Aluminum alloy window with sound control function
Through the sound-controlled aluminum alloy window, the audio sensor and driving mechanism are used to automatically open and close the aluminum alloy window, which solves the problem of manual operation and improves the convenience of use.
Patent Information
- Application Number
- CN202422056356.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-23
- Publication Date
- 2025-07-18
- Estimated Expiration
- 2034-08-23
AI Technical Summary
Existing aluminum alloy windows need to be opened or closed manually, especially for people with limited physical conditions, which are difficult to operate.
Design an aluminum alloy window with voice control function, receive sound signals through an audio sensor, and the controller analyzes and drives the driving mechanism to realize the automatic opening and closing of the aluminum alloy fan frame.
Users can remotely control the opening and closing of windows through sound commands, which improves the convenience of use, especially for people with reduced mobility or in a hurry.
Smart Images

Figure CN223119774U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of aluminum alloy windows, and specifically relates to an aluminum alloy window with a voice control function. Background Art
[0002] Due to its strong corrosion resistance, high strength, beauty and low maintenance cost, aluminum alloy windows are widely used in modern buildings. Generally, this type of window includes a sturdy aluminum alloy window frame and at least one aluminum alloy sash frame hinged to the window frame. The use of aluminum alloy not only ensures the structural stability and long-term durability of the window, but also makes it easy to install and replace due to its light weight. In addition, the design of aluminum alloy windows is flexible and can adapt to various architectural styles and personal preferences, making it the preferred window type in residential and commercial buildings.
[0003] Although aluminum alloy windows have many advantages, most existing windows still need to be manually operated to open or close. This manual operation method is not only time-consuming and laborious, but may also be difficult to operate for people with limited physical conditions. Summary of the Utility Model
[0004] Aiming at the deficiencies of the prior art, the utility model provides an aluminum alloy window with a voice control function, aiming to solve the problems raised in the above background art.
[0005] To achieve the above objectives, the utility model is realized through the following technical solutions: an aluminum alloy window with a voice control function, the aluminum alloy window includes:
[0006] An aluminum alloy window frame;
[0007] An aluminum alloy sash frame that can be reversibly arranged inside the aluminum alloy window frame;
[0008] Glass installed on the aluminum alloy sash frame;
[0009] A controller, the controller is connected to the aluminum alloy window frame;
[0010] An audio sensor, the audio sensor is connected to the aluminum alloy window frame and the controller, and is used to receive sound signals and transmit them to the controller;
[0011] Two driving mechanisms, the driving mechanisms are electrically connected to the controller;
[0012] Two connecting rod assemblies, each connecting rod assembly connects a corresponding driving mechanism and is installed on the aluminum alloy sash frame to form a reversible connection with the aluminum alloy window frame;
[0013] Wherein, the driving mechanism drives the corresponding link assembly to act according to the instruction received by the controller from the audio sensor, so as to realize the opening and closing of the aluminum alloy fan frame.
[0014] Preferably, the link assembly includes a first link, a second link, a third link, a fourth link, a slideway and a slider; the slideway is installed on the inner wall of the aluminum alloy window frame, the slider is slidably installed in the slideway, a chute is provided on the slideway, and a connecting part connected to the driving mechanism is provided on the slider. The driving mechanism is used to drive the slider to move linearly in the slideway; the connecting part passes through the chute and is slidably connected with the chute. One end of the first link is rotatably connected to one end of the slideway, one end of the fourth link is rotatably connected to the slider, one end of the fourth link is rotatably connected to the second link, the other end of the first link is rotatable with the second link, one end of the third link is rotatably connected to the slider, the other end of the third link is rotatably connected to the first link, and the second link is connected to the aluminum alloy fan frame.
[0015] Preferably, the second link is connected to the aluminum alloy fan frame through a connecting block.
[0016] Preferably, a strip-shaped groove is provided on the side of the slider, and an extension part extending into the strip-shaped groove is provided on the slideway, and the extension part is slidably connected with the strip-shaped groove.
[0017] Preferably, the driving mechanism is arranged in the aluminum alloy profile of the aluminum alloy window frame. The driving mechanism includes a motor, an outer sleeve, an inner sleeve, a driving block and a screw. The outer sleeve is connected to the slideway, the inner sleeve is slidably installed in the outer sleeve, the motor is connected to the outer sleeve, the output end of the motor extends into the outer sleeve and is connected to the screw. The driving block is arranged in the inner sleeve, the screw passes through the driving block and is threadedly connected with the driving block, and one end of the inner sleeve extending out of the outer sleeve is connected to the connecting part.
[0018] Preferably, both the outer sleeve and the inner sleeve are rectangular tubes.
[0019] Preferably, the inner sleeve is connected to the connecting part through a U-shaped connecting piece. The connecting part is located in the connecting groove of the U-shaped connecting piece and is connected by bolts.
[0020] Preferably, the driving block is slidably connected to the inner wall of the inner sleeve, an electromagnet is embedded in the driving block, and a magnetic attraction part that can be adsorbed to the electromagnet is provided at one end of the inner sleeve close to the motor.
[0021] Preferably, a guiding part is provided at one end of the driving block close to the inner sleeve.
[0022] Preferably, the aluminum alloy window frame is provided with a handle.
[0023] Beneficial effects
[0024] The utility model provides an aluminum alloy window with a voice control function. Through the user's voice command, the audio sensor receives the voice and converts it into an electrical signal, which is transmitted to the controller. After parsing this signal, the controller issues a command to the drive mechanism to activate the drive mechanism. Subsequently, the drive mechanism drives the corresponding link assembly to act, realizing the opening or closing operation of the aluminum alloy window frame.
[0025] The user can remotely control the opening and closing of the window by issuing voice commands, thus greatly improving the convenience of use. There is no need for the user to walk to the window to open or close it. It is especially suitable for people with limited mobility or in a hurry. Description of the drawings
[0026] Figure 1 It is a schematic diagram of the first perspective structure of the opening state of an aluminum alloy window with a voice control function according to the utility model.
[0027] Figure 2 It is a schematic diagram of the second perspective structure of the opening state of an aluminum alloy window with a voice control function according to the utility model.
[0028] Figure 3 It is an exploded view of an aluminum alloy window with a voice control function according to the utility model.
[0029] Figure 4 It is Figure 1 The enlarged schematic diagram at A in
[0030] Figure 5 It is Figure 2 The enlarged schematic diagram at B in
[0031] Figure 6 It is a schematic diagram of the first perspective three-dimensional structure of the connection between the link assembly and the drive mechanism of an aluminum alloy window with a voice control function according to the utility model.
[0032] Figure 7 It is a schematic diagram of the second perspective three-dimensional structure of the connection between the link assembly and the drive mechanism of an aluminum alloy window with a voice control function according to the utility model.
[0033] Figure 8 It is a schematic diagram of the three-dimensional structure of a drive mechanism with a voice control function according to the utility model.
[0034] Figure 9 It is an exploded view of a drive mechanism with a voice control function according to the utility model.
[0035] Figure 10 This is a schematic cross-sectional view of a drive mechanism with a voice control function according to the present utility model.
[0036] In the figure: 1-aluminum alloy window frame, 2-aluminum alloy sash frame, 3-glass, 4-controller, 5-link assembly, 51-first link, 52-second link, 53-third link, 54-slideway, 541-chute, 55-slider, 551-connection part, 56-fourth link, 6-drive mechanism, 61-motor, 62-outer sleeve, 63-inner sleeve, 64-drive block, 65-screw, 66-U-shaped connecting piece, 641-electromagnet, 631-magnetic attracting part, 642-guiding part, 7-audio sensor, 21-handle. Specific embodiments
[0037] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.
[0038] Please refer to Figure 1-10 , the present utility model provides an aluminum alloy window with a voice control function, and the aluminum alloy window includes:
[0039] The aluminum alloy window frame 1 is composed of four aluminum alloy profiles and is rectangular. The aluminum alloy window frame 1 serves as the main frame of the window and has sufficient strength and corrosion resistance to support the entire window structure.
[0040] The aluminum alloy sash frame 2 is installed in the aluminum alloy window frame 1 and can be flipped open or closed. The glass 3 is installed on the sash frame of the aluminum alloy sash frame 2, and the glass 3 adopts double-layer laminated glass to provide sound insulation, heat insulation and safety protection functions. The aluminum alloy sash frame 2 that can be flip-set in the aluminum alloy window frame 1;
[0041] The controller 4 is installed on the aluminum alloy window frame 1; the controller 4 is responsible for receiving and processing signals from the audio sensor 7, and then controlling the opening and closing of the aluminum alloy window. The controller 4 adopts microprocessing technology and can analyze the voice commands of users and execute corresponding operations.
[0042] The audio sensor 7 is connected to the aluminum alloy window frame 1 and the controller 4. The audio sensor 7 is used to capture sound signals in the environment (such as specific window opening or closing commands), convert these signals into electrical signals, and transmit them to the controller 4.
[0043] Two drive mechanisms 6, the drive mechanisms 6 being electrically connected to the controller 4;
[0044] Two link assemblies 5, each link assembly 5 being connected to a corresponding drive mechanism 6 and mounted on the aluminum alloy window sash 2 to form a pivotal connection with the aluminum alloy window frame 1; each drive mechanism 6 is responsible for implementing power output to drive the corresponding link assembly 5 to act.
[0045] Wherein, the drive mechanism 6 drives the corresponding link assembly 5 to act according to the instruction received by the controller 4 from the audio sensor 7, so as to realize the opening and closing of the aluminum alloy window sash 2.
[0046] During actual use, when the user issues a voice command ("open the window" or "close the window"), the audio sensor 7 receives this voice and converts it into an electrical signal, which is transmitted to the controller 4. After the controller 4 analyzes this signal, it issues an instruction to the drive mechanism 6 to activate the drive mechanism 6. Subsequently, the drive mechanism 6 drives the corresponding link assembly 5 to act, realizing the opening or closing operation of the aluminum alloy window sash 2.
[0047] The user can remotely control the opening and closing of the window by issuing a voice command, thus greatly improving the convenience of use. There is no need for the user to walk to the window to open or close the window. It is especially suitable for people with limited mobility or in a hurry.
[0048] Specifically, the link assembly 5 includes a first link 51, a second link 52, a third link 53, a fourth link 56, a slideway 54 and a slider 55; the slideway 54 is fixed to the inner wall of the aluminum alloy window frame 1, and the slider 55 is slidably installed in the slideway 54. A chute 541 is provided on the slideway 54, and a connecting portion 551 connected to the drive mechanism 6 is installed on the slider 55. The drive mechanism 6 drives the slider 55 to perform a linear motion in the slideway 54. The connecting portion 551 passes through the chute 541 and is slidably connected to the chute 541. One end of the first link 51 is rotatably connected to one end of the slideway 54, one end of the fourth link 56 is rotatably connected to the slider 55, and the other end of the fourth link 56 is rotatably connected to the second link 52. The other end of the first link 51 is rotatably connected to the second link 52, one end of the third link 53 is rotatably connected to the slider 55, and the other end of the third link 53 is rotatably connected to the first link 51. The second link 52 is connected to the aluminum alloy window sash 2.
[0049] During use, the drive mechanism 6 is activated, causing the slider 55 to move linearly along the slideway 54. The movement of the slider 55 successively drives the fourth link 56 and the third link 53. Subsequently, the third link 53 transmits power to the second link 52 through the first link 51, and at the same time, the fourth link 56 also directly acts on the second link 52. The coordinated action of the first link 51, the second link 52, the third link 53, and the fourth link 56 causes the second link 52 to directly drive the aluminum alloy sash frame 2 to flip relative to the aluminum alloy window frame 1, thereby completing the functions of opening and closing the window. Further, according to the sound signal received from the audio sensor 7, the controller 4 issues an instruction to the drive mechanism 6 to guide the specific actions of the link assembly 5, realizing the automatic opening and closing of the aluminum alloy sash frame 2. This process not only has a high degree of automation but also a rapid response, greatly improving the usability and safety.
[0050] Specifically, the second link 52 is firmly connected to the aluminum alloy sash frame 2 through the connecting block 521. This connection method ensures the stability and reliability between the second link 52 and the aluminum alloy sash frame 2.
[0051] Specifically, a strip-shaped groove 552 is provided on the side of the slider 55, and the slideway 54 is equipped with an extension part inserted into the strip-shaped groove 552. A sliding connection is formed between the extension part and the strip-shaped groove 552, ensuring the smooth movement and guiding of the slider.
[0052] Specifically, the drive mechanism 6 is arranged inside the aluminum alloy profile in the aluminum alloy window frame 1, including a motor 61, an outer sleeve 62, an inner sleeve 63, a drive block 64, and a screw 65. The outer sleeve 62 is fixedly connected to the slideway 54, and the inner sleeve 63 is slidably installed inside the outer sleeve 62. The motor 61 is installed on the outer sleeve 62 and is connected to the screw 65 through its output end to achieve power output. The drive block 64 is located inside the inner sleeve 63 and is threadedly connected to the screw 65 passing through it, allowing the drive block to move linearly along the axial direction of the screw 65. The inner sleeve 63 extends from one end of the outer sleeve 62 and is connected to the slider 55 through the connecting part 551.
[0053] The controller 4 controls the operation of the motor 61 through electrical connection. When the user issues a sound command (such as "open the window" or "close the window"), the audio sensor 7 captures these sound signals and converts them into electrical signals, which are then transmitted to the controller 4. After analyzing the signals, the controller 4 sends an operation instruction to the motor 61, causing the motor to start and drive the screw 65 to rotate. The rotation of the screw 65 pushes the drive block 64 to move linearly along the axis of the screw, thereby guiding the inner sleeve 63 to perform telescopic movement inside the outer sleeve 62. The extension action of the inner sleeve 63 pulls the slider 55 through the connecting part 551, and the window closing operation is realized through the link assembly 5. On the contrary, when the inner sleeve 63 retracts into the outer sleeve 62, the window opening operation is implemented. This design ensures the accuracy and efficiency of window operation.
[0054] Specifically, both the outer sleeve 62 and the inner sleeve 63 are designed as rectangular tubes. This structural design enables the outer sleeve 62 to naturally provide a guiding function for the inner sleeve 63, effectively preventing the inner sleeve 63 from rotating during movement, thereby ensuring the stability of the driving mechanism 6 and the accuracy of operation. This non-circular tube structure optimizes the interaction between components, improving the mechanical efficiency and reliability of the entire system.
[0055] Specifically, the inner sleeve 63 is connected to the connecting portion 551 through a U-shaped connecting member 66. The connecting portion 551 is disposed in the connecting groove of the U-shaped connecting member 66 and is fixed by bolts.
[0056] Specifically, the driving block 64 is slidably connected to the inner wall of the inner sleeve 63, and an electromagnet 641 is embedded in the driving block 64. One end of the inner sleeve 63 close to the motor 61 is provided with a magnetic attraction portion 631, which can adsorb to the electromagnet 641. To optimize the magnetic force effect, other parts of the inner sleeve 63 are made of non-magnetic materials, such as copper, and only the magnetic attraction portion 631 has adsorption properties.
[0057] During normal operation, when the electromagnet 641 is energized, it adsorbs and fixes to the magnetic attraction portion 631, thereby ensuring that the movement of the driving block 64 can drive the inner sleeve 63 to move together, realizing the automatic control of the opening and closing of the window. When manual operation of the window is required, the electromagnet 641 can be de-energized to lose its magnetic force. At this time, the driving block 64 can slide within the inner sleeve 63, and the user can manually operate the aluminum alloy sash frame 2 to open or close the window. When the user manually opens or closes the window, it is convenient for use in emergency situations. The aluminum alloy sash frame 2 drives the link assembly 5 to move, and the link assembly 5 drives the inner sleeve 63 to slide within the outer sleeve 62. Since the inner sleeve 63 can move relative to the driving block 64, the opening or closing of the aluminum alloy sash frame 2 can be achieved even if the motor 61 is not started.
[0058] When the voice control function needs to be reactivated, only the electromagnet 641 needs to be energized again, and then the aluminum alloy sash frame 2 is manually toggled to perform the opening or closing action. At this time, the inner sleeve 63 slides relative to the inner wall of the outer sleeve 62, and the driving block 64 slides relative to the inner wall of the inner sleeve 63. When the magnetic attraction portion 631 corresponds to the position of the driving block 64, the electromagnet 641 re-adsorbs to the magnetic attraction portion 631. In the case where the motor is not started, the inner sleeve 63 cannot move, so the aluminum alloy sash frame 2 cannot be further toggled. Subsequently, the voice control method can be used to control the opening and closing of the aluminum alloy window. This design not only ensures the flexibility of operation but also enhances the safety and convenience of window use.
[0059] Specifically, one end of the driving block 64 close to the inner sleeve 63 is provided with a guiding portion 642. The design of this guiding portion 642 is mainly used to simplify the sliding sleeving process of the inner sleeve 63 thereon, ensuring that the inner sleeve 63 can smoothly cover the outside of the driving block 64. Such a setting reduces the risk of jamming between the driving block 64 and the inner sleeve 63 during movement, preventing the mis-adsorption phenomenon between the electromagnet 641 and the magnetic attracting portion 631, thereby maintaining the operation efficiency and reliability of the system.
[0060] Specifically, the aluminum alloy window frame 2 is provided with a handle 21, and the setting of the handle 21 facilitates the opening and closing of the aluminum alloy window frame 2.
[0061] In this embodiment, the controller 4 is an existing controller, and various commercial microcontrollers or application-specific integrated circuits (ASICs) can be used to implement the required functions. For example, ARM Cortex series microcontrollers such as ARM Cortex-M3 can be used. They are widely used in the fields of industry and home automation, have powerful processing capabilities and diverse input / output interfaces, and can well meet the control requirements of the present invention. Such controllers are regarded as part of the prior art due to their programming flexibility and wide application basis.
[0062] In order to achieve precise control of the opening degree of the window, the controller 4 can integrate a timing module or use a position sensor. The timing module can control the running time of the motor according to a preset time interval, thereby precisely controlling the opening angle of the window. For example, by setting the motor to run for a few seconds to achieve half-opening of the window, or for a longer time to fully open the window.
[0063] Another method is to use a position sensor, such as a linear displacement sensor or a rotary encoder. These sensors can provide real-time feedback on the current position of the window. The controller 4 receives signals from the sensors, monitors the opening state of the window in real time, and adjusts the operation of the motor as needed to reach the preset opening degree. This method provides higher precision and repeatability and is suitable for applications that require precise control of the opening degree of the window.
[0064] The main objective of the present utility model is to achieve the opening or closing of the aluminum alloy window through voice commands. For the control of the opening degree of the window, this is not the core technical problem to be solved by this patent, because this function can be easily achieved by existing technical means. Specifically, it can be adjusted by programming the software in the controller, or the opening degree of the window can be precisely controlled by using the timing module and position sensor integrated in the controller. Therefore, detailed technical descriptions of this part are not elaborated here.
[0065] Note that, in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations.
Claims
1. An aluminum alloy window with a voice control function, the aluminum alloy window comprising: An aluminum alloy window frame (1); An aluminum alloy sash frame (2) rotatably arranged within the aluminum alloy window frame (1); Glass (3) installed in the aluminum alloy sash frame (2); Characterized in that it further comprises: A controller (4), the controller (4) being connected to the aluminum alloy window frame (1); An audio sensor (7), the audio sensor (7) being connected to the aluminum alloy window frame (1) and the controller (4) for receiving a sound signal and transmitting it to the controller (4); Two driving mechanisms (6), the driving mechanisms (6) being electrically connected to the controller (4); Two link assemblies (5), each link assembly (5) connecting a corresponding driving mechanism (6) and being installed on the aluminum alloy sash frame (2) to form a rotatable connection with the aluminum alloy window frame (1); Wherein, the driving mechanism (6) drives the corresponding link assembly (5) to act according to an instruction received by the controller (4) from the audio sensor (7), thereby realizing the opening and closing of the aluminum alloy sash frame (2).
2. The aluminum alloy window with a voice control function according to claim 1, characterized in that, The link assembly (5) includes a first link (51), a second link (52), a third link (53), a fourth link (56), a slideway (54) and a slider (55); the slideway (54) is installed on the inner wall of the aluminum alloy window frame (1), the slider (55) is slidably installed within the slideway (54), a chute (541) is formed on the slideway (54), a connecting portion (551) connected to the driving mechanism (6) is provided on the slider (55), and the driving mechanism (6) is used for driving the slider (55) to linearly move within the slideway (54); the connecting portion (551) passes through the chute (541) and is slidably connected to the chute (541), one end of the first link (51) is rotatably connected to one end of the slideway (54), one end of the fourth link (56) is rotatably connected to the slider (55), one end of the fourth link (56) is rotatably connected to the second link (52), the other end of the first link (51) is rotatable with the second link (52), one end of the third link (53) is rotatably connected to the slider (55), the other end of the third link (53) is rotatably connected to the first link (51), and the second link (52) is connected to the aluminum alloy sash frame (2).
3. The aluminum alloy window with a voice control function according to claim 2, characterized in that, The second link (52) is connected to the aluminum alloy sash frame (2) through a connecting block (521).
4. The aluminum alloy window with a voice control function according to claim 2, characterized in that, A strip-shaped groove (552) is provided on the side of the slider (55), and the slideway (54) is provided with an extension portion extending into the strip-shaped groove (552), and the extension portion is slidably connected to the strip-shaped groove (552).
5. The aluminum alloy window with voice control function according to claim 2, characterized in that, The driving mechanism (6) is arranged inside the aluminum alloy profile of the aluminum alloy window frame (1). The driving mechanism (6) includes a motor (61), an outer sleeve (62), an inner sleeve (63), a driving block (64) and a screw rod (65). The outer sleeve (62) is connected to the slideway (54). The inner sleeve (63) is slidably installed inside the outer sleeve (62). The motor (61) is connected to the outer sleeve (62). The output end of the motor (61) extends into the outer sleeve (62) and is connected to the screw rod (65). The driving block (64) is arranged inside the inner sleeve (63). The screw rod (65) passes through the driving block (64) and is threadedly connected to the driving block (64). One end of the inner sleeve (63) extending out of the outer sleeve (62) is connected to the connecting portion (551).
6. The aluminum alloy window with a voice control function according to claim 5, characterized in that, Both the outer sleeve (62) and the inner sleeve (63) are rectangular tubes.
7. The aluminum alloy window with a voice control function according to claim 5, characterized in that, The inner sleeve (63) is connected to the connecting portion (551) through a U-shaped connecting piece (66). The connecting portion (551) is located in the connecting groove of the U-shaped connecting piece (66) and is connected by bolts.
8. The aluminum alloy window with a voice control function according to claim 5, characterized in that, The driving block (64) is slidably connected to the inner wall of the inner sleeve (63). An electromagnet (641) is embedded in the driving block (64). A magnetic attraction portion (631) that can adsorb to the electromagnet (641) is arranged at one end of the inner sleeve (63) close to the motor (61).
9. The aluminum alloy window with a voice control function according to claim 8, characterized in that, A guiding portion (642) is arranged at one end of the driving block (64) close to the inner sleeve (63).
10. A kind of aluminum alloy window with voice control function according to any one of claims 1 to 9, characterized in that, The aluminum alloy sash frame (2) is provided with a handle (21).