUMMARY
[0005] The purpose of the present application is to provide a fan component, a gas stove and a control method, which aims to solve the problem of single function of existing gas stove products.
[0006] The fan component provided by the embodiment of the present application is arranged on a gas stove and comprises a shell, a fan assembly and a pipeline. The shell is provided with a first air inlet, a second air inlet, a containing cavity and an air outlet, the first air inlet, the second air inlet and the air outlet are all in communication with the containing cavity, the pipeline is connected with the shell, the pipeline is provided with a third air inlet and an air duct, the third air inlet, the air duct and the second air inlet are in communication in sequence, the third air inlet is arranged corresponding to the burner of the gas stove, and the fan assembly is arranged in the containing cavity.
[0007] Further, the first air inlet assembly comprises a first driving member, a first support and a first panel, one end of the first support is connected with the first panel, the other end of the first support is provided with a first driving slot, the driving end of the first driving member is engaged with the inner wall of the first driving slot, so as to drive the first support to drive the first panel to close or open the first air inlet, and the first driving member is installed on the shell.
[0008] Further, the air outlet assembly comprises a second driving member, a second support and a second panel, one end of the second support is connected with the second panel, the other end of the second support is provided with a second driving slot, the driving end of the second driving member is engaged with the inner wall of the second driving slot, so as to drive the second support to drive the second panel to close or open the air outlet, and the second driving member is installed on the shell.
[0009] Further, the air guide assembly comprises an air guide plate, a gear and an air guide driving member, the air guide plate is rotationally arranged on the air outlet, the air guide plate is connected with the gear, the gear is engaged with the driving end of the air guide driving member to drive the air guide plate to rotate, and the air guide driving member is installed on the shell.
[0010] Further, the air guide plate and the gear are both provided with two, one air guide plate and one gear are connected, two gears are respectively arranged on the two sides of the driving end of the air guide driving member, and the two gears are both engaged with the driving end of the air guide driving member, and the diameters of the two gears are the same.
[0011] Further, the second air inlet assembly comprises a third driving member, a gear rack and a third panel, one end of the gear rack is connected with the third panel, the other end of the gear rack is engaged with the driving end of the third driving member to drive the third panel to close or open the second air inlet, and the third driving member is installed on the shell.
[0012] Further, the fan assembly comprises a fan blade and a fan blade driving member, the fan blade driving member is in transmission connection with the fan blade, and the fan blade and the fan blade driving member are both arranged on the shell.
[0013] The embodiment of the present application also provides a gas stove, which comprises a gas stove body and the above-mentioned fan component, and the fan component is installed on the gas stove body.
[0014] Further, the gas stove further comprises an electric appliance box, the electric appliance box is installed in the gas stove body, and the electric appliance box is electrically connected with the fan component.
[0015] The embodiment of the present application also provides a control method of the fan component, comprising:
[0016] acquiring a mode selected by a user;
[0017] if the mode selected by the user is a normal mode, opening the first air inlet and the air outlet, and starting the fan assembly;
[0018] if the mode selected by the user is a heating mode, opening the second air inlet, the third air inlet and the air outlet, and starting the fan assembly.
[0019] The present application discloses a fan component, a gas stove and a control method. The fan component is arranged on the gas stove and comprises a shell, a fan assembly and a pipeline. The shell is internally provided with a first air inlet, a second air inlet, a containing cavity and an air outlet. The first air inlet, the second air inlet and the air outlet are all in communication with the containing cavity. The pipeline is connected with the shell. The pipeline is internally provided with a third air inlet and an air duct. The third air inlet, the air duct and the second air inlet are sequentially communicated. The third air inlet is arranged corresponding to a burner of the gas stove. The fan assembly is arranged in the containing cavity. The present application realizes effective adjustment of the temperature in the kitchen by additionally arranging the fan component on the gas stove. The comfort of the user during cooking is significantly improved, and the cooking efficiency is greatly improved. In addition, the gas stove integrated with the fan component has simple structure and small space occupation, and the universality and practicability of the equipment are significantly improved. BRIEF DESCRIPTION OF DRAWINGS
[0020] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the drawings needed in the embodiment description will be briefly introduced. Obviously, the drawings in the following description are some embodiments of the present application, and other drawings can be obtained by those skilled in the art without creative labor.
[0021] Figure 1 It is a structural schematic diagram of the gas stove;
[0022] Figure 2 It is a structural schematic diagram of the inside of the gas stove;
[0023] Figure 3 It is a sectional view of the gas stove;
[0024] Figure 4 It is a structural schematic diagram of the fan component when the first air inlet and the air outlet are opened;
[0025] Figure 5 It is a structural schematic diagram of the fan component when the first air inlet and the air outlet are closed;
[0026] Figure 6 Structure diagram of the fan component when the baffle is opened;
[0027] Figure 7 Structure diagram of the gas stove when the second air inlet is opened;
[0028] Figure 8 Structure diagram of the gas stove when the second air inlet is closed;
[0029] Figure 9 Structure diagram of the fan component (without the second panel and the baffle);
[0030] Figure 10 Structure diagram of the fan component (without the second panel, the baffle and one fan blade);
[0031] Figure 11 Partial view of the fan component;
[0032] Figure 12 Flowchart of the control method of the fan component;
[0033] Marking description in the figure:
[0034] 1, fan component; 2, shell; 3, fan assembly; 4, duct; 5, first air inlet; 6, second air inlet; 7, accommodating cavity; 8, air outlet; 9, third air inlet; 10, air duct; 11, burner; 12, first driving member; 13, first support; 14, first panel; 15, first driving groove; 16, second driving member; 17, second support; 18, second panel; 19, second driving groove; 20, baffle; 21, gear; 22, baffle driving member; 23, third driving member; 24, rack; 25, third panel; 26, fan blade; 27, fan blade driving member; 28, gas stove body; 29, electrical box. DETAILED DESCRIPTION
[0035] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are some but not all of the embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative work fall within the scope of protection of the present application.
[0036] It should be understood that, when used in the specification and the appended claims, the terms "comprise" and "include" indicate the presence of described features, integers, steps, operations, elements, and / or components, but do not exclude one or more other features, integers, steps, operations, elements, components, and / or groups thereof.
[0037] It is also to be understood that the terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting. As used in this specification and the appended claims, the singular forms "a," "an" and "the" include plural referents unless the context clearly dictates otherwise.
[0038] It is further to be understood that the term "and / or" as used herein refers to and encompasses any and all possible combinations of one or more of the associated listed items, and that the term "at least one of' encompasses any and all possible combinations of one or more of the associated listed items.
[0039] Referring to Figure 1-3 The embodiment provides a fan component 1 arranged on a gas stove, comprising a shell 2, a fan assembly 3 and a duct 4, the shell 2 is internally provided with a first air inlet 5, a second air inlet 6, a containing cavity 7 and an air outlet 8, the first air inlet 5, the second air inlet 6 and the air outlet 8 are all in communication with the containing cavity 7, the duct 4 is connected with the shell 2, the duct 4 is internally provided with a third air inlet 9 and an air duct 10, the third air inlet 9, the air duct 10 and the second air inlet 6 are sequentially communicated, the third air inlet 9 is arranged corresponding to a burner 11 of the gas stove, and the fan assembly 3 is arranged in the containing cavity 7.
[0040] When in summer, the first air inlet 5 and the air outlet 8 can be opened, then the fan assembly 3 is opened, after the fan assembly 3 is opened, air flow is brought in from the first air inlet 5 and is brought out from the air outlet 8 to cool the human body, so that the comfort of the user is improved. When in winter, the second air inlet 6, the third air inlet 9 and the air outlet 8 can be opened, then the fan assembly 3 is opened, after the fan assembly 3 is opened, air flow is brought in from the third air inlet 9, the air flow is heated by the burner 11 of the gas stove when passing through the third air inlet 9, the heated air flow then sequentially passes through the air duct 10 and the second air inlet 6, and is brought out from the air outlet 8 to warm the human body, so that the comfort of the user is improved.
[0041] The embodiment realizes effective adjustment of the temperature of the kitchen by additionally arranging the fan component 1 on the gas stove, not only significantly improves the comfort of the user in the cooking process, but also greatly improves the cooking efficiency. In addition, the gas stove integrated with the fan component 1 has simple structure and small space occupation, and significantly improves the versatility and practicability of the equipment.
[0042] In some embodiments, referring to Figure 4 and Figure 5Further comprising: a first air inlet assembly, the first air inlet assembly comprising a first driving member 12, a first support 13, and a first panel 14, one end of the first support 13 being connected with the first panel 14, the other end of the first support 13 being provided with a first driving slot 15, a driving end of the first driving member 12 being engaged with an inner wall of the first driving slot 15 to drive the first support 13 to drive the first panel 14 to close or open the first air inlet 5, the first driving member 12 being installed on the shell 2.
[0043] When the control system issues an opening instruction, the first driving member 12 starts and generates a pushing force or a pulling force, which is transmitted to the first support 13 through the engagement structure in the first driving slot 15, so that the first support 13 moves to one side together with the first panel 14, thereby opening the first air inlet 5. Conversely, after receiving a closing command, the first driving member 12 operates in reverse, pulling the first support 13 back to the original position, so that the first panel 14 tightly fits at the first air inlet 5, achieving a completely closed effect. In addition to the simple full-on or full-off state, the first panel 14 can also be partially opened by adjusting the working parameters of the first driving member 12, so as to finely control the air flow entering the system.
[0044] The first air inlet assembly realizes flexible opening and closing of the first air inlet 5 through the ingenious combination of the first driving member 12, the first support 13, and the first panel 14. This design allows the device to quickly adjust the air inlet according to actual needs (such as temperature regulation, air flow demand, etc.), improving the response speed and adjustment accuracy of the device. The first driving member 12 is engaged with the inner wall of the first driving slot 15, and this mechanical connection method usually has high stability and durability. Even in the case of long-term operation or frequent operation, it can maintain good performance and accuracy, prolonging the service life of the device.
[0045] In some embodiments, the driving end of the first driving member 12 is a gear structure, and the first driving slot 15 is an arc-shaped slot, the gear structure being engaged with the inner wall of the arc-shaped slot.
[0046] The first driving slot 15 is designed as an arc-shaped slot, the internal profile of which matches the outer diameter of the gear structure, ensuring good engagement between the two. The curvature radius of the arc-shaped slot is determined according to the rotation path of the gear structure to ensure stable engagement throughout the entire stroke range.
[0047] The engagement of the gear structure with the inner wall of the arc-shaped slot can share the transmission load, reduce the wear of individual tooth surfaces, and reduce vibration and noise. The design of the arc-shaped slot allows the gear structure to smoothly transition during transmission, reducing impact and vibration and further reducing noise.
[0048] In some embodiments, one side of the first panel 14 is rotationally connected with the shell 2.
[0049] One side of the first panel 14 is rotationally connected to the housing 2 through mechanical components such as hinges or shaft pins. This means that the first panel 14 can perform rotational movement on a fixed axis, thereby achieving the action of opening and closing the first air inlet 5.
[0050] The rotational connection is usually designed with precise bearings or hinges to ensure the stability and smoothness of the first panel 14 during opening and closing. This design helps to reduce wear and tear and prolong the service life of the equipment.
[0051] In some embodiments, multiple first driving members 12 and first supports 13 are provided, with the driving end of one first driving member 12 connected to one end of one first support 13, and the other end of multiple first supports 13 connected to the first panel 14.
[0052] By using multiple first driving members 12 and first supports 13, the load applied to the first panel 14 can be dispersed to multiple points. This helps to prevent single-point overload and improves the load-carrying capacity and stability of the entire structure. At the same time, the dispersed support structure also enhances the anti-deformation ability of the first panel 14 when facing external forces, maintaining the overall stability of the structure.
[0053] In this embodiment, it also includes an air outlet assembly, which includes a second driving member 16, a second support 17, and a second panel 18. One end of the second support 17 is connected to the second panel 18, and the other end of the second support 17 is provided with a second driving slot 19. The driving end of the second driving member 16 engages with the inner wall of the second driving slot 19 to drive the second support 17 to drive the second panel 18 to close or open the air outlet 8. The second driving member 16 is installed on the housing 2.
[0054] When the control system issues an opening command, the second driving member 16 starts and generates a pushing or pulling force, which is transmitted to the second support 17 through the engagement structure in the second driving slot 19, causing the second support 17 to move with the second panel 18 to one side, thereby opening the air outlet 8. Conversely, after receiving a closing command, the second driving member 16 operates in reverse, pulling the second support 17 back to the original position, causing the second panel 18 to tightly fit at the air outlet 8, achieving a completely closed effect. In addition to the simple full-on or full-off state, partial opening of the second panel 18 can also be achieved by adjusting the working parameters of the second driving member 16, thereby fine-tuning the air flow into the system.
[0055] The outflow assembly achieves flexible opening and closing of the air outlet 8 through the ingenious combination of the second driving member 16, the second support 17, and the second panel 18. This design allows the device to quickly adjust the air intake according to actual needs (such as temperature regulation, air circulation demand, etc.), improving the response speed and adjustment accuracy of the device. The second driving member 16 is engaged with the inner wall of the second driving groove 19. This mechanical connection method generally has high stability and durability. Even in the case of long-term operation or frequent operation, it can maintain good performance and accuracy, prolonging the service life of the device.
[0056] In some embodiments, the driving end of the second driving member 16 is a gear structure, and the second driving groove 19 is an arc-shaped groove. The gear structure is engaged with the inner wall of the arc-shaped groove.
[0057] The second driving groove 19 is designed as an arc-shaped groove, with its internal profile matching the outer diameter of the gear structure, ensuring good engagement between the two. The curvature radius of the arc-shaped groove is determined according to the rotation path of the gear structure to ensure stable engagement throughout the entire stroke range.
[0058] The engagement of the gear structure with the inner wall of the arc-shaped groove can distribute the transmission load, reduce the wear of individual tooth surfaces, and reduce vibration and noise. The design of the arc-shaped groove allows the gear structure to smoothly transition during transmission, reducing impact and vibration and further reducing noise.
[0059] In some embodiments, one side of the second panel 18 is rotationally connected to the shell 2.
[0060] One side of the second panel 18 is rotationally connected to the shell 2 through mechanical components such as hinges or shaft pins. This means that the second panel 18 can rotate on a fixed axis, thereby achieving the action of opening and closing the air outlet 8.
[0061] The rotational connection is usually designed with precise bearings or hinges to ensure the stability and smoothness of the second panel 18 during opening and closing. This design helps to reduce wear and failure and prolongs the service life of the device.
[0062] In some embodiments, multiple second driving members 16 and second supports 17 are provided. The driving end of one second driving member 16 is connected to one end of one second support 17, and the other ends of multiple second supports 17 are connected to the second panel 18.
[0063] By using multiple second driving members 16 and second supports 17, the load applied to the second panel 18 can be distributed to multiple points. This helps to prevent single-point overload and improves the load-carrying capacity and stability of the entire structure. At the same time, the distributed support structure also enhances the anti-deformation ability of the second panel 18 when facing external forces, maintaining the overall stability of the structure.
[0064] It should be noted that the first driving member 12 and the second driving member 16 can be motors, stepper motors or other forms of power sources.
[0065] In this embodiment, please refer to Figure 6 It also includes: air guide assembly, air guide assembly includes air guide plate 20, gear 21 and air guide driving member 22, air guide plate 20 rotationally arranged on air outlet 8, air guide plate 20 is connected with gear 21, gear 21 is engaged with the driving end of air guide driving member 22 to drive air guide plate 20 to rotate, air guide driving member 22 is installed on the shell 2.
[0066] Air guide plate 20 is located at air outlet 8, responsible for adjusting the direction of airflow. Air guide plate 20 is connected with shell 2 through a pivot or similar mechanism, allowing it to rotate freely within a certain angle range. Gear 21 acts as a transmission component, one end of which is fixedly connected with air guide plate 20, and the other end is engaged with the driving end of air guide driving member 22. Air guide driving member 22 is installed on the shell 2, providing power to rotate gear 21, thereby driving air guide plate 20 to change position. It can be a motor, stepper motor or other forms of power source.
[0067] When the user needs to adjust the direction of airflow, the control system will issue instructions to the air guide driving member 22. After the air guide driving member 22 is started, its driving end (usually another gear) begins to rotate and engages with the gear connected to the air guide plate 20, thereby transmitting the rotary motion to the air guide plate 20. In this way, the angle of the air guide plate 20 can be accurately adjusted according to actual needs, achieving the effect of optimizing airflow distribution.
[0068] The presence of air guide plate 20 can guide airflow to flow along a specific direction, reducing airflow turbulence and vortex phenomenon. This helps to improve air circulation efficiency. At the same time, by adjusting the rotation angle of air guide plate 20, the distribution range and direction of airflow can be changed. This design helps to achieve uniform distribution of air in the room, improving the overall comfort and health of the environment. In addition, air guide plate 20 is usually designed as a detachable or easy-to-clean structure. When cleaning or maintenance is needed, air guide plate 20 can be easily removed for cleaning or inspection, reducing maintenance difficulty and cost.
[0069] In some embodiments, two air guide plates 20 and two gears 21 are provided, one air guide plate 20 and one gear 21 are connected, two gears 21 are respectively arranged on both sides of the driving end of air guide driving member 22, and two gears 21 are engaged with the driving end of air guide driving member 22, the diameters of two gears 21 are the same.
[0070] When the angle of the deflector 20 needs to be changed, the deflector driving member 22 is started, and the driving end begins to rotate. The two gears 21 on both sides of the driving end rotate synchronously, because the diameters of the two gears 21 are the same and they are tightly engaged on the driving end, so the rotational speeds of the two gears 21 are consistent. Each gear 21 drives a deflector 20 to change the angle, and because the actions of the two deflectors 20 are synchronous and symmetrical, this makes the air flow management of the entire system more efficient and stable.
[0071] The coordinated action of the double deflectors 20 can effectively improve the indoor air circulation and improve the user's comfort experience.
[0072] In this embodiment, please refer to Figure 7 and Figure 8 , further comprising: a second air inlet assembly, the second air inlet assembly comprising a third driving member 23, a rack 24, and a third panel 25, one end of the rack 24 being connected with the third panel 25, the other end of the rack 24 being engaged with the driving end of the third driving member 23 to drive the third panel 25 to close or open the second air inlet 6, and the third driving member 23 being installed on the shell 2.
[0073] The third driving member 23, as a power source, is installed on the shell 2 and is responsible for driving the rack 24 to move. It can be a power device such as a motor or a gear. One end of the rack 24 is connected with the third panel 25, and the other end is engaged with the driving end of the third driving member 23. When the third driving member 23 works, it will convert the rotary motion into linear motion through gear transmission, thereby driving the third panel 25 to move. The third panel 25 is used to cover or open the second air inlet 6, so as to realize the adjustment of the air inlet amount as needed.
[0074] When the second air inlet 6 is opened, the control system sends an instruction to the third driving member 23, so that it starts and the driving end (usually a gear) begins to rotate. Because the rack 24 is engaged with the gear, as the gear rotates, the rack 24 will move in a straight line, pushing the third panel 25 away, thereby opening the second air inlet 6; conversely, the second air inlet 6 is closed.
[0075] The rack 24 is engaged with the driving end of the third driving member 23, which ensures the precise control of the third panel 25 during the closing or opening process. This mechanical transmission method reduces errors, making the opening and closing state of the air inlet more reliable.
[0076] In some embodiments, two gas stoves are provided, and two second air inlets 6 are provided correspondingly. The rack 24 and the third panel 25 are both provided with two, and the third driving member 23 is provided between the two second air inlets 6. One end of each rack 24 is connected with the third panel 25, and the other ends of the two racks 24 are respectively engaged with the two sides of the driving end of the third driving member 23.
[0077] When it is necessary to adjust the amount of air entering the gas stove, the third driving member 23 is started, and the driving end thereof begins to rotate. Since the two racks 24 are in close engagement with the two sides of the driving end of the third driving member 23, the two racks 24 will move synchronously with the rotation of the driving end. Each rack 24 drives a third panel 25 to change position, and by changing the position of the third panel 25, the opening of the second air inlet 6 can be accurately controlled, thereby adjusting the amount of air entering the gas stove.
[0078] The double-rack 24 system ensures that the two third panels 25 can make the same action at the same time, improving the coordination and reliability of the system. By setting the third driving member 23, simultaneous and synchronous driving of the two racks 24 (and thus the two third panels 25) can be achieved. This design reduces the number of required driving mechanisms, simplifies the control system, and improves overall efficiency.
[0079] In some embodiments, a guide structure is further included, and the third panel 25 is connected to the shell 2 through the guide structure.
[0080] Specifically, the guide structure is generally composed of a guide rail and a sliding block, wherein: the guide rail is fixedly installed inside the shell 2, providing a stable running track for the sliding block; the sliding block is connected to the third panel 25 and is embedded in and slides on the guide rail.
[0081] The guide structure ensures that the third panel 25 maintains the correct direction and trajectory throughout the movement process, avoiding jamming or other faults caused by deviation from the track.
[0082] In this embodiment, please refer to Figure 9-11 , the fan assembly 3 includes: a fan blade 26 and a fan blade driving member 27, the fan blade driving member 27 is in transmission connection with the fan blade 26, and the fan blade 26 and the fan blade driving member 27 are both arranged on the shell 2.
[0083] The fan blade driving member 27 is usually an electric motor or other type of driving device, which is connected to the fan blade 26 through a transmission mechanism such as a gear or a belt, or is directly connected to the fan blade 26, and can adjust the rotation speed as needed to change the air volume.
[0084] The fan blade 26 and the fan blade driving member 27 are both installed on the shell 2, which provides better structural stability. This reduces the risk of component loosening or damage due to vibration or external forces, thereby prolonging the service life of the fan assembly 3.
[0085] In some embodiments, the fan blade 26 is provided with two, and the two fan blades 26 are respectively in transmission connection with the two ends of the fan blade driving member 27.
[0086] Two fan blades 26 are respectively installed at two ends of the fan blade driving member 27, so that the structure of the entire fan assembly 3 is more compact. This design not only saves installation space, but also facilitates integration into various devices and is suitable for space-limited application scenarios.
[0087] Referring to Figure 1 The embodiment also provides a gas stove, which comprises a gas stove body 28 and the fan component 1 in the above embodiment, and the fan component 1 is installed on the gas stove body 28.
[0088] Further, the gas stove further comprises an electric appliance box 29 (as shown in Figure 2 The electric appliance box 29 is installed in the gas stove body 28, and the electric appliance box 29 is electrically connected with the fan component 1.
[0089] The electric appliance box 29 can integrate an intelligent control module to realize intelligent control of the gas stove. Through cooperative work with the fan component 1, the speed and direction of the fan component 1 can be automatically adjusted according to the environmental conditions in the kitchen, a more comfortable and healthy cooking environment is provided, and the cooking experience of the user is improved. Meanwhile, the electric appliance box 29 is electrically connected with the fan component 1 to supply power for the fan component 1.
[0090] Referring to Figure 12 The embodiment also provides a control method of a fan component, which comprises the following steps.
[0091] S101: acquiring a mode selected by a user;
[0092] The mode of the embodiment comprises a normal mode and a heating mode. When it is summer, the user can open the normal mode, and step S102 is performed. When it is winter, the user can open the heating mode, and step S103 is performed.
[0093] S102: if the mode selected by the user is the normal mode, opening the first air inlet and the air outlet, and starting the fan assembly;
[0094] S103: if the mode selected by the user is the heating mode, opening the second air inlet, the third air inlet and the air outlet, and starting the fan assembly.
[0095] More specifically, when the user selects the normal mode, the electric appliance box controls the first driving member and the second driving member to start, the first driving member and the second driving member starting can respectively open the first air inlet and the air outlet (at this time, the second air inlet is in a closed state), and then the electric appliance box controls the fan blade driving member to rotate, the fan blade driving member rotating can drive the fan blades to rotate, so that the air flow can flow into the first air inlet and flow out of the air outlet.
[0096] When the user selects the heating mode, the electric appliance box controls the third driving member and the second driving member to start, and the third driving member and the second driving member starting will open the second air inlet and the air outlet respectively (at this time, the first air inlet is in a closed state), then the electric appliance box controls the fan blade driving member to rotate, and the fan blade driving member rotating will drive the fan blade to rotate, thereby being able to drive the airflow to flow in from the third air inlet (the third air inlet is always in an open state), and the airflow is heated by the burner of the gas stove when passing through the third air inlet, and the heated airflow then passes through the air duct and the second air inlet in turn, and then flows out from the air outlet.
[0097] In some embodiments, when the user selects the heating mode, and the user needs to adjust the temperature of the airflow blown out by the air outlet, the third driving member can be used to adjust the stroke of the third panel, thereby adjusting the size of the second air inlet. By adjusting the size of the second air inlet, the air outlet flow rate can be controlled, thereby adjusting the temperature of the airflow blown out by the air outlet.
[0098] By dynamically adjusting the size of the air inlet to control the air outlet flow rate, energy waste caused by excessively high airflow temperature can be avoided. When the actual temperature is higher than the set value, reducing the air inlet can reduce unnecessary heat energy output, thereby saving power consumption and improving the overall energy efficiency of the device.
[0099] In some embodiments, when the user selects the heating mode, and the user needs to adjust the temperature of the airflow blown out by the air outlet, the first driving member can be used to open the first panel and adjust the opening angle of the first air inlet, thereby adjusting the size of the first air inlet. By adjusting the size of the first air inlet, the cold air inlet flow rate can be controlled, and by controlling the appropriate amount of cold air and hot air to neutralize, the temperature of the airflow blown out by the air outlet can be adjusted.
[0100] By adjusting the size of the air inlet to control the cold air inlet flow rate, the system can adjust the mixing ratio of cold and hot air according to actual needs, avoiding unnecessary energy consumption. When the environmental temperature is higher than the set value, the system can reduce the hot air output and increase the cold air inlet flow rate, and vice versa, thereby improving the overall energy efficiency while ensuring comfort.
[0101] In some embodiments, when the user selects the heating mode, and the user needs to adjust the temperature of the airflow blown out by the air outlet, the third driving member can be used to adjust the stroke of the third panel, thereby adjusting the size of the second air inlet. However, reducing the size of the second air inlet will result in a smaller air inlet flow rate. To ensure sufficient air inlet flow rate, the first driving member can be used to open the first panel and adjust the opening angle of the first air inlet to ensure sufficient air inlet flow rate.
[0102] When the second air inlet is reduced, the air intake volume decreases accordingly. At this point, the first driving member opens the first panel and adjusts the opening angle of the first air inlet to ensure that the system maintains sufficient air intake. This intelligent air volume management mechanism avoids the loss of heat exchange efficiency caused by insufficient air intake and ensures stable system operation.
[0103] In some embodiments, when the user selects the heating mode and needs to adjust the temperature of the air flow blown out of the air outlet, the speed of the fan blade can be adjusted by controlling the power of the fan blade drive component, thereby achieving the air volume of the air outlet, and then achieving the adjustment of the temperature of the air flow blown out of the air outlet.
[0104] The power regulation of the fan drive typically has a fast response speed, enabling rapid adjustment of the fan speed, thereby achieving instant adjustment of the air outlet temperature. This immediacy not only improves the user experience but also ensures stable and consistent indoor temperature.
[0105] The various embodiments in the specification are described in a progressive manner, and each embodiment focuses on the differences from other embodiments. The same and similar parts between the various embodiments can be referred to each other. For the device disclosed in the embodiment, since it corresponds to the method disclosed in the embodiment, the description is relatively simple, and the relevant parts can be referred to the method part description. It should be pointed out that for ordinary technicians in this technical field, without departing from the principle of the present invention, several improvements and modifications can be made to the present invention, and these improvements and modifications also fall within the scope of protection of the claims of the present invention.
[0106] It should also be noted that, in this specification, relational terms such as first and second, etc. are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "include", "comprising" or any other variations thereof are intended to cover non-exclusive.
[0107] Inclusion, such that a process, method, article, or apparatus comprising a series of elements includes not only those elements but also other elements not explicitly listed, or elements inherent to such process, method, article, or apparatus. In the absence of further limitations, an element defined by the phrase "comprising a..." does not preclude the presence of other identical elements in the process, method, article, or apparatus comprising the element.
Claims
1. A fan component, which is arranged on a gas stove, characterized in that: include: A housing, a fan assembly, and a duct, wherein the housing is provided with a first air inlet, a second air inlet, a receiving cavity, and an air outlet, wherein the first air inlet, the second air inlet, and the air outlet are all connected to the receiving cavity, the duct is connected to the housing, and a third air inlet and an air duct are provided in the duct, wherein the third air inlet, the air duct, and the second air inlet are connected in sequence, the third air inlet is provided corresponding to the burner of the gas stove, and the fan assembly is provided in the receiving cavity; The air outlet assembly further includes: an air outlet assembly, the air outlet assembly including a second driving member, a second bracket and a second panel, one end of the second bracket is connected to the second panel, the other end of the second bracket is provided with a second driving groove, the driving end of the second driving member is engaged with the inner wall of the second driving groove to drive the second bracket to drive the second panel to close or open the air outlet, and the second driving member is installed on the housing; It also includes: an air guide assembly, which includes an air guide plate, a gear and an air guide drive. The air guide plate is rotatably arranged on the air outlet, the air guide plate is connected to the gear, and the gear is engaged with the driving end of the air guide drive to drive the air guide plate to rotate. The air guide drive is installed on the shell.
2. The fan component according to claim 1, wherein Also includes: A first air inlet assembly, the first air inlet assembly includes a first driving member, a first bracket and a first panel, one end of the first bracket is connected to the first panel, and the other end of the first bracket is provided with a first driving groove, the driving end of the first driving member engages with the inner wall of the first driving groove to drive the first bracket to drive the first panel to close or open the first air inlet, and the first driving member is installed on the shell.
3. The fan component according to claim 1, wherein There are two of each of the air guide plate and the gear, one of which is connected to the other, and the two gears are respectively arranged on both sides of the driving end of the air guide drive member, and both of the gears are engaged with the driving end of the air guide drive member, and the diameters of the two gears are the same.
4. The fan component according to claim 1, wherein Also includes: The second air inlet assembly includes a third driving member, a rack and a third panel, one end of the rack is connected to the third panel, and the other end of the rack is engaged with the driving end of the third driving member to drive the third panel to close or open the second air inlet, and the third driving member is installed on the shell.
5. The fan component according to claim 1, wherein The fan assembly includes: a fan blade and a fan blade driving component, the fan blade driving component is transmission-connected to the fan blade, and the fan blade and the fan blade driving component are both arranged on the shell.
6. A gas stove, characterized in that: include: A gas stove body and a fan component according to any one of claims 1 to 5, wherein the fan component is mounted on the gas stove body.
7. The gas stove according to claim 6, characterized in that: Also includes: An electrical appliance box is installed in the gas stove body and is electrically connected to the fan component.
8. A method for controlling a fan component according to any one of claims 1 to 5, characterized in that: include: Get the mode selected by the user; If the mode selected by the user is the normal mode, the first air inlet and the air outlet are opened, and the fan assembly is started; If the mode selected by the user is the heating mode, the second air inlet, the third air inlet and the air outlet are opened, and the fan assembly is started.
Citation Information
Patent Citations
Air outlet mechanism and electrical equipment
CN115468250A
Air duct assembly for integrated cooker and integrated cooker
CN217685223U