Range hood with cleaning function

CN224635485UActive Publication Date: 2026-08-14NINGBO FOTILE KITCHEN WARE CO LTD
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Patent Information

Application Number
CN202521597562.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-07-29
Publication Date
2026-08-14
Estimated Expiration
2035-07-29

AI Technical Summary

Technical Problem

[0005]上述专利申请中的吸油烟机虽然解决了防止蒸汽进入到公共烟道的问题,但在实际使用过程中还存在一定不足:在蜗壳内充满大量蒸汽时,蒸汽会从蜗壳的进风口出来,并充满下箱体,由于吸油烟机的下箱体不能完全密封,所以,不可避免地会出现蒸汽从箱体的拼接缝隙处溢出问题,尤其是从挡烟板玻璃处溢出,给用户的使用体验造成不好的影响

Benefits of technology

[0022]与现有技术相比,本实用新型的优点:通过将油网改造为蒸汽收集器,其栅条内部形成蒸汽通道并开设蒸汽吸入口,可直接捕捉从蜗壳进风口逸出的高温蒸汽,防止蒸汽扩散至机壳下箱体。其次,在优选方案中,文氏引流管设于水泵与喷嘴间的流动路径上,利用水流高速流动产生的负压,通过引流管路将收集的蒸汽吸入并重新混合到清洁水流中。这种负压装置不仅减少了蒸汽从机壳拼缝(如挡烟板处)溢出的风险,还实现了蒸汽的循环利用,提高了蒸汽在蜗壳内的滞留时间和利用率,从而增强了对顽固油污的软化效果。本方案有效避免了蒸汽泄漏造成的用户体验下降(如视觉不适和潜在烫伤风险),提升了清洁过程的隐蔽性和安全性,同时无需额外密封结构,简化了设计并降低了成本。

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Abstract

This utility model relates to a range hood with a cleaning function, comprising: a housing with an air inlet and an oil filter for filtering oil fumes; a fan system located inside the housing, including a volute and an impeller within the volute, the volute having an air intake; and a steam recovery system including a steam collector and a Venturi tube. The oil filter serves as the steam collector, comprising multiple grates, each grate having a hollow interior forming a steam channel and a steam intake port connected to the steam channel. The Venturi tube is located on the flow path between the water pump and the nozzle, and its intake port is connected to the steam channel of the oil filter via a conduit. The advantage is that during steam cleaning, it effectively reduces steam leakage from the seams of the housing, thereby improving the user experience.
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Description

Technical Field

[0001] This utility model relates to the field of range hood technology, and in particular to a range hood with a cleaning function. Background Technology

[0002] A range hood is a kitchen appliance used to purify the kitchen environment. During use, a large amount of grease accumulates on the impeller and filter, which can easily cause blockages, increase the load, and affect the range hood's performance. With the continuous advancement of self-cleaning technology, steam cleaning has become widely used in the field of range hood self-cleaning. The basic principle of steam cleaning is that a steam generator produces steam, which is then delivered to the nozzles at the end of the spray pipe. The steam is rapidly ejected from the nozzles, washing and cleaning the impeller and volute.

[0003] However, existing self-cleaning technologies for range hoods, such as steam cleaning, still have some problems. For example, the high-temperature steam used for cleaning is continuously discharged into the common flue from the air outlet as the fan operates, resulting in insufficient amount of high-temperature steam in the fan and a short duration of existence. This makes it difficult to soften and remove stubborn oil stains adhering to the impeller surface, affecting the cleaning effect. In addition, after the high-temperature steam is discharged into the common flue, the high-temperature steam wash will dissolve the oil stains adhering to the walls of the common flue. The backflow of oil stains will cause secondary pollution. At the same time, the humidity of the high-temperature steam will cause bacteria to grow in the common flue, which will endanger the health of users.

[0004] To address the aforementioned technical problems, Chinese invention patent application CN109519988A discloses a self-cleaning range hood and its control method. The range hood includes an outer casing, a fan, a check valve, a temperature sensing element, and a self-cleaning assembly. The check valve is an electrically controlled check valve located on the air outlet of the volute and can open or close the outlet. The temperature sensing element is electrically connected to the control circuit of the check valve, and the control circuit controls the opening or closing of the check valve based on the electrical signal transmitted from the temperature sensing element. The self-cleaning assembly has a nozzle located on the volute and can spray cleaning medium into the volute. The temperature sensing element is positioned near the outlet end of the nozzle. During self-cleaning of the range hood, the temperature sensing element is heated by high-temperature cleaning, which connects the check valve circuit and closes the fan outlet, preventing high-temperature steam from flowing into the common flue. This keeps the volute at a consistently high temperature, facilitating the softening and removal of grease, improving the self-cleaning effect, and simultaneously preventing high-temperature steam from flowing into the common flue and causing secondary pollution.

[0005] Although the range hood in the aforementioned patent application solves the problem of preventing steam from entering the public flue, it still has some shortcomings in actual use: when the volute is filled with a large amount of steam, the steam will come out from the air inlet of the volute and fill the lower box. Since the lower box of the range hood cannot be completely sealed, steam will inevitably overflow from the joints of the box, especially from the baffle glass, which will have a negative impact on the user experience.

[0006] Therefore, existing range hoods still need further improvement. Utility Model Content

[0007] The technical problem to be solved by this utility model is to provide a range hood with a cleaning function that can effectively reduce steam leakage from the seams of the casing, thereby improving the user experience, in light of the current state of the technology.

[0008] The technical solution adopted by this utility model to solve the above-mentioned technical problems is: a range hood with a cleaning function, comprising:

[0009] The housing has an air inlet, and the air inlet is equipped with an oil filter for filtering oil fumes;

[0010] A fan system, located inside the housing, includes a volute and an impeller located inside the volute, the volute having an air intake.

[0011] A steam cleaning device includes a water tank, a water pump, a steam generator, and a nozzle assembly. The water pump is used to pump water from the water tank to the steam generator, and the steam generated by the steam generator is sprayed into the volute through the nozzle assembly.

[0012] It also includes a steam recovery system, which includes a steam collector connected to a negative pressure device. The oil mesh serves as the steam collector. The oil mesh includes multiple grid bars, each of which is hollow to form a steam channel and has a steam inlet connected to the steam channel.

[0013] The aforementioned "negative pressure device" refers to a device that can generate a pressure lower than the ambient air pressure, used for drawing in gases or vapors. Examples include Venturi tubes, vacuum pumps, and ejectors.

[0014] To improve steam recovery efficiency, the steam inlets on each bar of the oil mesh face inwards towards the casing. This structural design ensures that steam overflowing into the casing is promptly drawn into the steam channel of the oil mesh, reducing steam escape at the air inlet.

[0015] As an improvement, the housing includes a fan frame and a smoke hood. The fan system is located inside the fan frame. The air inlet is opened on the front side of the smoke hood. The oil screen arranged at the air inlet is located below the fan system and is inclined from top to bottom and backward.

[0016] Steam can be recovered and circulated back to the water storage tank through a negative pressure system with a fan. However, considering that steam recovery requires an additional power source (such as an air pump), increasing energy consumption and cost, in a preferred embodiment, the negative pressure device includes a Venturi drain pipe. The Venturi drain pipe is located on the flow path between the water pump and the nozzle. The drain port of the Venturi drain pipe is connected to the steam channel of the oil network through a drain pipe.

[0017] The aforementioned "Venturi tube" utilizes the negative pressure effect generated when fluid (water or steam) passes through a narrow pipe at high speed to achieve gas ejection. In this application, when a water pump drives water to flow through the throat of the Venturi tube, the flow velocity increases and the pressure decreases, drawing steam through the outlet. The Venturi tube can employ a conventional drainage tube structure based on the Venturi principle in the prior art.

[0018] To facilitate the disassembly and cleaning of the oil filter, the drainage pipe is connected to the oil filter in a detachable manner.

[0019] The Venturi tube can be located on the steam pipeline after the steam generator or in the water flow pipeline before or after the steam generator. However, considering that the Venturi tube is located after the steam generator (in the high-temperature and high-pressure steam section), its high-temperature and high-pressure resistance requirements are extremely high, increasing cost and failure risk. In particular, when high-temperature and high-pressure steam flows through the Venturi tube, its drainage effect (negative pressure magnitude) may be affected by the steam's physical properties (density, viscosity). Therefore, the Venturi tube is placed in the flow path between the water pump and the steam generator. With this structural design, the Venturi tube is located in the ambient / low-temperature water flow environment at the water pump outlet, avoiding contact with high-temperature and high-pressure steam. This reduces the requirements for the temperature and pressure resistance of the Venturi tube material, improves system reliability and service life, and reduces cost. Utilizing water flow (liquid) to generate the Venturi effect is generally more stable and produces a stronger negative pressure (due to the higher density of the liquid) than using steam (gas), ensuring a stable and sufficient suction force for the steam collector. The recovered steam / water mist is introduced into the water flow, where it is thoroughly mixed and heated before entering the steam generator, which is beneficial for the uniform generation of subsequent steam.

[0020] As an improvement, the water tank is located outside the casing. This structural design frees up internal space, allowing for a more optimized layout of the air ducts, fans, and recycling system. The external water tank (usually on the panel or side) greatly facilitates user observation of the water level and water filling operations, enhancing the user experience. Furthermore, the reduced external space constraints allow for the design of larger capacity water tanks, reducing the frequency of water filling.

[0021] As an improvement, a control valve for controlling the steam flow rate is also provided in the flow path between the steam collector and the Venturi tube. The control valve (such as a solenoid valve or a manual valve) allows for adjustment of the steam recovery rate and intensity as needed, ensuring the system operates at its optimal state. It can also adjust the recovery intensity according to the cleaning progress, oil content, or specific program instructions, improving the system's adaptability and cleaning effect. Furthermore, it prevents excessive recovery flow from interfering with the main water / steam flow, or insufficient flow from leading to inadequate recovery, ensuring the overall efficiency of the Venturi tube and steam cleaning.

[0022] Compared with existing technologies, the advantages of this invention are as follows: By transforming the oil mesh into a steam collector, steam channels are formed inside the grid bars, and steam inlets are opened, which can directly capture high-temperature steam escaping from the air inlet of the volute, preventing steam from diffusing into the lower casing. Secondly, in the preferred embodiment, the Venturi drain pipe is located on the flow path between the water pump and the nozzle. Utilizing the negative pressure generated by the high-speed water flow, the collected steam is drawn in through the drain pipe and remixed into the cleaning water flow. This negative pressure device not only reduces the risk of steam overflowing from the casing seams (such as at the smoke baffle), but also realizes the recycling of steam, improves the residence time and utilization rate of steam in the volute, thereby enhancing the softening effect on stubborn oil stains. This solution effectively avoids the decline in user experience caused by steam leakage (such as visual discomfort and potential burn risk), improves the concealment and safety of the cleaning process, and simplifies the design and reduces costs by eliminating the need for additional sealing structures. Attached Figure Description

[0023] Figure 1 This is a three-dimensional structural diagram of the range hood according to an embodiment of the present utility model;

[0024] Figure 2 This is a three-dimensional structural diagram of the range hood according to an embodiment of the present utility model, omitting components such as the casing. Detailed Implementation

[0025] The present invention will be further described in detail below with reference to the accompanying drawings and embodiments.

[0026] In the specification and claims of this utility model, terms indicating direction, such as "front," "rear," "upper," "lower," "left," "right," "side," "top," and "bottom," are used to describe various exemplary structural parts and elements of this utility model. However, the use of these terms is merely for the purpose of explanation and is based on the exemplary orientations shown in the accompanying drawings. Since the embodiments disclosed in this utility model can be arranged in different orientations, these terms indicating direction are for illustrative purposes only and should not be regarded as limitations. For example, "upper" and "lower" are not necessarily limited to directions opposite to or consistent with the direction of gravity.

[0027] Figures 1-2 This illustration shows a preferred embodiment of the range hood with cleaning function according to the present invention. The range hood includes a housing 10 and a fan system 20 disposed within the housing 10, the fan system 20 generally employing a centrifugal fan. The housing 10 generally includes a fan frame 101 and a smoke collection hood 102 disposed at the bottom of the fan frame 101, the inner cavity of the fan frame 101 communicating with the inner cavity of the smoke collection hood 102. An air inlet 1020 is provided on the front side wall of the smoke collection hood 102, through which external smoke enters the smoke collection hood 102. An oil filter is also provided at the air inlet 1020 of the smoke collection hood 102 for filtering oil fumes. The centrifugal fan is disposed within the fan frame 101; when the centrifugal fan operates, it generates negative pressure, allowing external oil fumes to be drawn into the smoke collection hood 102 through the air inlet 1020. The bottom of the fume hood 102 is equipped with an oil cup 61, which is a long strip extending left and right to collect oil stains flowing down from the fume hood 102. The front of the fume hood 102 is also equipped with a smoke baffle that can deflect back and forth relative to the fume hood 102. The smoke baffle is connected to the main body of the fume hood 102 via a hinge mechanism. Specifically, it can deflect forward to open the aforementioned air inlet 1020 and deflect backward to block and close the aforementioned air inlet 1020. The hinge mechanism used to drive the deflection of the smoke baffle can be a conventional hinge mechanism in the prior art, and will not be described in detail here.

[0028] Centrifugal fans generally include a volute 21, an impeller 22 housed inside the volute 21, and a motor for driving the impeller 22 to rotate.

[0029] The range hood in this embodiment also includes a steam cleaning device and a steam recovery system. The steam cleaning device is used to clean the inner wall of the volute 21 and the impeller 22. Specifically, the steam cleaning device includes a water tank 31, a water pump 32, a steam generator 33, and a nozzle assembly 34. The water tank 31 can be installed outside the range hood housing 10 for easy water filling. The water pump 32 and the steam generator 33 can be installed on the top plate of the fan frame 101 of the range hood. The water pump 32 sends water from the water tank 31 to the steam generator 33 through the water inlet pipe 321, where the steam generator 33 heats the water into steam. The generated high-temperature steam is sprayed into the interior of the volute 21 through the nozzle assembly 34, washing away the grease on the impeller 22 and the inner wall of the volute 21. During the cleaning process, steam inside the volute 21 overflows from the front and rear air intakes of the volute 21.

[0030] Combination Figure 1 and Figure 2 The steam recovery system of this embodiment includes a steam collector 41 and a Venturi drain pipe 35. The oil mesh of this embodiment has multiple parallel grids, with gaps between adjacent grids serving as air inlets. Each grid of the oil mesh structure is hollow, forming a steam channel, and each grid is also provided with a steam inlet 410 communicating with the corresponding steam channel. The oil mesh of this embodiment also serves as the steam collector 41.

[0031] In this embodiment, the Venturi tube 35 of the range hood is positioned in the flow path between the water pump 32 and the nozzle component 34. The Venturi tube 35 can be located on the steam pipeline after the steam generator 33, or in the water flow pipeline before or after the steam generator 33. However, considering that the Venturi tube 35 is located after the steam generator 33 (in the high-temperature, high-pressure steam section), its high-temperature and high-pressure resistance requirements are extremely high, increasing cost and the risk of failure. In particular, when high-temperature, high-pressure steam flows through the Venturi tube, its drainage effect (negative pressure) may be affected by the steam's physical properties (density, viscosity). Therefore, in the preferred embodiment, the Venturi tube 35 is positioned in the flow path between the pump 32 and the steam generator 33. The Venturi tube 35 is located in the ambient / low-temperature water flow environment at the outlet of the water pump 32, avoiding contact with high-temperature, high-pressure steam, reducing the requirements for the temperature and pressure resistance of the Venturi tube material, improving system reliability and service life, and reducing costs. Utilizing water flow (liquid) to generate the Venturi effect is generally more stable and produces stronger negative pressure (due to the higher density of the liquid) than using steam (gas), ensuring a stable and sufficient suction force for the steam collector 41. The recovered steam / water mist is introduced into the water flow, where it is thoroughly mixed and heated before entering the steam generator 33, which is beneficial for the uniform generation of subsequent steam.

[0032] The flow path between the steam collector 41 and the Venturi drain pipe 35 is a drain pipe 36, in which a control valve 51 is installed. The control valve 51 can be a three-way solenoid valve. This allows the rate and intensity of steam recovery to be adjusted as needed, ensuring the system operates in an optimized state. Furthermore, the recovery intensity can be adjusted according to the cleaning progress, oil content, or specific program instructions, improving the system's adaptability and cleaning effect. On the other hand, it prevents excessive recovery flow from interfering with the main water / steam flow, or insufficient flow from leading to inadequate recovery, ensuring the overall efficiency of Venturi drainage and steam cleaning.

[0033] The drainage pipe 36 is connected to the oil network in a detachable manner, such as by means of a quick-release connector that allows for easy plugging and unplugging of the drainage pipe to the oil network.

[0034] This embodiment incorporates a steam collector 41 with a steam intake 410 in a key area inside the casing 10 (such as inside the casing 10 or near the air inlet 1020 of the casing 10). This allows the system to actively capture and collect residual steam escaping from the air inlet 1020 of the volute 21 or spreading into the casing 10. This directly addresses the fundamental problem of steam overflowing due to the casing 10's inability to be completely sealed, effectively reducing the possibility of steam overflowing from the baffle glass, panel seams, etc., preventing steam from permeating the kitchen environment and ensuring user comfort during cleaning. A Venturi drain pipe 35 is installed in the water path between the water pump 32 and the nozzle, and the steam collector 41 is connected to the venturi drain port via a drain pipe 36. When the water pump 32 drives water flow through the narrow throat of the venturi, a significant negative pressure is generated at the drain port according to the Venturi effect. This negative pressure efficiently draws the steam collected by the steam collector 41 and reintroduces it into the water flow. This not only recovers steam but also allows the recovered steam to be sent to the steam generator 33 along with the water flow, achieving steam recycling. The recovered steam re-enters the steam generator 33 system and can be reheated for reuse, supplementing the steam required for cleaning. This helps maintain a more stable and longer-lasting steam environment inside the blower system 20 (such as in the volute 21 and impeller 22), which is beneficial for softening stubborn oil stains and potentially improving the self-cleaning effect. At the same time, recycling reduces the consumption of fresh steam, playing a certain role in energy and water conservation.

Claims

1. A range hood with a cleaning function, comprising: The housing (10) has an air inlet (1020) and an oil filter for filtering oil fumes at the air inlet (1020). The fan system (20) is located inside the housing (10) and includes a volute (21) and an impeller (22) located inside the volute (21). The volute (21) has an air intake. The steam cleaning device includes a water tank (31), a water pump (32), a steam generator (33), and a nozzle (34). The water pump (32) is used to send water from the water tank (31) to the steam generator (33). The steam generated by the steam generator (33) is injected into the volute (21) through the nozzle (34). The feature is that it also includes a steam recovery system, which includes a steam collector (41) connected to a negative pressure device. The oil mesh serves as the steam collector (41). The oil mesh includes multiple grid bars (411), each of which is hollow inside to form a steam channel and has a steam inlet (410) connected to the steam channel.

2. The range hood with a cleaning function according to claim 1, characterized in that: The steam inlet (410) on each bar (411) of the oil mesh faces inward toward the casing (10).

3. The range hood with a cleaning function according to claim 2, characterized in that: The housing (10) includes a fan frame (101) and a smoke hood (102). The fan system (20) is located inside the fan frame (101). The air inlet (1020) is opened on the front side of the smoke hood (102). The oil screen arranged at the air inlet (1020) is located below the fan system (20) and is inclined from top to bottom and backward.

4. The range hood with a cleaning function according to any one of claims 1 to 3, characterized in that: The negative pressure device includes a Venturi drain pipe (35), which is located on the flow path between the water pump (32) and the nozzle (34). The drain port of the Venturi drain pipe (35) is connected to the steam channel of the oil network through a drain pipe (36).

5. The range hood with a cleaning function according to claim 4, characterized in that: The drainage pipe (36) is connected to the oil mesh in a detachable manner.

6. The range hood with a cleaning function according to claim 4, characterized in that: The Venturi drain pipe (35) is located in the flow path between the water pump (32) and the steam generator (33).

7. The range hood with a cleaning function according to claim 4, characterized in that: A control valve (51) for controlling the steam flow rate is also provided in the flow path between the steam collector (41) and the Venturi drain pipe (35).

8. The range hood with a cleaning function according to any one of claims 1 to 3, characterized in that: The water storage tank (31) is located outside the casing (10).

Citation Information

Patent Citations

  • Self-cleaning range hood and control method thereof

    CN109519988A