Gas stove and integrated stove
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HANGZHOU ROBAM APPLIANCES CO LTD
- Filing Date
- 2025-09-22
- Publication Date
- 2026-08-07
AI Technical Summary
[0003]目前,行业内的燃气灶大多采用人工手动调节的方式,以控制火力的大小,而该种调节方式存在一定的误差,即燃气无法充分燃烧,进而出现能源浪费的问题
本申请实施例提供的燃气灶以及集成灶,其通过控制部对调控部进行控制,以通过空气调节机构和比例阀实现对火力大小的调控,其中,空气调节机构可以驱动调节组件在灶具烹饪的过程中对流入灶具的第一气源(空气)的流量实现调节,比例阀能够对流入灶具的第二气源(燃气)的流量实现调节,二者协同作用以对火力大小进行调控,从而使灶具能通过不同的火候对食材进行烹饪,避免了人工试火调节出现误差的问题。此外,控制部与空气调节机构相互配合还可以保证燃气与空气的比例相适配,并充分燃烧,进而有效的避免了资源浪费的问题出现,同时还可降低用户的潜在危险。
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Figure CN224607734U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of kitchen equipment technology, and in particular to a gas stove and an integrated stove. Background Technology
[0002] Cooking refers to the art of food preparation. It is a complex and systematic process of transforming ingredients into food. It involves processing ingredients to make them more palatable, visually appealing, and aromatic. A delicious dish must excel in color, aroma, taste, presentation, and nutrition, not only satisfying the eater but also making it easier for the body to absorb the nutrients.
[0003] Currently, most gas stoves in the industry use manual adjustment to control the firepower. However, this adjustment method has a certain degree of error, meaning that the gas cannot burn completely, resulting in energy waste.
[0004] Therefore, the aforementioned technical issues still need further resolution. Utility Model Content
[0005] The purpose of this utility model is to provide a gas stove and an integrated stove to alleviate the technical problems existing in the above-mentioned related technologies.
[0006] This utility model provides a gas stove, comprising: A housing and at least one cooktop disposed on the housing, the cooktop being used for cooking.
[0007] The control unit includes an air conditioning mechanism and a proportional valve. The air conditioning mechanism includes a drive component and an adjustment component. The adjustment component has an air intake section. The drive end of the drive component is connected to the adjustment component to adjust the supply of a first gas source discharged from the air intake section to the stove. The proportional valve is used to adjust the supply of a second gas source discharged to the stove.
[0008] The control unit is located on the housing and is connected to the stove. It is used to control the power supply of the stove. The control unit is electrically connected to the drive assembly and the proportional valve.
[0009] Furthermore, a first pipeline is provided between the first gas source and the stove, and the air conditioning mechanism is located in the first pipeline.
[0010] A second pipeline is installed between the second gas source and the stove, and a proportional valve is located in the second pipeline.
[0011] Furthermore, one end of the second pipeline is connected to the second gas source, and the other end of the second pipeline is connected to the stove via a proportional valve and an air conditioning mechanism in sequence. The first pipeline is connected to the stove via the air conditioning mechanism.
[0012] Furthermore, the air conditioning mechanism includes: The mounting base has a mounting section, and air inlets penetrating the mounting base are provided on both sides of the mounting section.
[0013] The connecting shell is rotatably mounted on the mounting part. The connecting shell has a through-hole that runs through it. The opening direction of the through-hole is the same as that of the air inlet. The drive component is mounted on the mounting base and is connected to the connecting shell for transmission.
[0014] The first gas supply channel runs through the mounting base and the connecting shell, and the second pipeline connects to the stove through the first gas supply channel.
[0015] The air inlet on one side of the mounting section is connected to the first pipeline, and the drive assembly drives the connecting shell to rotate in order to control the overlap between the connecting hole and the air inlet.
[0016] Furthermore, the first air supply channel passes through the rotation center of the connecting shell, and the extension direction of the first air supply channel is coaxial with the rotation axis of the connecting shell.
[0017] Furthermore, the driving components include: The gear is rotatably mounted on the mounting base.
[0018] The motor's output end is connected to the gear.
[0019] The connecting shell has teeth on its periphery, which mesh with gears, and the motor is electrically connected to the control unit.
[0020] Furthermore, gas stoves also include: A mixing concentration sensor is installed between the first gas supply channel and the stove, and the mixing concentration sensor is electrically connected to the control unit.
[0021] Furthermore, gas stoves also include: The temperature sensor is mounted on the housing and is electrically connected to the control unit.
[0022] Furthermore, the control unit includes: The central processing unit and the touch panel are electrically connected to the concentration sensor, temperature sensor, stove and air conditioning mechanism. The touch panel is electrically connected to the central processing unit and is located on the housing.
[0023] On the other hand, this application provides an integrated stove, including: The package includes the integrated rack body, the range hood body, the disinfection cabinet body, the storage cabinet body, and the provided gas stove.
[0024] The integrated rack body is stacked with a disinfection cabinet body, a storage cabinet body and a gas stove. The integrated rack body is equipped with a range hood body, which is placed close to the stove so that the range hood body can draw out the oil fumes produced by the gas stove during cooking.
[0025] By employing the above technical solutions, the gas stove and integrated stove of this application have at least the following advantages: The gas stove and integrated stove provided in this application embodiment control the regulating unit through a control unit, thereby regulating the firepower through an air conditioning mechanism and a proportional valve. The air conditioning mechanism drives the regulating component to adjust the flow rate of the first gas source (air) into the stove during cooking, while the proportional valve adjusts the flow rate of the second gas source (gas). The two work together to regulate the firepower, allowing the stove to cook food at different temperatures, avoiding errors caused by manual flame adjustments. Furthermore, the cooperation between the control unit and the air conditioning mechanism ensures a suitable gas-to-air ratio and complete combustion, effectively preventing resource waste and reducing potential dangers for users. Attached Figure Description
[0026] To more clearly illustrate the technical solutions in the specific embodiments or related technologies of this utility model, the drawings used in the description of the specific embodiments or related technologies will be briefly introduced below. Obviously, the drawings described below are some embodiments of this utility model. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.
[0027] Figure 1 This is a schematic diagram of the structure of the integrated stove provided in an embodiment of the present utility model; Figure 2 A schematic diagram showing the connection relationship between the air conditioning mechanism and the cooktop in the integrated cooktop provided in this embodiment of the utility model; Figure 3 A schematic diagram of the air conditioning mechanism of the gas stove in the integrated stove provided in this embodiment of the utility model.
[0028] icon: 1. Housing; 2. Cooktop; 3. Control unit; 31. Air conditioning structure; 311. Mounting base; 312. Connecting shell; 313. First gas supply channel; 314. Connecting hole; 315. Air inlet; 316. Drive assembly; 3161. Gear; 3162. Motor; 32. Proportional valve; 4. Control unit; 5. Range hood body; 6. Disinfection cabinet body; 7. Storage cabinet body. Detailed Implementation
[0029] The technical solution of this utility model will now be clearly and completely described with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of this utility model. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this utility model.
[0030] In the description of this utility model, it should be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer," etc., indicating the orientation or positional relationship, are based on the orientation or positional relationship shown in the accompanying drawings and are only for the convenience of describing this utility model and 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, and therefore should not be construed as a limitation of this utility model. Furthermore, the terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.
[0031] In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "joining" 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 mechanical connection or an electrical connection. They can refer to a direct connection or an indirect connection through an intermediate medium, or a connection within two components. For those skilled in the art, the specific meaning of the above terms in this utility model can be understood according to the specific circumstances.
[0032] Example 1 like Figures 1-3 As shown, the gas stove proposed in the embodiment of this utility model includes: The housing 1 and at least one stove 2 disposed on the housing 1, the stove 2 being used for cooking.
[0033] The control unit 3 includes an air conditioning mechanism 31 and a proportional valve 32. The air conditioning mechanism 31 includes a drive assembly 316 and an adjustment assembly. The adjustment assembly has an air intake. The drive end of the drive assembly 316 is connected to the adjustment assembly to adjust the supply of the first gas source discharged from the air intake to the stove 2. The proportional valve 32 is used to adjust the supply of the second gas source discharged to the stove 2.
[0034] The control unit 4 is disposed on the housing 1 and is connected to the stove 2. It is used to control the power supply of the stove 2. The control unit 4 is electrically connected to the drive assembly 316 and the proportional valve 32.
[0035] Specifically, the housing 1 provides support and fixation. A cooker 2 is mounted on the housing 1. The number of cookers 2 can be one or two, depending on the actual needs of the technician, to improve the effectiveness of the device. The cooker 2 is existing technology and can be purchased. The cooker 2 is a cooking appliance, and it is categorized by the type of gas used: natural gas cooker, manufactured gas cooker, liquefied petroleum gas cooker, and induction cooker. The cooker 2 in this application is a natural gas cooker. The cooker 2 is connected to the housing 1 using a conventional method; the specific connection method is known to the technician and will not be described further here.
[0036] Since the stove 2 is a natural gas stove, the gas needs to consume oxygen in the air to burn completely. If the ventilation is insufficient and there is not enough oxygen, the gas will not burn completely, which will produce harmful gas components other than carbon dioxide and water vapor, posing a potential danger. Therefore, the control unit 4 and the air conditioning mechanism 31 work together to ensure that the ratio of gas to air is appropriate and that combustion is complete, thereby effectively avoiding the problem of resource waste and reducing the potential danger to users.
[0037] The control unit 4 can control the on / off of the stove 2, that is, the stove 2 is lit when cooking is needed and turned off when cooking is finished. In addition, the control unit 4 can also adjust the heat of the stove 2 during the cooking process, that is, by adjusting the supply of gas from the first gas source and the second gas source to the stove 2, so that the stove 2 can cook food at different temperatures. Finally, the air conditioning mechanism 31 can also control whether the second gas source supplies gas to the stove 2.
[0038] The control unit 3 in this embodiment includes an air conditioning mechanism 31 and a proportional valve 32. The air conditioning mechanism 31 is used to adjust the amount of air supplied to the stove 2 by the first gas source. The proportional valve 32 (electro-hydraulic proportional valve) is a hydraulic valve that converts the input electrical signal into force or displacement proportionally, thereby continuously controlling parameters such as pressure and flow rate. The proportional valve 32 consists of two parts: a DC proportional electromagnet and a hydraulic valve. The hydraulic valve part is not much different from that of a general hydraulic valve, but the DC proportional electromagnet is different from the electromagnet used in a general solenoid valve. By using a proportional electromagnet, displacement output and suction output proportional to a given current can be obtained. The proportional valve 32 can be divided into three categories according to its control parameters: proportional pressure valve, proportional flow valve, and proportional directional valve. The proportional valve 32 is used to control the amount of gas supplied to the stove 2 by the second gas source. In addition, the proportional valve 32 can also control whether the second gas source supplies gas to the stove 2.
[0039] It should be noted that the housing 1 is equipped with a rotary knob body adapted to the cooktop 2. This rotary knob body can also control the gas supply to the corresponding cooktop 2 from the first and second gas sources. The rotary knob body is existing technology and can be purchased. The connection methods between the rotary knob body and the first and second gas sources, as well as the connection methods between the rotary knob body and the cooktop 2, are all conventional. The specific connection methods are known to technical personnel and will not be elaborated here. If the user needs to manually adjust the heat level in the cooktop 2, the user can directly adjust the heat level in the corresponding cooktop 2 using the rotary knob body to achieve a customized cooking effect.
[0040] The gas stove provided in this embodiment controls the regulating unit 3 via the control unit 4, thereby regulating the flame intensity through the air conditioning mechanism 31 and the proportional valve 32. The air conditioning mechanism 31 drives the regulating component to adjust the flow rate of the first gas source flowing into the stove 2 during cooking, while the proportional valve 32 adjusts the flow rate of the second gas source flowing into the stove 2. The two work together to regulate the flame intensity, allowing the stove 2 to cook food at different temperatures, avoiding errors caused by manual flame adjustments. Furthermore, the cooperation between the control unit 4 and the air conditioning mechanism 31 ensures a suitable gas-air ratio and complete combustion, effectively preventing resource waste and reducing potential dangers for the user.
[0041] It should be noted that in this embodiment, the first gas source is specifically air, and the second gas source is specifically natural gas.
[0042] In specific implementation, a first pipeline is provided between the first gas source and the stove 2, and the air conditioning mechanism 31 is located in the first pipeline.
[0043] A second pipeline is provided between the second gas source and the stove 2, and a proportional valve 32 is located in the second pipeline.
[0044] Specifically, under this structural design, the first gas source and the second gas source are connected to the stove 2 through the first pipeline and the second pipeline respectively. At the same time, it is also convenient to adjust the supply of the first gas source and the second gas source separately through the air conditioning mechanism 31 and the proportional valve 32.
[0045] Specifically, the first connection method of the air conditioning mechanism 31, the proportional valve 32, the first pipeline, and the second pipeline provided in this application is as follows: Figures 2-3 As shown, one end of the second pipeline is connected to the second gas source, and the other end of the second pipeline is connected to the stove 2 in sequence through the proportional valve 32 and the air conditioning mechanism 31. The first pipeline is connected to the stove 2 through the air conditioning mechanism 31.
[0046] The second connection method of the air conditioning mechanism 31, the proportional valve 32, the first pipeline and the second pipeline provided in this application is that one end of the second pipeline is connected to the second gas source, the other end of the second pipeline is connected to the stove 2 through the proportional valve 32, and the first pipeline is connected to the stove 2 through the air conditioning mechanism 31.
[0047] It should be noted that both of the above methods can achieve the effect of the control unit 4 controlling the air conditioning mechanism 31, that is, the control unit 4 controls the proportional valve 32 and the air conditioning mechanism 31 so that the proportional valve 32 and the air conditioning mechanism 31 control the supply of the second gas source and the first gas source to the stove 2. Technicians can choose according to actual needs, and this application does not limit it. In this application, the connection method of the air conditioning mechanism 31, the proportional valve 32, the first pipeline and the second pipeline is preferably the first one.
[0048] like Figures 2-3 As shown, in a specific implementation, the adjustment component includes: Mounting base 311 has a mounting part, and air inlets 315 penetrating the mounting base 311 are provided on both sides of the mounting part.
[0049] The connecting shell 312 is rotatably mounted on the mounting part. The connecting shell 312 is provided with a through hole 314. The through hole 314 and the air inlet 315 are opened in the same direction. The drive assembly 316 is mounted on the mounting base 311 and is connected to the connecting shell 312 in a transmission manner.
[0050] The first gas supply channel 313 passes through the mounting base 311 and the connecting shell 312, and the second pipeline is connected to the stove 2 through the first gas supply channel 313.
[0051] The air inlet 315 on one side of the mounting part is connected to the first pipeline, and the drive assembly 316 drives the connecting shell 312 to rotate in order to control the overlap between the connecting hole 314 and the air inlet 315.
[0052] Furthermore, in this embodiment, the first air supply channel 313 passes through the rotation center of the connecting shell 312, and the extension direction of the first air supply channel 313 is coaxial with the rotation axis of the connecting shell 312.
[0053] Specifically, regarding the connection method of the first air conditioning mechanism 31, the proportional valve 32, the first pipeline and the second pipeline, this application provides an embodiment of the air conditioning mechanism 31, that is, the air conditioning mechanism 31 includes a mounting base 311, a connecting shell 312 rotatably disposed on the mounting base 311 and a drive assembly 316.
[0054] The mounting base 311 serves to support and fix the device. A connecting shell 312 is rotatably disposed inside the mounting base 311. The connecting shell 312 is cylindrical. The first and second circular surfaces of the connecting shell 312 are rotatably connected to the mounting base 311 through bearings. The connecting shell 312 is a hollow cavity. An opening is formed at the center of the first and second circular surfaces and they are connected to form a connecting hole 314.
[0055] The mounting base 311 has a gas port positioned opposite the opening on the first circular surface, and another gas port positioned opposite the opening on the second circular surface. The two gas ports of the mounting base 311, the two openings of the connecting shell 312, and the inner cavity of the connecting shell 312 constitute the first gas supply channel 313. The first gas supply channel 313 is located inside the bearing. This structural design ensures that the second pipeline supplying gas to the stove 2 is not affected by the air conditioning mechanism 31. Furthermore, the center of rotation of the connecting shell 312 when it rotates on the mounting base 311 is aligned with the line connecting the centers of the first and second circular surfaces.
[0056] Both sides of the mounting base 11 are provided with air inlets 315. The connecting hole 314 can be connected to both sides of the air inlets 315 of the mounting base 311 when rotated. The air inlet 315 on one side of the mounting base 311 is located on the same side as one end of the first air supply channel 313. The air inlet 315 is connected to the first pipeline. The drive assembly 316 is used to drive the connecting shell 312 to rotate on the mounting base 311.
[0057] When the drive assembly 316 drives the connecting shell 312 to rotate on the mounting base 311, the amount of air supplied to the stove 2 by the first pipeline is controlled according to the overlap between the connecting hole 314 of the connecting shell 312 and the air inlet 315 on the mounting base 311. The air entering the connecting shell 312 mixes with the gas and flows into the stove 2 through the other end of the first gas supply channel 313.
[0058] It should be noted that in order to ensure that the air conditioning mechanism 31 can effectively control the amount of air supplied to the stove 2 by the first pipeline, the shape of the air inlet 315 is the same as the shape of the connecting hole 314. For example, the shape of the connecting hole 314 can be a regular shape or an irregular shape. This application does not limit it. In this application, the shape of the connecting hole 314 is preferably circular.
[0059] Furthermore, in this application, the air supply to the stove 2 via the first pipeline is controlled by adjusting the overlap between the connecting hole 314 and the air inlet 315, i.e., the control parameter. For example, when the user selects a braised pork recipe through the control unit 4, the control unit 4 first controls the proportional valve 32 and the air conditioning mechanism 31 to ignite the stove 2. After the ignition is completed, according to the cooking process of the braised pork recipe stored in the system (e.g., cooking on low heat for ten minutes, cooking on medium heat for ten minutes, and reducing the sauce on high heat for three minutes), the control unit 4 controls the overlap between the air inlet 315 and the connecting hole 314 and controls the opening of the proportional valve 32 to make the ratio of gas and air entering the stove 2 match and burn fully. During the cooking process, the adjustment from low heat to medium heat to high heat is achieved. After the cooking is completed, the control unit 4 controls the air conditioning mechanism 31 and the proportional valve 32 to stop supplying air and gas to the stove 2 and turns off the stove 2 to complete the cooking process of braised pork.
[0060] like Figures 2-3 As shown, in a specific implementation, the driving component 316 includes: Gear 3161 is rotatably mounted on mounting base 311.
[0061] Motor 3162, the output end of motor 3162 is connected to gear 3161.
[0062] The connecting shell 312 has teeth on its periphery, which mesh with the gear 3161, and the motor 3162 is electrically connected to the control unit 4.
[0063] Specifically, the periphery of the connecting shell 312 and the teeth can be integrally formed by casting to improve the overall toughness and strength of the structure when connecting the connecting shell 312 and the teeth. The periphery of the connecting shell 312 and the teeth can also be detachably connected to facilitate subsequent maintenance. Technicians can choose according to actual needs.
[0064] The motor 3162 is used to provide power. The control unit 4 controls the motor 3162 to rotate forward or backward, so that the output shaft of the motor 3162 drives the gear 3161 to rotate. Since the teeth of the gear 3161 mesh with the teeth of the connecting shell 312, the connecting shell 312 can reciprocate on the mounting base 311. The amount of air supplied to the stove 2 by the first pipeline is controlled according to the degree of overlap between the connecting hole 314 of the connecting shell 312 and the air inlet 315 on the mounting base 311.
[0065] Gear 3161 is rotatably connected to mounting base 311 via bearing, and gear 3161 is connected to the output end of motor 3162 via coupling.
[0066] In its specific implementation, it also includes: A mixing concentration sensor is installed between the first gas supply channel 313 and the stove 2, and the mixing concentration sensor is electrically connected to the control unit 4.
[0067] Specifically, the mixture concentration sensor is an air-fuel ratio sensor, used to detect the mixing ratio of gas and air entering the stove 2, so as to ensure that the control unit 4 can ensure that the gas entering the stove 2 is fully combusted. The air-fuel ratio sensor is existing technology and can be purchased, and its connection method is known to technical personnel, so it will not be described in detail here.
[0068] In its specific implementation, it also includes: A temperature sensor is mounted on housing 1 and electrically connected to control unit 4.
[0069] Specifically, the temperature sensor is used to detect the real-time temperature of the stove 2 when it is lit, so that the control unit 4 can control the stove 2 to switch between low, medium and high heat. Technicians can set the temperature range of low, medium and high heat as needed and save it in the control unit 4 so that users can select the corresponding recipes for cooking according to the ingredients.
[0070] In addition, an alarm is installed on the housing 1, which is electrically connected to the control unit 4. A semiconductor gas sensor is also installed on the housing 1 to detect whether there is a gas leak. The semiconductor gas sensor is electrically connected to the control unit 4. When the semiconductor gas sensor detects a gas leak, the control unit 4 controls the alarm to alert the user to the gas leak problem so that the user can react in time. The alarm can be a warning light, a buzzer, or both. Technicians can choose according to actual needs, and this application does not limit it.
[0071] An image acquisition device is also installed on the housing 1. The image acquisition device is electrically connected to the control unit 4. The image acquisition device is used to acquire user action information and feed it back to the control unit 4 so that the control unit 4 can make corresponding adjustments. For example, when the image acquisition device detects that the user needs to manually adjust the firepower of the stove 2, at the same time as the user adjusts the rotary knob, the control unit 4 controls the air conditioning mechanism 31 so that the air conditioning mechanism 31 controls the gas and air in the first and second pipelines to stop supplying gas and air to the stove 2. At this time, the user can manually adjust the opening of the rotary knob to adjust the firepower of the stove 2. Secondly, the image acquisition device can feed back user information, such as the heat level during cooking and different cooking methods for the same dish, to the control unit 4. The control unit 4 then generates corresponding recipes based on the user's preferences. Finally, if the user forgets to turn off the stove after cooking, the image acquisition device can acquire image information and feed it back to the control unit 4, allowing the control unit 4 to control the stove 2 to turn off the heat. All of the above control methods are existing technologies. Technicians can select the necessary programs and store them in the control unit 4 to improve the user experience and intelligence of the device. The image acquisition device can be a camera, a webcam, or a video recorder.
[0072] like Figure 1 As shown, in a specific implementation, the control unit 4 includes: The central processing unit and the touch panel are electrically connected to the mixed concentration sensor, the temperature sensor, the stove 2 and the air conditioning mechanism 31. The touch panel is electrically connected to the central processing unit and is disposed on the housing 1. The touch panel is disposed inside the housing 1.
[0073] Specifically, this application provides an implementation of a control unit 4, which includes a central processing unit and a touch panel. The central processing unit is existing technology and can be purchased. Technicians can store multiple programs in the central processing unit as needed for users to select, such as cooking recipes, generating corresponding recipes according to user preferences, gas leak alarms, firepower adjustment of the stove 2, and safety monitoring (if the user forgets to turn off the stove).
[0074] The touch panel allows users to easily select different functions. The housing 1 is also equipped with a display screen, which is used to show the user the operating status of the device. The display screen is electrically connected to the central processing unit. The alarm, semiconductor gas sensor and image acquisition unit are also electrically connected to the central processing unit.
[0075] Example 2 like Figures 1-3 As shown, an integrated stove according to Embodiment 2 of this utility model includes: The integrated rack body, range hood body 5, disinfection cabinet body 6, storage cabinet body 7, and gas stove.
[0076] The housing 1 and at least one stove 2 disposed on the housing 1, the stove 2 being used for cooking.
[0077] The control unit 3 is located inside the housing 1 and is connected to the first gas source and the second gas source respectively. The control unit 3 is connected to the corresponding stove 2. The first gas source is used to supply air, the second gas source is used to supply gas, and the air conditioning mechanism 31 is used to control the supply amount of the first gas source and the second gas source to the corresponding stove 2.
[0078] The control unit 4 is installed on the housing 1. The control unit 4 is connected to the stove 2 and is used to control the opening and closing of the stove 2. The control unit 4 is also connected to the regulating unit 3 and is used to control the regulating parameters of the regulating unit 3. The regulating parameter is the supply amount.
[0079] The integrated rack body is stacked with a disinfection cabinet body 6, a storage cabinet body and a gas stove. The integrated rack body is equipped with a range hood body 5, which is located close to the stove 2 so that the range hood body 5 can draw out the oil fumes produced by the gas stove during cooking.
[0080] Specifically, the integrated rack body is detachably connected to the range hood body 5, the disinfection cabinet body 6, the storage cabinet body 7, and the gas stove, for example, by bolts or clips. This structural design facilitates the later maintenance of the device.
[0081] The integrated rack body is stacked with a disinfection cabinet body 6, a storage cabinet body and a gas stove. This structural design can improve the utilization of space, that is, achieve the effect of saving space, while also having the advantages of energy saving, low consumption and environmental protection.
[0082] The integrated rack body is equipped with a range hood body 5, which is located close to the stove 2 so that the range hood body 5 can draw out the oil fumes produced by the gas stove during cooking. This structural design can improve the oil fume absorption rate and control the oil fumes well, thereby reducing the occurrence of respiratory and skin diseases.
[0083] The housing 1 provides support and fixation. A cooker 2 is mounted on the housing 1. The number of cookers 2 can be one or two, depending on the needs of the technician, to improve the effectiveness of the device. The cooker 2 is existing technology and can be purchased. The cooker 2 is a cooking appliance, and it is categorized by the type of gas used: natural gas cooker, manufactured gas cooker, liquefied petroleum gas cooker, and induction cooker. The cooker 2 in this application is a natural gas cooker. The cooker 2 is connected to the housing 1 using a conventional method; the specific connection method is known to the technician and will not be described further here.
[0084] Since the stove 2 is a natural gas stove, the gas needs to consume oxygen in the air to burn completely. If the ventilation is insufficient and there is not enough oxygen, the gas will not burn completely, which will produce harmful gas components other than carbon dioxide and water vapor, posing a potential danger. Therefore, the control unit 4 and the air conditioning mechanism 31 work together to ensure that the ratio of gas to air is appropriate and that combustion is complete, thereby effectively avoiding the problem of resource waste and reducing the potential danger to users.
[0085] The control unit 4 can control the on / off of the stove 2, that is, the stove 2 is lit when cooking is needed and turned off when cooking is finished. In addition, the control unit 4 can also adjust the heat of the stove 2 during the cooking process, that is, by adjusting the supply of gas from the first gas source and the second gas source to the stove 2, so that the stove 2 can cook food at different temperatures. Finally, the air conditioning mechanism 31 can also control whether the second gas source supplies gas to the stove 2.
[0086] It should be noted that the housing 1 is equipped with a rotary knob body adapted to the stove 2. The first gas source and the second gas source are connected to the corresponding stove 2 through the rotary knob body. The rotary knob body can control the gas supply from the first gas source and the second gas source to the corresponding stove 2. The rotary knob body is existing technology and can be purchased. The connection method between the rotary knob body and the first and second gas sources, as well as the connection method between the rotary knob body and the stove 2, are all conventional. The specific connection method is known to the technicians and will not be described in detail here. If the user needs to manually adjust the heat level in the stove 2, the user can directly adjust the heat level in the corresponding stove 2 through the rotary knob body to achieve a free cooking effect.
[0087] The integrated stove in this embodiment two can directly use the gas stove provided in the above embodiment one. For the specific implementation structure, please refer to the relevant content described in the above embodiment one, which will not be repeated here.
[0088] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this utility model, and are not intended to limit it. Although the utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some or all of the technical features therein. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of this utility model.
Claims
1. A gas stove, characterized in that, include: A housing and at least one cooktop disposed on the housing, the cooktop being used for cooking; The control unit includes an air conditioning mechanism and a proportional valve. The air conditioning mechanism includes a drive component and an adjustment component. The adjustment component has an air intake. The drive end of the drive component is connected to the adjustment component to adjust the supply amount of a first gas source discharged into the stove from the air intake. The proportional valve is used to adjust the supply amount of a second gas source discharged into the stove. A control unit is disposed on the housing and connected to the stove. The control unit is used to control the power supply of the stove. The control unit is electrically connected to the drive assembly and the proportional valve.
2. The gas stove according to claim 1, characterized in that, A first pipeline is provided between the first gas source and the stove, and the air conditioning mechanism is located in the first pipeline. The first gas source is air. A second pipeline is provided between the second gas source and the stove, and the proportional valve is located in the second pipeline. The second gas source is natural gas.
3. The gas stove according to claim 2, characterized in that, One end of the second pipeline is connected to the second gas source, and the other end of the second pipeline is connected to the stove through the proportional valve and the air conditioning mechanism in sequence. The first pipeline is connected to the stove through the air conditioning mechanism.
4. The gas stove according to claim 3, characterized in that, The adjustment component includes: The mounting base has a mounting section, and air inlets penetrating the mounting base are provided on both sides of the mounting section; A connecting shell is rotatably mounted on the mounting part. The connecting shell has a through-hole that passes through it. The through-hole is in the same direction as the air inlet. The drive assembly is mounted on the mounting base and is connected to the connecting shell in a transmission manner. The first gas supply channel passes through the mounting base and the connecting shell, and the second pipeline is connected to the stove through the first gas supply channel; The air inlet on one side of the mounting part is connected to the first pipeline, and the driving component drives the connecting shell to rotate to control the overlap between the connecting hole and the air inlet.
5. The gas stove according to claim 4, characterized in that, The first air supply channel passes through the rotation center of the connecting shell, and the extension direction of the first air supply channel is coaxial with the rotation axis of the connecting shell.
6. The gas stove according to claim 4, characterized in that, The driving component includes: The gear is rotatably mounted on the mounting base; The motor, the output end of which is connected to the gear; The connecting shell has teeth on its periphery, which mesh with the gear, and the motor is electrically connected to the control unit.
7. The gas stove according to claim 6, characterized in that, The gas stove also includes: A mixing concentration sensor is disposed between the first gas supply channel and the stove, and the mixing concentration sensor is electrically connected to the control unit.
8. The gas stove according to claim 7, characterized in that, The gas stove also includes: A temperature sensor is mounted on the housing and electrically connected to the control unit.
9. The gas stove according to claim 8, characterized in that, The control unit includes: The central processing unit and the touch panel are provided. The central processing unit is electrically connected to the mixed concentration sensor, the temperature sensor, the stove and the air conditioning mechanism. The touch panel is electrically connected to the central processing unit and is disposed on the housing and inside the housing.
10. An integrated stove, characterized in that, include: The integrated rack body, the range hood body, the disinfection cabinet body, the storage cabinet body, and the gas stove as described in any one of claims 1-9; The integrated rack body is stacked with the disinfection cabinet body, the storage cabinet body and the gas stove. The integrated rack body is equipped with the range hood body, which is located close to the stove so that the range hood body can draw out the oil fumes generated by the gas stove during cooking.