Range hood and control method of range hood

CN115682067BActive Publication Date: 2026-09-29GUANGDONG CHENGYI TECH CO LTD
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Patent Information

Application Number
CN202211325734.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-10-27
Publication Date
2026-09-29
Estimated Expiration
2042-10-27

AI Technical Summary

Technical Problem

因此,在面临如此复杂的使用环境,发明人发现传统技术中至少存在如下问题:传统仅仅通过增加排风量的吸油烟机不能满足提高吸油烟性能的要求

Benefits of technology

本申请各实施例提供的吸油烟机包括吸风口、风道和排烟风机。吸风口连接风道,排烟风机设置在风道内。在吸油烟机运行过程中,排烟风机的工作过程至少包括对应于第一背压范围的目标功率运行段、以及对应于第二背压范围的目标风量运行段。具体的,在目标功率运行段内,吸油烟机检测的背压值在第一背压范围内,排烟风机在预设第一误差范围内按照目标功率运行。在目标风量运行段内,吸油烟机检测的背压值在第二背压范围内,排烟风机在预设第二误差范围内按照目标风量运行。本申请将吸油烟机排烟的运行过程分成目标功率运行段和目标风量运行段,利用目标功率运行段带动吸油烟机的油烟输出侧的气流流动,降低吸油烟机的背压,在吸油烟机的背压降至一定值时,切换至目标风量运行段以使排烟风机维持按照目标风量运行,随着气流的流动,吸油烟机的背压越小,维持按照目标风量运行所需的输入电功率越小,从而实现利用目标功率运行段形成良好的气流组织,提升吸油烟效果,利用目标风量运行段,降低功耗。

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Abstract

The application relates to an extractor hood and a control method of the extractor hood. The extractor hood comprises an air suction port, an air duct and an exhaust fan. The working process of the exhaust fan at least comprises a target power running section corresponding to a first back pressure range and a target air volume running section corresponding to a second back pressure range. In the target power running section, the back pressure value detected by the extractor hood is within the first back pressure range, and the exhaust fan runs according to the target power within a preset first error range. In the target air volume running section, the back pressure value detected by the extractor hood is within the second back pressure range, and the exhaust fan runs according to the target air volume within a preset second error range. The application divides the running process of the exhaust fan of the extractor hood into the target power running section and the target air volume running section, utilizes the target power running section to drive the airflow flow of the oil fume output side of the extractor hood, reduces the back pressure of the extractor hood, utilizes the target power running section to form good airflow organization, improves the oil fume extraction effect and reduces power consumption.
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Description

Technical Field

[0001] This application relates to the field of range hood technology, and in particular to a range hood and a control method for the range hood. Background Technology

[0002] With the development of range hood technology, most manufacturers have adopted the approach of increasing the exhaust volume to improve the fume extraction performance. Currently, the exhaust volume of range hoods has increased from 16 cubic meters per minute to 20, 24, or even 26 cubic meters per minute. However, increasing the exhaust volume only meets the space's ventilation requirements. Without proper airflow organization, simply increasing the exhaust volume cannot reduce fume pollution or control airflow direction. Continuously increasing the exhaust volume actually increases energy consumption and removes a large amount of clean air from the room, resulting in reduced social benefits. Furthermore, the installation locations of range hoods vary. For example, some exhaust directly to the atmosphere, some are located high in the main duct, and some are low in the main duct. Therefore, facing such complex usage environments, the inventors discovered that traditional technologies have at least the following problems: traditional range hoods that simply increase exhaust volume cannot meet the requirements for improving fume extraction performance. Summary of the Invention

[0003] Therefore, it is necessary to provide a range hood and its control method that can improve the performance of fume extraction while reducing energy consumption, in order to address the above-mentioned technical problems.

[0004] A range hood includes an air intake, an air duct, and an exhaust fan; the air intake is connected to the air duct; the exhaust fan is installed in the air duct, and during the operation of the range hood, the working process of the exhaust fan includes at least a target power operation segment corresponding to a first back pressure range and a target air volume operation segment corresponding to a second back pressure range. Within the target power operating range, the back pressure value detected by the range hood is within the first back pressure range, and the exhaust fan operates at the target power within the preset first error range; Within the target airflow operating range, the back pressure value detected by the range hood is within the second back pressure range, and the exhaust fan operates according to the target airflow within the preset second error range.

[0005] In one embodiment, during the target power operation segment, the control board of the range hood detects the actual output air volume of the exhaust fan based on the detected back pressure value, so that the exhaust fan operates at the target power within a preset first error range; Within the target airflow operating range, the control board of the range hood monitors controls the input power of the exhaust fan based on the detected back pressure value, so that the exhaust fan operates within the preset second error range according to the target airflow.

[0006] In one embodiment, the minimum value of the first back pressure range is greater than the maximum value of the second back pressure range; the minimum value of the first back pressure range is between 150 Pa and 450 Pa.

[0007] In one embodiment, the range hood includes two or more operating settings; Each operating setting corresponds to a different target power; and each operating setting corresponds to a different target airflow. Within the target power operating range, the range hood switches from the current operating level to the next operating level, and the exhaust fan switches from the target power corresponding to the current operating level to the target power corresponding to the next operating level. Within the target air volume operating range, the range hood switches from the current operating level to the next operating level, and the exhaust fan switches from the target air volume corresponding to the current operating level to the target air volume corresponding to the next operating level.

[0008] In one embodiment, the first error range is preset to be between ±8% of the target power; the operating mode corresponding to the target power operating segment is one or any combination of constant power mode, underpower mode and overpower mode; Among them, the constant power mode is that the exhaust fan operates at the target power within the preset third error range; the preset third error range is included in the preset first error range; The rate of change of the back pressure-air volume curve corresponding to the underpower mode is less than the rate of change of the back pressure-air volume curve corresponding to the constant power mode; in the underpower mode, the error of the actual operating power of the exhaust fan relative to the target power is the negative difference set between the preset first error range and the preset third error range; The rate of change of the back pressure-airflow curve corresponding to the overpower mode is greater than the rate of change of the back pressure-airflow curve corresponding to the constant power mode; in the overpower mode, the error of the actual operating power of the exhaust fan relative to the target power is the positive difference between the preset first error range and the preset third error range.

[0009] In one embodiment, the second back pressure range is between 1 Pa and 300 Pa; the preset second error range is between ±15% of the target air volume; the operating mode corresponding to the target air volume operating segment is one or any combination of constant air volume mode, intermediate extreme value mode and oscillation mode. Among them, the constant air volume mode is that the smoke exhaust fan operates according to the target air volume within the preset fourth error range; the preset fourth error range is included in the preset second error range; In the intermediate extreme mode, the actual output air volume of the smoke exhaust fan deviates in the direction of being greater than or less than the target air volume; in the intermediate extreme mode, the error of the actual output air volume of the smoke exhaust fan relative to the target air volume is the difference between the preset second error range and the preset fourth error range; In oscillation mode, the actual output air volume of the smoke exhaust fan oscillates between being less than the target air volume and being greater than the target air volume; in oscillation mode, the error of the actual output air volume of the smoke exhaust fan relative to the target air volume is the difference between the preset second error range and the preset fourth error range.

[0010] In one embodiment, the range hood further includes an air collection box; the air collection box has a through groove for accommodating the air intake; the air velocity at the air intake is between 11 cubic meters per minute and 18 cubic meters per minute.

[0011] A control method for a range hood, applied to a range hood including an air intake, an air duct, and an exhaust fan; the air intake is connected to the air duct; the exhaust fan is installed inside the air duct, and includes the following steps: Obtain the back pressure value of the range hood; If the back pressure value is determined to be within the first back pressure range, the exhaust fan is controlled to enter the target power operating range so as to operate at the target power within the preset first error range; If the back pressure value is determined to be within the second back pressure range, the exhaust fan is controlled to enter the target air volume operating section so as to operate at the target air volume within the preset second error range.

[0012] In one embodiment, if the back pressure value is determined to be within a first back pressure range, the exhaust fan is controlled to enter the target power operating segment to operate at the target power within a preset first error range. Based on the obtained back pressure value, the actual output air volume of the smoke exhaust fan is controlled so that the smoke exhaust fan operates at the target power within the preset first error range; If the back pressure value is determined to be within the second back pressure range, the exhaust fan is controlled to enter the target air volume operating segment, so as to operate at the target air volume within the preset second error range: Based on the obtained back pressure value, the input power of the smoke exhaust fan is controlled so that the smoke exhaust fan operates at the target air volume within a preset second error range.

[0013] In one embodiment, the minimum value of the first back pressure range is greater than the maximum value of the second back pressure range; the minimum value of the first back pressure range is in the range of 150 Pa to 450 Pa; the preset first error range is between ±8% of the target power; the second back pressure range is between 1 Pa and 300 Pa; and the preset second error range is between ±15% of the target air volume.

[0014] One of the above technical solutions has the following advantages and beneficial effects: The range hoods provided in the embodiments of this application include an air intake, an air duct, and an exhaust fan. The air intake is connected to the air duct, and the exhaust fan is disposed within the air duct. During the operation of the range hood, the exhaust fan's operation process includes at least a target power operating segment corresponding to a first back pressure range and a target airflow operating segment corresponding to a second back pressure range. Specifically, within the target power operating segment, the back pressure value detected by the range hood is within the first back pressure range, and the exhaust fan operates at the target power within a preset first error range. Within the target airflow operating segment, the back pressure value detected by the range hood is within the second back pressure range, and the exhaust fan operates at the target airflow within a preset second error range. This application divides the operation of the range hood into a target power operation segment and a target air volume operation segment. The target power operation segment drives the airflow on the fume output side of the range hood, reducing the back pressure of the range hood. When the back pressure of the range hood drops to a certain value, it switches to the target air volume operation segment so that the exhaust fan maintains operation at the target air volume. As the airflow flows, the lower the back pressure of the range hood, the lower the input power required to maintain operation at the target air volume. This achieves good airflow organization by utilizing the target power operation segment, improving the fume extraction effect, and reduces power consumption by utilizing the target air volume operation segment. Attached Figure Description

[0015] Figure 1 This is a schematic diagram of the range hood in the embodiments of this application.

[0016] Figure 2 This is a schematic diagram of the operation process of the range hood in the embodiments of this application.

[0017] Figure 3 This is a schematic diagram of the operating mode of the range hood in the target power operating segment in the embodiments of this application.

[0018] Figure 4 This is a schematic diagram of the operating mode of the target air volume operating segment of the range hood in the embodiments of this application.

[0019] Figure 5 This is a schematic diagram of the operating mode of the target air volume operating segment of the range hood in the embodiments of this application.

[0020] Figure 6 This is a flowchart illustrating the control method of the range hood in an embodiment of this application. Detailed Implementation

[0021] To make the objectives, technical solutions, and advantages of this application clearer, the following detailed description is provided in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative and not intended to limit the scope of this application.

[0022] As a kitchen appliance, the range hood 100 is used to extract cooking fumes. To improve the fume extraction performance of the range hood 100, the common approach is to increase its exhaust volume. However, simply increasing the exhaust volume without proper airflow organization will not significantly improve the extraction performance and may even increase the energy consumption of the range hood 100.

[0023] To solve the above-mentioned technical problems, this application provides a range hood 100. For example... Figure 1 As shown, the range hood 100 includes an air intake 101, an air duct 103, and an exhaust fan (not shown in the figure). The air intake 101 connects to the air duct 103, and the range hood 100 draws in cooking fumes through the air intake 101 and exhausts the fumes into the air duct 103. The air duct 103 connects to the outside environment or the main air duct 103 of the building, thereby exhausting the cooking fumes from the building. It should be noted that the air intake 101 of the range hood 100 in this application is flat and elongated, with a small diameter. Under the same airflow speed provided by the exhaust fan, the negative pressure generated at the air intake 101 of the range hood 100 is greater than that generated at an air intake 101 with a larger diameter, thus facilitating the extraction of cooking fumes.

[0024] The exhaust fan is installed inside the duct 103. When the exhaust fan is working, it drives the air in the duct 103 to flow outward, thereby providing suction power for the range hood 100 to draw out the cooking fumes. Figure 2 As shown, during the operation of the range hood 100, the working process of the exhaust fan includes at least a target power operating segment corresponding to a first back pressure range and a target airflow operating segment corresponding to a second back pressure range. It should be noted that the operation of the range hood 100 extends from the start of its fume extraction function to stable operation. Stable operation, as referred to in this application, means that the exhaust fan operates at the target airflow within a preset second error range. In one example, the range hood 100 also includes an air collection box; the air collection box has a through slot for accommodating the air intake 101. The air collection box has left and right baffles and a guide air curtain. When the exhaust fan is operating stably, the air velocity at the air intake 101 is between 11 cubic meters per minute and 18 cubic meters per minute. For example, the air velocity at the air intake 101 is 12 cubic meters per minute, 13 cubic meters per minute, 14 cubic meters per minute, 15 cubic meters per minute, 16 cubic meters per minute, or 17 cubic meters per minute.

[0025] This application distinguishes between the target power operating segment and the target airflow operating segment based on back pressure value. Specifically, when the back pressure value of the range hood 100 is within a first back pressure range, the exhaust fan of the range hood 100 enters the target power operating segment; when the back pressure value of the range hood 100 is within a second back pressure range, the exhaust fan of the range hood 100 enters the target airflow operating segment. To implement this scheme, the range hood 100 includes a back pressure detection device and a control mainboard. The back pressure detection device detects the back pressure value of the range hood 100 in real time or periodically and transmits the detected back pressure value to the control mainboard. The control mainboard controls whether the exhaust fan enters the target power operating segment or the target airflow operating segment based on the back pressure value. It should be noted that, in order to ensure that the airflow in the duct 103 is first driven by the target power operating segment to reduce the back pressure of the range hood 100, the back pressure value within the first back pressure range is greater than the back pressure value within the second back pressure range. In one example, the back pressure detection device is a back pressure sensor. In one example, the control board can be a control board, an MCU (Microcontroller Unit), or a microcontroller, etc.

[0026] The target power operating range refers to the exhaust fan operating at a power close to or equal to the target power. Specifically, when the range hood 100 is in the target power operating range, the back pressure value detected by the range hood 100 is within a first back pressure range, and the exhaust fan operates at the target power within a preset first error range. In one example, the minimum value of the first back pressure range is between 150 Pa and 450 Pa, for example, the minimum value of the first back pressure range is 200 Pa, 250 Pa, 300 Pa, 350 Pa, or 400 Pa. The maximum value of the first back pressure range can be the actual back pressure value of the range hood 100 when it is stopped, as measured by the back pressure detection device. The preset first error range is used to limit the actual operating power range of the exhaust fan in the target power operating range. In one example, the preset first error range is within ±8% of the target power, that is, the actual operating power range of the exhaust fan in the target power operating range is (target power - target power) / (target power - target ... 8% to (target power + target power) The actual operating power of the exhaust fan during the target power operation range is between 32.2W and 37.8W (within ±8%). For example, if the target power is 35W, then the actual operating power of the exhaust fan during the target power operation range is between 32.2W and 37.8W. Of course, it is understood that the preset first error range of ±8% of the target power is for illustrative purposes only, and the preset first error range can be set according to actual needs, without specific limitations here.

[0027] To ensure the exhaust fan operates at the target power within a preset first error range, the control board of the range hood 100, based on the detected back pressure value, controls the actual output airflow of the exhaust fan within the target power operating range. It should be noted that the range hood 100 can detect its back pressure value through a back pressure detection device and transmit the detected back pressure value to the control board. Within the target power operating range, different back pressure values ​​correspond to different actual output airflows, i.e., different exhaust fan speeds. The control board controls the exhaust fan speed based on the acquired back pressure value, thereby controlling the actual output airflow to maintain the exhaust fan operating at the target power within the preset first error range.

[0028] During the target power operation range, in order to maintain the exhaust fan operating at the target power within a preset first error range, such as... Figure 3 As shown, the operating mode corresponding to the target power operating segment is one or any combination of constant power mode, underpower mode, and overpower mode. In one example, the operating mode corresponding to the target power operating segment is constant power mode; in another example, the operating mode corresponding to the target power operating segment is underpower mode; in yet another example, the operating mode corresponding to the target power operating segment is overpower mode; in one example, the operating mode corresponding to the target power operating segment is a combination of constant power mode and underpower mode; in another example, the operating mode corresponding to the target power operating segment is a combination of underpower mode and overpower mode; in yet another example, the operating mode corresponding to the target power operating segment is a combination of constant power mode, underpower mode, and overpower mode.

[0029] It should be noted that constant power mode refers to the expectation that the actual operating power of the exhaust fan will reach the target power. In constant power mode, the exhaust fan operates at the target power within a preset third error range. This preset third error range is included within the preset first error range, indicating that the actual operating power of the exhaust fan is more precise in constant power mode. For example, the preset third error range could be ±3% of the target power, ±0.5% of the target power, or zero.

[0030] Underpowered mode refers to the exhaust fan operating at a power level lower than the target power. In underpowered mode, the actual operating power of the exhaust fan is less than that in constant power mode, resulting in a smaller rate of change in the back pressure-airflow curve compared to the constant power mode. The rate of change in the back pressure-airflow curve refers to the magnitude of the change in airflow with changes in back pressure, or vice versa. In underpowered mode, the error between the actual operating power of the exhaust fan and the target power is the negative difference between a preset first error range and a preset third error range. It should be noted that the error between the actual operating power of the exhaust fan and the target power refers to the difference between the actual operating power and the target power. Since the preset first error range includes the preset third error range, the difference between the two sets yields a set containing negative values ​​and a set containing positive values. For example, if the first error range is ±8% of the target power, and the preset third error range is ±3% of the target power, then by taking the difference between the preset first error range and the preset third error range, we obtain a set containing negative values ​​from -8% to -3% of the target power, and a set containing positive values ​​from +3% to +8% of the target power. The negative value difference set is then the set of values ​​from -8% to -3% of the target power.

[0031] Over-power mode refers to the operation of the exhaust fan at a power level higher than the target power. In over-power mode, the actual operating power of the exhaust fan is greater than that in constant power mode, resulting in a greater rate of change in the back pressure-airflow curve compared to the constant power mode. The rate of change in the back pressure-airflow curve refers to the magnitude of the change in airflow with changes in back pressure, or vice versa. In over-power mode, the error between the actual operating power of the exhaust fan and the target power is the positive difference between a preset first error range and a preset third error range. It should be noted that the error between the actual operating power of the exhaust fan and the target power refers to the difference between the actual operating power and the target power. Since the preset first error range includes the preset third error range, the difference between the preset first and third error ranges yields a set containing negative values ​​and a set containing positive values. For example, if the first error range is ±8% of the target power, and the preset third error range is ±0.5% of the target power, then by taking the difference between the preset first error range and the preset third error range, we obtain a set containing negative values ​​from -8% to -0.5% of the target power, and a set containing positive values ​​from +0.5% to +8% of the target power. The difference set of positive values ​​is then the set of positive values ​​from +0.5% to +8% of the target power.

[0032] The target airflow operating range refers to the exhaust fan operating at a speed close to or equal to the target airflow. Specifically, when the range hood 100 is in the target airflow operating range, the back pressure value detected by the range hood 100 is within the second back pressure range, and the exhaust fan operates at the target airflow within a preset second error range. In one example, the second back pressure range is between 1 Pa and 300 Pa. In another example, the second back pressure range can also be between 1 Pa and 250 Pa, or between 1 Pa and 200 Pa. The preset second error range is used to limit the actual operating airflow range of the exhaust fan in the target airflow operating range. In one example, the preset second error range is within ±15% of the target airflow, that is, the actual operating airflow range of the exhaust fan in the target airflow operating range is (target airflow - target airflow). 15% to (target air volume + target air volume) The actual operating power of the exhaust fan within the target airflow range is between ±15%. For example, if the target airflow is 11 cubic meters per minute, the actual operating power range of the exhaust fan within the target airflow range is 9.35 cubic meters per minute to 12.65 cubic meters per minute. If the target airflow is 12 cubic meters per minute, the actual operating power range of the exhaust fan within the target airflow range is 10.2 cubic meters per minute to 13.8 cubic meters per minute. If the target airflow is 13 cubic meters per minute, the actual operating power range of the exhaust fan within the target airflow range is 11.05 cubic meters per minute to 14.95 cubic meters per minute. It is understood that the preset second error range of ±15% of the target airflow is for illustrative purposes only, and the preset second error range can be set according to actual needs; no specific limitation is made here.

[0033] To ensure the exhaust fan operates at the target airflow within a preset second error range, the control board of the range hood 100, based on the detected back pressure value, controls the input power of the exhaust fan within the target airflow range during the target airflow operation segment. It should be noted that the range hood 100 can detect its back pressure value through a back pressure detection device and transmit the detected back pressure value to the control board. Within the target airflow operation segment, different back pressure values ​​correspond to different input power values, i.e., different exhaust fan speeds. The control board controls the input power of the exhaust fan and its speed based on the acquired back pressure value to maintain the exhaust fan operating at the target airflow within the preset second error range.

[0034] In the target airflow operation range, to maintain the exhaust fan operating at the target power within the preset second error range, the corresponding operating modes for the target airflow operation range are constant airflow mode and intermediate extreme value mode (e.g., ...). Figure 4 (as shown) and oscillation modes (such as) Figure 5 (As shown) One or any combination of the following. In one example, the operating mode corresponding to the target airflow segment is constant airflow mode; in one example, the operating mode corresponding to the target airflow segment is intermediate extreme value mode; in one example, the operating mode corresponding to the target airflow segment is oscillation mode; in one example, the operating mode corresponding to the target airflow segment is a combination of oscillation mode and intermediate extreme value mode; in one example, the operating mode corresponding to the target airflow segment is a combination of intermediate extreme value mode and oscillation mode; in one example, the operating mode corresponding to the target airflow segment is a combination of constant airflow mode and oscillation mode; in one example, the operating mode corresponding to the target airflow segment is any combination of constant airflow mode, intermediate extreme value mode and oscillation mode.

[0035] It should be noted that constant air volume mode refers to the expectation that the actual output air volume of the smoke exhaust fan will reach the target air volume. In constant air volume mode, the smoke exhaust fan operates within a preset fourth error range according to the target air volume. This preset fourth error range is included within the preset second error range, indicating that the actual output air volume of the smoke exhaust fan is more precise in constant air volume mode. For example, the preset fourth error range may be ±5% of the target air volume, ±2% of the target power, or zero.

[0036] The intermediate extreme value mode refers to the operation of the smoke exhaust fan at an actual output air volume higher than the target air volume. In other words, in the intermediate extreme value mode, the actual output air volume of the smoke exhaust fan shifts towards exceeding the target air volume; or it operates at an actual output air volume lower than the target air volume. It should be noted that in the intermediate extreme value mode, the error in the actual output air volume of the smoke exhaust fan relative to the target air volume is the difference between a preset second error range and a preset fourth error range. Specifically, the error in the actual output air volume of the smoke exhaust fan relative to the target air volume refers to the difference between the actual output air volume of the smoke exhaust fan and the target air volume. Specifically, since the preset second error range includes the preset fourth error range, the difference between the preset second error range and the preset fourth error range results in a set containing negative values ​​and a set containing positive values. When the actual output air volume of the smoke exhaust fan shifts towards exceeding the target air volume, the error in the actual output air volume of the smoke exhaust fan relative to the target air volume is a set of positive values ​​(i.e., a set containing positive values). When the actual output airflow of the smoke exhaust fan deviates from the target airflow, the error in the actual output airflow relative to the target airflow is a set of negative values ​​(i.e., a set containing negative values). For example, if the preset second error range is ±15% of the target airflow and the fourth error range is ±2% of the target power, then the difference between the preset second and fourth error ranges yields a set containing negative values ​​from -15% of the target airflow to -2% of the target power, and a set containing positive values ​​from +2% of the target airflow to +15% of the target power. Similarly, when the actual output airflow of the smoke exhaust fan deviates from the target airflow, the error in the actual output airflow relative to the target airflow is between +2% of the target airflow and +15% of the target power. Likewise, when the actual output airflow of the smoke exhaust fan deviates from the target airflow, the error in the actual output airflow relative to the target airflow is between -15% of the target airflow and -2% of the target power.

[0037] The oscillation mode refers to the actual output air volume of the smoke exhaust fan oscillating back and forth. In other words, in oscillation mode, the output air volume of the smoke exhaust fan oscillates between being less than and greater than the target air volume. It should be noted that in oscillation mode, the error between the actual output air volume of the smoke exhaust fan and the target air volume is the difference between a preset second error range and a preset fourth error range. Specifically, since the preset second error range includes the preset fourth error range, the difference between the two sets yields a set containing negative values ​​and a set containing positive values. For example, if the preset second error range is ±15% of the target air volume and the fourth error range is ±5% of the target power, the difference between the two sets yields a set containing negative values ​​from -15% of the target air volume to -5% of the target power, and a set containing positive values ​​from +5% of the target air volume to +15% of the target power. The actual output air volume of the smoke exhaust fan has an error of -15% to -5% of the target air volume and +5% to +15% of the target power.

[0038] To accommodate different cooking processes or methods, in one example, the range hood 100 includes two or more operating speeds. Each operating speed corresponds to a different target power and a different target airflow. For example, in one example, the range hood 100 includes three speeds: low, medium, and high. For example, in one example, the low speed corresponds to a target power of 35W and a target airflow of 11 cubic meters per minute. The medium speed corresponds to a target power of 37W and a target airflow of 12 cubic meters per minute. The high speed corresponds to a target power of 39W and a target airflow of 13 cubic meters per minute.

[0039] During gear switching, the operation is adjusted according to the current operating stage of the exhaust fan.

[0040] If, within the target power operating range, the range hood 100 switches from its current operating setting to the next, the exhaust fan switches from operating at the target power corresponding to the current setting to operating at the target power corresponding to the next setting. Similarly, if, within the target airflow operating range, the range hood 100 switches from its current operating setting to the next, the exhaust fan switches from operating at the target airflow corresponding to the current setting to operating at the target airflow corresponding to the next setting.

[0041] The range hood 100 provided in the embodiments of this application includes an air intake 101, an air duct 103, and an exhaust fan. The air intake 101 is connected to the air duct 103, and the exhaust fan is disposed within the air duct 103. During the operation of the range hood 100, the operation of the exhaust fan includes at least a target power operation segment corresponding to a first back pressure range and a target airflow operation segment corresponding to a second back pressure range. Specifically, in the target power operation segment, the back pressure value detected by the range hood 100 is within the first back pressure range, and the exhaust fan operates at the target power within a preset first error range. In the target airflow operation segment, the back pressure value detected by the range hood 100 is within the second back pressure range, and the exhaust fan operates at the target airflow within a preset second error range. This application divides the smoke exhaust operation of the range hood 100 into a target power operation segment and a target air volume operation segment. The target power operation segment drives the airflow on the smoke output side of the range hood 100, reducing the back pressure of the range hood 100. When the back pressure of the range hood 100 drops to a certain value, it switches to the target air volume operation segment so that the exhaust fan maintains operation at the target air volume. As the airflow flows, the lower the back pressure of the range hood 100, the lower the input power required to maintain operation at the target air volume. This achieves good airflow organization by utilizing the target power operation segment, improving the smoke extraction effect, and reduces power consumption by utilizing the target air volume operation segment.

[0042] In one embodiment, this application also provides a control method for a range hood 100, applied to the range hood 100, which includes an air intake 101, an air duct 103, and an exhaust fan; the air intake 101 is connected to the air duct 103; the exhaust fan is disposed within the air duct 103, such as... Figure 6 As shown, it includes the following steps: Step S61: Obtain the back pressure value of the range hood 100. The control board of the range hood 100 obtains the back pressure value collected by the back pressure detection device of the range hood 100.

[0043] Step S63: If the back pressure value is determined to be within the first back pressure range, the exhaust fan is controlled to enter the target power operating segment to operate at the target power within a preset first error range. If the control board of the range hood 100 determines that the back pressure value is within the first back pressure range, it controls the exhaust fan to enter the target power operating segment to operate at the target power within a preset first error range. In one example, the control board of the range hood 100 controls the actual output airflow of the exhaust fan based on the obtained back pressure value, so that the exhaust fan operates at the target power within the preset first error range.

[0044] Step S65: If the back pressure value is determined to be within the second back pressure range, the exhaust fan is controlled to enter the target airflow operating segment to operate according to the target airflow within the preset second error range. If the control board of the range hood 100 determines that the back pressure value is within the second back pressure range, it controls the exhaust fan to enter the target airflow operating segment to operate according to the target airflow within the preset second error range. In one example, the control board of the range hood 100 controls the input power of the exhaust fan based on the obtained back pressure value to make the exhaust fan operate according to the target airflow within the preset second error range. It should be noted that in one embodiment, the minimum value of the first back pressure range is greater than the maximum value of the second back pressure range; the minimum value of the first back pressure range is between 150 Pa and 450 Pa; the preset first error range is between ±8% of the target power; the second back pressure range is between 1 Pa and 300 Pa; and the preset second error range is between ±15% of the target airflow.

[0045] It should be noted that the control method of the range hood 100 in this application has the same steps as that in the range hood 100 of this application. For details, please refer to the range hood 100 of this application. It will not be repeated here.

[0046] It should be understood that, although Figure 6 The steps in the flowchart are shown sequentially as indicated by the arrows, but these steps are not necessarily executed in the order indicated by the arrows. Unless otherwise specified herein, there is no strict order in which these steps are executed, and they can be performed in other orders. Figure 6 At least some of the steps in the process may include multiple sub-steps or multiple stages. These sub-steps or stages are not necessarily completed at the same time, but can be executed at different times. The execution order of these sub-steps or stages is not necessarily sequential, but can be executed in turn or alternately with other steps or at least some of the sub-steps or stages of other steps.

[0047] The technical features of the above embodiments can be combined in any way. For the sake of brevity, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.

[0048] The embodiments described above are merely illustrative of several implementation methods of this application, and while the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the patent application. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this application, and these all fall within the protection scope of this application. Therefore, the protection scope of this patent application should be determined by the appended claims.

Claims

1. A range hood, comprising a control main board, an air intake, an air duct, and an exhaust fan; the air intake is connected to the air duct; the exhaust fan is disposed within the air duct, and the control main board is electrically connected to the exhaust fan, characterized in that, The fume extractor also includes a pressure sensor; the pressure sensor is disposed in the air duct; the pressure sensor is electrically connected to the control mainboard; The air pressure sensor collects the current air pressure value of the external air duct and transmits the current air pressure value to the control main board; The control board converts the current air pressure value into the current back pressure value of the range hood; If the control board determines that the current back pressure value is within the first back pressure range, it controls the range hood to enter the target power operation segment; if the control board determines that the current back pressure value is within the second back pressure range, it controls the range hood to enter the target airflow operation segment. Within the target power operating range, the exhaust fan operates at the target power within a preset first error range; Within the target air volume operating range, the exhaust fan operates at the target air volume within a preset second error range.

2. The range hood according to claim 1, characterized in that, The air pressure sensor collects the change in air pressure in the external air duct within one cycle and transmits the change in air pressure to the control main board; the control main board converts the change in air pressure into the change in back pressure of the range hood within one cycle; Within the target power operating range, the control motherboard adjusts the actual output air volume of the exhaust fan in the next cycle based on the change in back pressure value, so that the exhaust fan operates at the target power within the preset first error range; Within the target airflow operating range, the control motherboard adjusts the input power of the exhaust fan for the next cycle based on the detected back pressure value, so that the exhaust fan operates within the preset second error range according to the target airflow.

3. The range hood according to claim 1, characterized in that, The target power operating segment includes at least two target power operating sub-segments; the target power of each target power operating sub-segment is different. The first back pressure range is correspondingly divided into at least two first back pressure sub-ranges, and the target power operation sub-segment corresponds one-to-one with the first back pressure sub-range.

4. The range hood according to claim 1, characterized in that, The minimum value of the first back pressure range is greater than the maximum value of the second back pressure range; the minimum value of the first back pressure range is between 150 Pa and 450 Pa.

5. The range hood according to claim 1, characterized in that, The range hood includes two or more operating speeds; Each of the aforementioned operating speeds corresponds to a different target power; and each of the aforementioned operating speeds corresponds to a different target airflow. Within the target power operating range, the range hood switches from the current operating level to the next operating level, and the exhaust fan switches from the target power corresponding to the current operating level to the target power corresponding to the next operating level. Within the target airflow operating range, the range hood switches from the current operating level to the next operating level, and the exhaust fan switches from the target airflow corresponding to the current operating level to the target airflow corresponding to the next operating level.

6. The range hood according to claim 1, characterized in that, The preset first error range is between ±8% of the target power; the operating mode corresponding to the target power operating segment includes one or any combination of constant power mode, underpower mode and overpower mode; The constant power mode refers to the exhaust fan operating at the target power within a preset third error range; the preset third error range is included in the preset first error range. The rate of change of the back pressure-airflow curve corresponding to the underpower mode is less than the rate of change of the back pressure-airflow curve corresponding to the constant power mode; in the underpower mode, the error of the actual operating power of the exhaust fan relative to the target power is the negative numerical difference between the preset first error range and the preset third error range; The rate of change of the back pressure-airflow curve corresponding to the overpower mode is greater than the rate of change of the back pressure-airflow curve corresponding to the constant power mode; in the overpower mode, the error of the actual operating power of the exhaust fan relative to the target power is the positive difference between the preset first error range and the preset third error range.

7. The range hood according to claim 1, characterized in that, The second back pressure range is between 1 Pa and 300 Pa; the preset second error range is between ±15% of the target air volume; the operating mode corresponding to the target air volume operating segment is one or any combination of constant air volume mode, intermediate extreme value mode and oscillation mode; The constant air volume mode refers to the smoke exhaust fan operating within a preset fourth error range according to the target air volume; the preset fourth error range is included in the preset second error range. In the intermediate extreme mode, the actual output air volume of the smoke exhaust fan shifts to be greater than or less than the target air volume; in the intermediate extreme mode, the error of the actual output air volume of the smoke exhaust fan relative to the target air volume is the difference between the preset second error range and the preset fourth error range; In the oscillation mode, the actual output air volume of the smoke exhaust fan oscillates between being less than the target air volume and being greater than the target air volume; in the oscillation mode, the error of the actual output air volume of the smoke exhaust fan corresponding to the target air volume is the difference between the preset second error range and the preset fourth error range.

8. The range hood according to any one of claims 1 to 7, characterized in that, The range hood also includes an air collection box; the air collection box has a through groove for accommodating the air intake; the air velocity at the air intake is between 11 cubic meters per minute and 18 cubic meters per minute.

9. A control method for a range hood, applied to a range hood, the range hood comprising a control main board, an air intake, an air duct, and an exhaust fan; the air intake is connected to the air duct; the exhaust fan is disposed within the air duct, the control main board is electrically connected to the exhaust fan; the air duct is used to connect to an external air duct, characterized in that... Includes the following steps: The air pressure sensor collects the current air pressure value of the external air duct; Convert the current air pressure value into the current back pressure value of the range hood; If the current back pressure value is determined to be within the first back pressure range, the range hood is controlled to enter the target power operation segment; if the control board determines that the current back pressure value is within the second back pressure range, the range hood is controlled to enter the target airflow operation segment. Within the target power operating range, the exhaust fan operates at the target power within a preset first error range; Within the target air volume operating range, the exhaust fan operates at the target air volume within a preset second error range.

Citation Information

Patent Citations

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