Intelligent curtain system capable of preventing impact of flying projectiles caused by wind

By using an intelligent curtain system to monitor the environment in real time and automatically adjust the type and status of the curtains, the problem of traditional curtains being unable to meet diverse needs is solved, thus improving the comfort and aesthetics of the building.

CN223794119UActive Publication Date: 2026-01-13NINGBO JIANGONG JIANLE ENG CO LTD
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Patent Information

Application Number
CN202520358200.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-04
Publication Date
2026-01-13
Estimated Expiration
2035-03-04

AI Technical Summary

Technical Problem

Traditional curtains are difficult to meet the diverse needs of different environments, affecting the comfort and aesthetics of buildings and potentially causing space waste.

Method used

A smart curtain system was designed, integrating light and temperature sensors, wind speed sensors, and pressure and vibration sensors. The system monitors the environment in real time through a self-sensing system and automatically controls the motor to drive the raising and lowering of different types of curtains, including Venetian blinds, PMMA roller blinds, and LED roller blinds. Users can adjust the curtains via an infrared remote control.

Benefits of technology

It enables automatic adjustment of curtain type and status according to environmental changes, improving the comfort and aesthetics of the building and avoiding space waste.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of curtains, and discloses an intelligent curtain system capable of preventing impact of wind-induced flying objects, which comprises a main body assembly, a fixing frame, fixing plates, mounting plates and a reel, the fixing plates are fixed on the fixing frame, the mounting plates are arranged on two sides of the fixing frame, and the reel is positioned on one side of the mounting plates; and the auxiliary assembly is arranged in the fixing frame. The beneficial effects of the utility model are that the device is provided with four different types of curtains including a venetian blind, a PMMA roller blind, an LED roller blind screen and an anti-impact film roller blind, the use environment of building glass is monitored in real time through a light temperature sensor, a pressure vibration sensor and a wind speed sensor, and data is transmitted to a central control platform; a self-induction system judges the current environment condition according to the data, corresponding motors are automatically controlled to be started, automatic lifting of different curtains is achieved, and a user can adjust the type and the lifting state of the roller shutter by himself / herself through an infrared remote controller according to the requirement of himself / herself.
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Description

Technical Field

[0001] This utility model relates to the field of curtain technology, and in particular to an intelligent curtain system for preventing wind-borne objects from impacting the curtain. Background Technology

[0002] In the field of modern architecture, curtains, as an important functional and decorative component, are widely used in windows of various buildings. Traditional curtains mostly only have basic functions of blocking light or decoration, which are difficult to meet the diverse needs of buildings in different environments. Different usage environments have very different performance requirements for curtains, and existing curtains are difficult to adjust flexibly according to different environments. This reduces the comfort of the building to a certain extent. At the same time, when curtains are installed indoors, they not only affect the overall aesthetics of the building interior, but also easily overlap with other building structures, which will lead to a waste of space resources for some buildings with limited space. Utility Model Content

[0003] In view of the problems existing in the above and / or existing smart curtain systems for preventing wind-borne projectile impacts, this utility model is proposed.

[0004] Therefore, the problem that this utility model aims to solve is that most curtains cannot meet the diverse needs of buildings in different environments.

[0005] To solve the above-mentioned technical problems, this utility model provides the following technical solution: an intelligent curtain system for preventing wind-borne flying objects from impacting the curtain, which includes a main component, a fixing frame, a fixing plate, a mounting plate, and a roller. The fixing plate is fixed on the fixing frame, the mounting plate is disposed on both sides of the fixing frame, and the roller is located on one side of the mounting plate.

[0006] An auxiliary component, disposed within the fixed frame, includes an auxiliary part, which includes a motor, a rotating shaft, a lifting block, and a slider. A through slot is provided on the fixed plate, and the motor is fixed to the inner wall of the through slot. The rotating shaft is located on one side of the motor. A circular slot is provided on the lifting block, and the rotating shaft is inserted into the circular slot. The slider is fixed to the inner wall of the circular slot.

[0007] The auxiliary component also includes a fixing member located on one side of the mounting plate, which includes a fixing block, a locking block, and a spring. The fixing block is fixed to the mounting plate, and the fixing block has a first moving groove. The locking block slides in the first moving groove, and one end of the spring is fixed to the inner wall of the first moving groove.

[0008] As a preferred embodiment of the intelligent curtain system for preventing wind-borne flying objects from impacting the present invention, wherein: a second moving groove is provided in the lifting block, and the locking block can slide in the first moving groove.

[0009] As a preferred embodiment of the intelligent curtain system for preventing wind-borne flying objects from impacting the present invention, wherein: the lifting block has an installation groove, the installation groove is fixed with an electromagnet, and the locking block is ferromagnetic.

[0010] As a preferred embodiment of the intelligent curtain system for preventing wind-borne flying objects from impacting the present invention, wherein: a mounting block is provided at one end of the roller, and the mounting block is bolted to the mounting plate.

[0011] As a preferred embodiment of the intelligent curtain system for preventing wind-borne flying objects from impacting the present invention, there are multiple rollers, and each roller is fitted with a curtain.

[0012] As a preferred embodiment of the intelligent curtain system for preventing wind-borne flying objects from impacting the present invention, wherein: partitions are fixed on the mounting plate, and the number of partitions is consistent with and corresponds to the number of rollers.

[0013] As a preferred embodiment of the intelligent curtain system for preventing wind-borne object impacts as described in this utility model, the curtains are of four types, including Venetian blinds, PMMA roller blinds, impact-resistant film roller blinds, and LED roller blind screens.

[0014] As a preferred embodiment of the intelligent curtain system for preventing wind-borne flying objects from impacting the present invention, wherein: the card block has a card slot, and the end of the roller blind is fixed to the inner wall of the card slot.

[0015] As a preferred embodiment of the intelligent curtain system for preventing wind-borne flying objects from impacting the present invention, the main component further includes architectural glass, which is located on one side of the fixing frame.

[0016] As a preferred embodiment of the intelligent curtain system for preventing wind-borne flying objects from impacting the present invention, it further includes a control component disposed on one side of the fixing frame, including a light and temperature sensing device, a wind speed sensing device, and a pressure and vibration sensing device. The light and temperature sensing device is fixed to the fixing plate, the wind speed sensing device is fixed to the fixing plate, and the pressure and vibration sensing device is fixed to the building glass.

[0017] The beneficial effects of this utility model are as follows: This device has four different types of blinds: Venetian blinds, PMMA roller blinds, LED roller blind screens, and impact-resistant film roller blinds. It monitors the usage environment of building glass in real time through light and temperature sensors, pressure and vibration sensors, and wind speed sensors, and transmits the data to the central control platform. The self-sensing system judges the current environmental conditions based on this data and automatically controls the corresponding motor to start, so as to realize the automatic raising and lowering of different blinds. Users can adjust the type and raising and lowering status of the roller blinds independently according to their own needs using an infrared remote control. Attached Figure Description

[0018] To more clearly illustrate the technical solutions of the embodiments of this utility model, the drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort. Among them:

[0019] Figure 1 A diagram showing the overall structure of an intelligent curtain system designed to prevent impact from wind-borne objects.

[0020] Figure 2 Another perspective view of the overall structure of the smart curtain system designed to prevent wind-borne objects from impacting the curtains.

[0021] Figure 3 A cross-sectional view of the roller structure of an intelligent curtain system designed to prevent impact from wind-borne objects.

[0022] Figure 4 A cross-sectional structural diagram of the fixing block of an intelligent curtain system designed to prevent impact from wind-borne flying objects.

[0023] Figure 5 Smart curtain system to prevent impact from wind-borne flying objects Figure 4 Enlarged view of the structure at point A in the middle.

[0024] Figure 6 A structural diagram of the fixing block of an intelligent curtain system designed to prevent impact from wind-borne flying objects. Detailed Implementation

[0025] To make the above-mentioned objectives, features and advantages of this utility model more apparent and understandable, the specific embodiments of this utility model will be described in detail below with reference to the accompanying drawings.

[0026] Many specific details are set forth in the following description in order to provide a full understanding of the present invention. However, the present invention may also be implemented in other ways different from those described herein. Those skilled in the art can make similar extensions without departing from the spirit of the present invention. Therefore, the present invention is not limited to the specific embodiments disclosed below.

[0027] Secondly, the term "an embodiment" or "embodiment" as used herein refers to a specific feature, structure, or characteristic that may be included in at least one implementation of the present invention. The phrase "in one embodiment" appearing in different places in this specification does not necessarily refer to the same embodiment, nor is it a single or selective embodiment that excludes other embodiments.

[0028] Example 1

[0029] Reference Figures 1-6 This is the first embodiment of the present invention. This embodiment provides an intelligent curtain system for preventing wind-borne flying objects from impacting the curtain. The intelligent curtain system for preventing wind-borne flying objects from impacting the curtain includes a main component 100, a fixing frame 101, a fixing plate 102, an mounting plate 103, and a roller 104. The fixing plate 102 is fixed on the fixing frame 101, the mounting plate 103 is disposed on both sides of the fixing frame 101, and the roller 104 is located on one side of the mounting plate 103.

[0030] A tubular motor is fixed inside the roller 104. The roller 104 is fixed to the starting end of the curtain 106. The rotation of the tubular motor drives the roller 104 to rotate, thereby controlling the raising and lowering of the curtain 106. This is existing technology, and this solution will not be described in detail. Moreover, those skilled in the art can clearly understand the working principle. The fixing frame 101 is used to house the entire device. The fixing plate 102 provides a guide rail for the curtain 106 to roll up. The mounting plate 103 provides stable support for the roller 104.

[0031] The fixing bracket 101 is bolted to the building wall. The fixing bracket 101 has high strength and can be placed outdoors or indoors as needed.

[0032] The auxiliary component 200 is disposed within the fixed frame 101 and includes an auxiliary part 201. The auxiliary part 201 includes a motor 201a, a rotating shaft 201b, a lifting block 201c, and a slider 201d. A through groove 102-1 is provided on the fixed plate 102. The motor 201a is fixed to the inner wall of the through groove 102-1. The rotating shaft 201b is located on one side of the motor 201a. The lifting block 201c is provided with a circular groove 201c-1. The rotating shaft 201b is inserted into the circular groove 201c-1. The slider 201d is fixed to the inner wall of the circular groove 201c-1.

[0033] The auxiliary component 201 is used to move the end of the curtain 106 within the guide rail as the roller 104 rotates. The fixed plate 102 is provided with a lifting groove 102-2, and the lifting block 201c moves up and down along the lifting groove 102-2.

[0034] The rotating shaft 201b is connected to the motor shaft inside the motor 201a. The other end of the rotating shaft 201b is connected to the bearing on the inner wall of the lifting groove 102-2. A spiral groove 201b-1 is provided on the rotating shaft 201b. The slider 201d slides in the spiral groove 201b-1. When the motor 201a is started, it will drive the rotating shaft 201b to rotate. The slider 201d is located in the groove of the rotating shaft 201b. When the rotating shaft 201b rotates, the slider 201d slides in the rotating shaft 201b, thereby causing the lifting block 201c to move vertically in the lifting groove 102-2 along the direction of the rotating shaft 201b.

[0035] The auxiliary component 200 also includes a fixing member 202, which is located on one side of the mounting plate 103 and includes a fixing block 202a, a locking block 202b and a spring 202c. The fixing block 202a is fixed to the mounting plate 103 and has a first moving groove 202a-1. The locking block 202b slides in the first moving groove 202a-1 and one end of the spring 202c is fixed to the inner wall of the first moving groove 202a-1.

[0036] The fastener 202 is used to limit the end of the unused curtain 106 to prevent it from shifting in position within the fixing frame 101 and affecting subsequent use. The locking block 202b is fixed to the end of the curtain 106.

[0037] There are multiple sets of fasteners 202, corresponding to curtains 106.

[0038] The first moving groove 202a-1 is designed so that the locking block 202b can only move along the direction of the first moving groove 202a-1. A part of the top of the first moving groove 202a-1 is connected to the outside of the fixed block 202a to avoid affecting the rolling and opening of the curtain 106. When the spring 202c is in a relaxed state, the locking block 202b will move towards the lifting block 201c under the push of the spring 202c. The other end of the spring 202c is not fixed to the locking block 202b. When the curtain 106 is about to be completely rolled up, the end of the curtain 106 will pull the locking block 202b, causing the locking block 202b to move away from the lifting block 201c along the first moving groove 202a-1. At this time, the spring 202c will be compressed. After the curtain 106 stops rolling up, the position of the locking block 202b will also be fixed.

[0039] Example 2

[0040] Reference Figures 1-6 This is the second embodiment of the present invention, which is based on the previous embodiment.

[0041] Specifically, the lifting block 201c has a second moving groove 201c-2, and the locking block 202b can slide in the first moving groove 202a-1.

[0042] When the first moving groove 202a-1 and the second moving groove 201c-2 are in a coaxial position, the curtain 106 is in the opening process, and the number of curtains 106 that are not rolled up by the roller 104 will increase. At this time, under the push of the spring 202c, the locking block 202b will move towards the lifting block 201c, thereby moving into the second moving groove 201c-2.

[0043] Specifically, the lifting block 201c has an installation groove 201c-3, the installation groove 201c-3 is fixed with an electromagnet 201e, and the locking block 202b is ferromagnetic.

[0044] The electromagnet 201e has a relatively small magnetic force. It is only necessary to ensure that after the locking block 202b moves into the second moving slot 201c-2, it can move synchronously with the lifting block 201c. When the motor 201a starts, the electromagnet 201e will also be energized. After being energized, it will generate magnetism and attract the locking block 202b, temporarily connecting the locking block 202b with the lifting block 201c. When the lifting block 201c moves and the second moving slot 201c-2 and the first moving slot 202a-1 are in a coaxial position, the motor 201a will stop running, the electromagnet 201e will no longer be energized, and the locking block 202b will not be connected to the lifting block 201c. At this time, the roller 104 is still in the winding state, and the end of the curtain 106 will pull the locking block 202b, causing the locking block 202b to move along the first moving slot 202a-1 in a direction away from the lifting block 201c.

[0045] Since the lifting block 201c always slides within the lifting groove 102-2, even after the curtain 106 is fully opened and the electromagnet 201e is no longer energized, the locking block 202b will not separate from the lifting block 201c due to the restriction of the lifting groove 102-2.

[0046] Specifically, a mounting block 105 is provided at one end of the scroll 104, and the mounting block 105 is bolted to the mounting plate 103.

[0047] The mounting block 105 is rotatably connected to the scroll 104. There are multiple mounting blocks 105, and mounting blocks 105 are provided on both sides of the scroll 104 to provide stable support for the scroll 104.

[0048] Specifically, there are multiple rollers 104, and each roller 104 is fitted with a curtain 106.

[0049] The roller 104 is fixed to the starting end of the curtain 106.

[0050] Specifically, partitions 202d are fixed on the mounting plate 103, and the number of partitions 202d is the same as and corresponds to the number of rolls 104.

[0051] The partition 202d is arc-shaped to prevent multiple curtains 106 from interfering with each other and getting tangled.

[0052] Example 3

[0053] Reference Figures 1-6 This is the third embodiment of the present invention, which is based on the first two embodiments.

[0054] Specifically, there are four types of curtains 106, including Venetian blinds 106a, PMMA blinds 106b, impact-resistant film blinds 106c, and LED roller blinds 106d.

[0055] PMMA curtain 106b is made of polymethyl methacrylate and UV-resistant materials. By setting up a variety of different curtains 106, it can meet the diverse curtain needs of buildings in different environments.

[0056] The bottom of the LED roller shutter screen 106d is a certain distance from the card block 202b, so the energized electromagnet 201e will not have a significant impact on it.

[0057] Specifically, the card block 202b has a card slot 202b-1, and the end of the curtain 106 is fixed to the inner wall of the card slot 202b-1.

[0058] Specifically, the main component 100 also includes architectural glass 107, which is located on one side of the mounting frame 101.

[0059] Specifically, it also includes a control component 300, which is set on one side of the fixed frame 101. It includes a light and temperature sensor 301, a wind speed sensor 302, and a pressure and vibration sensor 303. The light and temperature sensor 301 is fixed on the fixed plate 102, the wind speed sensor 302 is fixed on the fixed plate 102, and the pressure and vibration sensor 303 is fixed on the building glass 107.

[0060] A central control platform and an infrared remote controller are installed outside the device. The central control platform receives data from the sensors and transmits the feedback signal to the tubular motor and motor 201a corresponding to the curtain 106 through the self-sensing system, thereby rolling up and opening the curtain 106. The infrared remote controller can control the operation of the tubular motor and motor 201a. Users can adjust the type of blind independently using the infrared remote controller according to their needs.

[0061] The light and temperature sensor 301 is placed outdoors and contains light-sensitive and temperature-sensitive materials. It transmits outdoor light intensity and temperature data to the central control platform. The central control platform monitors the data and makes an assessment. When the light intensity, ultraviolet intensity, and temperature exceed the set values, it will issue an alarm and automatically lower the Venetian blinds 106a or PMMA blinds 106b.

[0062] The wind speed sensor 302 is placed outdoors and has a built-in wind speed sensor to monitor the outdoor wind speed in real time. The pressure and vibration sensor 303 is placed indoors and is in contact with the building glass 107. It has a pressure sensor and a piezoelectric vibration sensor inside to monitor the pressure and vibration of the building glass in real time and transmit the data to the central control platform. When the pressure value, vibration frequency or outdoor wind speed exceeds the set safety value, an electrical signal will be transmitted to the motor in time. The motor will automatically retract the original roller blind and automatically lower the impact-resistant film curtain 106c.

[0063] In operation, all curtains 106 are initially in a rolled-up state. When it is necessary to lower one set of curtains 106, the central control platform will start the motor 201a, driving the rotating shaft 201b to rotate. The slider 201d slides within the rotating shaft 201b, thereby causing the lifting block 201c to move vertically along the direction of the rotating shaft 201b within the lifting groove 102-2. This ensures that the first moving groove 202a-1 and the second moving groove 201c-2 corresponding to that curtain 106 are in a coaxial position. Afterward, the central control platform will send a signal to the corresponding... The tubular motor of the roller 104 rotates the roller 104, opening the curtain 106. The number of curtains 106 not rolled up by the roller 104 will increase. At this time, under the push of the spring 202c, the locking block 202b will move towards the lifting block 201c, thus moving into the second moving slot 201c-2. At the same time, the electromagnet 201e will also be energized, attracting the locking block 202b and temporarily connecting the locking block 202b with the lifting block 201c. After that, the motor 201a and the tubular motor work synchronously, so that the curtain 106 opens smoothly.

[0064] When curtain 106 needs to be replaced, the central control platform will control motor 201a and tubular motor to start. The tubular motor drives curtain 106 to roll up, and motor 201a drives lifting block 201c to rise synchronously. When the first moving groove 202a-1 and the second moving groove 201c-2 are in a coaxial position, motor 201a stops, electromagnet 201e is no longer energized, and locking block 202b is not connected to lifting block 201c. At this time, the roller 104 is still in the rolling state. The end of curtain 106 will pull locking block 202b, causing locking block 202b to move away from lifting block 201c along the second moving groove 201c-2. Spring 202c will be compressed, and locking block 202b will move into the first moving groove 202a-1. After curtain 106 stops rolling up, the position of locking block 202b will also be fixed, and it will not affect the rolling up of other curtains 106.

[0065] The other curtain 106 will only be replaced after the original curtain 106 has been rolled up.

[0066] It should be noted that the above embodiments are only used to illustrate the technical solution of this utility model and are not intended to limit it. Although this utility model has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solution of this utility model without departing from the spirit and scope of the technical solution of this utility model, and all such modifications or substitutions should be covered within the scope of the claims of this utility model.

Claims

1. A smart curtain system for preventing impact from wind-borne flying objects, characterized in that: include, The main component (100) includes a fixing frame (101), a fixing plate (102), a mounting plate (103), and a scroll (104). The fixing plate (102) is fixed to the fixing frame (101), the mounting plate (103) is disposed on both sides of the fixing frame (101), and the scroll (104) is located on one side of the mounting plate (103). An auxiliary component (200) is disposed within the fixed frame (101) and includes an auxiliary part (201). The auxiliary part (201) includes a motor (201a), a rotating shaft (201b), a lifting block (201c), and a slider (201d). A through groove (102-1) is provided on the fixed plate (102). The motor (201a) is fixed to the inner wall of the through groove (102-1). The rotating shaft (201b) is located on one side of the motor (201a). The lifting block (201c) has a circular groove (201c-1). The rotating shaft (201b) is inserted into the circular groove (201c-1). The slider (201d) is fixed to the inner wall of the circular groove (201c-1). The auxiliary component (200) also includes a fixing member (202), which is located on one side of the mounting plate (103) and includes a fixing block (202a), a locking block (202b) and a spring (202c). The fixing block (202a) is fixed on the mounting plate (103) and has a first moving groove (202a-1). The locking block (202b) slides in the first moving groove (202a-1), and one end of the spring (202c) is fixed to the inner wall of the first moving groove (202a-1).

2. The intelligent curtain system for preventing wind-borne flying objects from impacting the curtain as described in claim 1, characterized in that: The lifting block (201c) has a second moving groove (201c-2) inside, and the locking block (202b) can slide in the first moving groove (202a-1).

3. The intelligent curtain system for preventing wind-borne projectile impact as described in claim 1 or 2, characterized in that: The lifting block (201c) has an installation groove (201c-3) inside, and an electromagnet (201e) is fixed in the installation groove (201c-3). The locking block (202b) is ferromagnetic.

4. The intelligent curtain system for preventing wind-borne object impact as described in claim 3, characterized in that: One end of the reel (104) is provided with a mounting block (105), which is bolted to the mounting plate (103).

5. The intelligent curtain system for preventing wind-borne projectile impact as described in claim 4, characterized in that: There are multiple rollers (104), and each roller (104) is fitted with a curtain (106).

6. The intelligent curtain system for preventing wind-borne projectile impact as described in claim 5, characterized in that: A partition (202d) is fixed on the mounting plate (103), and the number of the partitions (202d) is the same as and corresponds to the number of the scrolls (104).

7. The intelligent curtain system for preventing wind-borne flying objects from impacting the curtain as described in claim 6, characterized in that: There are four types of curtains (106), including Venetian blinds (106a), PMMA roller blinds (106b), impact-resistant film roller blinds (106c) and LED roller blind screens (106d).

8. The intelligent curtain system for preventing wind-borne flying objects from impacting the screen as described in claim 7, characterized in that: The card block (202b) has a card slot (202b-1), and the end of the curtain (106) is fixed to the inner wall of the card slot (202b-1).

9. The intelligent curtain system for preventing wind-borne projectile impact as described in claim 7 or 8, characterized in that: The main component (100) also includes architectural glass (107) located on one side of the fixture (101).

10. The intelligent curtain system for preventing wind-borne projectile impact as described in claim 9, characterized in that: It also includes a control component (300) disposed on one side of the fixed frame (101), including a light and temperature sensing device (301), a wind speed sensing device (302), and a pressure and vibration sensing device (303). The light and temperature sensing device (301) is fixed on the fixed plate (102), the wind speed sensing device (302) is fixed on the fixed plate (102), and the pressure and vibration sensing device (303) is fixed on the building glass (107).