Strong wind monitoring assembly, wind and rain alarm device and intelligent door and window system
By using a bending sensor to detect changes in wind speed through a high-wind monitoring component, the problem of indoor occupants not having a clear understanding of the external wind speed is solved, enabling timely monitoring and warning of strong winds and ensuring the safety of the indoor environment.
Patent Information
- Application Number
- CN202422922230.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-27
- Publication Date
- 2025-12-30
- Estimated Expiration
- 2034-11-27
AI Technical Summary
People indoors often lack a clear understanding of whether it is windy outside and fail to close windows in time, leading to dust entering the room or damage caused by excessive wind.
Design a wind monitoring component that uses a bending sensor to detect wind speed, monitors wind speed changes using Bernoulli's principle, and issues a warning to remind users to close windows in time, combined with an alarm module.
It enables timely monitoring and warnings of windy weather, allowing users to close windows promptly to prevent dust from entering and avoid damage to items.
Smart Images

Figure CN223743157U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of intelligent control technology, specifically to a strong wind monitoring component, a wind and rain alarm device, and an intelligent door and window system. Background Technology
[0002] Regularly ventilating indoor spaces can effectively improve quality of life and maintain health. When doors and windows are opened, dust blown up by strong winds can enter the room, and in extreme cases of strong winds, it may even damage indoor items. However, people indoors or those going out usually do not have a clear understanding of whether it is windy outside and cannot close windows in time when it is windy. Utility Model Content
[0003] This invention aims to at least partially solve one of the aforementioned technical problems in the prior art. To this end, this invention proposes a strong wind monitoring component that can monitor strong winds and issue warnings, promptly alerting users to strong winds outdoors and reminding them to close windows in time.
[0004] This utility model also proposes a wind and rain alarm device with the above-mentioned strong wind monitoring components.
[0005] This utility model also proposes an intelligent door and window system with the above-mentioned wind and rain alarm device.
[0006] According to a first aspect of the present invention, the wind monitoring component includes a sensor component comprising a plurality of bending sensors. In a natural state, the plurality of bending sensors are disposed against a plurality of walls with different extension directions and are capable of bending toward the side away from the wall. The length direction of the bending sensors extends vertically.
[0007] The first alarm module includes a first alarm device. The first alarm module is connected to a plurality of bending sensors. When the first alarm module detects that the resistance value of any one of the plurality of bending sensors is lower than a preset value, the first alarm device issues a warning message.
[0008] According to an embodiment of the present invention, the wind monitoring component can monitor windy weather and issue warnings, promptly alerting users to outdoor winds and reminding them to close windows in time.
[0009] In addition, the wind monitoring component according to the utility model embodiment may also have the following additional technical features:
[0010] According to some embodiments of the present invention, the first alarm module includes:
[0011] An acquisition module, connected to the bending sensor, is used to acquire the resistance values of multiple bending sensors;
[0012] The control module communicates with the acquisition module and the first alarm. When any resistance value acquired by the acquisition module is lower than a preset value, the control module controls the first alarm to issue a warning message.
[0013] According to some embodiments of the present invention, the first alarm module includes:
[0014] The control circuit includes a power supply circuit, a detection circuit, and an alarm circuit. The power supply circuit provides power, the alarm circuit is connected to the first alarm, and the power supply circuit and the alarm circuit are electrically connected to the detection circuit respectively. The detection circuit includes a plurality of bending sensors, and the detection circuit is adapted to connect the power supply circuit and the alarm circuit when the resistance value of any one of the bending sensors is lower than a preset value.
[0015] According to some embodiments of the present invention, the sensor assembly includes a first bending sensor and a second bending sensor. The first bending sensor is disposed on a first facade extending along a first direction, and the second bending sensor is disposed on a second facade extending along a second direction. The first direction and the second direction are perpendicular to each other. In a natural state, the first bending sensor is disposed parallel to the first facade, and the second bending sensor is disposed parallel to the second facade.
[0016] According to some embodiments of the present invention, the first alarm device includes an audible and visual alarm device.
[0017] A wind and rain alarm device according to a second aspect of the present invention includes: a rainfall monitoring component and a strong wind monitoring component, wherein the strong wind monitoring component is the strong wind monitoring component described in the above embodiment;
[0018] The main controller is electrically or communicatively connected to the rainfall monitoring component and the strong wind monitoring component.
[0019] According to some embodiments of the present invention, the main controller is connected to a wireless network and uploads the warning information to the wireless network at the same time as the rainfall monitoring component or the strong wind monitoring component issues a warning information.
[0020] According to some embodiments of the present invention, the rainfall monitoring component includes a rainfall sensor and a second alarm. After the rainfall sensor detects the presence of rainwater and the circuit is turned on, the second alarm issues a warning message.
[0021] According to some embodiments of the present invention, the rainfall sensor includes a water accumulation sensor and / or a rainwater sensing element.
[0022] According to a third aspect of the present invention, an intelligent door and window system includes: a door and window driver, the door and window driver communicating with the main controller of the wind and rain alarm device; a wind and rain alarm device, the wind and rain alarm device being the wind and rain alarm device described in the above embodiment, the main controller of the wind and rain alarm device being adapted to control the door and window driver to close the indoor doors and windows while receiving warning information issued by the rainfall monitoring component or the strong wind monitoring component. Attached Figure Description
[0023] Figure 1 This is a schematic diagram of the structure of a wind and rain alarm device according to an embodiment of the present invention;
[0024] Figure 2 This is a schematic diagram of the structure of a wind monitoring component according to an embodiment of the present utility model;
[0025] Figure 3 This is a circuit diagram of a wind and rain alarm device according to an embodiment of the present utility model.
[0026] Figure label:
[0027] The system includes a wind and rain alarm device 1000, a strong wind monitoring component 100, a sensor component 10, a first bending sensor 101, a second bending sensor 102, a first alarm module 20, an acquisition module 201, a control module 202, and a first alarm unit 203.
[0028] Power supply 30, rainfall monitoring component 200, rainfall sensor 2001, second alarm 2002, main controller 300.
[0029] First facade 01, second facade 02. Detailed Implementation
[0030] The embodiments of this utility model are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain this utility model, and should not be construed as limiting this utility model.
[0031] In the description of this utility model, it should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", and "outer" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They 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. Therefore, they should not be construed as limitations on this utility model.
[0032] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this utility model, "a plurality of" means at least two, such as two, three, etc., unless otherwise explicitly and specifically defined.
[0033] In this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," "joining," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection, an electrical connection, or a connection that allows communication between them; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.
[0034] In this invention, unless otherwise explicitly specified and limited, "above" or "below" the second feature can include direct contact between the first and second features, or contact between the first and second features through another feature between them. Furthermore, "above," "over," and "on top" of the second feature includes the first feature directly above or diagonally above the second feature, or simply indicates that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature includes the first feature directly below or diagonally below the second feature, or simply indicates that the first feature is at a lower horizontal level than the second feature.
[0035] Regularly ventilating indoor spaces can effectively improve quality of life and maintain health. When doors and windows are opened, dust blown up by strong winds can enter the room, and in extreme cases of strong winds, it may even damage indoor items. However, people indoors or those going out usually do not have a clear understanding of whether it is windy outside and cannot close windows in time when it is windy.
[0036] To address this, the present invention provides a wind monitoring component 100 that utilizes Bernoulli's principle to detect whether there is wind outdoors. The wind monitoring component 100 uses multiple bending sensors that are attached to a wall surface to detect whether there is wind outdoors. When there is wind outdoors, a pressure difference will be generated on both sides of the bending sensors in the thickness direction. Under the action of Bernoulli's principle, the bending sensors will bend and deform. At the same time as the bending sensors bend and deform, their own resistance value will also change. Specifically, the bending sensors are adapted to reduce their own resistance value while bending and deforming. By monitoring the resistance value of the bending sensors, when the resistance value of the bending sensors drops below a preset value, it can be determined that there is a strong wind outdoors, thus realizing the monitoring of windy weather.
[0037] The following is for reference. Figures 1-3 Description of a wind monitoring component 100 according to an embodiment of the present utility model.
[0038] According to an embodiment of the present invention, a wind monitoring component 100 includes a sensor component 10 and a first alarm module 20.
[0039] The sensor assembly 10 includes multiple bending sensors capable of bending away from the wall. In their natural state, i.e., when no external force is applied, the bending sensors are fixed to the wall. Because the bending sensors are fixed to the wall, when there is outdoor wind, the airflow can only pass through one side of the bending sensor in the thickness direction. Under Bernoulli's principle, a pressure difference is generated on both sides of the bending sensor in the thickness direction. Since one end of the bending sensor is fixed, this pressure difference causes the bending sensor to bend and deform away from the wall. The bending sensor extends vertically along its length to prevent it from bending and deforming under its own weight when there is no wind.
[0040] Multiple bending sensors are attached to multiple walls with different extension directions. Thus, for outdoor winds from different directions, at least one of the multiple bending sensors can detect the wind. This avoids the situation where the bending sensor cannot detect the wind when the wind direction is parallel to the thickness direction of the bending sensor, which would affect the monitoring accuracy of the wind monitoring component 100.
[0041] Furthermore, the wind monitoring component 100 also includes a first alarm module 20, which includes a first alarm 203. The first alarm module 20 is connected to multiple bending sensors. When the first alarm module 20 obtains that the resistance value of any one of the multiple bending sensors is lower than a preset value, the first alarm 203 issues a warning message. That is, when any one of the multiple bending sensors undergoes bending deformation under the action of outdoor wind, and the degree of bending deformation is sufficient to reduce its own resistance value to below the preset value, the first alarm module 20 can determine that the outdoor wind speed has reached the speed that requires an alarm based on the obtained resistance value information of the bending sensor, and control the first alarm 203 to start the alarm.
[0042] According to the embodiment of the present utility model, the wind monitoring component 100 can monitor windy weather and issue warnings, which can promptly remind users that there is wind outdoors and remind users to close windows in time.
[0043] In some embodiments, combined with Figures 1-3 In the embodiment shown, the sensor assembly 10 includes at least a first bending sensor 101 and a second bending sensor 102. The first bending sensor 101 is disposed on a first facade 01 extending along a first direction, and the second bending sensor 102 is disposed on a second facade 02 extending along a second direction. The first direction and the second direction are perpendicular to each other. In the natural state, the first bending sensor 101 is arranged parallel to the first facade 01, and the second bending sensor 102 is arranged parallel to the second facade 02.
[0044] Therefore, when the wind direction is perpendicular to the first direction, that is, parallel to the second direction, the bending sensor on the second facade 02 extending along the second direction can bend under the action of the wind, thus realizing the monitoring of strong winds. When the wind direction is perpendicular to the second direction, that is, parallel to the first direction, the bending sensor on the first facade 01 extending along the first direction can bend under the action of the wind, thus realizing the monitoring of strong winds. When the wind direction is inclined between the first direction and the second direction, both the first bending sensor 101 and the second bending sensor 102 can bend under the action of the wind, thus realizing the monitoring of strong winds.
[0045] In some embodiments, the first alarm 203 includes an audible and visual alarm that can alert people indoors to strong winds outside by emitting sound and light. In other embodiments, the first alarm 203 can be a wireless alarm that communicates with a wireless network and can transmit information about strong winds outside to wireless devices.
[0046] Furthermore, in some embodiments, reference is made to Figure 2The first alarm module 20 includes an acquisition module 201 and a control module 202. The acquisition module 201 is connected to the bending sensors and is used to acquire the resistance values of multiple bending sensors. The control module 202 communicates with the acquisition module 201 and the first alarm 203. When any resistance value acquired by the acquisition module 201 is lower than a preset value, the control module 202 controls the first alarm 203 to issue a warning message. The acquisition module 201 and the control module 202 can be connected wirelessly or via wired communication.
[0047] Under different wind speed conditions, the bending sensor will produce different bending angles. Specifically, the higher the wind speed, the greater the pressure difference on both sides of the bending sensor in the thickness direction, the larger the bending angle of the bending sensor. The larger the bending angle, the smaller the resistance value of the bending sensor. When the wind speed exceeds a certain limit, the resistance value of the bending sensor falls below a preset value. The acquisition module 201 monitors the resistance values of multiple bending sensors in real time and transmits the resistance values of multiple bending sensors to the control module 202. The control module 202 analyzes the resistance values acquired by the acquisition module 201.
[0048] The control module 202 compares the resistance value obtained by the acquisition module 201 with the preset value. When any resistance value is lower than the preset value, the control module 202 communicates with the first alarm 203 and sends control information to the first alarm 203 to control the first alarm 203 to issue an alarm. The alarm can be an alarm sound, an alarm light, or a warning message sent to the user's mobile device via a wireless network.
[0049] Once users receive information about strong winds outdoors, they can take timely action, such as stopping the drying of clothes, closing doors and windows, and reinforcing outdoor items.
[0050] According to some other embodiments of this utility model, such as Figure 1 and Figure 3 As shown, the first alarm module 20 includes a control circuit, which includes a power supply circuit, a detection circuit, and an alarm circuit. The power supply circuit is used to provide power to the power supply 30. The alarm circuit is connected to the first alarm 203. The power supply circuit and the alarm circuit are electrically connected to the detection circuit, respectively. The detection circuit includes multiple bending sensors. The detection circuit is adapted to connect the power supply circuit and the alarm circuit after the resistance value of any bending sensor is lower than a preset value.
[0051] The control circuit can be a traditional sensor-inductive switch control circuit board, which integrates relays, rheostats, etc. Multiple bending sensors are connected in parallel in the detection circuit. Before any bending sensor bends and deforms, the resistance values of each bending sensor are relatively high, and the detection circuit is not conductive. After any bending sensor bends and deforms, the resistance value of that bending sensor decreases significantly, and the circuit containing that bending sensor becomes conductive, thereby enabling the detection circuit to conduct. This connects the power supply circuit and the alarm circuit, and the power supply 30 supplies power to the first alarm 203, which then starts sounding the alarm.
[0052] The wind monitoring component 100 monitors the wind by first fixing a bending sensor to the outdoor wall surface with its thickness direction perpendicular to the wall surface and its length direction extending vertically, with its lower end fixed. Multiple bending sensors are installed on the wall surfaces facing different directions.
[0053] Connect the power supply 30, the first alarm 203, the sensor induction switch control circuit board, and multiple bending sensors together with wires. Adjust the rheostat on the induction switch control circuit board to ensure that the first alarm 203 can start to alarm after any bending sensor bends. When the outdoor wind speed is lower than a certain limit, the bending sensor does not deform or the deformation is not obvious, the resistance value is large, and the first alarm 203 does not alarm.
[0054] When the wind speed reaches the limit value, the bending sensor begins to bend and deform under the action of the pressure difference on both sides of its thickness direction. After the bending sensor begins to bend, the resistance drops rapidly, and the resistance value of the bending sensor drops below the preset value until the resistance value of the bending sensor drops to the point where it can connect the power supply circuit and the alarm circuit. The power supply 30 supplies power to the first alarm 203, and the first alarm 203 starts to sound the alarm.
[0055] At this time, information about strong winds outside can be obtained through the alarm of the first alarm device 203, allowing for timely handling of outdoor items and closing of doors and windows.
[0056] In some embodiments, the bending sensor may be a bending sensor with a length of 195 mm, a width of 8 mm, and a thickness of 0.4 mm. In a horizontal state, the resistance value of the bending sensor is 25 kΩ, and the resistance difference error of the bending sensor is within 20%.
[0057] Through indoor simulation experiments, the relationship between the resistance value of the bending sensor and the wind speed was obtained, and an air supply component that can generate airflow perpendicular to the thickness direction of the bending sensor was set on one side of the bending sensor.
[0058] When wind with a speed of 0m / s-3.9m / s is delivered to one side of the bending sensor in the thickness direction through the air supply assembly, the bending degree of the bending sensor is small, the resistance value of the bending sensor does not change much, and the resistance value of the bending sensor is above 2000 ohms.
[0059] When the air supply assembly delivers wind with a speed of 3.9 m / s or higher to one side of the bending sensor in the thickness direction, the bending degree of the bending sensor gradually increases, the resistance value of the bending sensor gradually decreases, and the resistance value of the bending sensor is below 2000 ohms.
[0060] When the air supply assembly delivers air at a speed of 4.09 m / s to one side of the bending sensor along its thickness direction, the bending degree of the bending sensor increases, and the resistance value of the bending sensor gradually decreases, with the resistance value of the bending sensor ranging from 700 ohms to 2000 ohms.
[0061] When the air supply assembly delivers air at a speed of 4.6 m / s to one side of the bending sensor along its thickness direction, the bending degree of the bending sensor increases, and the resistance value of the bending sensor gradually decreases, with the resistance value of the bending sensor ranging from 500 ohms to 800 ohms.
[0062] When the air supply assembly delivers wind at a speed of 5 m / s to one side of the bending sensor in the thickness direction, the bending degree of the bending sensor increases, the resistance value of the bending sensor gradually decreases, and the resistance value of the bending sensor is between 210 ohms and 250 ohms.
[0063] When the air supply assembly delivers air at a speed of 5.1 m / s to one side of the bending sensor along its thickness direction, the bending degree of the bending sensor increases, and the resistance value of the bending sensor gradually decreases, with the resistance value of the bending sensor ranging from 170 ohms to 200 ohms.
[0064] When the air supply assembly delivers air at a speed of 5.2 m / s to one side of the bending sensor along its thickness direction, the bending degree of the bending sensor increases, and the resistance value of the bending sensor gradually decreases, with the resistance value of the bending sensor ranging from 130 ohms to 140 ohms.
[0065] When the air supply assembly delivers air at a speed of 5.5 m / s to one side of the bending sensor along its thickness direction, the bending degree of the bending sensor increases, and the resistance value of the bending sensor gradually decreases, with the resistance value of the bending sensor ranging from 125 ohms to 140 ohms.
[0066] When the air supply assembly delivers air at a speed of 5.75 m / s to one side of the bending sensor along its thickness direction, the bending degree of the bending sensor increases, and the resistance value of the bending sensor gradually decreases, with the resistance value of the bending sensor ranging from 125 ohms to 130 ohms.
[0067] When the air supply assembly delivers air at a speed of 6.2 m / s to one side of the bending sensor along its thickness direction, the bending degree of the bending sensor increases, and the resistance value of the bending sensor gradually decreases, with the resistance value of the bending sensor ranging from 120 ohms to 130 ohms.
[0068] When the air supply assembly delivers air at a speed of 6.38 m / s to one side of the bending sensor along its thickness direction, the bending degree of the bending sensor increases, and the resistance value of the bending sensor gradually decreases, with the resistance value of the bending sensor ranging from 110 ohms to 120 ohms.
[0069] When the air supply assembly delivers air at a speed of 6.74 m / s to one side of the bending sensor along its thickness direction, the bending degree of the bending sensor increases, and the resistance value of the bending sensor gradually decreases, with the resistance value of the bending sensor ranging from 100 ohms to 105 ohms.
[0070] When the air supply assembly delivers air at a speed of 7.0 m / s to one side of the bending sensor along its thickness direction, the bending degree of the bending sensor increases, and the resistance value of the bending sensor gradually decreases, with the resistance value of the bending sensor ranging from 98 ohms to 103 ohms.
[0071] When the air supply assembly delivers air at a speed of 7.14 m / s to one side of the bending sensor along its thickness direction, the bending degree of the bending sensor increases, and the resistance value of the bending sensor gradually decreases, with the resistance value of the bending sensor ranging from 91 ohms to 93 ohms.
[0072] When the air supply assembly delivers air at a speed of 7.15 m / s to one side of the bending sensor along its thickness direction, the bending degree of the bending sensor increases, and the resistance value of the bending sensor gradually decreases, with the resistance value of the bending sensor ranging from 83 ohms to 86 ohms.
[0073] When the air supply assembly delivers air at a speed of 7.40 m / s to one side of the bending sensor along its thickness direction, the bending degree of the bending sensor increases, and the resistance value of the bending sensor gradually decreases, with the resistance value of the bending sensor ranging from 78 ohms to 80 ohms.
[0074] When the wind speed is below 7 m / s, the wind is low and can only blow up dust and paper from the ground; the wind monitoring component 100 does not need to trigger an alarm. When the wind speed reaches 7 m / s or higher, the wind force is strong, and opening doors and windows may cause dangerous situations such as glass falling off; in this case, the wind monitoring component 100 needs to trigger an alarm.
[0075] Therefore, based on the above experimental results, the preset resistance value stored in the control module 202 can be 100 ohms. The monitoring process of the high wind monitoring component 100 is as follows: First, the bending sensor is fixed to the outdoor wall surface with its thickness direction perpendicular to the wall surface direction, its length direction extending vertically, and its lower end fixed. Multiple bending sensors are respectively set on the wall surfaces facing different directions. The acquisition module 201 monitors the resistance values of the multiple bending sensors in real time and transmits the resistance values of the multiple bending sensors to the control module 202. The control module 202 analyzes the resistance values acquired by the acquisition module 201.
[0076] The control module 202 compares the resistance value obtained by the acquisition module 201 with a preset value. When the outdoor wind speed exceeds 7 m / s, the resistance value of at least one bending sensor is below 100 ohms. When any resistance value is below 100 ohms, the control module 202 communicates with the first alarm 203 and sends control information to the first alarm 203, controlling the first alarm 203 to sound an alarm. After receiving the information about strong winds outside through the alarm, the user can take timely action, such as stopping the drying of clothes, closing doors and windows, and reinforcing outdoor items. Furthermore, since the first alarm 203 only sounds the alarm when the resistance value of the bending sensor drops below 100 ohms, frequent alarms by the first alarm 203 are avoided, ensuring the user's experience with the wind monitoring component 100.
[0077] The wind and rain alarm device 1000 according to an embodiment of the present invention includes a plurality of wind monitoring components 100 according to the above embodiment. (Refer to...) Figure 1 and Figure 3 The wind and rain alarm device 1000 also includes a rainfall monitoring component 200 and a main controller 300, which are electrically or communicatively connected to the rainfall monitoring component 200 and the wind monitoring component 100.
[0078] The rainfall monitoring component 200 can monitor whether there is rainfall outdoors. The main controller 300 can simultaneously acquire information from the rainfall monitoring component 200 and the wind monitoring component 100, and control the rainfall monitoring component 200 and the wind monitoring component 100. The main controller 300 can also control the opening and closing of the rainfall monitoring component 200 and the wind monitoring component 100.
[0079] The main controller 300 is connected to a wireless network and uploads the warning information to the wireless network at the same time as the rainfall monitoring component 200 or the strong wind monitoring component 100 issues a warning message.
[0080] Specifically, in some embodiments, the main controller 300 is communicatively connected to the rainfall monitoring component 200 and the control module 202 of the strong wind monitoring component 100, or connected in series with the alarm circuit of the strong wind monitoring component 100. Thus, when the rainfall monitoring component 200 detects rainfall outdoors, the main controller 300 can also obtain the information about the outdoor rainfall. When the strong wind monitoring component 100 detects strong winds outdoors, the main controller 300 can also obtain the information about the strong winds outdoors. The main controller 300 is communicatively connected to a wireless network and transmits the obtained information about outdoor rainfall and / or strong winds to the wireless network. Users can obtain this information through wireless devices such as mobile phones and promptly handle outdoor items and close doors and windows.
[0081] In some embodiments, refer to Figure 1 and Figure 3 The rainfall monitoring component 200 includes a rainfall sensor 2001 and a second alarm 2002. After the rainfall sensor 2001 detects the presence of rainwater and the circuit is turned on, the second alarm 2002 issues a warning message. In other words, the rainfall sensor 2001 can detect whether it is raining outdoors. When it is raining outdoors, rainwater enters the rainfall sensor 2001, and the rainwater turns on the circuit inside the rainfall sensor 2001, connecting the power circuit to the second alarm 2002. The second alarm 2002 is powered on and thus obtains the information of outdoor rainfall. It then transmits the obtained outdoor rainfall information to the user by issuing a warning message. The user can obtain this information through sound, light, etc., and promptly deal with outdoor items and close doors and windows.
[0082] Among them, the rainfall sensor 2001 includes a water accumulation sensor. The water accumulation sensor only turns on the circuit when the rainfall reaches a certain height, which can avoid the rainfall monitoring component 200 being too sensitive and affecting the user experience.
[0083] The rainfall sensor 2001 includes a rain sensing element. When there is rainfall outdoors, rainwater enters the rain sensing element, causing the circuit inside the rain sensing element to conduct, connecting the power supply 30 to the second alarm 2002. The second alarm 2002 is powered on, thereby obtaining information about the outdoor rainfall and transmitting the obtained outdoor rainfall information to the user by issuing a warning message. The user can obtain this information through sound, light, etc., and promptly handle outdoor items and close doors and windows.
[0084] The intelligent door and window system according to an embodiment of the present invention includes a wind and rain alarm device 1000 and a door and window driver according to the above embodiment. The door and window driver communicates with the main controller 300 of the wind and rain alarm device 1000. The wind and rain alarm device 1000 is the wind and rain alarm device 1000 according to the above embodiment. The main controller 300 of the wind and rain alarm device 1000 is adapted to control the door and window driver to close the indoor doors and windows when it receives a warning message from the rainfall monitoring component 200 or the strong wind monitoring component 100.
[0085] The rain monitoring component 200 of the wind and rain alarm device 1000 can monitor whether there is rain outdoors, and the wind monitoring component 100 of the wind and rain alarm device 1000 can monitor whether there is a strong wind outdoors. The main controller 300 can simultaneously acquire information from the rain monitoring component 200 and the wind monitoring component 100, and control the indoor doors and windows through the door and window actuator. When either the rain monitoring component 200 or the wind monitoring component 100 in the wind and rain alarm device 100 issues an alarm, the controller will control the door and window actuator to close the indoor doors and windows.
[0086] Alternatively, the main controller 300 can be connected to a wireless network, uploading warning information to the wireless network simultaneously with the warning information issued by the rainfall monitoring component 200 or the strong wind monitoring component 100. Based on the alarm information obtained from the wireless network, the user can transmit information to the main controller 300 to control the closing of doors and windows. The main controller 300, based on the received control information, controls the door and window actuators to close the interior doors and windows.
[0087] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. In addition, those skilled in the art can combine and integrate the different embodiments or examples described in this specification.
[0088] Although embodiments of the present invention have been shown and described above, it is understood that the above embodiments are exemplary and should not be construed as limiting the present invention. Those skilled in the art can make changes, modifications, substitutions and variations to the above embodiments within the scope of the present invention.
Claims
1. A high wind monitoring assembly, characterized by, include: The sensor assembly includes multiple bending sensors. In its natural state, the multiple bending sensors are attached to multiple walls with different extension directions and are capable of bending to the side away from the wall. The length direction of the bending sensors extends vertically. The first alarm module includes a first alarm device. The first alarm module is connected to a plurality of bending sensors. When the first alarm module detects that the resistance value of any one of the plurality of bending sensors is lower than a preset value, the first alarm device issues a warning message.
2. The high-wind monitoring assembly of claim 1, wherein, The first alarm module includes: An acquisition module, connected to the bending sensor, is used to acquire the resistance values of multiple bending sensors; The control module communicates with the acquisition module and the first alarm. When any resistance value acquired by the acquisition module is lower than a preset value, the control module controls the first alarm to issue a warning message.
3. The high-wind monitoring assembly of claim 1, wherein, The first alarm module includes: The control circuit includes a power supply circuit, a detection circuit, and an alarm circuit. The power supply circuit provides power, the alarm circuit is connected to the first alarm, and the power supply circuit and the alarm circuit are electrically connected to the detection circuit respectively. The detection circuit includes a plurality of bending sensors, and the detection circuit is adapted to connect the power supply circuit and the alarm circuit when the resistance value of any one of the bending sensors is lower than a preset value.
4. The high-wind monitoring assembly of claim 1, wherein, The sensor assembly includes a first bending sensor and a second bending sensor. The first bending sensor is disposed on a first facade extending along a first direction, and the second bending sensor is disposed on a second facade extending along a second direction. The first direction and the second direction are perpendicular to each other. In a natural state, the first bending sensor is disposed parallel to the first facade, and the second bending sensor is disposed parallel to the second facade.
5. The high-wind monitoring assembly of claim 1, wherein, The first alarm device includes an audible and visual alarm.
6. A wind and rain warning device characterized by comprising: include: Rainfall monitoring component and wind monitoring component, wherein the wind monitoring component is the wind monitoring component according to any one of claims 1-5; The main controller is electrically or communicatively connected to the rainfall monitoring component and the strong wind monitoring component.
7. The wind and rain warning device according to claim 6, characterized in that The main controller is connected to a wireless network and uploads the warning information to the wireless network at the same time as the rainfall monitoring component or the strong wind monitoring component issues a warning message.
8. The wind-driven alarm device of claim 6, wherein, The rainfall monitoring component includes a rainfall sensor and a second alarm. After the rainfall sensor detects the presence of rainwater and activates the circuit, the second alarm issues a warning message.
9. The wind and rain warning device according to claim 8, characterized in that The rainfall sensor includes a water accumulation sensor and / or a rainwater sensing element.
10. An intelligent door and window system characterized in that, include: A door and window actuator, which communicates with the main controller of the weather alarm device; A wind and rain alarm device, wherein the wind and rain alarm device is the wind and rain alarm device according to any one of claims 6-9, and the main controller of the wind and rain alarm device is adapted to control the door and window actuator to close the indoor doors and windows at the same time as receiving the warning information issued by the rainfall monitoring component or the strong wind monitoring component.